FIELD OF THE INVENTION
[0001] The present invention relates to a process for packaging amorphous polyolefins or
other similar viscosity thermoplastic materials. The present invention more particularly
relates to a process of packaging amorphous polyolefins, or other similar thermoplastic
materials, into a thin-wall polyolefin container that is later melt blended with the
contents in its end use.
BACKGROUND OF THE INVENTION
[0002] Amorphous polyolefins (APOs) are well known and are very useful in adhesives, roofing
compositions, cable flooding, caulks and sealants. APOs are produced and transferred
or shipped in many forms for incorporation into final compositions. APOs are generally
tacky at room temperature and have a low degree of crystallinity and are therefore,
not easily formed into powders or pellets for shipment.
[0003] The manufacturers of APOs, and other thermoplastic materials having similar melt
viscosities, have struggled with finding an economical and practical way of delivering
these raw materials to compounders or end users in a form that is generally easily
manageable and cost efficient. There have been serious shortcomings in finding practical
transportation means and user-friendly packaging for APOs. Many compounders and end
users are not equipped to handle tank cars of bulk molten material. Small solid APO
slats coated with a non-tacky substance are more useable, but are much more expensive
due to high production processing costs. The form most economical to use is solid
APO blocks packaged in release coated paper. However, the unwrapping and handling
of a solid APO block is very labor intensive and generates substantial paper waste.
[0004] There have been several processes aimed at providing useful solid forms of low viscosity
hot-melt, thermoplastic products such as hot-melt adhesives, APOs and asphalt compositions
that do not require unwrapping. U.S. Patent 4,748,796 (1988) discloses an elaborate
process of solidifying adhesive compositions in molds which are coated with an electrostatically
held screen of powder. U.S. Patent 5,160,686 (1992) discloses another process involving
complicated machinery for blowing a hot gas curtain between a polypropylene mold and
a stream of hot-melt-blown hydrogenated castor oil designed to coat a molten hot melt
adhesive as it solidifies.
[0005] U.S. Patent 5,109,892 (1992) discloses a process wherein a rigid free-standing thick
walled (0.25 - 4 mm) polyolefin container is filled with molten APO without melting,
even though the container has a melting point below the temperature at which the molten
APO is flowed into the container. U.S. Patent 5,109,892 discloses that the relationship
between the maximum fill temperature and the container thickness for that process
is demonstrated by the linear equation wherein the fill temperature is preferably
less than about Y°C, wherein Y equals 0.34 times the melting point of the container
material (°C), times the minimum wall thickness of the container (mm), plus 143. For
packaging of APOs in polyolefin containers at flowable fill temperatures, this equation
limits container thickness to no less than about 0.25 mm.
[0006] The process of U.S. Patent 5,109,892 is attractive since there are no wasteful molds
or elaborate cooling methods required. However, the polyolefin container has provided
too great of a percentage of polyolefin when the APO or other similar viscosity thermoplastic
material and container are melted together for end use. Also, thicker walled molded
containers are relatively more expensive to make than thin walled molded containers.
[0007] Since then, alternate processes using thin walled containers have been disclosed
and require very elaborate and expensive equipment. U.S. Patent 5,292,468 (1994) discloses
a process involving spinning nozzles which spray a complex protective web of non-pressure
sensitive adhesive into the interior of a mold prior to filling with hot melt adhesive.
[0008] U.S. Patent 5,307,608 (1994) discloses a process for packaging asphalt wherein a
floatable mold is lined with a 0.025 to 0.45 mm polypropylene or polyethylene film
required to have a melting point higher than the molten fill temperature. The small
percentage of container material in the solid package is very useful. But the disclosed
process requires an elaborate conveyor driven cooling system to keep the container
material from melting.
[0009] U.S. Patent 5,401,455 (1995) discloses another process using a thin (0.0025 - 0.125
mm) polyethylene based nonrigid film requiring a mold and either a heat sink or refrigerant
to keep the thin film from melting.
[0010] In light of the above, it would be very desirable to be able to cheaply produce APOs
or materials having similar melt viscosities in a solid non-tacky form having a small
percentage of packaging which can be melted along with the material being packaged.
It would further be desirable to have a process utilizing a thin walled container
requiring no waste while requiring no heat sinks or elaborate cooling equipment.
SUMMARY OF THE INVENTION
[0011] The present process for packaging thermoplastic materials comprises:
(a) supplying, at a flowable temperature, a thermoplastic material having a Brookfield
Thermosel Viscosity of about 1 to 200,000 milliPascal-seconds (mPa•s) at 190°C wherein
the said flowable temperature is less than about y°C wherein y is equal to 2.7 times
the melting point of the polyolefin container material in degrees Celsius, times the
nominal wall thickness of the polyolefin container in millimeters, plus 25;
(b) flowing said thermoplastic material into a molded polyolefin container having
a minimum wall thickness of about 0.1 mm to less than 0.25 mm wherein the material
of said polyolefin container has a melting point below the temperature at which said
thermoplastic material is flowed into the polyolefin container; and
(c) slowly cooling the filled polyolefin container;
wherein said process is conducted at ambient conditions.
[0012] Another aspect of the present invention is a process for packaging thermoplastic
materials comprising:
(a) supplying, at a flowable temperature, a thermoplastic material having a Brookfield
Thermosel Viscosity of about 1 to 200,000 milliPascal-seconds (mPa•s) at 190°C wherein
said flowable temperature is less than about y°C wherein y is equal to 2.65 times
the melting point of the container material in degrees celsius, times the nominal
wall thickness of the container in millimeters, plus 47.7;
(b) flowing said thermoplastic material into a molded polyolefin container having
a minimum wall thickness of at least 0.1 mm to less than 0.25 mm, wherein the material
of said polyolefin container has a melting point below the temperature at which said
thermoplastic material is flowed into the container, wherein said polyolefin container
is in contact with a metal heat sink;
(c) slowly cooling the filled polyolefin container while remaining in contact with
said metal heat sink;
wherein said process is conducted at ambient conditions.
