[0001] The present invention concerns a process as well an apparatus/system for enabling
the packaging of a powder, in particular an API, in a contained and GMP manner, without
the requirement of a clean room around the filling area. Furthermore, the present
invention concerns the use of an apparatus, and process, for pharmaceutical powders
and/or for specific pharmaceutical packaging processes.
[0002] EP 1 619 124 A1 shows an apparatus for enabling the packaging of a powder. The known apparatus works
with drums, that contain a first and a second bag from the beginning, whereby the
second bag is located inside the first bag. For filling the second bag with the powder,
the first bag has to be fixed to a lower opening of the apparatus and afterwards the
second bag has to be fixed to an upper opening of the apparatus. Further apparatus
are known from the following documents:
EP 0 616 945 A1,
US 5,810,060 A,
US 4,308,710 A,
EP 1 708 941 A0.
[0003] The aim of the invention is to set out a process and an apparatus, with which powder,
preferably pharmaceutical powder, can be packaged in at least approximately clean
room conditions, without the need to set up the proposed apparatus in a clean room.
[0004] With regard to the process this aim is achieved with the features of claim 1 and
with regard to the apparatus with the features of claim 11. Advantageous further embodiments
of the invention are set out in the sub-claims. The full disclosure (description,
claims and figures) of the European patent application with the application reference
number
EP 0 801 793 2.8, the priority of which is being claimed, should apply as forming part of the disclosure
of the present application, in particular in that at least any one feature of the
present application should be combinable and claimable with any one feature of the
present application and/or
EP 0 801 793 2.8.
[0005] The invention is based on the concept of using a DCS (drum containment system) glove
box, also claimed as an apparatus, for filling a powder with a mean particle diameter
in a range between around 10 µm and around 1000 µm. This is taken to mean an apparatus
which has a lower section for holding a drum comprising a first bag, and an upper
section, which can be reached into manually with the aid of at least one, preferably
with the aid of four, more particularly detachable sealed gloves in order, as will
be explained later, to close a second bag and the first bag surrounding the second
bag. Ideally the powder to be filled is exclusively in contact with the second bag
and the first bag forms a second protective covering, where by the first bag and the
second bag are surrounded by the apparatus, which than forms an overall protective
covering and/or barrier, preferably exposed to an under pressure (negative pressure)
and/or an over pressure (positive pressure).
[0006] The process and device are particularly suitable for filling powder, more particularly
API powder, with a particle size of between 1 and 1000 µm. Preferably the density
of the poured powder is between 0.1 and 1 kg/dm
3.
[0007] It is particularly preferable if a dosing device forms part of the apparatus, as
described, for example in
WO 2007/088022 A1 by the applicant. The dosing device is preferably arranged in such a way that from
it, emerging more particularly as a result of vibrations, powder within the DCS glove
box can flow into the second bag formed by the hose-like continuous liner. The content
of the disclosure of
WO 2007/088022 A1 should, with regard to possible advantageous embodiments of the dosing device, apply
as disclosed as part of the subject matter of the present application.
[0008] Preferably the dosing device operates on a low pressure basis in order to attract
powder by way of suction. The unloading of the powder/filling of the second bag preferably
takes place by way of vibration, which allows precise dosing of the powder. It is
particularly preferable if a dryer is arranged upstream of the dosing device, from
which the powder is transferred into a mill, more particularly an online conical mill,
which is preferably arranged above the PTS feeder. From the mill the powder is then
sucked in by the dosing device. The core of the process is that the powder is filled
into a continuous liner, from which the second bag, surrounded by the first bag, is
formed by the closing and separation of the remaining continuous liner. It is particularly
preferable if the device comprises at least one inlet and/or at least one outlet volatile
particle filter, more especially an HEPA particle filter, in order to avoid contamination
of the surrounding area and/or the interior of the apparatus.
[0009] The process in accordance with the invention comprises the following steps:
Initially a first bag of flexible packaging material is provided, preferably within
a drum, more particularly through insertion of the drum into the lower section of
the DCS glove box. It is particularly expedient if doors corresponding to this are
provided and the lower section of the DCS glove box is closed on all four sides after
closing the doors. Alternatively the lower section is realized without doors, preferably
with the front side open.
Preferably, after opening the drum the first bag is attached on a lower outlet, which
projects into the lower section of the DCS glove box starting from the upper section.
For this the operating gloves of the upper section of the apparatus are used.
[0010] Thereafter, the continuous liner, closed at its lower end, is passed from the upper
section of the DCS glove box through the lower outlet thereof into the first bag so
that a second bag is provided within the first bag preferably located within the drum.
The second bag is then filled with the powder, very particularly preferably via an
upper outlet in the upper section of the DCS glove box. Placing the second bag into
the first bag preferably takes place manually by way of the gloves, but alternatively
can take place automatically through starting the filling procedure. Particularly
preferably a dosing device, as described in said PCT application, is used for filling/dosing.
After the filling procedure the second bag is closed and separated from the remaining
continuous liner, which preferably has already been closed again at its lower end.
The first bag, which fully surrounds the second bag, is then closed, and preferably
closing of the optionally provided drum in the lower section of the DCS glove box
takes place before the first bag and the second bag, preferably together with the
drum, are removed from the lower section of the DCS glove box, preferably through
a, preferably lateral, outlet door which differs from the inlet door. Preferably,
for facilitated removal of the drum, a roller mechanism is provided.
