BACKGROUND OF THE INVENTION
1. Field of the Invention
[0001] The subject invention relates to a method and a container for aseptically storing
and dispensing a substance.
2. Background of the Related Art
[0002] Flexible tubes are used to store a variety of powder, liquid, gel, creamy and pasty
products having a broad range of viscosities. Generally, the flexible tubes have a
cover which is removed to expose a simple release aperture. As a result, low pressure
is required to express the contents therein. Undesirable oozing and collection of
product that can clog the release aperture is common. Moreover, when the traditional
tube is opened, the contents are not only subject to the environment but a quantity
of air is normally sucked into the tube. Hence, despite techniques for sterilizing
foodstuffs and other products, even the use of preservatives cannot prevent degradation
of many products, thereby limiting the shelf-life and range of products suitable for
dispensing via tubes. For tubes which dispense multiple doses, even refrigeration
after opening cannot prevent the subsequent degradation of the product. The perishable
item still has a limited shelf life. In view of the above, one solution has been to
provide sterile servings in smaller, portable quantities, such as individual serving
packets of ketchup, mustard and mayonnaise.
[0003] Similarly, many cosmetic, dermatological, pharmaceutical and/or cosmeceutical products
and other substances are packaged in dispensers or other containers that expose the
product to air after opening and/or initially dispensing the product. As a result,
such products must include preservatives in order to prevent the product remaining
in the container from spoiling or otherwise degrading between usages. In addition,
such products typically must be used within a relatively short period of time after
opening in order to prevent the product from spoiling or otherwise degrading before
use. One of the drawbacks associated with preservatives is that they can cause an
allergic or an otherwise undesirable reaction or effect on the user. In addition,
the preservatives do not prevent the bulk product stored within the open container
from collecting, and in some cases, facilitating the growth of germs. Many such prior
art dispensers expose the bulk product contained within the dispenser after opening
to air, and thus expose the bulk product to bacteria, germs and/or other impurities
during and/or after application of the product, thereby allowing contamination of
the product remaining in the dispenser and spreading of the bacteria, germs or impurities
with subsequent use of the product. For example, liquid lipstick is particularly poorly
suited for dispensing by prior art containers. The liquid lipstick becomes contaminated,
evaporates due to air passage losing moisture, and ultimately is unusable if not unsafe
before complete utilization of the product. The tips become contaminated, dirty and
sticky or crusty as well as allowing the lipstick to continue to flow when not being
used.
[0004] In view of the above, several containers have been provided with closure devices
such as one-way valves. One drawback associated with prior art dispensers including
one-way valves is that the valves are frequently designed to work with mechanical
pumps or like actuators that are capable of creating relatively high valve opening
pressures. Exemplary dispensers of this type are illustrated in
U.S. Patent Nos. RE 37,047,
6,032,101,
5,944,702, and
5,746,728 and U.S. Publication Nos.
US2002/0074362 A1,
US2002/0017294 A1. Squeeze tube-type dispensers, on the other hand, are not capable of creating the
necessary valve opening pressures, and therefore such prior art valves do not work
effectively with squeeze tubes.
[0005] Document
WO00/29192 discloses a container according to the preamble of claim 10. Accordingly, it is an
object of the present invention to overcome one or more of the above-described drawbacks
and disadvantages of the prior art.
SUMMARY OF THE INVENTION
[0006] This object is solved by the method of claim 1 and the container of claim 10. The
dependent claims describe other characteristics of the invention.
[0007] One advantage of the present invention is that the valve substantially prevents the
ingress of air, other gases or vapors, or bacteria therethrough or otherwise into
the tube during dispensing. As a result, the containers may maintain the substances
contained therein in a sterile and/or airless condition throughout substantial periods
of storage, shelf life and/or use. Accordingly, the containers of the present invention
are particularly well suited for dispensing multiple doses of sterile and/or non-preserved
(or "preservative-free") products or other substances requiring storage in an airless
condition.
[0008] Another advantage of the present invention is that at least one of the valve seat
diameter, a degree of interference between the valve cover and valve seat, the predetermined
radial thickness of the valve portion, and a predetermined modulus of elasticity of
the valve cover material, is selected to (i) define a predetermined valve opening
pressure generated upon manually squeezing the tube that allows passage of the substance
from the storage chamber through the valve opening, and (2) hermetically seal the
valve and prevent the ingress of bacteria through the valve and into the tube in the
normally closed position. Accordingly, in contrast to the prior art valves described
above, the tube and valve assembly of the present invention enables a sufficiently
low valve opening pressure to allow the substance to be dispensed through the valve
by manually squeezing the tube, yet the valve also hermetically seals the tube and
prevents the ingress of bacteria or other impurities into the tube.
[0009] Another advantage of the currently preferred embodiments of the present invention
is that the seal formed by the valve substantially prevents any creep of the material
during the storage or shelf-life. Another advantage of the one-way valve assembly
is that after dispensing the product does not remain in the one-way valve which could
cause improper sealing and potential contamination. In addition, the one-way valve
employed in the preferred embodiments of the present invention further maintains the
interior of the tube in a hermetically-sealed condition throughout the storage, shelf-life
and/or use of the container.
[0010] Yet another advantage of the present invention is that because the product may be
maintained in an airless condition in the tube, the containers may be used in virtually
any orientation, and furthermore, may be used in low gravity environments. Still another
advantage is the ability to optimize the valve opening pressure for flow, ease of
use and a desired valve opening pressure for products of varying viscosities.
[0011] Additionally, the invention herein is scalable which is useful when storing larger
quantities of product having an extended shelf life. Another advantage of the currently
preferred embodiments of the present invention is the flow path is substantially linear
which allows for a more consistent flow rate and velocity of the product. The linear
flow path also helps to prevent pockets in which a viscous material could become trapped
or even create a flow path for a source of contamination.
[0012] Other object and advantages of the preferred embodiments of the present invention
will become readily apparent in view of the following detailed description taken in
conjunction with the accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] So that those having ordinary skill in the art to which the disclosed invention appertains
will more readily understand how to make and use the same, reference may be had to
the drawings wherein:
FIG. 1 illustrates a perspective view of a container embodying the present invention
for storing and releasing a substance from a sterile environment.
FIG. 2 illustrates a side view of the container of FIG. 1 with the cap removed.
FIG. 3 illustrates a partially broken away, perspective view of the container of FIG.
1.
FIG. 4 illustrates an enlarged, partially broken away perspective view of the nozzle
of the container of FIG. 1.
FIG. 4B illustrates a cross-section of another nozzle with an o-ring seal for a container
embodying the present invention for storing and releasing a substance from a sterile
environment.
FIG. 5 illustrates a perspective view of another container embodying the present invention
for storing and releasing a substance from a sterile environment.
FIG. 6 illustrates a partial, side view of the container of FIG. 5.
FIG. 7 illustrates a partially broken away, perspective view of the container of FIG.
5.
FIG. 8 illustrates an enlarged, partially broken away perspective view of the nozzle
of the container of FIG. 5.
FIG. 8B illustrates an partial, cross-sectional view of another nozzle with a flexible
shoulder for a container embodying the present invention for storing and releasing
a substance from a sterile environment.
FIG. 9 illustrates a perspective view of still another container for storing and releasing
a substance from a sterile environment and embodying the present invention.
FIG. 10 illustrates a partial, perspective view of the container of FIG. 9.
FIG. 11 illustrates a partial, side elevational view of the container of FIG. 9.
FIG. 12 illustrates an enlarged, partially broken away view of the nozzle of the container
of FIG. 9.
FIG. 12A illustrates a cross-sectional, somewhat schematic view of a nozzle similar
to the nozzle of the container of FIG. 9 where the nozzle is at rest.
FIG. 12B illustrates a cross-sectional, somewhat schematic view of a nozzle similar
to the nozzle of the container of FIG. 9 where the nozzle is beginning to have pressure.
FIG.12C illustrates a cross-sectional, somewhat schematic view of a nozzle similar
to the nozzle of the container of FIG. 9 where the nozzle is releasing the substance.
FIG. 13 illustrates a partially broken away, perspective view of the nozzle of the
container of FIG. 9.
FIG. 14 illustrates a partial, enlarged, partially broken away perspective view of
the nozzle of the container of FIG. 9.
FIG. 15 illustrates another partial, enlarged, partially broken away perspective view
of the nozzle of the container of FIG. 9.
FIG. 15A illustrates a partial, cross-sectional view of the tip of the nozzle of the
container of FIG. 9.
FIG. 15B illustrates a schematic perspective view of a portion of a valve cover for
the nozzle of the container of FIG. 9.
FIG. 15C illustrates another cross-sectional view of the nozzle of the container of
FIG. 9.
FIG 15D illustrates a line drawing of the nozzle of the container of FIG. 9.
FIG. 16 illustrates a cross-sectional view of another nozzle for a container for storing
and releasing a substance from a sterile environment and embodying the present invention.
FIG. 17 illustrates a line drawing of the nozzle of FIG. 16.
FIG. 18 illustrates a cross-sectional view of still another nozzle for a container
for storing and releasing a substance from a sterile environment and embodying the
present invention.
FIG. 19 illustrates a cross-sectional view of another container for storing and releasing
a substance from a sterile environment and embodying the present invention.
FIG. 20A illustrates a side elevational view of still another container for storing
and releasing a substance from a sterile environment and embodying the present invention.
FIG. 20B illustrates a line drawing of the container of FIG. 20A.
FIG. 20C illustrates the cartridge of the container of FIG. 20A.
FIG. 20D illustrates the outer cover of the container of FIG. 20A.
FIG. 21A illustrates a line drawing front view of still another container for storing
and releasing a substance from a sterile environment and embodying the present invention.
FIG. 21B illustrates a line drawing side view of the container of FIG. 21A.
FIG. 22A illustrates a line drawing front view of still another container for storing
and releasing a substance from a sterile environment and embodying the present invention.
FIG. 22B illustrates a line drawing side view of the container of FIG. 22A.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0014] The advantages, and other features of the invention disclosed herein, will become
more readily apparent to those having ordinary skill in the art from the following
detailed description of certain preferred embodiments taken in conjunction with the
drawings which set forth representative embodiments of the present invention and wherein
like reference numerals identify similar structural elements.
[0015] Referring to FIGS. 1-4, the container, referred to generally by reference numeral
100. includes a nozzle 102 and body 104 depending from the nozzle 102. The body 104
defines an interior which retains a creamy, pasty, liquid or other product (not shown)
to be dispensed. To make the container 100, the body 104 and nozzle 102 are sterilized,
the body 104 is filled with the product, such as a perishable food, cosmetic, household,
pharmaceutical, cosmeceutical, medicinal or other product or substance, and the nozzle
102 is attached to seal the contents of the body 104 from the atmosphere. Preferably,
after the container 100 is closed, the contents are sterilized by an appropriate method
such as gamma radiation and the like as would be appreciated by those of ordinary
skill in the pertinent art. However, as may be recognized by those of ordinary skill
in the pertinent art based on the teachings herein, the container 100 and the product
contained therein can be sterilized, if desired, in any of numerous different ways
that are currently or later become known for performing this function. For example,
the product can be sterilized prior to filling same into the container, or the product
can be in-line sterilized during filling of the container.