DESCRIPTION OF THE INVENTION
[0013] The applicant has unexpectedly discovered that an APO, or other similar viscosity
thermoplastic material, can be flowed into a molded polyolefin container having a
wall thickness of as little as 0.1 mm at a temperature above the melting point of
the container material, without the need for an elaborate cooling of the outside surface
of the filled container.
[0014] The process of the present invention is particularly surprising in view of U.S. Patent
5,109,892 (1992) which discloses a clear linear mathematical relationship which establishes
that the minimum wall thickness of a molded polyolefin container which will resist
melting under flowable APO temperatures at ambient processing temperatures is about
0.25 mm. Therefore, it was most surprising to find that thinner polyolefin containers
having a minimum thickness from about 0.1 mm to below 0.25 mm could be used for molten
filling of APOs under ambient processing conditions.
[0015] The process of the present invention is further surprising in view of U.S. Patent
5,401,455 (1995) which teaches a process for packaging hot melt adhesives wherein
the flexible ethylene-based polyolefin containers having wall thicknesses typically
up to 0.125 mm are supported by molds which must be in contact with a refrigerant
gas or liquid heat sink to prevent the polyolefin container from melting under fill
temperatures which are even lower than typical APO fill temperatures. However, the
process of the present invention is conducted at ambient conditions using no elaborate
forms of cooling such as refrigerated gas and cooling pools.
[0016] A further unexpected aspect of the present invention is the increased difference
attainable between the fill temperature and the melting point of the polyolefin container,
without melting the polyolefin container, when the present process is conducted with
the polyolefin container being in contact with a metal heat sink such as a metal pail.
While previous processes have disclosed using cooling methods such as liquid heat
sinks and refrigerant gas to dissipate heat from the container walls, there have been
no disclosures teaching that a metal substrate would dissipate heat from thin polyolefin
container walls. In fact, previous patents disclosing use of metal pails for supporting
flexible liners for hot melt filling disclose that it is critical that the metal pails
be cooled by elaborate means such as a cooling pool.
[0017] The batch inclusion packaging process of the present invention is conducted at ambient
conditions and includes supplying an APO, or other thermoplastic material having a
Brookfield Thermosel Viscosity of about 1 to 200000 mPa·s at a flowable temperature
into a molded polyolefin container having a minimum wall thickness of about 0.1 mm
to less than 0.25 mm, wherein the polyolefin container material has a melting point
below the temperature at which the thermoplastic material is flowed into the container.
The present process also includes slowly cooling the filled container at ambient processing
temperatures. The container does not melt under the flowable fill temperatures required
for the process of the present invention.
[0018] The APOs and other thermoplastic materials packaged according to the process of the
present invention are normally soft and tacky at about room temperature, solidify
slowly and have a low degree of crystallinity. The process of the present invention
can be used to package any low viscosity hot-melt thermoplastic product such as APOs,
waxes, hot-melt adhesives, asphalt compositions and the like.
[0019] The thermoplastic materials packaged by the present process are meltable and preferably
have a Ring and Ball Softening Point (RBSP) between about 80°C and 160°C, and a Brookfield
Thermosel Viscosity between about 1 and 200,000 milliPascal-second (mPa·s) at 190°C.
(1 Centipoise (cP) is equivalent to 1 mPa·s). These thermoplastic materials more preferably
have a RBSP between about 100°C and 160°C and a Brookfield Thermosel Viscosity between
about 10 and 100,000 mPa·s at 190°C with a RBSP between about 120°C and 160°C and
a Brookfield Thermosel Viscosity between about 20 and 50,000 mPa·s at 190°C being
most preferable.
[0020] The preferred thermoplastic materials to be packaged by the present process are APOs.
Suitable APOs packaged by the present process include, for example, poly-alpha-olefins
and amorphous copolymers and terpolymers. The more preferred APOs are amorphous polypropylenes
and amorphous copolymers of propylene and at least one other alpha olefin such as
ethylene, 1-butene, 1-hexene or 1-octene. Such APOs are known in the art and are disclosed
in U.S. Patent 3,954,697 and U.S. Patent 3,923,758.
[0021] The thin wall molded polyolefin container is preferably prepared from polyolefins
that are compatible with asphalt and polymer blends. These polyolefin materials are
preferably selected from the group consisting of polypropylene homopolymers, ethylenepropylene
copolymers, impact copolymers, filled polypropylenes and polypropylene blended with
another compatible polymer such as polypropylene-polyethylene blends. The container
is more preferably made from polypropylene homopolymers.
[0022] Ethylene based polyolefins are less preferred container materials for packaging APO
and asphalt compositions. High density polyethylene (HDPE) can be used as the thin
wall molded plastic container, but its compatibility with asphalt and APO is questionable.
Low density (LDPE) and linear low density polyethylene (LLDPE) can also be used, but
the lower melting points of these materials would require either filling temperatures
lower than that normally used to flow APO or asphalt or some elaborate means of cooling
such as a water bath or water spray. However, such ethylene based thin wall containers
would have more suitability in the present process when packaging other materials
such as certain low softening point adhesives.
[0023] Except where specified otherwise, the thin wall molded polyolefin container of the
present process is freestanding. The term "freestanding", as used herein, means not
only that the container is capable of standing alone due to it's rigidity, but it
also means that it is not in contact with any other objects which could dissipate
heat such as heat sinks.
[0024] The thin wall molded polyolefin container of the process of the present invention
is flexible yet rigid enough to stand unsupported by other means, preferably a cylindrical
container such as a pail liner. No wasteful mold is required for filling these containers.
That is a benefit to this process since most molds have only a limited number of uses
under such fill temperatures. Molded polyolefin containers of this type inherently
have different wall thicknesses at different points along the container wall. These
containers are most commonly described by their nominal wall thickness, which is the
average thickness as measured by several different areas. However, it is the thinnest
point on the container walls which limits the integrity of the container upon being
filled with hot molten material.
[0025] The thin wall molded polyolefin container has a minimum wall thickness, or thinnest
point, of about 0.10 mm to less than 0.25 mm, preferably about 0.15 mm to 0.20 mm.
The maximum wall thickness of the thin wall molded plastic container is preferably
about 2.0 mm, with a maximum wall thickness of about 1.0 mm being most preferable.