[0011] The invention also relates to an apparatus, i.e. a DCS (drum containment system)
glove box, for implementing the process described above. The apparatus is characterised
by an upper section, comprising at least one pair of gloves, in which by way of the
at least one pair of gloves, which is preferably permanently, but in a replaceable
connected in a sealing manner with a housing, intervention can take place, and a lower
section, in which a first bag, preferably arranged within a drum, can be accommodated.
It is particularly expedient if the apparatus comprises a dosing device as described
in the previously cited PCT application. It is particularly expedient if the lower
connection, to which the first bag can be attached, is the only connection between
the upper section and the lower section, with the continuous liner being passable
from the upper section through the lower connection into the lower section. Preferably,
the, more particularly, tubular lower connection is within a partition wall which
isolates the upper section from the lower section.
[0012] In the event of a fault or damage to a continuous liner forming the second bag the
DCS glove box prevents contamination of the product and allows the continuous liner
to be replaced. The proposed apparatus, more particularly at least the upper section,
preferably exclusively the upper section of the DCS glove box is, in a further development
of the invention, connected to an air circulating system, which is designed so as
to guarantee a high rate of air exchange. Preferably the air flows through volatile
particle filters, more particularly HEPA filters, and particularly preferably at a
volumetric flow of 100 Nm
3/hour, which preferably corresponds to a gas exchange rate of 5 to 10 times per minute
(depending on the volume of the upper section). The high rate of gas exchange also
prevents powder remaining in and being contaminated in the upper section and thereby
guarantees additional product protection.
[0013] It is particularly expedient if, at least during the filling procedure, there is
a slight over pressure within the upper section of the DCS glove box, which prevents
air entering the system from outside, as a result of which the product is optimally
protected.
[0014] Especially in the case of filling highly toxic products, instead of bringing about
a positive pressure, it can, however, be preferable to implement a negative pressure,
in relation to the atmosphere, within the upper section in order to thereby rule out
contamination of the surrounding area and endangering operating personnel.
[0015] It is particularly expedient if the lower section of the DCS glove box is surrounded
by three side walls, more particularly arranged perpendicularly to each other, whereby
in at least one side wall, preferably in the front wall, doors are provided. Alternatively
the front side is open permanently. It is very particularly expedient if the rear
side of a perforated plate, connected to a fan with volatile particle filters, more
particularly HEPA filters, is sealed, whereby the fan is arranged and designed so
that at least during removal of the drum lid and the connection of the first bag with
a lower connection of the DCS glove box, an high pressure predominates. An over pressure
is also preferred when dividing/separating the first bag. Particularly preferably
the air flows at a maximum rate of 0.5 m/sec. Alternatively the lower section can
be realized without means for providing over pressure or under pressure.
[0016] Particularly preferably the system is CIP-capable and can therefore be cleaned by
means of a CIP.
[0017] Advantageous further developments of the method and apparatus are set out in the
following description of preferred examples of embodiment as well as the drawings.
The figures, with the accompanying descriptions, should not only form the entirety
of the disclosure content, but individual figures with the accompanying description
should also serve as independent disclosure sources.
[0018] The figures show in
- Fig. 1 to Fig. 23
- Process steps of a preferred form of embodiment of a process in accordance with the
concept of the invention.
- Fig. 24 to Fig. 43
- A preferred method (process) for replacing and/or renewing a continuous liner
- Fig. 44
- A variant of embodiment of the apparatus in which both within the continuous liner
as well as within the upper and lower section of the DCS glove box a high pressure
is produced.
- Fig.
- 45 An alternative embodiment variant in which there is a high pressure in the continuous
liner and in the lower section of the DCS glove box, and a low pressure in the upper
section outside the continuous liner (each in relation to atmospheric pressure).
- Fig. 46
- A table setting out the advantages resulting for a combination of any two barrier
features for the form of embodiment in accordance with fig. 44.
- Fig. 47
- A table analogue to fig. 46 for the form of embodiment in accordance with fig. 45.
- Fig. 48a to 48c
- Various views and details of a partially incompletely illustrated DCS glove box.
- Fig. 49
- An overall system, comprising a DCS glove box for filling powder.
[0019] In the figure the same elements and elements with the same function are marked with
the same reference symbol.
[0020] In fig. 2 a DCS glove box (hereinafter apparatus 1) is shown. This comprises an upper
section 2 and a lower section 3 adjoining it. The lower section 3 is isolated/hermetically
sealed off from the upper section 2 by means of an essentially horizontally orientated
partition wall. Within the upper section 2 there is a schematically shown waste container
5. In the upper section 3, gloves 6 (operating gloves), which are only partially shown,
project into openings provided in the housing and are detachably arranged on the housing
7. In the illustrated example of embodiment on each of two sides facing away from
each other there is a pair of such gloves, which are made of flexible material.
[0021] On the front of the apparatus in the plane of the drawing there are two pivoting
doors for opening and closing the lower section 3 so that a drum 8 with a first bag
9 can be inserted into the lower section 3 from the front side, using a lift mechanism
10 for lifting the drum 8 with the first bag 9. Alternatively there are no doors on
the front side. Preferably then the front side is permanently open.
[0022] Passing through the partition wall 4 is a lower outlet 11 (connection) to the outer
circumference of which the first bag 9 can be attached. The lower outlet 11 is the
only connection between the upper and the lower section 2, 3.