[0016] A cap 106 threadably engages the nozzle 102 to prevent inadvertent release of the
product. In order to dispense the product, the cap 106 is removed and pressure is
applied to the body 104 by manually squeezing the body 104 and, in turn, to the nozzle
102 to allow release of the product. The nozzle 102 releases the product without exposing
the remaining product to the external atmosphere; thus, the sterility and/or airless
condition of the interior of the body 104 is maintained and the shelf life of the
product is not decreased. Further, bacteria or other contaminants are prevented from
passing through the valve and into the interior of the body 104, as described further
below.
[0017] The body 104 is a tube with a closed end 108 defining a normally closed seal and
an open end 110 for sealingly connecting to the nozzle 102. As shown in FIGS. 3 and
4, the open end 110 has a neck 111 which defines an outlet 113 therethrough for releasing
the product. Threads 115 about the circumference of the neck 111 couple the body 104
to the nozzle 102. Preferably, the body 104 is pliable such that a high percentage
of the product therein can be easily utilized. The body 104 may be all plastic, aluminum,
a combination thereof, and/or a plurality of other suitable materials well known to
those skilled in the art now and later discovered. In one embodiment of the present
invention, the body 104 is made from a coextruded sheet containing various combinations
of LDPE, LLDPE, HDPE, tie resins and foil. The body 104 can be customized for the
application, for example, by color, shape, decoration, coatings and the like. Additionally,
the container 100 can be sized to be portable or otherwise as may be desired. The
body 104 preferably also provides a barrier to oxygen, moisture, flavor loss and the
like.
[0018] The product contained within the container may be any of numerous different types
of cosmetics, such as eye and lip treatments, including, for example, lip gloss, eye
colors, eye glaze, eye shadow, lip color, moisturizers and make-up, such as cover-up,
concealer, shine control, mattifying make-up, and line minimizing make-up, personal
care items such as lotions, creams and ointments, oral care items such as toothpaste,
mouth washes and/or fresheners, pharmaceutical products such as prescription and over-the-counter
drugs, dermatological products, such as products for treating acne, rosacea, and pigmentation
disorders, cosmeceutical products, such as moisturizers, sunscreens, anti-wrinkle
creams, and baldness treatments, nutraceuticals, other over-the-counter products,
household items such as adhesives, glues, paints and cleaners, industrial items such
as lubricants, dyes and compounds, and food items such as icing, cheese, yogurt, milk,
tomato paste, and baby food, and condiments, such as mustard, ketchup, mayonnaise,
jelly and syrup. As may be recognized by those of ordinary skill in the pertinent
art based on the teachings herein, this list is intended to be exemplary and in no
way limiting.
[0019] The cap 106 is preferably made of plastic. Preferably, the cap 106 prevents inadvertent
release of the product from the container 100. Additional tamper-evident features
can be included to comply with FDA guidelines as would be appreciated by those of
ordinary skill in the pertinent art. The container 100 also may be packaged in a box
for additional ease of handling and safety.
[0020] In order to best understand the operation of the container 100, the structure and
operation of the nozzle 102 will now be described in detail. The nozzle 102 is for
releasing the product upon application of manual pressure to the body 104 by squeezing
the body in a conventional manner, such as squeezing the body on opposites sides relative
to each other and, in turn, transmitting a substantially radially-directed force into
the body. By squeezing the body, the pressure of the product or other substance contained
within the body is increased until the pressure is greater than the valve opening
pressure of the nozzle 102 to, in turn, dispense the product within the container
through the nozzle. The nozzle 102 includes an outer body or valve cover 112 at a
distal end or tip, and an inner body 114 having a distal end or tip defining a valve
seat that is coupled to the outer body or valve cover 112. The inner body 114 further
defines a proximal end coupled to the body 104. An intermediate portion of the inner
body 114 defines circumferential threads 116 for engaging the cap threads 118. The
proximal portion of the inner body 114 defines internal threads 120 for engaging the
body threads 115.
[0021] The outer body or valve cover 112 receives an inner nozzle portion or tip 124 defining
the valve seat of the inner body 114. As shown in FIG. 4, the interface of the outer
body 112 and the inner nozzle portion 124 defines a seam 125 which is normally closed
(i.e., the inner and outer nozzle portions are abutting one another as shown in the
drawings), but can be opened by the flow of product of sufficient pressure (i.e.,
equal to or greater than the valve opening pressure) into the seam 125 to release
the product through the nozzle 120. The outer body 112 is preferably molded from a
relatively flexible plastic material in comparison to the inner body 114. Thus, the
outer body 112 can be flexed relative to the inner nozzle portion 124 to open the
seam 125 to release the product through the nozzle 120.
[0022] As shown in FIG. 4, the inner body 114 includes an annular flange 126 which fits
within a corresponding recess in the outer body 112, for retaining the inner body
114 within the outer body 112 and securing the outer body or valve cover against axial
movement. The inner body 114 is therefore pressed into the outer body 112 and coupled
to the outer body by guiding the flange 126 into the corresponding recess. The annular
flange 126 also substantially prevents undesirable flow of the product between the
annular flange 126 and outer body 112. As will be recognized by those skilled in the
art, the inner body 114 can be molded as an integral part of the body 104.
[0023] As shown in FIGS. 3 and 4, the inner body 114 includes a first substantially cylindrical
wall 136 essentially defining a hollow shaft projecting in the axial direction of
the container 100 and threadably engaging the distal end of the body 104. The proximal
end and intermediate portion of the inner body 114 define a first channel 138 which
is sized and configured to align with the outlet 113 of the neck 111. The distal portion
of the inner body 114 defines a relatively narrower second channel 142 axially aligned
with the first channel 138. A plurality of release apertures 140, in communication
with the second channel 142, are defined in a sidewall of the distal portion of the
inner body 114 for allowing exit of the product therethrough. In a preferred embodiment,
the cross-sectional area of the release apertures 140 is at least about 60% of the
total cross-sectional area of the sidewall; although various size release apertures
140, both larger and smaller, may be selected to achieve the desired performance as
would be appreciated by those of ordinary skill in the art based upon review of the
subject disclosure.
[0024] In the operation of the container 100, the container 100 is actuated to release the
product through the nozzle 120 by depressing the body 104 by hand. As a result, pressure
develops within the body 104, the first channel 138, the second channel 142 and the
release apertures 140. The pressure facilitates the flow of product from the body
104 through the seam 125. As a result, the pressurized product flows through the release
aperture 140, into the seam 125, and out through the tip of the nozzle 120 for release.
As indicated above, the valve opening pressure is sufficiently low so that manually
squeezing the body will create sufficient pressure to cause the pressurized product
within the container to open the seam 125 and dispense therethrough.
[0025] Once the product is released and the pressure upon the body 104 is removed, the seam
125 returns to its normally closed position to substantially prevent any product that
is exposed to air from flowing back into the container 100 and otherwise seal the
container. The container 100 is then ready to be actuated again to release another
amount of product. One advantage of this type of container 100 is that once a dose
of product is released, the seam 125 of the nozzle 120 closes, and thus substantially
prevents the product which has been exposed to air or foreign particles from passing
back through the nozzle 120 and into the container 100, which can, in some instances,
contaminate the remainder of the product in the container 100. This advantage is particularly
important when storing multiple-dose quantities of sterile and/or preservative-free
formulations of medicament, perishable food, cosmetics, and the like.
[0026] Referring now to the embodiment of Figure 4B, an o-ring 119 is included to prevent
the product from inadvertently being released between the body 104 and inner body
114. Preferably, the o-ring 119 is seated between the container body 104 and the inner
body 114 for forming a hermetic seal therebetween. As can be seen, in this embodiment
the nozzle 102 differs from the nozzle described above in that the inner body 114
of the valve assembly includes a first substantially fiusto-conical or tapered portion
127 extending between the base of the body and the valve seat 124. Further, the plural
flow apertures 140 (only one shown) extend through the tapered portion 127. As can
be seen, each flow aperture 140 is formed contiguous to the axially-elongated valve
seat 124. The valve cover 112 includes a cover base 129 mounted on the body base and
fixedly secured against axial movement relative thereto by the annular flange 126
of the body base being received within the corresponding annular recess of the cover
base. A valve portion 131 of the valve cover overlies the valve seat 124. As can be
seen, the valve portion 131 defines a predetermined radial thickness and a diameter
less than a diameter of the valve seat to thereby form an interference fit therebetween.
The valve portion 131 and valve seat 124 define the normally closed, annular, axially
extending valve opening 125 therebetween. The valve portion 131 is movable radially
between the normally closed position with the valve portion engaging the valve seat,
as shown in FIG. 4B, and an open position with a segment of the valve portion spaced
radially away from the valve seat to allow the passage of substance at a predetermined
valve opening pressure therebetween. The valve cover 112 further defines a second
substantially frusto-conical shaped portion 133 extending between the cover base and
valve portion 131 that overlies the first substantially frusto-conical shaped portion
127 of the body and forms an interference fit therebetween
[0027] As indicated by the broken line arrow 135 in FIG. 4B, the dispensed product defines
an unobstructed, axially extending flow path between the interior of the body 104
and the flow apertures 140. By forming the outlet apertures in the substantially frusto-conical
or tapered portion 127 of the inner body, and by forming the radially inner side of
each aperture either contiguous to, or substantially contiguous to the annular, axially-extending
valve seat 124 as shown, the head loss encountered in dispensing the product from
the interior of the container through the flow apertures 140 is substantially minimized,
thus facilitating a relatively low valve opening pressure. As a result, the container
and valve assembly enables the product to be easily and comfortably dispensed through
the nozzle by manually squeezing the tube, yet the valve assembly maintains a hermetic
seal that substantially prevents the ingress of bacteria or other unwanted impurities
through the valve and into the interior of the container. As described further below,
the valve portion 131 and the frusto-conical shaped portion 133 of the valve cover
define a tapered cross-sectional profile such that the radial thickness of the cover
in these sections progressively decreases in the direction from the interior to the
exterior of the valve assembly. As described further below, one advantage of this
configuration is that once the product enters the interior end of the seam or valve
opening 124, the energy required to successively open the remaining axial segments
of the tapered and valve portions 133 and 131 progressively decreases, thus causing
substantially all substance that enters the valve opening to be dispensed through
the valve opening, and thereby prevent the residual seepage of such substance. As
also described further below, and in accordance with the currently preferred embodiments
of the present invention, at substantially any time during the dispensing of product
through the valve opening 125, a respective annular segment of the valve portion 131
engages the valve seat 124 to thereby prevent fluid communication between the exterior
and the interior of the valve. As a result, the valve assembly preferably continuously
maintains the interior of the container hermetically sealed, even during dispensing,
thus permitting the container to hold multiple doses of products that must be maintained
in a sterile and/or airless condition, such as "preservative-free" formulations. As
described further below, the axial extent of the valve seat 124 (i.e., the sealing
surface of the valve seat) is made sufficiently long to ensure that this objective
can be achieved.