[0026] The wall thickness of the container is preferably kept to a minimum. A container
having a thicker wall than necessary will be more costly to produce and take longer
to melt in the final application. A thicker wall container is also more difficult
to mold using low cost molding techniques such as vacuum molding or thermoforming.
[0027] The thin wall molded polyolefin container can have dimensions of any size, but preferably
has an outer diameter or width of about 10 to 100 cm, having a volume of about 1 to
250 liters. The thin wall molded polyolefin container more preferably has an outer
diameter of about 15 to 70 cm and a volume of about 5 to 70 liters.
[0028] The molded thin wall polyolefin container used in the present invention is made of
a material that has a melting point below the fill temperature at which the thermoplastic
material is flowed into the container. The thin wall molded polyolefin container preferably
has a temperature gradient (ΔT) across the container wall between about 0.1 to 50°C
per 0.1 mm when filled at room temperature. The preferred melting point of the container
is equal to a temperature between 1 and 50°C below the temperature at which the thermoplastic
material is flowed into the container. The melting point of the container material
is more preferably a temperature between 1 and 25°C below the fill temperature. A
container having a melting point closer to the fill temperature is typically more
useful. However, the container material chosen should depend on the end use of the
batch inclusion package.
[0029] The term "room temperature" for present purposes is defined as ambient processing
temperatures between about 22°C and 35°C. The process of the present invention is
conducted at ambient conditions. Ambient conditions is defined herein as ambient processing
conditions wherein the polyolefin container is not in contact with fluid cooling means
such as a refrigerant gas or liquid heat sinks such as cooling pools in order to keep
the polyolefin container from melting.
[0030] Conducting the present process at room temperature, the melting point of the container
material should be no lower than 50°C below the fill temperature. However, if the
present process is conducted at ambient temperatures less than about 22°C the melting
point of the container material can be as low as 70°C below the fill temperature.
[0031] The molten, or flowable thermoplastic material can be flowed into a singular container.
However, it is preferred that the molten, or flowable material be flowed into a plurality
containers as this will increase production rates and lower production costs.
[0032] The rate at which these thin wall molded polyolefin containers are filled with the
flowable thermoplastic material is preferably between about 1 and 150 kilograms per
minute per container. The fill rate is more preferably between about 2 and 50 kilograms
per minute per container and most preferably between 4 and 40 kilograms per minute
per container.
[0033] Once the thin wall molded polyolefin container is filled with the flowable or molten
thermoplastic material, the container is allowed to cool slowly at ambient conditions.
Methods of elaborate cooling such as a water bath are not required. When the filled
thin wall molded polyolefin container is allowed to cool at ambient conditions, the
container should not have any significant contact with other containers (except at
the lip) containing molten material for about 8 to 24 hours. In other words, the filled
containers should not be stacked until the APO or other similar viscosity thermoplastic
material has cooled. These containers are more preferably isolated from significant
contact with other containers for at least about 8 hours.
[0034] The molten thermoplastic material in the thin wall molded polyolefin container is
preferably cooled as fast as possible without resorting to complicated cooling means.
The cooling rate is preferably at about 0.05°C to 0.45°C per minute. The final cooled
temperature required prior to contact with other containers will be determined according
to the particular thermoplastic material. A generally useful final cooling temperature
is a core temperature of about 100°C.
[0035] The term "flowable temperature" as used herein simply refers to the temperature at
which the thermoplastic material must reach in order to have enough flowability to
be delivered at a reasonable rate. The rate is preferably between 1 to 150 kilograms
per minute per container.
[0036] The flowable temperature at which the thermoplastic material is flowed into the freestanding
thin wall molded polyolefin container is preferably less than about Y°C, wherein Y
= 2.7 times the melting point (Tm) of the thin wall molded polyolefin container in
degrees celsius, times its nominal wall thickness in millimeters (mm), plus 25, according
to formula (I) below:

wherein Tm is degrees celsius, and thickness is in mm, and the nominal wall thickness
is calculated as the average thickness of the container wall.
[0037] In the preferred process of the present invention, wherein a thermoplastic material
is delivered into a polyolefin container, the flowable temperature is preferably about
110 to 215°C, more preferably about 160 to 215°C. The thermoplastic material is generally
heated or maintained at an elevated temperature in a heated vessel prior to being
flowed into the molded polyolefin container. This vessel is preferably a heated storage
container to which amorphous polyolefin is transferred to during the polymerization
reaction.
[0038] The present invention also includes an alternate process for packaging thermoplastic
materials using a metal heat sink. This alternate process comprises flowing a thermoplastic
material having a Brookfield Thermosel Viscosity of about 1 to 200,000 milliPascal-seconds
(mPa·s) at 190°C into a molded polyolefin container having a minimum wall thickness
of at least 0.1 mm wherein the material of said polyolefin container has a melting
point below the temperature at which said thermoplastic material is flowed into the
container, and wherein the polyolefin container is in contact with a metal heat sink.
This alternate process also includes slowly cooling the filled polyolefin container
while remaining in contact with said metal heat sink. This alternate process is also
conducted at ambient conditions.
[0039] In the alternate process of the present invention wherein a metal heat sink is used,
the minimum wall thickness of the polyolefin container is preferably about 0.1 mm
to less than 0.25 mm, more preferably about 0.15 mm to 0.20 mm.
[0040] The flowable temperature at which the APO or other similar viscosity thermoplastic
material is flowed into the thin wall molded polyolefin container in contact with
a metal or other similar heat sink is preferably less than about Y°C, wherein Y =
2.65 times the melting point (Tm) of the thin wall molded polyolefin container in
degrees celsius, times its nominal wall thickness in millimeters (mm), plus 47.7,
according to formula
(II) below:

wherein Tm is in degrees celsius, thickness is in mm, and the nominal wall thickness
is calculated as the average thickness of the container wall.