[0023] At a distance from the lower outlet 11 is an upper outlet 12 (connection), which
projects into the upper section 2. Via the upper connection 12 the powder to be filled
can be supplied, preferably by a dosing device, which is not shown, more particularly
a PTS feeder.
[0024] The free end 13 of the upper outlet 12 is surrounded by a continuous liner 14 which
is closed at the bottom. To close the continuous liner 14 a clip 15 or a cable binder
is provided. By closing the continuous liner 14 a second bag 16 is formed from the
continuous liner 14 in a lower section into which the upper outlet 12 projects.
[0025] The upper outlet 12 is surrounded by a tubular bearing structure 17 on the outer
circumference of which the folded continuous liner, which preferably when unfolded
is of a length of between 10 and 50 m, preferably around 30 m, is held by means of
a, more particularly elastic, clamping ring.
[0026] In order to fill the first bag 9, the drum 8 is initially inserted from the front
side into the lower section 3, which is delimited by three side walls, a base and
the partition wall 4. A lid 18 of the initially closed drum 8 is opened within the
lower section 3, as indicated in fig. 1, and parked in a corresponding holder, which
is not shown.
[0027] Thereafter, as shown in fig. 3, an opening 19 of the first bag 9 is attached to the
lower outlet 11, namely in an upper position 20 (cf. fig. 3) by means of an O-ring
21, with which the first bag 9 is attached to an upper circumferential groove 22.
The upper position 20 is above the lower position 23 on the lower outlet 11, to which
a remainder 24 of an already re-closed first bag is attached by means of an O-ring
25 in a lower circumferential groove 26. The new first bag 9 therefore also surrounds
the remainder 24 of the preceding first bag.
[0028] After attaching the new first bag 9 to the outer circumference of the lower, tubular
outlet 11, more specifically in an upper position 20, even more specifically in an
upper circumferential groove 22 by means of the O-ring 21, the situation as shown
in fig. 4 is achieved.
[0029] In the next step of the process the drum 8 and with it the first bag 9 are moved
by means of the lift mechanism 10 upwards in the plane of the drawing in the direction
of the partition wall until an upper circumferential edge 27 of the drum 8 is in contact
with the lower side of the partition wall 4. The previously described process is shown
in both figs. 5 and 6 jointly. Preferably the, not shown, front doors are only closed
now so that the lower section 3 is screened off from the outside environment. Alternatively
the lower section is provided without front and/or side doors.
[0030] Joint consideration of figs. 7 and 8 shows that the remainder 24 of the preceding
first bag 9 is removed with the aid of the gloves through the lower outlet 11 upwards
into the upper section 2 and then transferred to the waste container 5, so that there
is now a direct connection via the lower section 11 between the upper section 2 and
the first bag 9.
[0031] As can be seen in fig. 9, in a lower section the continuous liner 14 is pressed from
outside against the bearing structure 17 by means of an inflatable gasket 28. The
upper end 29 of the folded continuous liner 14 is pressed against the bearing structure
17 by means of an O-ring sealing. In the process step in accordance with fig. 9 and
10, gas, more particularly air, is released from the inflatable gasket 28 so that
the continuous liner 14 can, by means of the gloves within the upper section 2, as
shown by the arrow 31, be pulled downwards and inserted into the first bag 9 through
the lower outlet 11, which is in axial alignment with the upper connection 12. A second
bag 16 is therefore provided within the first bag 9, as can be seen directly in fig.
12. After the second bag 16 has been transferred into the first bag 9 the inflatable
gasket is inflated again whereby the inflatable gasket 28 again presses from outside
on the continuous liner 14 forcing it against the bearing structure 17, as a result
of which contamination of an area above the inflatable gasket 28 can be reliably prevented.
[0032] In a next step of the process, shown in fig. 13, the first bag 9 is filled with powder
32. Below the lift mechanism 10 there are scales 33 which are connected with a control
unit of the dosing device 34 in such a way that the dosing unit 34 feeds powder through
the upper connection 12 until the required target weight is achieved. The dosing device
34 is connected to a low pressure line 35 for attracting powder through suction. Via
a filter element 36 contamination of the low pressure line 35 is prevented. Preferably
the filter element 36 can be cleaned by means of surge pressure. The dosing device
34 comprises a pump chamber 37 which emerges into an oblique pipe 28 on which a vibrator
39 is arranged in order to be able to dose the powder 32 accurately. The dosing device
34 also comprises a closing mechanism 40, preferably designed as a slide, to regulate
the filling quantity and/or to stop the filling process, preferably depending on the
filling weight measured by the scales.
[0033] Preferably during the filling procedure there is an over pressure in the lower section
of the drum 8, related to atmospheric pressure, and within the upper section 2 outside
the continuous liner 14 alternatively a low pressure or high pressure related to atmospheric
pressure. Preferably, within the continuous liner 14 there is a certain high pressure,
also related to atmospheric pressure, during the filling procedure.
[0034] From fig. 13 a roller mechanism 41 can be seen, which is arranged within and to the
side of the lower section 3, the rollers of which may be driven by an electric motor.
The roller mechanism 41 is for unloading the first bag 9/the drum 8 from the lower
section 3. Fig. 13 also shows that the apparatus 1 has two operating positions 42,
43 on opposite sides. Providing two operating positions 42, 43 facilitates the renewal
of the continuous liner 14, which will be explained later. Preferably there is a sliding
door 44 before the roller mechanism 41.
