The present invention relates to the technical field of biopharmaceutical production devices, and in particular to a culture vessel carrier automatic slide mechanism for use in an automated shaker incubator to allow a culture vessel carrier for carrying a culture vessel to automatically slide out to facilitate operations such as automatic sampling and adding of culture media, and a shaker incubator having the culture vessel carrier automatic slide mechanism.
Biopharmaceuticals are in a period of rapid development. macromolecular drugs such as antibodies are developing at a high speed. In the process of research and development and production of macromolecular drugs such as antibodies, a large number of shake flasks, shake tubes, well plates and other consumables for carrier and target product cultures are used, and shaker incubators are necessary production apparatus.
In a traditional shaker incubator, operations such as observation, testing, sampling, and adding of culture media are mainly carried out manually by the staff. The shaker incubator is difficult to interface with a newly developed automated transfer system, a liquid operation center, and intelligent scheduling and management software, may not be adapted to a rapid and automated research and development and production process of mass biological drugs, and is also unable to realize intelligent data acquisition, storage and transmission in the production process.
Therefore, in order to improve the automation of the traditional shaker incubator, there is an urgent need for a culture vessel carrier automatic slide mechanism to alleviate the above problems.
An objective of the present invention is to provide a culture vessel carrier automatic slide mechanism and a shaker incubator having the culture vessel carrier automatic slide mechanism, which solve the problems mentioned in background art above.
In order to achieve the above objective, one aspect of the present invention provides a culture vessel carrier automatic slide mechanism, comprising a slide protective housing, a culture vessel carrier bearing member being mounted in the middle of the top of an inner wall of the slide protective housing in a left-right direction, and the culture vessel carrier bearing member being configured for placement of a bearing tray of a shake flask/shake tube/well plate carrier assembly thereon, wherein a two-stage sliding part including a first slide rail and a second slide rail is arranged on each side in the left-right direction below the culture vessel carrier bearing member, the second slide rail is arranged below the culture vessel carrier bearing member and located above the first slide rail, the first slide rail is arranged inside an incubator body of a shaker incubator on a fixed base that does not slide, an intermediate slide rail fixing plate secured to the inner wall of the slide protective housing is connected between the first slide rail and the second slide rail, and a sliding channel is provided on each side of the intermediate slide rail fixing plate that is close to the first slide rail and the second slide rail, a slide mechanism drive motor for driving the culture vessel carrier automatic slide mechanism is provided below the culture vessel carrier bearing member, and a drive gear is coupled to an output shaft side of the slide mechanism drive motor, two synchronous pulleys, i.e., a front synchronous pulley and a rear synchronous pulley, are arranged in a front-rear direction of the intermediate slide rail fixing plate on a side on which the drive gear is arranged in the left-right direction below the culture vessel carrier bearing member, a synchronous belt is hung between the front synchronous pulley and the rear synchronous belt, a front synchronous belt press block capable of forming an integral structure with the first slide rail and pressing the synchronous belt from below is arranged on a side of the synchronous belt that is close to the front synchronous pulley below the intermediate slide rail fixing plate, and a rear synchronous belt press block capable of forming an integral structure with the second slide rail and pressing the synchronous belt from above is arranged on a side of the synchronous belt that is close to the rear synchronous pulley above the intermediate slide rail fixing plate, a rack capable of meshing with the drive gear is mounted on a side on which the drive gear is arranged of the inner wall of the slide protective housing in the left-right direction, the slide mechanism drive motor in the culture vessel carrier automatic slide mechanism is powered on automatically when an automatic door of a shaker incubator is opened or closed, so as to drive the drive gear to rotate, the rack moves relative to the drive gear of the slide mechanism drive motor to cause the second slide rail and the intermediate slide rail fixing plate to synchronously move in a slide-out direction or a slide-in direction, such that a first stage of sliding of the bearing tray of the shake flask/shake tube/well plate carrier assembly arranged on the slide protective housing is achieved, thereafter or at the same time, the front synchronous pulley and the rear synchronous pulley arranged on the intermediate slide rail fixing plate move in the slide-out direction or slide-in direction to drive the synchronous belt to rotate, as the front synchronous belt press block and the rear synchronous belt press block press the synchronous belt from below and above, the second slide rail slides out towards the front relative to the sliding channels of the intermediate slide rail fixing plate due to the effect of the static friction of the synchronous belt on the rear synchronous belt press block, such that a second stage of sliding of the bearing tray of the shake flask/shake tube/well plate carrier assembly arranged on the slide protective housing is achieved.