[0041] Employment of a heat sink material with a thermal conductivity greater than about
46 J/m·°C·s (11 cal/m*°C*s (calories/meter*degree*second)), the thermal conductivity
of steel, will allow even greater fill temperatures than given by equation (II). Materials
such as aluminum, copper and silver would be examples of such materials. The alternate
process of the present invention is preferably conducted by placing the polyolefin
container inside a metal container such as a metal pail.
[0042] The mathematical relationships shown by formulas (I) and (II) above are generally
linear and represent a fill temperature below which the thin wall molded polyolefin
container will not melt.
[0043] The use of a lid is not required. However, if the container is cooled with water,
a lid or cover is generally required prior to cooling.
[0044] The preferred type of fill apparatus generally includes conventional quick opening
valves that are manually, mechanically, hydraulically or pneumatically controlled
and include for example butterfly valves. Other more sophisticated filling apparatus
may be used such as gravimetric or volumetric type filling devices.
[0045] The molten thermoplastic material cools as it flows towards the wall of the container.
The hottest point of the filled container is the center of the container of molten
material. The molten material resting against the inside wall of the container is
generally at a temperature higher than the melting point of the thin wall molded polyolefin
container, but does not melt the polyolefin container material in the process of the
present invention since there is an adequate ΔT across the container wall. However,
should the outside wall temperature of the thin wall molded polyolefin container surpass
the melting point of the container material, the container will soften and melt at
that point. Thus, care must be taken to avoid significant contact with other hot containers.
Also, the container should not be overfilled since hot molten material flowing down
the outside of the thin wall molded polyolefin container would significantly decrease
the AT across the container wall, allowing the outside of the container to reach its
melting point, thereby melting the container.
[0046] The present invention includes a batch inclusion package comprising a molded polyolefin
container containing a solid block of thermoplastic material essentially filling the
void of the container wherein the polyolefin of the molded container has a melting
point below the flowable temperature of said thermoplastic material and the container
has a minimum wall thickness of about 0.1 mm to less than 0.25 mm. This batch inclusion
package can be melted for end use without the need to separate the container from
the contents.
[0047] The following examples illustrate the present invention and are not intended to limit
the reasonable scope thereof.
EXAMPLES
[0048] The melting point of the container materials used in the Examples was determined
by differential scanning calorimetry (DSC), according to ASTM D3418.
EXAMPLE 1
[0049] This Example illustrates some of the limits of the process of the present invention.
One of the less preferred polyolefin container materials, low density polyethylene
(LDPE), was used. This Example illustrates the importance of the particular polyolefin
container material and the importance of using a container material having a melting
point which is not too far below the fill temperature.
[0050] A vacuum formed low density polyethylene (LDPE) 5-gallon (18.9 liter) pail liner
was placed inside of a 5-gallon (18.9 liter) metal pail, then filled with a molten
amorphous propylene-ethylene (APE) copolymer at a fill temperature of 143°C. The APE
has a typical viscosity of 300 mPa·s (milliPascal-seconds) at 190°C, and a typical
specific heat value (Cp) between about 1,6 to 2,8 J/g/°C (0.38 to 0.67 calories/gram/°C)
between 20°C and 185°C.
[0051] The APE was taken from a storage tank where it had been held in a hot molten state
at approximately 190°C and transferred into a 5-gallon (18.9 liter) metal pail. The
APE was then allowed to cool to 143°C before being poured into the metal pail containing
the LDPE pail liner.
[0052] The LDPE liner had a nominal thickness of 0.38 mm, and a typical DSC melting point
of about 108°C. The fill rate of the APE into the pail was about 18 kilograms per
minute. Pail and liner dimensions were about 30 cm in diameter by 34 cm tall. The
ambient processing temperature was 25°C.
[0053] The 143°C APE fill temperature melted the LDPE liner while setting in the metal pail.
The fill temperature was 35°C higher than the melting point of the container. This
was too great a difference in fill temperature for a thin wall LDPE container, even
though a heat sink was used.
EXAMPLE 2
[0054] This Example further illustrates the importance of not using a fill temperature which
exceeds the melting point of the container by too much. The fill temperature exceeded
the melting point of the high density polyethylene (HDPE) container by 31°C.
[0055] A vacuum formed HDPE 5-gallon (18.9 liter) pail liner having a wall thickness varying
between 0.14 mm and 0.64 mm, and a nominal thickness of 0.38 mm, was filled with molten
amorphous propylene-ethylene (APE) copolymer at a temperature of 162°C. The HDPE liner
dimensions were about 30 cm in diameter by 35 cm tall. The HDPE liner's DSC peak melting
point temperature was measured at about 131°C. The APE had a measured viscosity of
2,410 mPa·s at 190°C and has a typical specific heat value (Cp) between about 1,6
to 2,8 J/g/°C (0.38 to 0.67 calories/gram/°C) between 20°C and 185°C.
[0056] The APE was melted and homogenized in a heated and stirred vessel. The heating unit
was used to control the temperature of the molten APE. When at the desired temperature,
the APE was pumped into the 5-gallon (18.9 liter) HDPE pail liner at a rate of about
5 kilograms per minute using a heat traced gear pump. The ambient processing temperature
was 22°C.
[0057] The 162°C APE fill temperature melted the freestanding HDPE liner. No heat sink was
used.
EXAMPLE 3
[0058] This Example shows the process of the present invention wherein the fill temperature
exceeded the melting point of the container material by 25°C, but did not melt the
container.
[0059] A vacuum formed high density polyethylene (HDPE) 5-gallon (18.9 liter) pail liner
having a wall thickness varying between 0.14 mm and 0.64 mm, and a nominal thickness
of 0.38 mm, was filled with molten amorphous propylene-ethylene (APE) copolymer at
a fill temperature of 156°C. The HDPE liner dimensions were about 30 cm in diameter
by 35 cm tall. The HDPE liner's DSC peak melting point temperature was measured at
about 131°C . The APE had a measured viscosity of 2,410 mPa·s at 190°C and has a typical
specific heat value (Cp) between about 1,6 to 2,8 J/g/°C (0.38 to 0.67 calories/gram/°C)
between 20°C and 185°C.