[0035] Once the required filling weight has been reached, the continuous liner 14 is closed
with a clip 15 at each of two points 45, 46 at distance from each other, as can be
seen in figs. 14 and 15, and then cut through in an area between points 45, 46. This
therefore results in a closed second bag 16 within the first bag 9, which in turn
is arranged in the drum 8.
[0036] In a following step of the process, the result of which can be seen in fig. 17, the
drum 8 is returned back down into its original position by means of the lift mechanism
as shown in fig. 16. The first bag 9 it then closed at two points at a distance from
each other, preferably with one clip at each point and then cut through between the
two points. This results in a closed second bag 16 within the closed first bag 9.
[0037] Figs. 18 and 19 show that by cutting through the first bag 9 the remaining section
24 is moved from the upper position 20 to the lower position 23 at the lower connection
11 in order to make space for the next first bag of the next filling procedure.
[0038] In a following step which is illustrated in figs. 20 and 21 the drum 8 is closed
by way of the lid 18 being put on. Thereafter, as shown in figs. 22 and 23, the drum
8 with the first and second bag 9, 16 is removed laterally via the roller mechanism
41 with the sliding door 44 open.
[0039] Below, with the aid of figs. 24 to 42, a preferred method of renewing the continuous
liner 14 is described.
[0040] In order to do this a (new) continuous liner 14 within a first bag 9, in which an
O-ring seal 30 is also contained, is moved to the lower section 3 of the apparatus
1 through the front doors. As can be seen in fig. 24 the first bag 9 is closed and
the contents are sterile.
[0041] As can be seen in figs. 26 and 27, the first bag 9 is fixed in the upper position
20 by means of an O-ring 21 after the remainder 24 of the preceding first bag has
been moved to the lower position 23.
[0042] The remainder 24 is then taken to the waste container 5 using the gloves so that
a connection is created between the upper section 2 and the first bag 9 and so that
the O-ring seal 30 and the new continuous liner 13 can be removed through the lower
connection 11 and/or moved into the upper section 2. From fig. 30 it can be seen that
the continuous liner 14 is contained in an additional external packaging 47 within
the first bag 9, whereby this external packaging is now opened. The continuous liner
14 was produced and packed under clean room conditions.
[0043] Then, as shown in both figs. 32 and 33, gas is released from the inflatable gasket
28 and a carrier structure 48 which bears the inflatable gasket 28, is removed from
the tubular bearing structure 17 together with the inflatable gasket 28 (cf. fig.
32). Prior to this the new continuous liner 14 is parked within the upper section
2 to the side of the upper connection 12.
[0044] In a following step, shown in fig. 34, the upper end 29 of the new continuous liner
14 is attached to the bearing structure 17 by means of an O-ring 30, after an upper
end of a remainder 49 of the used continuous liner has been moved into a lower position.
Inside, a lower end 50 of the continuous liner is passed down through the carrier
structure 48 past the inflatable gasket 28. Preferably the above operating steps are
carried out by two persons, located on opposite sides of the apparatus 1, each using
a pair of gloves, and preferably also the following step in which the inflatable gasket
with its carrier structure 48 is moved upwards and the carrier structure 48 is attached
in the lower section of the tubular bearing structure 17.
[0045] In a subsequent step shown in figs. 36 and 37, the new continuous liner 14 is closed
by means of a clip 15 so that consequently the remainder 49 is within the new continuous
liner forming the new, second bag.
[0046] In a following step shown in figs. 38 and 39 the remainder 49 of the previous continuous
liner together with its O-ring is removed from the bearing structure 17 and transferred
in full into the second bag 16 formed by the continuous liner 14, whereupon the continuous
liner is, as shown in figs. 40 and 41, is closed with a clip 15 at two points at a
distance from each other and the second bag 16 is separated from the continuous liner
14 in an area between the two points. The second bag 16, incorporating the remainder
49, can now fall into the first bag 9, whereupon, as shown in fig. 42, the first bag
9 is closed, whereby previously the contents of the waste container 5 , i.e. the remainders
24 of the preceding first bags are transferred from the waste container 5 into the
first bag. Then only the first bag 9, filled with waste and the second bag, can be
removed. The apparatus 1 is then ready for further filling procedures.
[0047] Fig. 44 shows a perspective view of a device 1 with a dosing unit 34. A positive
air pressure can be seen within the continuous liner 14 during the filling procedure,
a positive air pressure within the upper section 2 and a positive air pressure within
the lower section 3. This configuration provides optimum product protection. The table
in accordance with fig. 46 summarises the result of the interaction of the various
barriers.
[0048] Fig. 45 shows the identical apparatus as in fig. 44, but the air circulation in the
uppers section 2 is such that within the upper section 2 outside the continuous liner
14 a low pressure predominates. In the lower section 3 as well as within the continuous
liner 14 there is a slight high pressure. The effects of the interaction of two different
barriers are shown in the table in accordance with fig. 47.
[0049] The views in accordance with figs. 48a to 48c show a possible embodiment variant
of an apparatus 1 with a dosing unit 34. The outer walls have not been shown. Lateral
openings 51 in the housing of the upper section 2 can be seen, which can be used to
operate the apparatus 1 via integral system gloves, which are attached in a detachable
sealed manner on the outside of the openings 51. A drum 8 can be seen, which can be
moved between a lower and an upper position within the upper section 3 by means of
a lift mechanism 10. The lift mechanism 10 stands on a separate weighing mechanism
52 which is connected in a signal-conducting manner to the control system of the dosing
unit 34.