[0028] Turning to FIGS. 5-8, another embodiment of the container of the present invention
is indicated generally by the reference numeral 200. The container 200 is substantially
the same as the container 100 described above, and therefore like reference numerals
preceded by the numeral "2" instead of the numeral "1", are used to indicate like
elements whenever possible. The primary difference of the container 200 in comparison
to the container 100 is that the inner portion 202 is integral with the body 104 thereby
eliminating the need for a neck and distinct inner portion.
[0029] To manufacture the container 200, plastic pellets are melted while passing through
an extruder. The extruder may thereby produce a single layer or a multiple layer continuous
sleeve. The sleeve is cut to a desired length to form the body 204. The headless body
204 is loaded onto a mandrel where the inner body 214 is injected, compression molded
or welded thereto, as is known to those of ordinary skill in the pertinent art. At
this time, silk screening or additional printing may be applied to the external surface
of the body. The body 204 is then filled with the selected product and the outer body
212 is coupled to the inner body 214 to seal the container 200.
[0030] To fill the container 200, a filling machine may be provided in a sterile environment.
A variety of filling machines are available and an exemplary one is the liquid filler
available from Pack West of 4505 Little John St., Baldwin Park, CA 91706. The product
may be injected into the body 204 before or after the nozzle 202 is in place. After
sealing with the outer body 212, the cap 206 is then applied. Preferably, the cap
206 prevents inadvertent release of the product during handling.
[0031] In an alternate filling method, a sterile environment is not required even though
the product needs to be maintained in a sterile environment. Filling may include injecting
a sterilizing agent such as liquid hydrogen peroxide at a pressure above atmospheric
into containers made of polyethylene terephthalate or other suitable material for
sterilization thereof. To remove the sterilizing agent, a stream of hot sterile air
can hasten evaporation thereof. Then, the sterile product can fill the container and
displace the hot air until a portion of the sterile fluid can be suctioned away to
insure the entire contents are sterile. At such time, the proper closure in the form
of a sterilized nozzle can be applied. For further examples of acceptable filling
methods and apparatus, the container may be filled in accordance with the teachings
of
U.S. Patent No. 6,351,924,
U.S. Patent No. 6,372,276 and/or
U.S. Patent No. 6,355,216.
[0032] In another embodiment, shown in Figure 8B, a container has a flexible shoulder 290
sealing the interior of the tubular body 204 from the ambient atmosphere. As can be
seen, the distal end of the body 204 is spaced radially outwardly relative to the
base of the inner body 214 to define a normally-closed fill opening 291 therebetween.
The flexible shoulder 290 defines an annular sealing member 293 that extends axially
inwardly into the space formed between the base of the inner body 214 and tubular
body 204. The flexible shoulder 290 is preferably formed of an elastomeric material
that normally engages the adjacent base of the inner body 214 and forms a fluid-tight
or hermetic seal therebetween. During filling, a filling member (not shown) is moved
either adjacent to, or into the aperture 291, and the product is pumped therethrough,
as indicated by the arrow "a". As a result, either the filling member (not shown)
or the flow of product in the direction of the arrow "a" causes the sealing member
293 to flex radially away from the inner body base 214 and open the flow aperture
291 to allow the product to flow therethrough and into the interior of the container.
After filling, the sealing member 293 returns to the normally closed position to hermetically
seal the flow opening 291 and thereby seal the product within the container. As can
be seen, because the distal or inner end of the sealing member 293 is directed radially
inwardly relative to its base, the sealing member will not open in response to the
pressure created upon dispensing the product through the nozzle, but rather will maintain
the hermetic seal throughout the shelf life and usage of the container. As indicated
in broken lines in FIG. 8B, a cap or other closure 295 may be secured to the shoulder
290 after filling to prevent any unwanted substances from being inadvertently or otherwise
introduced through the flow opening 291 and into the interior of the container. The
closure 295 may take any of numerous different configurations that are currently or
later become known for performing this function, and the closure is preferably tamper
proof such that if anyone does tamper with the sealed closure the tampering will be
evident and the container may be discarded. As may be recognized by those of ordinary
skill in the pertinent art based on the teachings herein, there are a variety of useful
apparatus and methods for filling that are currently and may later become known to
those of ordinary skill in the pertinent art, and such apparatus and methods equally
may be used to fill the different containers of the present invention.
[0033] Turning to FIGS. 9-12, another embodiment of the container of the present invention
is indicated generally by the reference numeral 300. The container 300 is similar
to the containers 100 and 200 described above, and therefore like reference numerals
preceded by the numeral "3" instead of the numerals "1" and "2", are used to indicate
like elements whenever possible. The primary difference of the container 300 in comparison
to the containers 100, 200 is that the nozzle 302 is a different configuration.
[0034] As with the nozzles described above, the nozzle 302 may be composed of any suitably
durable, moldable, somewhat flexible material, such as a plastic material, and preferably
is composed of a material which has been found to be compatible with the particular
product contained therein, such as those materials sold under the trademarks VELEX®
and LEXAN®, both owned by the General Electric Company of Fairfield, Connecticut,
or under the trademark KRATON® owned by Kraton Polymers U.S. LLC. The inner body 314
of the nozzle 302 is preferably molded of one piece and comprises a truncated, conical-shaped
or frusto-conical shaped body portion 313 (Figure12) terminating in a post or valve
seat 317 on one end and a shoulder or cylindrical wall 336 on the other end. Preferably,
the body portion 313 is oriented at an angle of about 45 degrees or less with respect
to the axis of the container 300 to minimize the head loss of the product when dispensed.
In a preferred embodiment, the angle of the body portion 313 is about 30 degrees.
The shoulder 336 defines an axial flow path 348 which is greater in diameter than
the post 317. In another embodiment (not shown), the diameter of the post 317 is larger
than that of the axial flow path 348 to increase the size of the flow opening and
correspondingly reduce the required valve opening pressure. As may be recognized by
those of ordinary skill in the pertinent art based on the teachings herein, the diameter
(or radial or lateral dimension) of the valve seat of the nozzle disclosed herein
can be adjusted, along with one or more of the degree of interference between the
valve cover and the valve seat, the radial thickness of the valve portion of the valve
cover, and the modulus of elasticity of the valve cover material, to achieve a desired
valve opening pressure. As further described herein, one or more of these variables
also can be selected to ensure that the valve assembly hermetically seals the interior
of the container and prevents the ingress or bacteria or other unwanted substances
through the valve and into the tube.
[0035] Referring to FIGS. 12A-C, preferably, and as indicated above, the axial extent of
the valve seat or post 317 (i.e., the sealing surface between the valve seat and valve
cover) is sufficiently long so that at any time during dispensing, a respective portion
of the valve cover engages the valve seat to thereby prevent fluid communication between
the product retained within the container and the ambient atmosphere. The post 317
has three regions labeled 1, 2 and 3. The first region 1 is the area in which the
valve cover 312 blocks the flow aperture 340. The third region 3 is the area from
which the substance exits the container 300. The second region 2 is the area intermediate
the first region 1 and the third region 3. Each region 1, 2, 3 has an associated pressure
P1, P2 and P3, respectively. At rest, each pressure P1, P2, P3 is equal to zero. As
the container 300 is squeezed, and as shown in FIG. 12B, pressure builds in the first
region 1 until a portion of the valve cover 312 unseats from the post 317. The substance
flows into the second region 2 creating rising pressure in the second region 2 and
third region 3 where P1>P2>P3. As shown in FIG. 12C, the substance travels into the
third region 3 but prior to exiting the container 300, the valve cover 312 reseats
on the post 317 in the first region 1 to retain the hermetic seal and prevent any
opportunity for contamination to enter the container 300. As the substance is released,
the relative pressure relationship is as follows P1<P2>P3>0.
[0036] As with the other embodiments of the valve assembly disclosed herein, the valve cover
312 preferably defines a cross-sectional (or radial) thickness that is progressively
reduced moving axially in the direction from the interior to the exterior of the valve
assembly. Thus, as shown typically in FIGS. 12A-12C, the valve cover defines a tapered
cross-sectional profile that tapers inwardly when moving axially in the direction
from the interior toward the exterior of the valve. In addition, as described further
below, the interface between the valve cover and valve seat may define a decreasing
level of radial interference when moving axially in the direction from the interior
toward the exterior of the valve assembly, i.e., the valve cover may define a greater
degree of radial interference with the valve seat in region 1 than in region 2, and
may define a greater degree of radial interference in region 2 than in region 3 at
the tip of the nozzle. Accordingly, the energy required to open the respective segments
of the valve cover progressively decreases when moving axially in the direction from
the interior toward the exterior of the valve. As a result, once the base region I
of the valve is opened and the substance enters the normally closed seam or valve
opening, the resilient nature of the valve cover, and construction of the valve assembly
as described above, causes the valve cover to progressively return itself to the normally
closed position and, in turn, force the dosage of substance axially through the seam.
Further, the valve cover forces the substance within the seam out through the tip
of the nozzle, and thus prevents substance from collecting within the valve and creating
residual seepage at a later point in time.
[0037] As shown best in FIG. 12, a flange 326 is disposed coaxially with the conical-shaped
portion 313 and extends radially therefrom. In a preferred embodiment, the conical-shaped
portion 313 is frusto-conical-shaped. The flange 326 helps retain the outer body 312
and creates a constrained surface overlying the flow aperture 340 to, in turn, reduce
and otherwise prevent the residual seepage of material. An annular recess 319 is formed
between the conical-shaped portion 313 and the flange 326. It will be recognized that
the conical-shaped portion 313 and flange 326 may be molded together or separately.
Similarly, the inner body 314 and tube 304 may be integral or distinct components.
The conical-shaped portion 313 comprises a central bore 342 in communication with
the interior of the tube 304 by axial flow path 348. The central bore 342 terminates
in a plurality of release apertures 340 through which the product may flow axially.
Container 300 includes three release apertures 340 approximately equally spaced relative
to each other about the axis of the nozzle 302 such that, in cross-section, the area
defined by the release apertures 340 is greater than the remaining solid portions.
However, as may be recognized by those of ordinary skill in the pertinent art based
on the teachings herein, the nozzle 302 may include any desired number of such release
apertures in any desired configuration depending upon the application of the dispenser
or otherwise as required. In one preferred embodiment, the configuration of release
apertures are at least about 50% of the annular area, and most preferably between
about 70% and about 90%.