[0060] The APE was melted and homogenized in a heated and stirred vessel. The heating unit
was used to control the temperature of the molten APE. When at the desired temperature,
the APE was pumped into the 5-gallon (18.9 liter) HDPE pail liner at a rate of about
5 kilograms per minute using a heat traced gear pump. The ambient processing temperature
was 22°C.
[0061] The 156°C APE fill temperature did not melt the freestanding HDPE liner. No heat
sink was used.
EXAMPLE 4
[0062] This Example further illustrates the limits of the process of the present invention.
In this Example, the container was melted by a fill temperature exceeding the melting
point of the container by 53°C, even though a heat sink was used.
[0063] A vacuum formed high density polyethylene (HDPE) 5-gallon (18.9 liter) pail liner
was placed inside of a 5-gallon (18.9 liter) metal pail, then filled with a molten
amorphous propylene-ethylene (APE) copolymer at a temperature of 184°C. The APE had
a measured viscosity of 2,410 mPa·s at 190°C and has a typical specific heat value
(Cp) between about 1,6 to 2,8 J/g/°C (0.38 to 0.67 calories/gram/°C) between 20°C
and 185°C.
[0064] The APE was melted and homogenized in a heated and stirred vessel. The heating unit
was used to control the temperature of the molten APE. When at the desired temperature,
the APE was pumped into the 5-gallon (18.9 liter) HDPE pail liner at a rate of about
5 kilograms per minute using a heat traced gear pump. The ambient processing temperature
was 22°C.
[0065] The HDPE liner had a wall thickness varying between 0.14 mm and 0.64 mm, and a nominal
thickness of 0.38 mm. The HDPE liner dimensions were about 30 cm in diameter by 35
cm tall and it's DSC peak melting point temperature was measured at about 131°C .
[0066] The 184°C APE fill temperature melted the HDPE liner while setting in the metal pail.
EXAMPLE 5
[0067] This Example illustrates the present process wherein a fill temperature exceeding
the melting point of the container by 43°C did not melt the container when a heat
sink was used.
[0068] A vacuum formed high density polyethylene (HDPE) 5-gallon (18.9 liter) pail liner
was placed inside of a 5-gallon (18.9 liter) metal pail, then filled with a molten
amorphous propylene-ethylene (APE) copolymer at a temperature of 174°C. The APE had
a measured viscosity of 2,225 mPa·s at 190°C and has a typical specific heat value
(Cp) between about 1,6 to 2,8 J/g/°C (0.38 to 0.67 calories/gram/°C) between 20°C
and 185°C.
[0069] The APE was melted and homogenized in a heated and stirred vessel. The heating unit
was used to control the temperature of the molten APE. When at the desired temperature,
the APE was pumped into the 5-gallon (18.9 liter) HDPE pail liner at a rate of about
4 kilograms per minute using a heat traced gear pump. The ambient processing temperature
was about 23°C.
[0070] The HDPE liner had a thickness varying between 0.14 mm and 0.64 mm, and a nominal
thickness of 0.38 mm. The HDPE liner dimensions were measured at about 30 cm in diameter
by 35 cm tall and it's DSC peak melting point temperature was measured at about 131°C
.
[0071] The 174°C APE fill temperature did not melt the HDPE liner while setting in the metal
pail.
EXAMPLE 6
[0072] This Example illustrates the limits of the present process. The polypropylene container
was melted by a fill temperature exceeding the melting point of the container by 29°C
when a heat sink was not used.
[0073] A vacuum formed polypropylene (PP) 5-gallon (18.9 liter) pail liner having a thickness
varying between 0.18 mm and 0.66 mm, and a nominal thickness of 0.38 mm, was filled
with molten amorphous propylene-ethylene (APE) copolymer at a temperature of 189°C.
The PP liner dimensions were about 30 cm in diameter by 34 cm tall. The PP liner's
DSC peak melting point temperature was measured at about 160°C . The APE had a measured
viscosity of 2,290 mPa·s at 190°C and has a typical specific heat value (Cp) between
about 1,6 to 2,8 J/g/°C (0.38 to 0.67 calories/gram/°C) between 20°C and 185°C.
[0074] The APE was melted and homogenized in a heated and stirred vessel. The heating unit
was used to control the temperature of the molten APE. When at the desired temperature,
the APE was pumped into the 5-gallon (18.9 liter) PP pail liner at a rate of about
4 kilograms per minute using a heat traced gear pump. The ambient processing temperature
was 24°C.
[0075] The 189°C APE fill temperature melted the freestanding PP liner.
EXAMPLE 7
[0076] This Example illustrates the present process wherein a polypropylene container was
not melted by a fill temperature exceeding the melting point of the container by 24°C,
even though a heat sink was not used.
[0077] A vacuum formed polypropylene (PP) 5-gallon (18.9 liter) pail liner having a thickness
varying between 0.18 mm and 0.66 mm, and a nominal thickness of 0.38 mm, was filled
with molten amorphous propylene-ethylene (APE) copolymer at a temperature of 184°C.
The PP liner dimension were about 30 cm in diameter by 34 cm tall. The PP liner's
DSC peak melting point temperature was measured at about 160°C. The APE had a measured
viscosity of 2,290 mPa·s at 190°C and has a typical specific heat value (Cp) between
about 1,6 to 2,8 J/g/°C (0.38 to 0.67 calories/gram/°C) between 20°C and 185°C.
[0078] The APE was melted and homogenized in a heated and stirred vessel. The heating unit
was used to control the temperature of the molten APE. When at the desired temperature,
the APE was pumped into the 5-gallon (18.9 liter) PP pail liner at a rate of about
4 kilograms per minute using a heat traced gear pump. The ambient processing temperature
was 23°C.
[0079] The 184°C APE fill temperature did not melt the freestanding PP liner.
EXAMPLE 8
[0080] This Example further illustrates the limits of the present process by using a fill
temperature which exceeded the melting point of the container by 51°C.
[0081] A vacuum formed polypropylene (PP) 5-gallon (18.9 liter) pail liner having a thickness
varying between about 0.18 mm and 0.66 mm, and a nominal thickness of 0.38 mm, was
placed inside of a 5-gallon (18.9 liter) metal pail, then filled with a molten amorphous
propylene-ethylene (APE) copolymer at a temperature of 214°C. The APE had a measured
viscosity of 1,700 mPa·s at 190°C and has a typical specific heat value (Cp) between
about 1,6 to 2,8 J/g/°C (0.38 to 0.67 calories/gram/°C) between 20°C and 185°C.
