FREEZE DRYING INSTALLATION
20240210111 ยท 2024-06-27
Inventors
Cpc classification
F26B5/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F26B25/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F26B25/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F26B5/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a freeze drying installation (8), including a device (9) for moving containers (10) such as vials or the like along a surface supporting the containers to load and/or unload the containers into a freeze dryer processing chamber (200), wherein the device comprises two articulated arms, wherein each articulated arm comprises a first rigid upper arm and a first rigid lower arm connected to each other by a first rotary joint, wherein the ends of the two articulated arms are connected to a rigid transfer bar by articulated joints, which are spaced apart from each other when seen along an extension axis of the transfer bar, and wherein the two articulated arms are driven by at least one driving unit in a synchronised manner such that the transfer bar is movable along a loading and/or unloading axis to load or unload containers into or from the freeze dryer processing chamber.
Claims
1. A freeze drying installation (8), including a device (9) for moving containers (10) such as vials or the like along a surface (63) supporting the containers (10) to load and/or unload the containers (10) into a freeze dryer processing chamber (200), wherein the device (9) comprises two articulated arms (102, 103), wherein each articulated arm (102, 103) comprises a first rigid upper arm (46, 23) and a first rigid lower arm (41, 21) connected to each other by a first rotary joint (45, 22), wherein ends of the two articulated arms (102, 103) are connected to a rigid transfer bar (60) by articulated joints (40, 20), which are spaced apart from each other when seen along an extension axis (61) of the transfer bar (60), and wherein the two articulated arms (102, 103) are driven by at least one driving unit (70) in a synchronised manner such that the transfer bar (60) is movable along a loading and/or unloading axis (62) to load or unload containers (10) into or from the freeze dryer processing chamber (200).
2. The freeze drying installation (8) according to claim 1, wherein the loading and/or unloading axis (62) is perpendicular to the extension axis (61) of the transfer bar (60).
3. The freeze drying installation (8) according to claim 1, wherein the two articulated arms (102, 103) move in opposite directions of rotation.
4. The freeze drying installation (8) according to claim 1, wherein, in a storage position of the articulated arms (102, 103), the first upper arm (46, 23) and the first lower arm (41, 21) of each of the articulated arms (102, 103) are arranged in parallel or essentially in parallel with the extension axis (61) of the transfer bar (60).
5. The freeze drying installation (8) according to claim 1, wherein at least one of the articulated arms (102, 103) comprises a second upper (47) arm and a second lower arm (43) connected to each other by a second rotary joint (44).
6. The freeze drying installation (8) according to claim 5, wherein the second upper arm (47) is driven by the at least one driving unit (70) in such a manner that the second upper arm (47) and the first upper arm (46) of the same articulated arm (102, 103) move in opposite directions of rotation.
7. The freeze drying installation (8) according to claim 6, wherein the first upper arm (46) is driven around a first axis (49) and the second upper arm is driven around a second axis (48) and wherein the first axis (49) and the second axis (48) are concentric to each other.
8. The freeze drying installation (8) according to claim 1, wherein the articulated arms (102, 103) are arranged on a first side of a supporting platform (110) and the at least one driving unit (70) is arranged on a second side of the supporting platform (110) which is opposite the first side.
9. The freeze drying installation (8) according to claim 8, wherein the first side is part of a classified process area and the second side is outside of the classified process area.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025] The invention can be better understood and implemented by looking at the drawings that show an illustrative but not limitative example form of embodiment, wherein:
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DETAILED DESCRIPTION
[0041] In the drawings, a freeze drying installation is generally designated with reference numeral 8. The freeze drying installation comprises a loading and unloading device 9 which is referred to as device 9 in the following description.
[0042] A freeze drying process chamber of the freeze drying installation 8 is designated with reference numeral 200. As shown in
[0043] The process chamber 200 contains at least one opening 201 that can be closed and sealed by means of a moveable door 204. The opening 201 remains open during loading and unloading and door 204 closes and seals it for processing.
[0044] The device 9 preferably comprises a fixed buffer platform 104, a moveable bridging platform 105 and conveying means 106. Guiding means 203b aligned with guiding means 203a are also present on two opposite sides of platforms 104 and 105. In a specific embodiment, parts of the device 9 are mounted onto a supporting platform 110 and integrated inside a containment isolator 300.