[0038] The outer body cover 312 may be composed of any durable, resilient and flexible material
having the desired modulus of elasticity, such as an elastomeric material. Preferably,
the outer body cover 312 is composed of a thermo-elastic material, such as a styrene-butadiene
elastomer sold under the trademark KRATON®. Other suitable materials include without
limitation polyvinylchloride, APEX FLEXALLOY™ material available from Teknor Apex
Company, SANTOPRENE® rubber available from Advanced Elastomer Systems and butyl rubber.
In a preferred embodiment, the inner body 314 is fabricated from KRATON® material
which has a modulus of elasticity of approximately 4.1 Mpa and the outer cover 312
is fabricated from SANTOPRENE® material which has a modulus of elasticity of approximately
2.6 Mpa to approximately 4.1 Mpa. The outer body cover 312 comprises a mounting portion
321 and a tapered portion 323 which cooperate with the inner body 314 to provide a
hermetic one-valve. The mounting portion 321 defines an annular recess that engages
the conical-shaped portion 313 and the flange 326 to couple the outer body cover 312
thereto. Because of the resilient nature of the material of the outer body cover 312,
the inner body 314 may be slightly oversized in order to provide a resilient interference
fit. In one embodiment, the outer body cover 312 is molded to the same dimension as
the inner body 314 and post-molding shrinkage of the outer body cover 312 results
in the desired interference fit.
[0039] The outer body or valve cover 312, when mounted, is dimensioned and configured to
resiliently engage the inner body 314 whereby the tapered portion 323 and post or
valve seat 317 form a normally-closed, one-way valve therebetween. As described above
and shown typically in FIG. 12, the cross-sectional thickness of the tapered portion
323 gradually decreases in the axial direction toward the distal end or tip of the
nozzle. As a result, the pressure required to open the valve seat gradually decreases
to facilitate the release of the product through the one-way valve, while simultaneously
preventing air or other gases from passing through the one-way valve in the opposite
direction. Preferably, a substantially annular segment of the outer body cover 312
engages the post 317 throughout any period of dispensing to maintain a hermetic seal
between the interior and ambient atmosphere as shown in Figures 12A-C. If desired,
and as also described above, the degree of interference between the tapered portion
323 of the valve cover and the valve seat 217 may progressively decrease in a direction
from the interior to the exterior of the nozzle 302 by varying the inner diameter
of the outer body cover 312 and/or the size of the inner body 314. Preferably, a cap
(not shown) couples to the threads 316 of the inner body 314 to seal the nozzle 302
and prevent inadvertent discharge of the product.
[0040] Referring now to FIGS. 13-15, the nozzle 402 is similar to the nozzles described
above, and therefore like reference numerals preceded by the numeral "4" instead of
the numerals "1", "2" and "3", are used to indicate like elements whenever possible.
One advantage of the configuration illustrated in embodiments 300 and 400 is that
the product follows a substantially straight flow path extending in a direction parallel
to the axis of the container 300,400. This relatively straight and smooth flow path
allows the product to flow through the nozzles 302, 402 with relatively little head
loss, thus allowing lesser force to dispense the product and preventing spaces where
the product may undesirably collect.
[0041] In addition, it maybe desirable to make the outer diameter of the valve seat 317
as large as possible to thereby decrease the requisite valve opening pressure that
must be generated upon the squeeze tube 404 in order to open the valve and dispense
product through the valve. The present inventor has recognized that a variety of factors
can affect the valve opening pressure, including the diameter of the valve seat 417,
the modulus of elasticity of the valve cover 412, the degree of interference between
the valve cover 412 and valve seat 417, and the thickness and shape of the valve seat
417. All other factors being equal, the volumetric flow rate of material through the
valve will be greater for increasing diameters of the valve seat 417 and the requisite
valve opening pressure will decrease. The present inventor has recognized that it
may be desirable to (1) increase the diameter of the valve seat 417 in comparison
to prior art valves in order to decrease the requisite valve opening pressure that
must be created upon squeezing the tube; (2) decrease the head loss of the product
flowing through the valve in comparison to prior art valves; and (3) decrease the
stored elastic energy in the valve upon dispensing the product through the valve in
order to, in turn, decrease the residual seepage of product through the valve. A significant
advantage of the valves illustrated in FIGS. 9-15 and in the additional embodiments
described herein is that the flow openings 440 define flow paths substantially parallel
to the axes of the containers to, in turn, minimize the head loss of products flowing
through the valves.
[0042] As a result, it will be appreciated by one of ordinary skill in the art based upon
review of the subject disclosure that at least one of the valve seat diameter, a degree
of interference between the valve cover 312 and valve seat 317, the predetermined
radial thickness of the valve portion 323 of the valve cover 317, and a predetermined
modulus of elasticity of the valve cover 312 material, can be selected to (1) define
a predetermined valve opening pressure generated upon manually squeezing the tube
304 that allows passage of the substance from the storage chamber through the valve
opening 340, and (2) hermetically seal the valve 302 and prevent the ingress of bacteria
or other unwanted substances or impurities through the valve 302 and into the tube
304 in the normally closed position.
[0043] In another embodiment shown in Figure 15A, the valve seat 417 extends through the
nozzle 402 into the interior of the tube. The valve body 414 defines a plurality of
flow apertures 440 that extend angularly about the valve seat 424, and are angularly
spaced relative to each other with corresponding solid portions formed therebetween.
In a currently preferred embodiment of the present invention, the valve body defines
three angularly extending flow apertures 440. As indicated above, the flow apertures
440 preferably extend through at least about 60% of the annulus on which they lie,
and most preferably extend through between about 70% and about 90% of the annulus
on which they lie. As also shown typically in FIG. 15A, the degree of interference
between the valve cover 412 and valve seat 424 is illustrated visually by the overlap
in the cross-hatched lines. As can be seen, there is a significant degree of interference
between the valve cover and the valve seat in order to ensure the formation of the
desired hermetic seal in the normally closed position. In the embodiment of FIG. 15A,
the valve seat 424 defines a tapered distal portion, and the valve portion 423 of
the valve cover defines a tapered cross-sectional profile as described above. As may
be recognized by those of ordinary skill in the pertinent art based on the teachings
herein, the valve seat may take any of numerous different configurations, include
a straight profile or consistent diameter from one end to the other, or a tapered
or other varying configuration, in order to achieve certain performance criteria or
other desired objectives.
[0044] Depending upon the viscosity of the product, the configuration of the nozzle 402
can be varied to achieve a desired valve opening pressure and to ensure the consistent
formation of a hermetic seal in the normally closed position. For example, the outer
cover 412 can have varying levels of interference and modulus of elasticity which
contribute to the valve opening pressure, i.e. the stress required in the circumferential
direction to open the valve. With reference to FIG. 15B, which illustrates schematically
an axial segment of the valve cover 412, the formulas for determining the valve opening
pressure are as follows:

when r=b
solving for q yields

insert q in above yields

wherein q = unit pressure (force per unit area); a = outer radius; b = inner radius;
σ
2 = stress in circumferential direction; E = modulus of elasticity;
v =Poisson's ratio (approximately .4); Δa = change in radius a; and Δb = change in
radius b. By applying these formulas to the five locations A, B, C, D, E of FIG. 15A,
the different parameters can be calculated. Based upon these formulas, Table 1 provides
exemplary data for the embodiment of Figure 15A at five locations A-E illustrated
in FIG. 15A.
Table1
| A |
(Groove Section) |
|
|
|
| |
E = |
4.137931034 |
Mpa |
|
| Poisson's Ratio |
(v) = |
0.4 |
|
|
| Outer |
Radius a = |
1.62 |
mm |
|
| Inner |
Radius b = |
1.28 |
mm |
|
| |
Delta a = |
0.084596753 |
mm |
|
| |
Delta b = |
0.095 |
mm |
|
| Internal Pressure |
q = |
0.065020291 |
Mpa |
9.43690728 psi |
| Stress |
σ = |
0.281103953 |
Mpa |
40.798832 psi |
| |
|
|
|
|
| B |
(Groove Section) |
|
|
|
| |
E = |
4.137931034 |
Mpa |
|
| Poisson's Ratio |
(v) = |
0.4 |
|
|
| Outer |
Radius a = |
2.08 |
mm |
|
| Inner |
Radius b = |
1.39 |
mm |
|
| |
Delta a = |
0.184300368 |
mm |
|
| |
Delta b = |
0.23 |
mm |
|
| Internal Pressure |
q = |
0.227177379 |
Mpa |
32.97204338 psi |
| Stress |
σ = |
0.593822673 |
Mpa |
86.18616442 psi |
| |
|
|
|
|
| C |
(Groove Section) |
|
|
|
| |
E = |
4.137931034 |
Mpa |
|
| Poisson's Ratio |
(v) = |
0.4 |
|
|
| Outer |
Radius a = |
2.295 |
mm |
|
| Inner |
Radius b = |
1.4 |
mm |
|
| |
Delta a = |
0.165350559 |
mm |
|
| |
Delta b = |
0.22 |
mm |
|
| Internal Pressure |
q = |
0.251511379 |
Mpa |
36.50382854 psi |
| Stress |
σ = |
0.549641754 |
Mpa |
79.77383947 psi |
| D |
(Groove Section) |
|
|
|
| |
E = |
4.137931034 |
Mpa |
|
| Poisson's Ratio |
(v) = |
0.4 |
|
|
| Outer |
Radius a = |
4.75 |
mm |
|
| Inner |
Radius b = |
2.3 |
mm |
|
| |
Delta a = |
0.197999223 |
mm |
|
| |
Delta b = |
0.315 |
mm |
|
| Internal Pressure |
q = |
0281593521 |
Mpa |
40.86988699 psi |
| Stress |
σ = |
0.454079233 |
Mpa |
65.9040977 psi |
| |
|
|
|
|
| E |
(Groove Section) |
|
|
|
| |
E = |
4.137931034 |
Mpa |
|
| Poisson's Ratio |
(v) = |
0.4 |
|
|
| Outer |
Radius a = |
4.75 |
mm |
|
| Inner |
Radius b = |
4.25 |
mm |
|
| |
Delta a = |
0.237919859 |
mm |
|
| |
Delta b = |
0.25 |
mm |
|
| Internal Pressure |
q = |
0.025818142 |
Mpa |
3.747190459 psi |
| Stress |
σ = |
0.233080451 |
Mpa |
33.82880276 psi |
[0045] In FIGS. 15C and 15D, the tube 404 defines a maximum diameter D1, the valve seat
424 defines a constant diameter D2, and the axial length of the valve seat (or the
scaling surface of the valve seat) is defined as "L" and extends between point "A"
at the tip of the nozzle, and point "B" adjacent to the radially inner edges of the
flow apertures 440. The valve portion 423 defines an inner annular surface 427 that
extends axially in engagement with the valve seat 424 and cooperates with the valve
seat to define the length "L" of the sealing surface. The relaxed or unstretched diameter
of the annular surface 427 of the valve portion is defined as D3. As described above,
the inner diameter D3 of the annular surface 427 is less than the outer diameter D2
of the valve seat 424 in order to form an interference fit and thus a hermetic seal
therebetween. In FIG. 15D, the line drawing shows the valve cover lines in both the
stretched and unstretched states to illustrate visually the interference between the
valve cover and inner body. In the illustrated embodiment, the degree of interference
between the valve seat and valve cover is substantially constant along the length
"L" of the sealing surface. However, as indicated above, the degree of interference
may be varied, if desired. Exemplary values for the parameters for currently preferred
embodiments of the present invention are illustrated in Table II below. The interference
between the valve seat outer diameter D2 and the valve cover inner diameter D3 is
labeled "I" and is determined based on the differences in the two diameters divided
by two. The thickness of the valve cover at point A is labeled "T1(A)" and the thickness
of the valve cover at point B is labeled "T2(B)".