[0082] The APE was melted and homogenized in a heated and stirred vessel. The heating unit
was used to control the temperature of the molten APE. When at the desired temperature,
the APE was pumped into the 5-gallon (18.9 liter) PP pail liner at a rate of about
8 kilograms per minute using a heat traced gear pump. The ambient processing temperature
was 26°C.
[0083] The PP liner dimensions were about 30 cm in diameter by 35 cm tall and it's DSC peak
melting point temperature was measured at about 163°C .
[0084] The 214°C APE fill temperature melted through the PP liner in spots while setting
in the metal pail.
EXAMPLE 9
[0085] This Example illustrates the present process wherein a fill temperature exceeding
the melting point of the container by 45°C did not melt the container when a heat
sink was used.
[0086] A vacuum formed polypropylene (PP) 5-gallon (18.9 liter) pail liner having a thickness
varying between about 0.18 mm and 0.66 mm, and a nominal thickness of 0.38 mm, was
placed inside of a 5-gallon (18.9 liter) metal pail, then filled with a molten amorphous
propylene-ethylene (APE) copolymer at a temperature of 208°C. The APE had a measured
viscosity of 3,100 mPa·s at 190°C and has a typical specific heat value (Cp) between
about 1,6 to 2,8 J/g/°C (0.38 to 0.67 calories/gram/°C) between 20°C and 185°C.
[0087] The APE was melted and homogenized in a heated and stirred vessel. The heating unit
was used to control the temperature of the molten APE. When at the desired temperature,
the APE was pumped into the 5-gallon (18.9 liter) PP pail liner at a rate of about
5 kilograms per minute using a heat traced gear pump. The ambient processing temperature
was about 26°C.
[0088] The PP liner dimensions were about 30 cm in diameter by 35 cm tall and it's DSC peak
melting point temperature was measured at about 163°C .
[0089] The 208°C APE fill temperature did not melt the PP liner while setting in the metal
pail.
EXAMPLE 10
[0090] This Example illustrates the process of the present invention wherein a fill temperature
exceeding the melting point of the container by 45°C did not melt the container when
a heat sink was used, even with exposure to sun and using a faster fill rate.
[0091] A vacuum formed polypropylene (PP) 5-gallon (18.9 liter) pail liner having a wall
thickness varying between 0.18 mm and 0.66 mm, and a nominal thickness of 0.38 mm,
was placed inside of a 5-gallon (18.9 liter) metal pail, then filled with a molten
amorphous propylene-ethylene (APE) copolymer at a temperature of about 205°C. The
APE in the storage tank had a measured viscosity of 6,250 mPa·s at 190°C and has a
typical specific heat value (Cp) between about 1,6 to 2,8 J/g/°C (0.38 to 0.67 calories/gram/°C)
between 20°C and 185°C.
[0092] The APE was pumped from the tank into the 5-gallon (18.9 liter) PP pail liner at
a rate of about 14 kilograms per minute using a heat traced gear pump. The ambient
processing temperature was about 35°C and the metal pail and the PP liner were exposed
to the sun.
[0093] The PP liner dimensions were measured at about 30 cm in diameter by 34 cm tall and
it's DSC peak melting point temperature was measured at about 160°C.
[0094] The 205°C APE fill temperature did not melt the PP liner while setting in the metal
pail.
[0095] While the present invention has been described with great detail, variations and
modification can be made without departing from the scope of the appended claims.
1. A process for packaging thermoplastic materials comprising:
(a) supplying, at a flowable temperature, a thermoplastic material having a Brookfield
Thermosel Viscosity of about 1 to 200,000 milliPascal-seconds (mPa•s) at 190°C wherein
the said flowable Temperature is less than about y°C wherein y is equal to 2.7 times
the melting point of the polyolefin container material in degrees celsius, times the
nominal wall thickness of the polyolefin container in millimeters, plus 25;
(b) flowing said thermoplastic material into a molded polyolefin container having
a minimum wall thickness of about 0.1 mm to less than 0.25 mm wherein the material
of said polyolefin container has a melting point below the temperature at which said
thermoplastic material is flowed into the polyolefin container; and
(c) slowly cooling the filled polyolefin container;
wherein said process is conducted at ambient conditions.
2. The process according to Claim 1 wherein said polyolefin container is freestanding.
3. The process according to Claim 1 wherein said thermoplastic material is an amorphous
polyolefin.
4. The process according to Claim 1 wherein said thermoplastic material is flowed into
said polyolefin container at a temperature between about 110 to 215°C at a fill rate
between about 2 and about 50 kilograms per minute per polyolefin container and is
cooled at a rate of about 0.05 to 0.45°C per minute, based on the core temperature,
until reaching a core temperature of about 100°C or below.
5. The process according to Claim 1 wherein said polyolefin container is cooled at essentially
ambient conditions for about 8 to 24 hours prior to significantly contacting other
sources of heat.
6. The process according to Claim 1 wherein said polyolefin container material has a
melting point equal to a temperature between about 1 to 50°C below the temperature
at which the thermoplastic material is flowed into the polyolefin container.
7. The process according to Claim 1 wherein said polyolefin container has an outer diameter
of about 10 to 100 cm and a volume of about 1 to 250 liters.
8. The process according to Claim 1 wherein the maximum wall thickness of said polyolefin
container is no more than about 2 mm.
9. The process according to Claim 1 wherein said polyolefin container is made from polyolefins
that are compatible with asphalt blends.
10. The process according to Claim 9 wherein said polyolefin container is made from a
polyolefin selected from the group consisting of polypropylene homopolymers, ethylene-propylene
random copolymers, impact copolymers, filled polypropylenes, and polypropylene blends.
11. The process according to Claim 10 wherein said polyolefin container is made from polypropylene
homopolymers.