Another aspect of the present invention provides a shaker incubator, comprising an incubator main body, comprising an incubator main body, wherein an automatic seal door assembly is arranged on a front side of the incubator main body, the automatic seal door assembly has an automatic door capable of being opened and closed automatically based on system control, and a shake flask/shake tube/well plate carrier assembly having a bearing tray and a shake flask/a shake tube/well plate carried on the bearing tray, and an intelligent integrated control system unit for controlling actions of various automatic components in the shaker incubator are arranged inside the incubator main body, wherein the culture vessel carrier automatic slide mechanism as described above is further arranged inside the incubator main body, the culture vessel carrier automatic slide mechanism enables, by means of the intelligent integrated control system unit, the shake flask/shake tube/well plate carrier assembly to automatically slide out relative to the incubator main body after the automatic door of the automatic seal door assembly is opened, and enables the shake flask/shake tube/well plate carrier assembly to automatically slide into the incubator main body before the automatic door of the automatic seal door assembly is closed.
According to the construction as described above, the culture vessel carrier automatic slide mechanism of the present invention has the following beneficial effects compared to the prior art.
Furthermore, according to the construction as described above, the shaker incubator of the present invention has the following beneficial effects compared to the prior art,
Technical solutions in the embodiments of the present invention will be described below with reference to the accompanying drawings in the embodiments of the present invention. Apparently, the described embodiments are merely some rather than all of the embodiments of the present invention. On the basis of the embodiments of the present invention, all other embodiments derived by those of ordinary skill in the art without any creative efforts fall within the scope of protection of the present invention.
First, an automated shaker incubator 10 of the present invention is described in detail with reference to
The automated shaker incubator 10 of the present invention shown in
In this embodiment, an observation window 112 is arranged on a front side of the automatic door 111. The automatic door 111 is connected to the incubator main body 100 of the shaker incubator 10, for example, by means of engagement. Furthermore, in this embodiment, although not shown in the figures, the driving gear is arranged at a drive end of the door opening and closing drive motor, and the driven gear is connected to the automatic door 111. The driving gear is connected to the driven gear by means of engagement. However, the present invention is not limited thereto. The automatic opening and closing of the automatic door 111 may be realized, for example, by means of transmission between the driving gear, the driven gear and a belt, or by means of extension and retraction of a connecting rod.
In addition, a visual operating part 120 is arranged on the front side of the incubator main body 100 and located on a side (e.g., an upper right side in
Furthermore, a plurality of (e.g., six) supporting legs 130 are arranged at the bottom of the shaker incubator 10.
As shown in
Hereinafter, the structure of the culture vessel carrier automatic slide mechanism 600 of the present invention inside the incubator main body 100 is described in detail with reference to
As shown in
As shown in
As shown in
A two-stage sliding part including a first slide rail 650 and a second slide rail 660 is arranged inside of each of the supporting wheels 614 on two sides (e.g., the right side of the supporting wheel 614 located on the left side and on the left side of the supporting wheel 614 located on the right side in
Since the second slide rail 660 are arranged below the culture vessel carrier bearing member 620 and the intermediate slide rail fixing plate 670 is secured to the inner wall of the slide protective housing 610, the sliding channels on the intermediate slide rail fixing plate 670 are capable of sliding synchronously with the second slide rail 660 when the entirety of the slide protective housing 610 slides out and in. Moreover, the second slide rail 660 can slide relative to the intermediate slide rail fixing plates 670. Furthermore, since the first slide rail 650 is arranged at the bottom of the incubator main body 100 of the shaker incubator 10 that does not slide, the sliding channels on the intermediate slide rail fixing plates 670 slide only relative to the first slide rail 650 when the entirety of the slide protective housing 610 slides out and in.
Furthermore, as shown in
As shown in
In addition, as shown in
In this case, as the slide protective housing 610 moves towards the front, the second slide rail 660 arranged below the culture vessel carrier bearing member 620 and the intermediate slide rail fixing plates 670 secured to the slide protective housing 610 synchronously move towards the front, such that the front synchronous pulley 671 and the rear synchronous pulley 672 arranged on the intermediate slide rail fixing plate 670 move towards the front, causing the synchronous belt 673 hung between the front synchronous pulley 671 and the rear synchronous belt 672 and close to a side (the upper side) of the second slide rail 660 to rotate towards the front and causing the synchronous belt 673 close to a side (the lower side) of the first slide rail 650 to rotate towards the rear. Furthermore, since the synchronous belt 673 is pressed by the front synchronous belt press block 674 from below and pressed by the rear synchronous belt press block 675 from above, the rear synchronous belt press block 675 moves towards the front with the synchronous belt 673 on the upper side under the effect of the static friction of the synchronous belt 673 on the rear synchronous belt press block 675, such that the second slide rail 660 which forms an integral structure with the rear synchronous belt press block 675 further slides out towards the front relative to the sliding channels of the intermediate slide rail fixing plate 670 (the second stage of sliding-out).