Table II
| D1 |
D2 |
D3 |
I |
L |
T1(A) |
T2(B) |
| 1 inch |
7.6 mm |
6.8 mm |
0.4 mm |
3.28 mm |
0.71 mm |
1.25 mm |
| 0.5 inch |
5.0 mm |
4.6 mm |
0.2 mm |
3.9 mm |
0.5 mm |
0.8 mm |
[0046] In one embodiment of the present invention, wherein the valve seat diameter D2 is
5 mm, the valve opening pressure corresponds to a force that is substantially radially
directed onto a mid-portion of the tubular body within the range of about 2.4 kg and
about 2.9 kg. In another embodiment of the present invention, wherein the valve seat
diameter D2 is 10 mm, the valve opening pressure corresponds to a force of about 5.4
kg that is substantially radially directed onto a mid-portion of the tubular body.
Preferably, the valve opening pressure corresponds to a substantially radially directed
force applied to a mid-portion of the tubular body within the range of about 1 kg
through about 6 kg, and more preferably within the range of about 2 kg through about
4 kg, and most preferably within the range of about 2.4 kg through about 2.9 kg. The
length "L" of the valve seat (or sealing surface thereof), is preferably at least
about 30% of the diameter D2 of the valve seat, and is preferably within the range
of about 40% to about 85% of the diameter D2 of the valve seat. For smaller diameter
tubes, the valve seat necessarily may define a smaller diameter D2, and therefore
the ratio of the length "L" of the valve seat to the diameter D2 typically will be
greater the smaller the tube. Thus, for approximately 1 inch diameter tubes as described
above, the length "L" of the valve seat is preferably within the range of about 25%
to about 75% of the valve seat diameter D2, and most preferably is within the range
of about 35% to about 65% of the valve seat diameter D2. For approximately 0.5 inch
diameter tubes as described above, on the other hand, the length "L" of the valve
seat is preferably at least about 60% of the diameter D2, is more preferably at least
about 75% of the diameter D2, and is most preferably greater than 75% of the diameter
D2.
[0047] It is envisioned that the containers disclosed herein may receive liquids, suspensions,
gels, creams, pasty products, fluids, and the like which typically are at risk for
growing germs or in the past have required preservatives. For example, the container
may store vacuum packed, UHT milk alleviating the need for refrigeration, baby formula,
toothpaste, premeasured dosages of baby food in accordance with the principles disclosed
in
U.S. Patent App. No. 10/272,577 filed October 16, 2003 as well as petrogels, beverages carbonated and otherwise, yogurt, honey, ketchup,
mustard, mayonnaise and tartar sauce in single or multiple servings.
[0048] In FIGS. 16 and 17, another container embodying the present invention is indicated
generally by the reference numeral 500. The container 500 is substantially the same
as the containers described above in connection with FIGS. 1-14, and therefore like
reference numerals preceded by the numeral "5" instead of the numerals "1" through
"4", are used to indicate like elements whenever possible. As can be seen, the container
500 includes a dispensing tip 511 shaped to conformably contact a user's lips by defining,
for example, a substantially concave surface contour. It will be appreciated by those
of ordinary skill in the pertinent art that a different contour for conformably and/or
comfortably contacting a user's skin or lips may be utilized. The inner body 514 of
the nozzle 502 is preferably molded of one piece and terminates in a post or valve
seat 517 on one end and a shoulder 536 on the other end. The shoulder 536 has a projection
538 for sealingly engaging a projection 505 of the flexible tube 504 to, in turn,
secure the nozzle 502 to the tube 504. Preferably, the inner body is fabricated from
KRATON® material exhibiting a hardness of about 65 shore A, and the valve cover 512
is fabricated from KRATON® material exhibiting a hardness of about 20 shore A. However,
as may be recognized by those of ordinary skill in the pertinent art, these hardnesses
are only exemplary, and may be changed as desired to meet certain performance criteria
or otherwise as desired.
[0049] In FIG. 18, another container embodying the present invention is indicated generally
by the reference numeral 600. The container 600 is substantially the same as container
500, and therefore like reference numerals preceded by the numeral "6" instead of
the numerals "1" through "5", are used to indicate like elements. As can be seen,
the container 600 includes a tip region 611 having a substantially frusto-conical
surface contour for conformably contacting or substantially conformably contacting
a user's facial or other skin area, or otherwise for effectively and comfortably applying
a released product to a desired area. As may be recognized by those of ordinary skill
in the pertinent art based on the teachings herein, the shape of the nozzle tip may
take any of numerous different shapes and/or configurations that are currently or
later become known for performing the functions of the nozzle tip, including conformably
or otherwise contact a particular surface area of interest.
[0050] In FIG. 19, another container embodying the present invention is indicated generally
by the reference numeral 700. The nozzle 702 of container 700 is substantially the
same as the nozzles above, and therefore like reference numerals preceded by the numeral
"7" instead of the numerals "1" through "6", are used to indicate like elements whenever
possible. For simplicity, the following description is directed to the differences
in the body 704 of the container 700. The body 704 has a resilient outer wall 760
and base 762 sealingly connected to the lowermost end of the outer wall 760. The outer
wall 12 has a cross-section to accommodate a user's hand and is fabricated from a
resilient plastic such as low density polyethylene so that the outer wall 112 can
be heat sealed to the other components of the container 700. As would be appreciated
by those of ordinary skill in the pertinent art molding, extruding and like methods
of fabricating the components of container 700 are interchangeable and adhesives,
heat sealing, interference fits, the like and combinations thereof may be used to
assemble the container 700.
[0051] The base 762 is sealed to the lowermost end of the outer wall 760. Preferably, the
base 762 is sized and configured such that the container 700 can be rested in an upstanding
manner thereon. An air check valve 770 regulates the flow of air to and from the space
772 between the interior of the outer wall 760 and exterior of the inner bag 764.
A vent hole 774 in the base 762 admits ambient air into the space 772 via the check
valve 770 after a dispensing cycle to allow the outer wall 760 to return to an oval
cross-sectional shape. As the container 700 is squeezed, the escape of air from the
vent hole 774 needs to be sufficiently slow enough so that pressure builds within
space 772 and dispensing occurs before an appreciable amount of air is lost In contrast,
upon relaxation of the squeezing, sufficient air needs to enter into space 772 via
vent hole 774 to quickly return the outer wall 760 to the undeformed shape. A ring
776 surrounds the check valve 770 to prevent an inner bag 764 from interfering with
the operation of the check valve 770.
[0052] The flexible inner bag 764 contains the product and is secured to the outer wall
760 at a top edge 766. In addition, the inner bag 764 is secured to the interior of
the outer wall 760 at a point 768 approximately intermediate the ends of the outer
wall 760 to insure substantially complete emptying of the inner bag 764 without extraordinary
force being applied to the outer wall 760. Preferably, the inner bag 764 is fabricated
from a low flexural modulus material to prevent significantly adding to the force
required to dispense the product contained within the interior 765 thereof.
[0053] The nozzle 702 selectively and hermetically seals the interior of the inner bag 762
from the ambient air. By preventing air from entering into the interior 765 of the
inner bag 764, the nozzle 702 not only retains the sterility of the interior 765 but
aids in initiating the next dispensing cycle without appreciable belching or excessive
squeezing of the outer wall 760. During the dispensing cycle, the outer wall 760 is
squeezed and deforms to increase the pressure within the space 772 and thereby increase
the pressure within the interior 765 of the inner bag 764. Although an amount of air
escapes through vent hole 774, the pressure overcomes the engagement of the valve
cover 712 and the product flows out of flow apertures 740 as described above. Upon
removal of the squeezing force, dispensing of the product stops. The outer wall 769
begins to return to the undeformed shape which creates a vacuum within space 772.
The vacuum forces the check valve 770 to open allowing ambient air to enter via vent
hole 774 to, in turn, cause the inner bag to move toward the nozzle 702 and allow
the outer wall 760 to return to shape. Accordingly, during subsequent squeezing of
the outer wall 760, the nozzle 702 quickly opens again to allow the product to be
released again in a hermetic manner. After multiple doses, the inner bag 764 flexes
about the midpoint 768 until substantially all of the product is dispensed from the
interior 765.
[0054] In another embodiment, the outer wall 760 is fabricated from a relatively rigid material
to, in turn, increase the pressure required to deform the outer wall 760 and/or facilitate
generating pressure. As a result, the nozzle 702 can be configured for an increased
opening pressure. It will be appreciated by those of ordinary skill in the art upon
review of the subject disclosure that the concepts of container 700 can be readily
adapted to any of a number of configurations for containers such as, without limitation,
a flexible tube as shown above and the check valve may be located at any of several
suitable locations.
[0055] In FIGS. 20A-22B, three additional containers embodying the present invention are
indicated generally by the reference numerals 800,900 and 1000, respectively. The
nozzles of these containers are substantially the same as the nozzles above, and therefore
like reference numerals preceded by a different numeral instead of the numerals "1"
through "7", are used to indicate like elements whenever possible. For simplicity,
the following description is directed to the differences in the containers. Turning
to container 800 shown in FIGS. 20A-20D, the outer cover 860 is formed into a decorative
shape and receives a cartridge 864. Preferably, the cartridge 864 selectively engages
the outer cover 860 by a snap fit mechanism 867 and has the inner body 814 formed
integrally therewith. A new valve cover 812 may be used each time a cartridge 864
is replaced or the same valve cover 812 may be reused. In another embodiment, the
outer cover 860 is a semi-rigid or rigid material such as colored plastic or glass
to further add to the aesthetics of the container 800. In another embodiment, the
entire outer cover 812 is rigid and a pump is included to dispense the product as
shown in
U.S. Patent Application No. 10/001,745 filed October 23, 2001. A handle 803 allows easy carrying and use of the container 800.
[0056] By varying the configuration of the nozzle, the valve opening pressure can be optimized
to release even highly viscous products such as honey, syrups, lubricating greases,
petrogels, caulking compounds and other materials ranging from one centipoise to thousands
of centipoise of viscosity while at the same time maintaining the integrity and sterility
of the remaining product.