[0050] Fig. 48b shows a section of the dosing unit 34 with a powder supply line 53, pump
chamber 37, low pressure connection 35, filter element 36, oblique pipe 38, vibrator
39 and closing mechanism 40 and/or valve.
[0051] Fig 48c shows the arrangement of a preferably provided roller mechanism 41 for facilitated
removal of a drum 8.
[0052] Fig. 48c shows the position of two volatile particle filters, namely an inlet air
volatile particle filter 54 and an outlet air volatile particle filter 55, preferably
both HEPA filters, by means of which air circulation in the upper section 2 of the
apparatus 1 is brought about.
[0053] Fig. 49 shows an apparatus 1 (DCS glove box) with an upper section 2 and a lower
section 3 in an overall system. It shows the dosing device 35, to which powder is
supplied from a mill 56, which is turn is supplied by a dryer 57. To the side there
is a sample removing device 58 from which or with which or automatically, product
samples can be taken during filling.
1. A process for enabling the packaging of a powder (32), in particular a pharmaceutical
product powder, comprising the steps of:
a) Providing a first bag (9) from a flexible packaging material,
b) fixing the opening (19) of the first bag (9) to a lower outlet (11) of a DCS (drum
containment system) glove box (1),
c) providing a second bag (16) inside the first bag (9),
d) filling the second bag (16) with the powder (32), in particular through an upper
opening of the DCS glove box (1),
e) closing the second bag (16),
f) closing the first bag (9) and removing the first and second bags (9, 16) from the
DCS glove box (1),
characterized in that
the second bag (16) is provided by inside the DCS glove box (1) pulling a continuous
liner (14) at a closed end of the liner (14) and inserting the liner (14) into the
first bag (9), and
in that the second bag (16) is closed by disconnecting the continuous liner (14).
2. The process according to claim 1, including the providing of a low-pressure or a high-pressure
environment inside the DCS glove box (1), more particularly in an upper section (2)
of the DCS glove box (1) with the glove (6), outside the continuous liner (14).
3. The process of one of claims 1 or 2, including the providing of a over-pressure environment
inside the continuous liner (14) and/or outside the first bag (9), more particularly
outside the continuous liner (14) in a lower section (3) of the DCS glove box (1)
designed for holding a drum (8).
4. The process in accordance with any one of the preceding claims,
characterised in that
the first bag (9) is initially fixed in an upper position (20), more particularly
an upper groove (22) on the lower outlet (11) by means of an O-ring, and that a remainder
(24) of the first bag (9) left after closing the first bag (9) is moved into a lower
position (23), more particularly a lower groove (26) in order to clear the upper position
(20) for attaching the next bag (9).
5. The process in accordance with any one of the preceding claims,
characterised in that
the closing of the second bag (16) takes place manually by way of the gloves (6) of
the DCS glove box (1).
6. The process in accordance with any one of the preceding claims,
characterised in that
in order to close the second bag (16) the continuous liner (13) closed at two points
(45, 46) at a distance from each other, preferably by tying shut, and the continuous
liner (14) is manually cut through in an area between these points (45, 46) via the
gloves (6) of the DCS glove box (1), more particularly by means of scissors or a knife.
7. The process in accordance with any one of the preceding claims
characterised in that
in order to close the first bag (9) is it closed at two points at a distance from
each other, for example by tying, and the first bag (9) is manually cut through in
an area between these points.
8. The process in accordance with any one of the preceding claims,
characterised in that
before filling of he second bag (16) a drum (8) with the first bag (9) is moved from
a lower position (23) into an upper position (20) at which the drum (8) is in contact,
more particularly sealed contact, with a partition wall (4) between the upper section
(2) and the lower section (3).
9. The process in accordance with any one of the preceding claims,
characterised in that
in order to insert a new continuous liner (14), the liner, preferably with an O-ring
for fastening the continuous liner (14), is introduced into a first bag (9) in the
lower section (3) of the DCS glove box (1), the first bag (9) is connected to the
lower outlet (11) and the continuous liner (14) is attached to an upper outlet (12)
within the upper section (2) and the remainder (49) of the preceding continuous liner
(14) is manually placed in the second bag (16) formed by the new continuous liner
(14) and transferred with this into the first bag (9).
10. The process in accordance with any one of the preceding claims
characterised in that
the powder (32) is supplied via a dosing units (34) with a low pressure connection
(35) and a high pressure connection, preferably in such a way that at least a partial
quantity of the powder (32) is transported by way of the vibrations generated by a
vibrator (39).
11. An apparatus provided for and configured to execute the process of one of claims 1
to 10, comprising a DCS (drum containment system) glove box (1), with an upper section
(2) provided with gloves (6) and a lower section (3) for hold a first bag (9), that
is arranged in a drum (8), whereby, an upper outlet (12) opens into the upper section
(2) from a powder dosing device (34) and into the lower section (3) an lower outlet
(11) from the upper section (2),
characterized in that
a continuous liner (14) attachable in the upper section (2) can be passed through
the lower outlet (11).
12. The apparatus in accordance with claim 11, characterised in that
means of generating over pressure and/or under pressure in the upper section (2) and/or
that means for generating high pressure in the continuous liner (14), and/or that
means for generating over pressure and/or under pressure in the lower section (3)
outside the continuous liner (14) are provided.
13. The apparatus in accordance with any one of claims 11 or 12,
characterised in that
in the lower section (3) a lift mechanism (10) is provided to move a drum (8) between
a lower position (23) and an upper position (20) in which the drum (8) is in contact
with a partition wall (4) between the upper section (2) and the lower section (3).