12. The process according to Claim 1 wherein said thermoplastic material is amorphous
polypropylene or amorphous propylene-ethylene copolymer having a ring and ball softening
point about 100 to 160°C.
13. The process according to Claim 12 wherein said thermoplastic material is amorphous
polypropylene or amorphous propylene-ethylene copolymer having a Brookfield Thermosel
Viscosity about 10 to 100,000 mPa·s at 190°C.
14. A process for packaging thermoplastic materials comprising:
(a) supplying, at a flowable temperature, a thermoplastic material having a Brookfield
Thermosel Viscosity of about 1 to 200,000 milliPascal-seconds (mPa•s) at 190°C wherein
said flowable temperature is less than about y°C wherein y is equal to 2.65 times
the melting point of the container material in degrees celsius, times the nominal
wall thickness of the container in millimeters, plus 47.7;
(b) flowing said thermoplastic material into a molded polyolefin container having
a minimum wall thickness of at least 0.1 mm to less than 0.25 mm, wherein the material
of said polyolefin container has a melting point below the temperature at which said
thermoplastic material is flowed into the container, wherein said polyolefin container
is in contact with a metal heat sink;
(c) slowly cooling the filled polyolefin container while remaining in contact with
said metal heat sink;
wherein said process is conducted at ambient conditions.
15. The process according to Claim 14 wherein said metal heat sink is a metal container
and said polyolefin container is placed inside said metal container.
1. Verfahren zur Abpackung von thermoplastischen Materialien, umfassend:
a) Bereitstellen eines thermoplastischen Materials mit einer Brookfield-Thermosel-Viskosität
von etwa 1 bis 200000 Millipascal-Sekunden (mPa·s) bei 190°C bei einer Fließfähigkeitstemperatur,
wobei die Fließfähigkeitstemperatur weniger als etwa y°C beträgt, worin y gleich dem
2,7-fachen des Schmelzpunktes des Polyolefin-Behältermaterials in Grad Celsius mal
der nominalen Wanddicke des Polyolefin-Behälters in Millimetern plus 25 ist;
b) Fließenlassen des thermoplastischen Materials in einen formgepressten Polyolefin-Behälter
mit einer minimalen Wanddicke von etwa 0,1 mm bis weniger als 0,25 mm, wobei das Material
des Polyolefin-Behälters einen Schmelzpunkt unterhalb der Temperatur aufweist, bei
der man das thermoplastische Material in den Polyolefin-Behälter fließen lässt; und
c) langsames Abkühlen des gefüllten Polyolefin-Behälters;
wobei das Verfahren bei Umgebungsbedingungen durchgeführt wird.
2. Verfahren nach Anspruch 1, in dem der Polyolefin-Behälter freistehend ist.
3. Verfahren nach Anspruch 1, in dem das thermoplastische Material ein amorphes Polyolefin
ist.
4. Verfahren nach Anspruch 1, in dem man das thermoplastische Material bei einer Temperatur
zwischen etwa 110 bis 215°C bei einer Einfüllgeschwindigkeit zwischen etwa 2 und etwa
50 Kilogramm pro Minute pro Polyolefin-Behälter fließen lässt und bei einer Geschwindigkeit
von etwa 0,05 bis 0,45°C pro Minute, auf der Grundlage der Kern-Temperatur, abkühlen
lässt, bis eine Kern-Temperatur von etwa 100°C oder darunter erreicht wird.
5. Verfahren nach Anspruch 1, in dem man den Polyolefin-Behälter bei im wesentlichen
Umgebungsbedingungen etwa 8 bis 24 Stunden abkühlen lässt, bevor signifikant andere
Wärmequellen kontaktiert werden.
6. Verfahren nach Anspruch 1, in dem das Polyolefin-Behältermaterial einen Schmelzpunkt
gleich einer Temperatur zwischen etwa 1 bis 50°C unterhalb der Temperatur aufweist,
bei welcher man das thermoplastische Material in den Polyolefin-Behälter fließen lässt.
7. Verfahren nach Anspruch 1, in dem der Polyolefin-Behälter einen äußeren Durchmesser
von etwa 10 bis 100 cm und ein Volumen von etwa 1 bis 250 Litern aufweist.
8. Verfahren nach Anspruch 1, in dem die maximale Wanddicke des Polyolefin-Behälters
nicht mehr als etwa 2 mm beträgt.
9. Verfahren nach Anspruch 1, in dem der Polyolefin-Behälter aus Polyolefinen hergestellt
ist, die mit Asphalt-Mischungen kompatibel sind.
10. Verfahren nach Anspruch 9, in dem der Polyolefin-Behälter aus einem Polyolefin hergestellt
ist, das aus der Gruppe ausgewählt ist, die aus Polypropylen-Homopolymeren, statistischen
Ethylen-Propylen-Copolymeren, schlagfesten Copolymeren, gefüllten Polypropylenen und
Polypropylen-Mischungen besteht.
11. Verfahren nach Anspruch 10, in dem der Polyolefin-Behälter aus Polypropylen-Homopolymeren
hergestellt ist.
12. Verfahren nach Anspruch 1, in dem das thermoplastische Material amorphes Polypropylen
oder amorphes Propylen-Ethylen-Copolymer mit einem Ring- und-Kugel-Erweichungspunkt
von etwa 100 bis 160°C ist.
13. Verfahren nach Anspruch 12, in dem das thermoplastische Material amorphes Polypropylen
oder amorphes Propylen-Ethylen-Copolymer mit einer Brookfield-Thermosel-Viskosität
von etwa 10 bis 100000 mPa·s bei 190°C ist.