1. A method for aseptically storing and dispensing a substance comprising the following
steps:
(a) sterile filling and aseptically storing substance in an assembly (100, 200, 300,
400, 500, 600, 700, 800, 900, 1000), the assembly (100, 200, 300, 400, 500, 600, 700,
800, 900, 1000) including a variable-volume storage chamber, and a one-way valve coupled
in fluid communication with the variable volume storage chamber and including an elastic
valve member (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) forming a normally
closed valve opening, wherein the valve member (112, 212, 312, 412, 512, 612, 712,
812, 912, 1012) is movable in response to substance at the inlet to the valve opening
exceeding a valve opening pressure between a normally closed position, and an open
position with at least a segment of the valve member (112, 212, 312, 412, 512, 612,
712, 812, 912, 1012) spaced away from the closed position to allow the passage of
substance from the variable-volume storage chamber through the valve opening, and
the one-way valve has a structure such that the valve member (112, 212, 312, 412,
512, 612, 712, 812, 912, 1012) overlies at least a portion of a valve seat (124, 317,
417, 517, 617, 717, 817, 917, 1017), the valve member (112, 212, 312, 412, 512, 612,
712, 812, 912, 1012) and the valve seat (124, 317, 417, 517, 617, 717, 817, 917, 1017)
define a seam (125, 225, 425) therebetween forming the valve opening, and the valve
member (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) engages the valve seat
(124, 317, 417, 517, 617, 717, 817, 917, 1017) in the closed position when the substance
does not exceed the valve opening pressure, the assembly containing therein multiple
portions of the substance in an aseptic condition and hermetically sealed within the
storage chamber with respect to ambient atmosphere;
(b) pressurizing substance at the inlet to the valve opening to a pressure at least
equal to a valve opening pressure and moving the elastic valve member (112, 212, 312,
412, 512, 612, 712, 812, 912, 1012) between (i) the normally closed position and (ii)
the open position with at least a segment of the valve member (112, 212, 312, 412,
512, 612, 712, 812, 912, 1012) spaced away from the closed position, and, in turn,
dispensing at least a portion of substance from the variable-volume storage chamber
through the valve opening, wherein the one way-valve opens first at an upstream end
of the valve opening, and the valve seat along the seam is of a sufficient length
such that, substantially throughout any period of dispensing substance through the
valve opening, at least one segment of the valve member (112, 212, 312, 412, 512,
612, 712, 812, 912, 1012) is engaging the valve seat (124, 317, 417, 517, 617, 717,
817, 917, 1017) to maintain a hermetic seal between the valve opening and ambient
atmosphere, the one-way valve having a structure according one or more of (b1)-(b3)
so as to provide that the energy required to open successive segments of the valve
member (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) progressively decreases
in the direction from the upstream end toward a downstream end of the valve opening:
(b1) the valve member (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) defines
a decreasing wall thickness in a direction from an upstream end toward a downstream
end of the valve opening;
(b2) the valve seat (124, 317, 417, 517, 617, 717, 817, 917, 1017) is tapered; and/or;
(b3) the valve member (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) forms an
interference fit with the valve seat (124, 317, 417, 517, 617, 717, 817, 917, 1017)
and defines a decreasing degree of interference therebetween in a direction from an
upstream end toward a downstream end of the valve opening.
2. A method as defined in claim 1, wherein the dispensing takes place at room temperature.
3. A method as defined in claim 1, further comprising providing a tubular portion (104,
204, 304, 404, 504, 704) coupled in fluid communication between the variable-volume
storage chamber and the one-way valve.
4. A method as defined in claim 1, further comprising providing a relatively rigid outer
container (760, 860, 960, 1060) receiving therein the variable-volume storage chamber.
5. A method as defined in any of the preceding claims, further comprising providing a
pump configured to pressurize substance at the inlet to the valve opening to dispense
the substance therethrough.
6. A method as defined in claim 5, wherein the pump is coupled between the variable-volume
storage chamber and the one-way valve and is configured to pump substance from the
variable-volume storage chamber into the valve opening to dispense the substance therethrough.
7. A method as defined in claim 5 or 6, wherein the tubular portion (104, 204, 304, 404,
504, 704) is squeezable and the pump is configured to squeeze the tubular portion
(104, 204, 304, 404, 504, 704) to pressurize the substance.
8. A method as defined in claim 1, further comprising the step of sterilizing the substance
prior to the step of sterile filling the variable-volume storage chamber with the
substance.
9. A method as defined in claim 1, further comprising the step of pumping substance from
the variable-volume storage chamber and into the valve opening to dispense the substance
therethrough.
10. A container for storing and dispensing a substance therefrom, comprising:
a body defining a hermetically sealed, variable-volume storage chamber containing
therein a substance hermetically sealed within the storage chamber with respect to
the ambient atmosphere; and
a one-way valve comprising a valve member (112, 212, 312, 412, 512, 612, 712, 812,
912, 1012) formed of an elastic material and forming a normally closed valve opening
and an inlet to the valve opening connectible in fluid communication with the variable-volume
storage chamber, wherein the valve member (112, 212, 312, 412, 512, 612, 712, 812,
912, 1012) is movable in response to substance at the inlet to the valve opening exceeding
a valve opening pressure between a normally closed position and an open position with
at least a segment of the valve member (112, 212, 312, 412, 512, 612, 712, 812, 912,
1012) spaced away from the closed position to allow the passage of substance from
the variable-volume storage chamber through the valve opening; wherein the valve member
(112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) overlies at least a portion of
a valve seat (124, 317, 417, 517, 617, 717, 817, 917, 1017), the valve member (112,
212, 312, 412, 512, 612, 712, 812, 912, 1012) and the valve seat (124, 317, 417, 517,
617, 717, 817, 917, 1017) define a seam (125, 225, 425) therebetween forming the valve
opening, and the valve member (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012)
engages the valve seat (124, 317, 417, 517, 617, 717, 817, 917, 1017) in the closed
position when the substance does not exceed the valve opening pressure;
characterized in that when the fluid exceeds the valve opening pressure, the one way-valve opens first
at an upstream end of the valve opening, and the valve seat along the seam is of a
sufficient length such that, substantially throughout any period of dispensing substance
through the valve opening, at least one segment of the valve member (112, 212, 312,
412, 512, 612, 712, 812, 912, 1012) is engaging the valve seat (124, 317, 417, 517,
617, 717, 817, 917, 1017) to maintain a hermetic seal between the valve opening and
ambient atmosphere, the one-way valve having a structure according one or more of
(a) - (c) so as to provide that the energy required to open successive segments of
the valve member (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) progressively
decreases in the direction from the upstream end toward a downstream end of the valve
opening:
(a) the valve member (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) defines a
decreasing wall thickness in a direction from an upstream end toward a downstream
end of the valve opening;
(b) the valve seat (124, 317, 417, 517, 617, 717, 817, 917, 1017) is tapered; and/or;
(c) the valve member (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) forms an
interference fit with the valve seat (124, 317, 417, 517, 617, 717, 817, 917, 1017)
and defines a decreasing degree of interference therebetween in a direction from an
upstream end toward a downstream end of the valve opening;
such that, during dispensing and/or shelf life of the substance, the one-way valve
and/or the storage chamber:
(i) maintains any remaining substance in the storage chamber in an aseptic condition,
sealed with respect to ambient atmosphere, substantially airless, and at ambient temperature;
(ii) substantially prevents ingress of air into the one-way valve and/or the variable-volume
storage chamber; and
(iii) substantially prevents the ingress of bacteria or other unwanted impurities
into the one-way valve and/or the variable-volume storage chamber.
11. A container as defined in claim 10, further comprising a tubular portion (104, 204,
304, 404, 504, 704), coupled in fluid communication between the variable-volume storage
chamber and one-way valve.
12. A container as defined in claim 10 or 11, further comprising a relatively rigid outer
container (760, 860, 960, 1060), receiving therein the variable-volume storage chamber.
13. A container as defined in any of claims 10-12, wherein the container (100, 200, 300,
400, 500, 600, 700, 800, 900, 1000) further comprises a pump configured to pressurize
substance at the inlet to the valve opening to dispense the substance therethrough.
14. A container as defined in claim 13, wherein the pump is coupled between the variable-volume
storage chamber and one-way valve and configured to pump substance from the storage
chamber into the valve opening to dispense the substance therethrough.
15. A container as defined in claim 13 or 14, wherein the tubular portion (104, 204, 304,
404, 504, 704) is squeezable and the pump is configured to squeeze the tubular portion
(104, 204, 304, 404, 504, 704) to pressurize the substance.
16. A container as defined in claim 10, wherein the one-way valve further includes the
valve body that defines the valve seat (124, 317, 417, 517, 617, 717, 817, 917, 1017)
and a flow aperture extending through at least one of the valve body and the valve
seat.
1. Ein Verfahren zum aseptischen Lagern und Ausgeben einer Substanz, das die folgenden
Schritte umfasst:
(a) steriles Abfüllen und aseptisches Speichern von Substanz in einer Einheit (100,
200, 300, 400, 500, 600, 700, 800, 900, 1000), wobei die Einheit (100, 200, 300, 400,
500, 600, 700, 800, 900, 1000) eine Speicherkammer mit variablem Volumen und ein Einwegventil
umfasst, das in Fluidverbindung mit der Speicherkammer mit variablem Volumen verbunden
ist und das ein elastisches Ventilelement (112, 212, 312, 412, 512, 612, 712, 812,
912, 1012) aufweist, das eine normalerweise geschlossene Ventilöffnung bildet, wobei
das Ventilelement (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) in Reaktion
auf eine Substanz am Einlass der Ventilöffnung, wenn diese einen Ventilöffnungsdruck
übersteigt, zwischen einer normalerweise geschlossenen Stellung und einer geöffneten
Stellung bewegbar ist, bei der wenigstens ein Abschnitt des Ventilelements (112, 212,
312, 412, 512, 612, 712, 812, 912, 1012) von der geschlossenen Stellung beabstandet
ist, um den Durchtritt von Substanz aus der Speicherkammer mit variablem Volumen durch
die Ventilöffnung zu ermöglichen, und das Einwegventil eine solche Struktur aufweist,
dass das Ventilelement (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) über mindestens
einem Teil eines Ventilsitzes (124, 317, 417,517, 617, 717, 817, 917, 1017) liegt,
wobei das Ventilelement (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) und der
Ventilsitz (124, 317, 417, 517, 617, 717, 817, 917, 1017) zwischen sich eine Naht
(125, 225, 425) definieren, die die Ventilöffnung bildet, und das Ventilelement (112,
212, 312, 412, 512, 612, 712, 812, 912, 1012) am Ventilsitz (124, 317, 417, 517, 617,
717, 817, 917, 1017) in der geschlossenen Stellung zur Anlage kommt, wenn die Substanz
den Ventilöffnungsdruck nicht überschreitet, wobei die Einheit mehrere Portionen der
Substanz enthält, die in einem aseptischen Zustand ist und innerhalb der Speicherkammer
gegenüber der Umgebungsatmosphäre hermetisch abgedichtet ist;
(b) Beaufschlagen der Substanz am Einlass zur Ventilöffnung mit einem Druck, der zumindest
gleich einem Ventilöffnungsdruck ist, und Bewegen des elastischen Ventilelements (112,
212, 312, 412, 512, 612, 712, 812, 912, 1012) zwischen (i) der normalerweise geschlossenen
Stellung und (ii) der geöffneten Stellung, bei der wenigstens ein Abschnitt des Ventilelements
(112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) von der geschlossenen Stellung
beabstandet ist, und, im Gegenzug, Abgeben zumindest eines Teils der Substanz aus
der Speicherkammer mit variablem Volumen durch die Ventilöffnung, wobei das Einwegventil
zuerst an einem stromaufwärtigen Ende der Ventilöffnung öffnet, und der Ventilsitz
entlang der Naht eine ausreichende Länge aufweist, so dass, im Wesentlichen über einen
beliebigen Zeitraum der Abgabe von Substanz durch die Ventilöffnung, zumindest ein
Abschnitt des Ventilelements (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) in
Anlage an dem Ventilsitz (124, 317, 417, 517, 617, 717, 817, 917, 1017) ist, um eine
hermetische Abdichtung zwischen der Ventilöffnung und der Umgebungsatmosphäre aufrecht
zu erhalten, wobei das Einwegventil eine Struktur nach einem oder mehreren von (b1)
bis (b3) hat; um zu gewährleisten, dass die Energie, die benötigt wird, um aufeinanderfolgende
Segmente des Ventilelements (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) in
Richtung von dem stromaufwärtigen Ende zu einem stromabwärtigen Ende der Ventilöffnung
hin progressiv abnimmt:
(b1) das Ventilelement (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) definiert
eine abnehmende Wandstärke in einer Richtung von einem stromaufwärtigen Ende zu einem
stromabwärtigen Ende der Ventilöffnung;
(b2) der Ventilsitz (124, 317, 417, 517, 617, 717, 817, 917, 1017) ist verjüngt; und/oder;
(b3) das Ventilelement (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) bildet
einen Presssitz mit dem Ventilsitz (124, 317, 417, 517, 617, 717, 817, 917, 1017)
und definiert einen abnehmenden Grad an Presssitz dazwischen in einer Richtung von
einem stromaufwärtigen Ende zu einem stromabwärtigen Ende der Ventilöffnung.