14. The apparatus in accordance with any one of claims 11 to 13,
characterised in that
on each of two different, preferably opposite, sides of the upper section (2) at least
one, preferably detachably fixed, preferably two gloves (6) are arranged.
15. The apparatus in accordance with any one of claims 11 to 14,
characterised in that
at least one volatile particle filter (54, 55), more particularly a HEPA filter, is
provided in order to filter air flowing into the apparatus and/or air flowing out
of the apparatus.
16. Use of an apparatus according to any one of claims 11 to 15 as a packaging machine
for performing the process according to any one of claims 1 to 11.
1. Verfahren zum Ermöglichen des Verpackens eines Pulvers (32), insbesondere eines Pharmazieproduktpulvers,
umfassend die Schritte:
a) Bereitstellen eines ersten Beutels (9) aus einem flexiblen Verpackungsmaterial,
b) Fixieren der Öffnung (19) des ersten Beutels (9) an einem unteren Auslass (11)
eines DCS- (Behälter-Einhausungs-System/drum containment system) Handschuhkastens
(1),
c) Bereitstellen eines zweiten Beutels (16) innerhalb des ersten Beutels (9),
d) Füllen des zweiten Beutels (16) mit dem Pulver (32), insbesondere durch eine obere
Öffnung der DCS-Handschuhbox (1),
e) Verschließen des zweiten Beutels (16),
f) Verschließen des ersten Beutels (9) und Entfernen des ersten und zweiten Beutels
(9,16) aus der DCS-Handschuhbox (1),
dadurch gekennzeichnet,
dass der zweite Beutel (16) bereitgestellt wird durch Ziehen einer Endlos-Hülle (14) (continuous
liner) an einem geschlossenen Ende der Hülle (14) innerhalb der DCS-Handschuhbox (1)
und Einsetzen der Hülle (14) in den ersten Beutel (9) und
dadurch, dass der zweite Beutel (16) verschlossen wird, während die Endlos-Hülle (14) abgetrennt
wird.
2. Verfahren nach Anspruch 1, umfassend das Bereitstellen einer Unterdruck- oder einer
Überdruckumgebung innerhalb der DCS-Handschuhbox (1), insbesondere in einem oberen
Abschnitt (2) der DCS-Handschuhbox (1), außerhalb der Endlos-Hülle (14).
3. Verfahren nach einem der Ansprüche 1 oder 2, umfassend das Bereitstellen einer Überdruckumgebung
innerhalb der Endlos-Hülle (14) und/oder außerhalb des ersten Beutels 9, insbesondere
außerhalb der Endlos-Hülle 14 in einem unteren Abschnitt (3) der DCS-Handschuhbox
(1), die ausgebildet ist zur Aufnahme eines Behältnisses (8) (drum).
4. Verfahren nach einem der vorhergehenden Ansprüche,
dadurch gekennzeichnet,
dass der erste Beutel (9) mittels eines O-Rings (21) zunächst in einer oberen Position
(20), insbesondere eine obere Nut (22), am unteren outlet (11) fixiert wird, und dass
ein nach dem Verschließen des ersten Beutels (9) verbleibender Rest (24) des ersten
Beutels (9) in eine untere Position (23), insbesondere eine untere Nut (26), überführt
wird, um die obere Position (20) frei zu machen zur Fixierung des nächstens ersten
Beutels (9).
5. Verfahren nach einem der vorhergehenden Ansprüche,
dadurch gekennzeichnet,
dass das Verschließen des zweiten Beutels (16) manuell über die Handschuhe (6) der DCS-Handschuhbox
(1) durchgeführt wird.
6. Verfahren nach einem der vorhergehenden Ansprüche,
dadurch gekennzeichnet,
dass zum Verschließen des zweiten Beutels (16) die Endlos-Hülle (14) an zwei beabstandeten
Stellen (45, 46), vorzugsweise durch Zubinden, verschlossen und die Endlos-Hülle (14)
in einem Bereich zwischen diesen Stellen (45. 46), manuell über die Handschuhe (6)
der DCS-Handschuhbox (1), insbesondere mittels einer Schere oder eines Messers, durchtrennt
wird.
7. Verfahren nach einem der vorhergehenden Ansprüche,
dadurch gekennzeichnet,
dass zum Verschließen der erste Beutel (9) an zwei beabstandeten Stellen, beispielsweise
durch Zubinden, verschlossen und der erste Beutel (9) in einem Bereich zwischen diesen
Stellen, manuell durchtrennt wird.
8. Verfahren nach einem der vorhergehenden Ansprüche,
dadurch gekennzeichnet,
dass ein den ersten Beutel (9) aufweisender Behälter (8) vor dem Befüllen des zweiten
Beutels (16) von einer unteren Position (23) in eine obere Position (20) überführt
wird, an der der Behälter (8), insbesondere dichtend, an einer Trennwand (4) zwischen
dem oberen Abschnitt (2) und dem unteren Abschnitt (3) anliegt.
