Storage device and workstation

By designing inclined slides and fans to form circulating air ducts in the vaccine storage device, the problem of poor air circulation in the multi-layer structure is solved, and effective temperature control and vaccine storage effects are achieved.

CN223090894UActive Publication Date: 2025-07-11QINGDAO HAIER BIOMEDICAL TECH CO LTD +1
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Patent Information

Application Number
CN202421670779.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-15
Publication Date
2025-07-11
Estimated Expiration
2034-07-15

AI Technical Summary

Technical Problem

In existing vaccine storage devices, the multi-layer structure causes poor internal air circulation and inability to dissipate heat effectively, affecting the storage effect of the vaccine.

Method used

A storage device is designed, including an inclined slide and a fan, forming a circulation air duct, and circulating air through the air inlet and air outlet, driving the airflow to flow in the slide to dissipate heat, and forming a circulation air duct inside and outside the shell.

Benefits of technology

It improves the airflow flow rate of the vaccine storage space, effectively dissipates heat, maintains the temperature stability, and improves the storage effect and safety of the vaccine.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of biomedical treatment, and discloses a storage device and a workstation. The storage device comprises a shell which defines a storage space with an air outlet and an air inlet, and the air inlet and the air outlet are both communicated with the outside of the shell; the multiple sliding ways are obliquely arranged in the storage space, the multiple sliding ways are arranged at intervals, ventilation gaps are formed between the adjacent sliding ways, and sliding grooves are formed in the sliding ways and used for containing storage pieces; and the fan is arranged in the storage space, and the fan can drive airflow in the storage space to flow out of the air outlet after flowing through the ventilation gap and can drive airflow outside the storage space to flow into the storage space through the air inlet, so that a circulating air duct is formed inside and outside the shell. And the fan can drive airflow to flow in the ventilation gaps in the slideways, so that the flowing speed of the airflow between the slideways can be increased, heat dissipation is accelerated, the temperature of the storage space is kept, and the storage effect of storage pieces such as vaccines is improved.
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Description

Technical Field

[0001] This application relates to the field of biomedical technology, for example, to a storage device and a workstation. Background Art

[0002] Currently, in the process of vaccine handling, vaccines are generally stored in specific refrigeration equipment first, and the batch number, expiration date, storage conditions, etc. of the vaccines are tracked through an electronic pipeline system. Before vaccination, generally, manual labor is used to take out the required vaccines from the refrigeration equipment according to the plan and appointment situation. Then, they are transported from the storage area to the vaccination station through an insulated box or a special vaccine transportation box. These devices generally have built-in refrigeration or insulation functions to maintain the temperature during vaccine transportation.

[0003] In the process of implementing the embodiments of the present disclosure, it is found that at least the following problems exist in the related art:

[0004] In the currently used multi-layer vaccine storage mode, the internal structure is compact, the size between each layer of slides or storage racks and between vaccines is small. When using the multi-layer stacking method, it causes poor air circulation inside. The heat generated by the vaccines themselves and the heat generated during the operation of automated equipment (such as linear modules, belts, motors, etc.) during the vaccine storage process cannot be conducted to the outside.

[0005] It should be noted that the information disclosed in the above background art section is only used to enhance the understanding of the background of this application, and thus may include information that does not constitute the prior art known to those of ordinary skill in the art. Summary of the Utility Model

[0006] To have a basic understanding of some aspects of the disclosed embodiments, a simple summary is given below. This summary is not a general review, nor is it intended to identify key / important elements or delineate the protection scope of these embodiments, but rather serves as a preamble to the subsequent detailed description.

[0007] Embodiments of the present disclosure provide a storage device and a workstation to solve the balance relationship between the bottom foaming layer and the drainage angle.

[0008] Embodiments of the present disclosure provide a storage device. The storage device includes: a housing that defines a storage space having an air outlet and an air inlet, both the air inlet and the air outlet are in communication with the outside of the housing; slides that are inclined and arranged in the storage space, the number of slides is multiple, a ventilation gap is formed between adjacent slides, and the slides are configured with chutes for placing storage members; a fan that is arranged in the storage space, the fan can drive the air flow in the storage space to flow through the ventilation gap and then flow out from the air outlet, and can drive the air flow outside the housing to flow into the storage space through the air inlet, so as to form a circulating air duct inside and outside the housing.

[0009] An embodiment of the present disclosure also provides a workstation, which includes: a cold storage with a cooling fan; the storage device as described in any one of the above embodiments, the storage device is located in the cold storage, and the cooling fan can drive cold air flow into the storage space.