In other words, in the culture vessel carrier automatic slide mechanism 600 of the present invention, as the rack 680 moves towards the front relative to the drive gear 640 of the slide mechanism drive motor 630, the second slide rail 660 and the intermediate slide rail fixing plates 670 synchronously move towards the front, such that the first-stage of sliding-out of the culture vessel carrier automatic slide mechanism 600 is achieved. Thereafter or at the same time, the front synchronous pulley 671 and the rear synchronous pulley 672 arranged on the intermediate slide rail fixing plate 670 move towards the front to drive the synchronous belt 673 to rotate, since the front synchronous belt press block 674 and the rear synchronous belt press block 675 press the synchronous belt 673 from below and above, the second slide rail 660 slides out towards the front relative to the sliding channels of the intermediate slide rail fixing plate 670 due to the effect of the static friction of the synchronous belt 673 on the rear synchronous belt press block 675, such that the second stage of sliding-out of the culture vessel carrier automatic slide mechanism 600 is achieved. In this way, a secondary extension of stroke is ultimately achieved to allow the culture vessel carrier automatic slide mechanism 600 to slide out over a long distance in a limited space, thereby enabling the bearing tray 510 of the shaker flask/shake tube/well plate carrier assembly 500 to slide completely out of the incubator main body 100 of the shaker incubator 10.
Furthermore, in the automated shaker incubator 10 of the present invention, with the culture vessel carrier automatic slide mechanism 600, the shake flask/shake tube/well plate carrier assembly 500 (and the bearing tray 510) is allowed to automatically slide in and out to interface with an automatic transfer system seamlessly.
Furthermore, when the slide protective housing 610 slides out using the culture vessel carrier automatic slide mechanism 600, two supporting portions 613, two guide grooves 615, two first slide rails 650, the slide mechanism drive motor 630, and the drive gear 640 shown in
Finally, an automated workflow of the automated shaker incubator 10 of the present invention is described with reference to
After receiving an operation instruction from a user operating system about data query/control and the like, the intelligent integrated control system unit 300 inside the incubator main body 100 of the automated shaker incubator 10 of the present invention sends the instruction to an upper-level control system, and the upper-level control system sends an execution instruction to the intelligent integrated control system unit 300. The intelligent integrated control system unit 300 is specifically capable of controlling the device illumination/purification/disinfection unit 200, the environment control unit 400, the automatic seal door assembly 110, the shaker mechanism drive unit 800, and the culture vessel carrier automatic slide mechanism 600, and feeding results back to the upper-level control system.
Furthermore, in the automated shaker incubator 10 of the present invention, the automatic components include the automatic seal door assembly 110, the shaker mechanism drive unit 800, and the culture vessel carrier automatic slide mechanism 600. However, the present invention is not limited thereto, and automatic components with other functions may be integrated therein.
The automatic seal door assembly 110 can be automatically opened and closed under the control of the intelligent integrated control system unit 300. The shaker mechanism drive unit 800 can make the shaker operate and stop, and start and pause the culture under the control of the intelligent integrated control system unit 300. Furthermore, the culture vessel carrier automatic slide mechanism 600 enables the automatic sliding in and out of the shake flask/shake tube/well plate carrier assembly 500 (and the bearing tray 510) under the control of the intelligent integrated control system unit 300.
A workflow of the present invention is as follows. In use of the automated shaker incubator 10, firstly, an operator replaces a corresponding bearing tray according to a production system planning, and sets the device operation and environment control parameters according to the production system planning by using the touch visual operating part 120. Thereafter, the shaker incubator 10 starts to carry out pre-culture related operations such as self-checking, sterilization and residue discharging in the interior of the incubator main body 100, and then the automatic door 111 of the shaker incubator 10 is opened and the culture vessel carrier automatic slide mechanism 600 slides out. An external truss robot is used to place shake flasks containing culture solution into the bearing tray 510 of the shake flask/shake tube/well plate carrier assembly 500 in sequence. The culture vessel carrier automatic slide mechanism 600 slides into the interior of the incubator main body 100, the automatic door 111 of the shaker incubator 10 is closed, and the shaker mechanism 700 is started to perform a shaking culture process. During the culture, the device automatically records all corresponding data, and automatically uploads the data according to the system settings or saves the data locally, and then the incubator system, according to the upper-level system planning, regularly carries out operations such as sampling for observation, adding of culture media, and replacement of shake flasks. Finally, after a culture cycle is finished, respective parts of the incubator are cleaned and maintained. The whole operation process is simple and convenient. Compared with an existing shaker incubator, the shaker incubator of the present invention can improve the overall convenience, intelligence and practicality by virtue of the design.
Although the embodiments of the present invention have been shown and described, it can be understood by those of ordinary skill in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
| Number | Date | Country | Kind |
|---|---|---|---|
| 202120622984.2 | Mar 2021 | CN | national |
| 202120623168.3 | Mar 2021 | CN | national |
| Filing Document | Filing Date | Country | Kind |
|---|---|---|---|
| PCT/CN2021/136103 | 12/7/2021 | WO |