2. Ein Verfahren wie in Anspruch 1 definiert, wobei die Abgabe bei Raumtemperatur erfolgt.
3. Ein Verfahren wie in Anspruch 1 definiert, das ferner das Bereitstellen eines rohrförmigen
Abschnitts (104, 204, 304, 404, 504, 704) umfasst, der in Fluidverbindung zwischen
der Speicherkammer mit variablem Volumen und dem Einwegventil gekoppelt ist.
4. Ein Verfahren wie in Anspruch 1 definiert, das ferner das Bereitstellen eines relativ
starren Aussenbehälters (760, 860, 960, 1060) aufweist, in dem die Speicherkammer
mit variablem Volumen aufgenommen ist.
5. Ein Verfahren wie in einem der vorhergehenden Ansprüche definiert, ferner umfassend
das Bereitstellen einer Pumpe, die konfiguriert ist, um die Substanz am Einlass zur
Ventilöffnung unter Druck zu setzen, um die Substanz durch sie dort hindurch abzugeben.
6. Ein Verfahren wie in Anspruch 5 definiert, wobei die Pumpe zwischen der Speicherkammer
mit variablem Volumen und dem Einwegventil gekoppelt ist und ausgebildet ist, Substanz
aus der Speicherkammer mit variablem Volumen in die Ventilöffnung zu pumpen und dadurch
die Substanz abzugeben.
7. Ein Verfahren wie in Anspruch 5 oder 6 definiert, wobei der rohrförmige Abschnitt
(104, 204, 304, 404, 504, 704) zusammenquetschbar ist und die Pumpe ausgebildet ist,
den rohrförmigen Abschnitt (104, 204, 304, 404, 504, 704) zu quetschen, um die Substanz
unter Druck zu setzen.
8. Ein Verfahren wie in Anspruch 1 definiert, ferner umfassend den Schritt des Sterilisierens
der Substanz vor dem Schritt des sterilen Füllens der Speicherkammer mit variablem
Volumen mit der Substanz.
9. Ein Verfahren wie Anspruch 1 definiert, ferner umfassend den Schritt des Pumpens von
Substanz aus der Speicherkammer mit variablem Volumen und in die Ventilöffnung, um
die Substanz dort hindurch abzugeben.
10. Ein Behälter zur Aufbewahrung und Abgabe einer Substanz daraus, umfassend:
einen Körper, der eine hermetisch dichte Speicherkammer mit variablem Volumen definiert,
die in sich eine Substanz enthält, welche innerhalb der Speicherkammer hermetisch
gegenüber der Umgebungsatmosphäre abgedichtet ist; und
ein Einwegventil mit einem Ventilelement (112, 212, 312, 412, 512, 612, 712, 812,
912, 1012), das aus einem elastischen Material gebildet ist und eine normalerweise
geschlossene Ventilöffnung und einen Einlass zu der Ventilöffnung bildet, der mit
der Speicherkammer mit variablem Volumen in Fluidverbindung bringbar ist, wobei das
Ventilelement (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) in Reaktion auf
eine Substanz am Einlass zu der Ventilöffnung, die einen Ventilöffnungsdruck übersteigt,
zwischen einer normalerweise geschlossenen Stellung und einer geöffneten Stellung
bewegbar ist, bei der wenigstens ein Abschnitt des Ventilelements (112, 212, 312,
412, 512, 612, 712, 812, 912, 1012) von der geschlossenen Stellung beabstandet ist,
um den Durchtritt von Substanz aus der Speicherkammer mit variablem Volumen durch
die Ventilöffnung zu ermöglichen;
wobei das Ventilelement (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) über zumindest
einem Teil des Ventilsitzes (124, 317, 417, 517, 617, 717, 817, 917, 1017) liegt,
das Ventilelement (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) und der Ventilsitz
(124, 317, 417, 517, 617, 717, 817, 917, 1017) zwischen sich eine die Ventilöffnung
bildende Naht (125, 225, 425) definieren, und in der geschlossenen Stellung das Ventilelement
(112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) in Anlage am Ventilsitz (124,
317, 417, 517, 617, 717, 817, 917, 1017) ist, wenn die Substanz nicht den Ventilöffnungsdruck
übersteigt;
dadurch gekennzeichnet, dass dann, wenn das Fluid den Ventilöffnungsdruck übersteigt, das Einwegventil zuerst
an einem stromaufwärtigen Ende der Ventilöffnung öffnet, und der Ventilsitz entlang
der Naht eine ausreichende Länge aufweist, so dass, im Wesentlichen über einen beliebigen
Zeitraum der Abgabe von Substanz durch die Ventilöffnung, zumindest ein Abschnitt
des Ventilelements (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) in Anlage an
dem Ventilsitz (124, 317, 417, 517, 617, 717, 817, 917, 1017) ist, um eine hermetische
Abdichtung zwischen der Ventilöffnung und der Umgebungsatmosphäre aufrecht zu erhalten,
wobei das Einwegventil eine Struktur gemäss einem oder mehreren von (a) bis (c) hat,
um sicherzustellen, dass die Energie, die benötigt wird, um aufeinanderfolgende Segmente
des Ventilelements (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) zu öffnen,
in Richtung von dem stromaufwärtigen Ende zu einem stromabwärtigen Ende der Ventilöffnung
hin progressiv abnimmt:
(a) das Ventilelement (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) definiert
eine abnehmende Wandstärke in einer Richtung von einem stromaufwärtigen Ende zu einem
stromabwärtigen Ende der Ventilöffnung;
(b) der Ventilsitz (124, 317, 417, 517, 617, 717, 817, 917, 1017) ist verjüngt; und/oder;
(c) das Ventilelement (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) bildet mit
dem Ventilsitz (124, 317, 417, 517, 617, 717, 817, 917, 1017) einen Presssitz und
definiert dazwischen einen Grad an Presssitz, der in einer Richtung von einem stromaufwärtigen
Ende zu einem stromabwärtigen Ende der Ventilöffnung abnimmt;
derart, dass bei der Abgabe und/oder Haltbarkeitsdauer der Substanz das Einwegventil
und/oder die Speicherkammer:
(i) jegliche in der Speicherkammer verbleibende Substanz in einem aseptischen Zustand,
gegenüber der Umgebungsatmosphäre abgeschlossen, im wesentlichen luftlos, und bei
Umgebungstemperatur gehalten ist;
(ii) im Wesentlichen ein Eindringen von Luft in das Einwegventil und/oder die Speicherkammer
mit variablem Volumen verhindert ist; und
(iii) im Wesentlichen das Eindringen von Bakterien oder anderen unerwünschten Verunreinigungen
in das Einwegventil und/oder die Speicherkammer mit variablem Volumen verhindert ist.
11. Ein Behälter wie in Anspruch 10 definiert, der zudem mit einem rohrförmigen Abschnitt
(104, 204, 304, 404, 504, 704) aufweist, der in Fluidverbindung zwischen der Speicherkammer
mit variablem Volumen und dem Einwegventil gekoppelt ist.
12. Ein Behälter wie in Anspruch 10 oder 11 definiert, ferner umfassend einen relativ
starren Aussenbehälter (760, 860, 960, 1060), der in sich die Speicherkammer mit variablem
Volumen aufnimmt.
13. Ein Behälter wie in einem beliebigen der Ansprüche 10 -12 definiert, wobei der Behälter
(100, 200, 300, 400, 500, 600, 700, 800, 900, 1000) ferner eine Pumpe umfasst, die
so konfiguriert ist, dass sie Substanz am Einlass zur Ventilöffnung unter Druck setzt,
um die Substanz durch sie hindurch abzugeben.
14. Ein Behälter wie in Anspruch 13 definiert, wobei die Pumpe zwischen der Speicherkammer
mit variablem Volumen und dem Einwegventil eingekoppelt ist und dazu ausgebildet ist,
Substanz aus der Speicherkammer in die Ventilöffnung zu pumpen, um die Substanz durch
sie hindurch abzugeben.
15. Ein Behälter wie in Anspruch 13 oder 14 definiert, wobei der rohrförmige Abschnitt
(104, 204, 304, 404, 504, 704) zusammenquetschbar ist und die Pumpe ausgebildet ist,
den rohrförmigen Abschnitt (104, 204, 304, 404, 504, 704) zu quetschen, um die Substanz
unter Druck zu setzen.
16. Ein Behälter wie in Anspruch 10 definiert, wobei das Einwegventil ferner den Ventilkörper,
der den Ventilsitz definiert (124, 317, 417, 517, 617, 717, 817, 917, 1017) und eine
Ausströmöffnung aufweist, die sich durch den Ventilkörper und/oder den Ventilsitz
hindurch erstreckt.