14. Verfahren zur Abpackung von thermoplastischen Materialien, umfassend:
a) Bereitstellen eines thermoplastischen Materials mit einer Brookfield-Thermosel-Viskosität
von etwa 1 bis 200000 Millipascal-Sekunden (mPa·s) bei 190°C bei einer Fließfähigkeitstemperatur,
wobei die Fließfähigkeitstemperatur weniger als etwa y°C beträgt, worin y gleich dem
2,65-fachen des Schmelzpunktes des Behältermaterials in Grad Celsius mal der nominalen
Wanddicke des Behälters in Millimetern plus 47,7 ist;
b) Fließenlassen des thermoplastischen Materials in einen formgepressten Polyolefin-Behälter
mit einer minimalen Wanddicke von mindestens 0,1 mm bis weniger als 0,25 mm, wobei
das Material des Polyolefin-Behälters einen Schmelzpunkt unterhalb der Temperatur
aufweist, bei der man das thermoplastische Material in den Behälter fließen lässt,
wobei der Polyolefin-Behälter mit einem Metall-Kühlkörper in Kontakt steht;
c) langsames Abkühlen des gefüllten Polyolefin-Behälters, während man ihn in Kontakt
mit dem Metall-Kühlkörper hält;
wobei das Verfahren bei Umgebungsbedingungen durchgeführt wird.
15. Verfahren nach Anspruch 14, in dem der Metall-Kühlkörper ein Metallbehälter ist und
der Polyolefin-Behälter in den Metallbehälter gegeben wird.
1. Procédé pour conditionner des matériaux thermoplastiques comprenant :
(a) la délivrance, à une température de fluide, d'un matériau thermoplastique ayant
une viscosité Brookfield Thermosel d'environ 1 à 200 000 millipascals-seconde (mPa.s)
à 190°C, où ladite température de fluide est inférieure à environ y°C, où y représente
2,7 fois le point de fusion du matériau de récipient en polyoléfine en degrés Celsius,
multiplié par l'épaisseur de paroi nominale du récipient en polyoléfine en millimètres,
plus 25 ;
(b) l'écoulement dudit matériau thermoplastique dans un récipient en polyoléfine moulé
ayant une épaisseur de paroi minimale d'environ 0,1 mm à moins de 0,25 mm, où le matériau
dudit récipient en polyoléfine a un point de fusion inférieur à la température à laquelle
ledit matériau thermoplastique s'écoule dans le récipient en polyoléfine ; et
(c) le lent refroidissement du récipient en polyoléfine rempli ;
dans lequel ledit procédé est mis en oeuvre dans des conditions ambiantes.
2. Procédé selon la revendication 1, dans lequel ledit récipient en polyoléfine est autoporteur.
3. Procédé selon la revendication 1, dans lequel ledit matériau thermoplastique est une
polyoléfine amorphe.
4. Procédé selon la revendication 1, dans lequel ledit matériau thermoplastique s'écoule
dans ledit récipient en polyoléfine à une température entre environ 110 et 215°C à
une vitesse de charge entre environ 2 et environ 50 kilogrammes par minute et par
récipient en polyoléfine et est refroidi à une vitesse d'environ 0,05 à 0,45°C, sur
la base de la température de coeur, jusqu'à atteindre une température de coeur d'environ
100°C ou moins.
5. Procédé selon la revendication 1, dans lequel ledit récipient en polyoléfine est refroidi
pratiquement dans les conditions ambiantes pendant environ 8 à 24 heures avant contact
significatif avec d'autres sources de chaleur.
6. Procédé selon la revendication 1, dans lequel ledit matériau de récipient en polyoléfine
a un point de fusion égal à une température entre 1 et 50°C inférieure à la température
à laquelle le matériau thermoplastique s'écoule dans le récipient en polyoléfine.
7. Procédé selon la revendication 1, dans lequel ledit récipient en polyoléfine a un
diamètre extérieur d'environ 10 à 100 cm et un volume d'environ 1 à 250 litres.
8. Procédé selon la revendication 1, dans lequel l'épaisseur de paroi maximale dudit
récipient en polyoléfine ne dépasse pas environ 2 mm.
9. Procédé selon la revendication 1, dans lequel ledit récipient en polyoléfine est constitué
de polyoléfines qui sont compatibles avec les mélanges d'asphalte.
10. Procédé selon la revendication 9, dans lequel ledit récipient en polyoléfine est constitué
d'une polyoléfine choisie dans l'ensemble constitué par les homopolymères de polypropylène,
les copolymères statistiques éthylène/propylène, les copolymères choc, les polypropylènes
garnis, et les mélanges de polypropylènes.
11. Procédé selon la revendication 10, dans lequel ledit récipient en polyoléfine est
constitué d'homopolymères de polypropylène.
12. Procédé selon la revendication 1, dans lequel ledit matériau thermoplastique est du
polypropylène amorphe ou un copolymère propylène/éthylène amorphe ayant un point de
ramollissement par la méthode bille et anneau d'environ 100 à 160°C.
13. Procédé selon la revendication 12, dans lequel ledit matériau thermoplastique est
du polypropylène amorphe ou un copolymère propylène/éthylène amorphe ayant une viscosité
Brookfield Thermosel d'environ 10 à 100 000 mPa.s à 190°C.
14. Procédé pour conditionner des matériaux thermoplastiques comprenant :
(a) la délivrance, à une température de fluide, d'un matériau thermoplastique ayant
une viscosité Brookfield Thermosel d'environ 1 à 200 000 millipascals-seconde (mPa.s)
à 190°C, où ladite température de fluide est inférieure à environ y°C, où y représente
2,65 fois le point de fusion du matériau de récipient en degrés Celsius, multiplié
par l'épaisseur de paroi nominale du récipient en millimètres, plus 47,7 ;
(b) l'écoulement dudit matériau thermoplastique dans un récipient en polyoléfine moulé
ayant une épaisseur de paroi minimale d'au moins 0,1 mm à moins de 0,25 mm, où le
matériau dudit récipient en polyoléfine a un point de fusion inférieur à la température
à laquelle ledit matériau thermoplastique s'écoule dans le récipient, où ledit récipient
en polyoléfine est en contact avec un dissipateur de chaleur métallique ;
(c) le lent refroidissement du récipient en polyoléfine rempli cependant qu'il reste
en contact avec ledit dissipateur de chaleur métallique ;
dans lequel ledit procédé est mis en oeuvre dans des conditions ambiantes.
15. Procédé selon la revendication 14, dans lequel ledit dissipateur de chaleur métallique
est un récipient métallique et ledit récipient en polyoléfine est placé à l'intérieur
dudit récipient métallique.