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[0046] a transfer bar 60 belonging to the device 9 moves in a straight-line displacement along a horizontal loading and/or unloading axis 62 parallel to the flat platforms 104, 105 and 202a, parallel to the lateral guiding means 203 and perpendicular to the opening 201 of the process chamber 200.
[0047] Buffer platform 104 is stationary. It does not move.
[0048] Bridging platform 105 is shown moving with a rotary movement hinged against buffer platform 104. This is just an example of how this platform could move.
[0049] The chamber door 204 is shown moving vertically to free opening 201 of process chamber 200. Again this type of movement is just an exemplification.
[0050] Standing platforms 202a, 202b, 202c, 202d and 202e move vertically so they can be accurately positioned one by one in line with the conveyor means 106, buffering platform 104 and bridging platform 105.
[0051] Process chamber 200 and containment isolator 300 are both stationary.
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[0055] A preferred embodiment of the invention includes as shown in
[0056] The gear wheel 75 collaborates with a gear wheel 74 to transfer the rotation of the shaft 72 to a shaft 71 while reversing the direction of rotation for shaft 71. Shaft 71 rotates in opposite direction to shaft 72.
[0057] Shaft 71 has a timing pulley 73 attached to it. Pulley 73 transfers the rotation from shaft 71 to timing pulley 52 by means of a timing belt 78. Pulley 52 is attached to shaft 48 belonging to the sub-arm 102b of articulated arm 102.
[0058] In an embodiment where timing pulleys 51, 52, 73 and 77 are identical and gear wheels 74 and 75 are also identical to each other, the rotation speed of the driving unit 70 is directly transferred to shaft 49 that rotates at the same speed and the same direction as the driving unit 70. On its side the rotation of the driving unit 70 is also directly transferred to shaft 48, which rotates at the same rotational speed as the driving unit 70 and shaft 49, but in opposite direction. Shafts 49 and 48 now rotate at identical speed but in opposite directions, and so do their corresponding extensions of a first upper arm 46 and a second upper arm 47. First upper arm 46 of articulated arm 102 and a first upper arm 43 of articulated arm 103 are identical in length. A distance between a first rotary joint 45 and an articulation 42 is identical to the length of second upper arm 47. With this configuration and as shown in
[0059] In an embodiment, shaft 48 has attached beside timing pulley 52 another timing pulley 53. Pulley 53 rotates together with shaft 49 and pulley 52. Pulley 53 connects to pulley 26 by means of a timing belt 80 and transfers the rotation of shaft 49 to shaft 24 belonging to the articulated arm 103. In an embodiment, timing pulleys 53 and 26 are identical and therefore rotating speed and direction of rotation from shaft 49 is directly transferred to shaft 24, attached to pulley 26 and belonging to the articulated arm 103.
[0060] Articulated arm 103 is identical in lengths as sub-arm 102a of articulated arm 102. The articulated arm 103 comprises a first upper arm 23, a first rotary joint 22 and a first lower arm 21. At the end of the first lower arm 21, a rotary joint 20 connects the articulated arm 103 with the transfer bar 60.
[0061] As shaft 24 rotates exactly at the same speed as shaft 49 and in opposite direction, articulated arms 102a and 103, which are both connected with one articulated joint 40, 20 to transfer bar 60, describe identical rotational movements in opposite directions.
[0062] As shown in
[0063] In another particular aspect of the illustrative embodiment and as shown in detailed cross-sectional views in
[0064] With this configuration replicated for shaft 26 and support 25, articulated arms 102 and 103 can be separated from the driving unit 70 and provided with a hygienic design which include articulated joints and rotary movements only. The driving unit 70, much more difficult to produce to the requirements of pharmaceutical and aseptic processing, can be kept separated on the opposite side of the supporting platform 110 and away from the pharmaceutical process area. The resulting configuration can be integrated into a containment isolator 300 where the volume of the articulated arms 102 and 103 and the transfer bar 60 above the supporting platform 110 remains inside a housing of the isolator 300, and the volume below the supporting platform 110 and containing the driving unit 70 remains outside the enclosure of the isolator 300.
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[0068] The process described in
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