1. Procédé de stockage et de distribution aseptique d'une substance, comprenant les étapes
suivantes :
(a) remplissage stérile et stockage aseptique de la substance dans un ensemble (100,
200, 300, 400, 500, 600, 700, 800, 900, 1000), cet ensemble (100, 200, 300, 400, 500,
600, 700, 800, 900, 1000) comprenant une chambre de stockage volume variable et une
vanne à une distribution couplée en communication de fluide avec la chambre de stockage
à volume variable et comprenant un élément vanne élastique (112, 212, 312, 412, 512,
612, 712, 812, 912, 1012) formant une ouverture de vanne normalement fermée, l'élément
vanne (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) étant mobile en réaction
à la substance à l'entrée de l'ouverture de vanne excédant une pression d'ouverture
de vanne entre une position normalement fermée et une position ouverte avec au moins
un segment de l'élément vanne (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012)
espacé de la position fermée afin de permettre le passage de substance depuis la chambre
de stockage variable à travers l'ouverture de vanne et la vanne à une distribution
ayant une structure telle que l'élément vanne (112, 212, 312, 412, 512, 612, 712,
812, 912, 1012) recouvre au moins une partie d'un siège de vanne (124, 317, 417, 517,
617, 717, 817, 917, 1017), l'élément vanne (112, 212, 312, 412, 512, 612, 712, 812,
912, 1012) et le siège de vanne (124, 317, 417, 517, 617, 717, 817, 917, 1017) définissant
entre eux une jointure (125, 225, 425) formant l'ouverture de vanne et l'élément vanne
(112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) s'engageant dans le siège de vanne
(124, 317, 417, 517, 617, 717, 817, 917, 1017) dans la position fermée lorsque la
substance n'excède pas la pression d'ouverture de vanne, l'ensemble contenant à l'intérieur
des doses multiples de substance en condition aseptique et isolées hermétiquement
dans la chambre de stockage par rapport à l'atmosphère ambiante ;
(b) pressurisation de la substance à l'entrée de l'ouverture de vanne jusqu'à une
pression au moins égale à une pression d'ouverture de vanne et déplacement de l'élément
vanne élastique (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) entre (i) la position
normalement fermée et (ii) la position ouverte avec au moins un segment de l'élément
vanne (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) espacé de la position fermée
et, ensuite, distribution d'au moins une dose de substance depuis la chambre de stockage
à volume variable à travers l'ouverture de vanne, la vanne à une distribution s'ouvrant
d'abord à une extrémité amont de l'ouverture de vanne et le siège de vanne le long
de la jonction ayant une longueur suffisante de manière à ce que, sensiblement pendant
toute période de distribution de substance à travers l'ouverture de vanne, au moins
un segment de l'élément vanne (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012)
s'engage dans le siège de vanne (124, 317, 417, 517, 617, 717, 817, 917, 1017) pour
maintenir un joint hermétique entre l'ouverture de vanne et l'atmosphère ambiante,
la vanne à une distribution ayant une structure selon un ou plusieurs de (bl) à (b3)
de manière à permettre que l'énergie requise pour ouvrir des segments successifs de
l'élément vanne (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) diminue progressivement
dans le sens partant de l'extrémité amont vers une extrémité aval de l'ouverture de
vanne :
(bl)
l'élément vanne (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) définissant une
épaisseur de paroi décroissante dans un sens partant d'une extrémité amont vers une
extrémité aval de l'ouverture de vanne ;
(b2)
le siège de vanne (124, 317, 417, 517, 617, 717, 817, 917, 1017) étant effilé ; et/ou
;
(b3)
l'élément vanne (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) formant un ajustement
à interférence avec le siège de vanne (124, 317, 417, 517, 617, 717, 817, 917, 1017)
et définissant un degré décroissant d'interférence entre un sens partant d'une extrémité
amont vers une extrémité aval de l'ouverture de vanne.
2. Procédé selon la revendication 1, dans lequel la distribution a lieu à température
ambiante.
3. Procédé selon la revendication 1, comprenant en outre la prévision d'une section tubulaire
(104, 204, 304, 404, 504, 704) couplée en communication de fluide entre la chambre
de stockage à volume variable et la vanne à une distribution.
4. Procédé selon la revendication 1, comprenant en outre la prévision d'un contenant
extérieur rigide (760, 860, 960, 1060) recevant à l'intérieur la chambre de stockage
à volume variable.
5. Procédé selon l'une quelconque des revendications précédentes, comprenant en outre
la prévision d'une pompe conçue pour pressuriser de la substance à l'entrée de l'ouverture
de vanne afin de distribuer la substance à travers celle-ci.
6. Procédé selon la revendication 5, dans lequel la pompe est couplée entre la chambre
de stockage à volume variable et la vanne à une distribution est conçue pour compter
de la substance depuis la chambre de stockage à volume variable jusque dans l'ouverture
de vanne afin de distribuer la substance à travers celle-ci.
7. Procédé selon la revendication 5 ou 6, dans lequel la section tubulaire (104, 204,
304, 404, 504, 704) est compressible et la pompe est conçue pour compresser la section
tubulaire (104, 204, 304, 404, 504, 704) afin de pressuriser la substance.
8. Procédé selon la revendication 1, comprenant en outre l'étape de stérilisation de
la substance avant l'étape de remplissage stérile de la chambre à volume variable
avec la substance.
9. Procédé selon la revendication 1, comprenant en outre l'étape de pompage depuis la
chambre de stockage à volume variable et jusque dans l'ouverture de vanne pour distribuer
la substance à travers celle-ci.
10. Contenant de stockage et de distribution d'une substance à partir de celui-ci, comprenant
:
un corps définissant une chambre de stockage à volume variable hermétiquement isolée
contenant à l'intérieur une substance hermétiquement isolée dans la chambre de stockage
par rapport à l'atmosphère ambiante ; et
une vanne salle à une distribution comprenant un élément vanne (112, 212, 312, 412,
512, 612, 712, 812, 912, 1012) composé d'un matériau élastique et formant une ouverture
de vanne normalement fermée et une entrée de l'ouverture de vanne connectable en communication
de fluide avec la chambre de stockage à volume variable, l'élément vanne (112, 212,
312, 412, 512, 612, 712, 812, 912, 1012) étant mobile en réaction à la substance à
l'entrée de l'ouverture de vanne excédant une pression d'ouverture de vanne entre
une position normalement fermée et une position ouverte avec au moins un segment de
l'élément vanne (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) espacé de la position
fermée afin de permettre le passage de substance depuis la chambre de stockage à volume
variable à travers l'ouverture de vanne ;
l'élément vanne (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) recouvrant au
moins une section d'un siège de vanne (124, 317, 417, 517, 617, 717, 817, 917, 1017),
l'élément vanne (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) et le siège de
vanne (124, 317, 417, 517, 617, 717, 817, 917, 1017) définissant entre eux une jonction
(125, 225, 425) formant l'ouverture de vanne, et l'élément vanne (112, 212, 312, 412,
512, 612, 712, 812, 912, 1012) s'engageant dans le siège de vanne (124, 317, 417,
517, 617, 717, 817, 917, 1017) dans la position fermée lorsque la substance n'excède
pas la pression d'ouverture de vanne ;
caractérisé en ce que,
lorsque le fluide excède la pression d'ouverture de vanne, la soupape à une distribution
s'ouvre d'abord à une extrémité amont de l'ouverture de vanne, et le siège de vanne
le long de la jointure a une longueur suffisante pour que, sensiblement pendant toute
période de distribution de substance à travers l'ouverture de vanne, au moins un segment
de l'élément vanne (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) s'engage dans
le siège de vanne (124, 317, 417, 517, 617, 717, 817, 917, 1017) afin de maintenir
un joint hermétique entre l'ouverture de vanne et l'atmosphère ambiante, la vanne
à une distribution ayant une structure selon un ou plusieurs de (a) à (c) afin de
permettre que l'énergie requise pour ouvrir des segments successifs de l'élément vanne
(112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) diminue progressivement dans le
sens partant de l'extrémité amont vers une extrémité aval de l'ouverture de vanne
:
(a) l'élément vanne (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) définissant
une épaisseur de paroi décroissante dans un sens partant d'une extrémité amont vers
une extrémité aval de l'ouverture de vanne ;
(b) le siège de vanne (124, 317, 417, 517, 617, 717, 817, 917, 1017) étant effilé
; et/ou
(c) l'élément vanne (112, 212, 312, 412, 512, 612, 712, 812, 912, 1012) formant un
ajustement à interférence avec le siège de vanne (124, 317, 417, 517, 617, 717, 817,
917, 1017) et définissant un degré décroissant de se d'interférence entre eux dans
un sens partant d'une extrémité amont vers une extrémité avale de l'ouverture de vanne
;
de manière à ce que, pendant la distribution et/ou la vie en rayon de la substance,
la vanne à une distribution et/ou la chambre de stockage :
(i) maintienne toute substance restant dans la chambre de stockage dans une condition
aseptique isolée par rapport à l'atmosphère ambiante, sensiblement sans air, et à
température ambiante ;
(ii) empêche substantiellement la pénétration d'air dans la vanne à une distribution
et/ou la chambre de stockage à volume variable ; et
(iii) empêche substantiellement la pénétration de bactéries ou d'autres impuretés
indésirables dans la vanne à une distribution et/ou la chambre de stockage à volume
variable.
11. Contenant selon la revendication 10, comprenant en outre une section tubulaire (104,
204, 304, 404, 504, 704) couplée en communication de fluide entre la chambre de stockage
à volume variable et la vanne à une distribution.
12. Contenant selon la revendication 10 ou 11, comprenant en outre un contenant extérieur
relativement rigide (760, 860, 960, 1060), recevant à l'intérieur la chambre de stockage
à volume variable.
13. Contenant selon l'une quelconque des revendications 10 à 12, dans lequel le contenant
(100, 200, 300, 400, 500, 600, 700, 800, 900, 1000) comprend en outre une pompe conçue
pour pressuriser la substance à l'entrée de l'ouverture de vanne pour distribuer la
substance à travers celle-ci.
14. Contenant selon la revendication 13, dans lequel la pompe est couplée entre la chambre
de stockage à volume variable et la vanne à une distribution et conçue pour pomper
de la substance depuis la chambre de stockage jusque dans l'ouverture de vanne pour
distribuer la substance à travers celle-ci.
15. Contenant selon la revendication 13 ou 14, dans lequel la section tubulaire (104,
204, 304, 404, 504, 704) est compressible et la pente est conçue pour compresser la
section tubulaire (104, 204, 304, 404, 504, 704) afin de pressuriser la substance.
16. Contenant selon la revendication 10, dans lequel la vanne à une distribution inclut
en outre un corps de vanne qui définit le siège de vanne (124, 317, 417, 517, 617,
717, 817, 917, 1017) et une ouverture d'écoulement s'étendant à travers au moins un
élément parmi le corps de vanne et le siège de vanne.