9. Verfahren nach einem der vorhergehenden Ansprüche,
dadurch gekennzeichnet,
dass zum Einführen einer neuen Endlos-Hülle (14), diese, vorzugsweise zusammen mit einem
O-Ring (25) zum Festlegen der Endlos-Hülle (14), in einem ersten Beutel (9) in den
unteren Abschnitt (3) der DCS-Handschuhbox (1) eingeführt, der erste Beutel (9) mit
dem lower outlet (11) verbunden und die Endlos-Hülle (14) an einem oberen Auslass
(12) innerhalb des oberen Abschnitts (2) festgelegt und daraufhin der Rest (49) der
vorhergehenden Endlos-Hülle (14) manuell in dem von der neuen Endlos-Hülle (14) gebildeten
zweiten Beutel (16) aufgenommen und mit diesem in den ersten Beutel (9) überführt
wird.
10. Verfahren nach einem der vorhergehenden Ansprüche,
dadurch gekennzeichnet,
dass das Pulver (32) über eine einen Unterdruckanschluss (35) und einen Überdruckanschluss
aufweisende Dosiereinrichtung (34) zugeführt wird, vorzugsweise derart, dass zumindest
eine Teilmenge des Pulvers (32) durch von einem Vibrator (39) verursachte Vibrationen
transportiert wird.
11. Vorrichtung bestimmt und ausgebildet zur Ausführung des Verfahrens nach einem der
Ansprüche 1 bis 10, umfassend eine DCS- (Behälter-Einhausungs-System/drum containment
system) Handschuhbox (1) mit einem oberen Abschnitt (2), welcher ausgestattet ist
mit Handschuhen (6) und einem unteren Abschnitt (3) zur Aufnahme eines ersten Beutels
9, welcher in einem Behälter (8) (drum) angeordnet ist, wobei in den oberen Abschnitt
(2) ein oberer Auslass (12) aus einer Pulver-Dosiereinrichtung (34) mündet, und in
den unteren Abschnitt (3) ein unterer Auslass (11) aus dem oberen Abschnitt (2),
dadurch gekennzeichnet,
dass die im oberen Abschnitt (2) festlegbare Endlos-Hülle (14) (continuous liner) durch
den unteren Auslass (11) durchführbar ist.
12. Vorrichtung nach Anspruch 11,
dadurch gekennzeichnet,
dass Mittel zum Erzeugen von Überdruck und/oder Unterdruck, im oberen Abschnitt (2) und/oder
dass Mittel zum Erzeugen von Überdruck in der Endlos-Hülle (14) und/oder dass Mittel
zum Erzeugen von Überdruck im unteren Abschnitt (3) außerhalb der Endlos-Hülle (14)
vorgesehen sind.
13. Vorrichtung nach einem der Ansprüche 11 oder 12,
dadurch gekennzeichnet,
dass im unteren Abschnitt (3) ein Liftmechanismus (10) zum Verstellen eines Fasses (8)
zwischen einer unteren Position (23) und einer oberen Position (20) vorgesehen ist,
in der das Fass (8) an einer Trennwand (4) zwischen dem oberen Abschnitt (2) und dem
unteren Abschnitt (3) anliegt.
14. Vorrichtung nach einem der Ansprüche 11 bis 13,
dadurch gekennzeichnet,
dass auf zwei unterschiedlichen, vorzugsweise gegenüberliegenden, Seiten des oberen Abschnitts
(2) jeweils mindestens ein, vorzugsweise lösbar festgelegter, vorzugsweise jeweils
zwei Handschuhe (6) angeordnet sind.
15. Vorrichtung nach einem der Ansprüche 11 bis 14,
dadurch gekennzeichnet,
dass mindestens ein Schwebstofffilter (54, 55), insbesondere ein HEPA-Filter, zum Filtern
der in die Vorrichtung zuströmenden und/oder der von dieser abströmenden Luft vorgesehen
ist.
16. Verwendung der Vorrichtung nach einem der Ansprüche 11 bis 15 als Verpackungsmaschine
zum Ausführen des Verfahrens nach einem der Ansprüche 1 bis 11.
1. Procédé permettant le conditionnement d'une poudre (32), en particulier une poudre
de produit pharmaceutique, comprenant les étapes consistant à :
a) fournir un premier sachet (9) en matériau de conditionnement souple,
b) fixer l'ouverture (19) du premier sachet (9) à une sortie inférieure (11) d'une
boîte à gants "DCS" (système de confinement de fût) (1),
c) fournir un deuxième sachet (16) à l'intérieur du premier sachet (9),
d) remplir le deuxième sachet (16) avec la poudre (32), en particulier par une ouverture
supérieure de la boîte à gants "DCS" (1)
e) fermer le deuxième sachet (16),
f) fermer le premier sachet (9) et retirer les premier et deuxième sachets (9, 16)
de la boîte à gants "DCS" (1),
caractérisé en ce que,
le deuxième sachet (16) est réalisé, à l'intérieur de la boîte à gants "DCS" (1),
en tirant sur une doublure continue (14) à une extrémité fermée de la doublure (14)
et en introduisant la doublure (14) dans le premier sachet (9), et
en ce que le deuxième sachet (16) est fermé en déconnectant la doublure continue (14).
2. Procédé selon la revendication 1, comprenant la réalisation d'un environnement basse
pression ou haute pression à l'intérieur de la boîte à gants "DCS" (1), plus particulièrement
dans une section supérieure (2) de la boîte à gants "DCS" (1) avec le gant (6), à
l'extérieur de la doublure continue (14).
3. Procédé selon l'une des revendications 1 ou 2, comprenant la réalisation d'un environnement
à pression positive à l'intérieur de la doublure continue (14) et/ou à l'extérieur
du premier sachet (9), plus particulièrement à l'extérieur de la doublure continue
(14) dans une section inférieure (3) de la boîte à gants "DCS" (1) conçue pour tenir
un fût (8).
4. Procédé selon l'une quelconque des revendications précédentes,
caractérisé en ce que,
le premier sachet (9) est initialement fixé dans une position supérieure (20), plus
particulièrement une rainure supérieure (22) sur la sortie inférieure (11) au moyen
d'un joint torique, et qu'un reste (24) du premier sachet (9) laissé après la fermeture
du premier sachet (9) est déplacé vers une position inférieure (23), plus particulièrement
une rainure inférieure (26) afin de dégager la position supérieure (20) pour fixer
le sachet suivant (9).
5. Procédé selon l'une quelconque des revendications précédentes,
caractérisé en ce que,
la fermeture du deuxième sachet (16) a lieu manuellement au moyen des gants (6) de
la boîte à gants "DCS" (1).
6. Procédé selon l'une quelconque des revendications précédentes,
caractérisé en ce que,
afin de fermer le deuxième sachet (16) la doublure continue (13) est fermée en deux
points (45, 46) éloignés l'un de l'autre, de préférence en faisant un noeud, et la
doublure continue (14) est découpée manuellement dans une zone entre ces points (45,
46) à l'aide des gants (6) de la boîte à gants "DCS" (1), plus particulièrement à
l'aide de ciseaux ou d'un couteau.
7. Procédé selon l'une quelconque des revendications précédentes,
caractérisé en ce que,
afin de fermer le premier sachet (9), celui-ci est fermé en deux points éloignés l'un
de l'autre, par un noeud par exemple, et le premier sachet (9) est découpée manuellement
dans une zone entre ces points.
8. Procédé selon l'une quelconque des revendications précédentes,
caractérisé en ce que,
avant le remplissage du premier sachet (16), un fût (8) avec le premier sachet (9)
est déplacé d'une position inférieure (23) vers une position supérieure (20) dans
laquelle le fût (8) entre en contact, plus particulièrement en contact étanche, avec
une cloison de séparation (4) entre la section supérieure (2) et la section inférieure
(3).
9. Procédé selon l'une quelconque des revendications précédentes,
caractérisé en ce que,
afin d'introduire une nouvelle doublure continue (14), la doublure, dotée de préférence
d'un joint torique pour attacher la doublure continue (14), est introduite dans un
premier sachet (9) dans la section inférieure (3) de la boîte à gants "DCS" (1), le
premier sachet (9) est relié à la sortie inférieure (11) et la doublure continue (14)
est fixée à une sortie supérieure (12) dans la section supérieure (2), et le reste
(49) de la doublure continue (14) précédente est placé manuellement dans le deuxième
sachet (16) formé par la nouvelle doublure continue (14) et transférée avec celui-ci
dans le premier sachet (9).
10. Procédé selon l'une quelconque des revendications précédentes,
caractérisé en ce que,
la poudre (32) est alimentée via une unité de dosage (34) avec un raccord basse pression
(35) et un raccord haute pression, de préférence pour qu'au moins une quantité partielle
de la poudre (32) soit transportée par les vibrations produites par un vibreur (39).
11. Appareil pourvu et configuré pour exécuter le procédé de l'une quelconque des revendications
1 à 10, comprenant une boîte à gants "DCS" (système de confinement de fût) (1), avec
une section supérieure (2) dotée de gants (6) et une section inférieure (3) pour tenir
un première sachet (9), qui est agencé dans un fût (8), au moyen duquel une sortie
supérieure (12) s'ouvre dans la section supérieure (2) à partir d'un dispositif de
dosage de poudre (34) et dans la section inférieure (3) s'ouvre une sortie inférieure
(11) à partir de la section supérieure (2),
caractérisé en ce que,
une doublure continue (14) qui peut être fixée dans la section supérieure (2) peut
être passée par la sortie inférieure (11).
12. Appareil selon la revendication 11,
caractérisé en ce que,
sont pourvus : des moyens pour générer une pression positive et/ou négative dans la
section supérieure (2) et/ou des moyens pour générer une haute pression dans la doublure
continue (14), et/ou des moyens pour générer une pression positive et/ou négative
dans la section inférieure (3) à l'extérieur de la doublure continue (14).
13. Appareil selon l'une quelconque des revendications 11 ou 12,
caractérisé en ce que,
la section inférieure (3) est pourvue d'un mécanisme de levage (10) pour déplacer
un fût (8) entre une position inférieure (23) et une position supérieure (20) dans
laquelle le fût (8) entre en contact avec une cloison de séparation (4) entre la section
supérieure (2) et la section inférieure (3) .
14. Appareil selon l'une quelconque des revendications 11 à 13,
caractérisé en ce que,
au moins un, de préférence deux, gant(s) (6) fixé(s) de préférence de manière amovible
est/sont agencé(s) sur chacun de deux côtés différents, de préférence opposés, de
la section supérieure (2).
15. Appareil selon l'une quelconque des revendications 11 à 14,
caractérisé en ce que,
au moins un filtre à particules volatiles (54, 55), plus particulièrement un filtre
HEPA, est pourvu pour filtrer la circulation d'air entrant dans l'appareil et/ou la
circulation d'air sortant de l'appareil.
16. Utilisation d'un appareil selon l'une quelconque des revendications 11 à 15, en tant
que machine de conditionnement pour réaliser le procédé selon l'une quelconque des
revendications 1 à 11.