[0010] The storage device and the workstation provided by the embodiments of the present disclosure can achieve the following technical effects:

[0011] In the storage device in the embodiment of the present disclosure, the storage space is provided with an air inlet and an air outlet, so that the fan can drive the air flow in the storage space and the air flow outside the outer shell to form a circulating air duct. In this way, the fan can drive the air flow to take away the temperature in the storage space, thereby maintaining the temperature of the storage space. The slideways in the storage space are arranged in multiple layers, and the fan can drive the air flow to flow in the ventilation gaps between the multiple slideways. In this way, the air flow speed between the slideways can be increased, heat dissipation can be accelerated, the temperature of the storage space can be maintained, and the storage effect of storage components such as vaccines can be improved.

[0012] The above general description and the following description are only exemplary and explanatory, and are not used to limit the present application. Description of the Drawings

[0013] One or more embodiments are exemplarily illustrated by corresponding drawings. These exemplary illustrations and the drawings do not constitute limitations on the embodiments. Elements with the same reference numerals in the drawings are shown as similar elements. The drawings do not constitute a proportional limitation, and among them:

[0014] Figure 1 is a schematic structural diagram of a workstation provided by an embodiment of the present disclosure;

[0015] Figure 2 is a partial structural diagram of a workstation provided by an embodiment of the present disclosure;

[0016] Figure 3 is a schematic structural diagram of the cooperation between a storage device and a conveying device provided by an embodiment of the present disclosure;

[0017] Figure 4 is a schematic structural diagram of a storage device provided by an embodiment of the present disclosure;

[0018] Figure 5A is a partial structural diagram of a storage device provided by an embodiment of the present disclosure;

[0019] Figure 5B is a schematic structural diagram of a perspective of a manipulator provided by an embodiment of the present disclosure;

[0020] Figure 5C is a schematic structural diagram of another perspective of a manipulator provided by an embodiment of the present disclosure;

[0021] Figure 6 It is a structural schematic diagram of a feeding device provided by an embodiment of the present disclosure from one perspective;

[0022] Figure 7 It is a partial structural schematic diagram of a feeding device provided in an embodiment of the present disclosure;

[0023] Figure 8 is another partial structural schematic diagram of a feeding device provided in an embodiment of the present disclosure;

[0024] Figure 9 is a structural schematic diagram of a feeding device provided by an embodiment of the present disclosure from another perspective;

[0025] Figure 10 yes Figure 9 A schematic diagram of the enlarged structure of part A;

[0026] Figure 11 is a schematic diagram of the structure of a transmission device and an operating device provided by an embodiment of the present disclosure;

[0027] Figure 12 It is a structural schematic diagram of a transmission device and a docking device provided by an embodiment of the present disclosure;

[0028] Figure 13 is a structural schematic diagram of a docking device provided by an embodiment of the present disclosure;

[0029] Figure 14 is a structural schematic diagram of another docking device provided by an embodiment of the present disclosure;

[0030] Figure 15 is a schematic structural diagram of a lifting cylinder provided by an embodiment of the present disclosure;

[0031] Figure 16 is a partial structural diagram of another workstation provided by an embodiment of the present disclosure;

[0032] Figure 17 It is a structural schematic diagram of another conveying device and operating device provided in an embodiment of the present disclosure.

[0033] Reference numerals:

[0034] 10. Feeding device; 11. First feeding port; 12. Second feeding port; 13. First conveying section; 131. First ridge; 14. Second conveying section; 141. Second ridge; 15. First inclined track; 16. Second inclined track; 161. Photoelectric detection switch; 17. Third conveying section; 18. Transfer device; 19. Code scanning device; 191. Code scanning table; 192. Code scanner; 110. Baffle; 111. Temporary storage area; 112. Discharge port; 113. Discharge channel; 114. Discharge baffle; 115. Elastic member; 116. Driving mechanism; 17. Housing; 20. Storage device; 21. Storage space; 211. Feeding port; 212. Discharge port; 213. Air inlet; 214. Discharge Air vent; 215, air inlet chamber; 216, air outlet chamber; 22, fan; 23, partition; 25, manipulator; 251, docking slide; 252, docking slider; 253, docking channel; 254, adjustment channel; 255, transportation channel; 26, slide; 30, conveying device; 40, operating device; 41, operating table; 42, docking device; 421, hook; 422, driving rod; 423, stop rod; 43, electric slider; 44, slide rail; 45, lifting device; 451, lifting cylinder; 452, lifting platform; 453, lifting motor; 454, connecting rod; 455, upper end opening; 456, lower end opening; 457, lifting slot; 46, conveying cover; 50, cold storage; 60, storage unit. DETAILED DESCRIPTION

[0035] In order to be able to understand the features and technical contents of the embodiments of the present disclosure in more detail, the implementation of the embodiments of the present disclosure is described in detail below in conjunction with the accompanying drawings. The attached drawings are for reference only and are not used to limit the embodiments of the present disclosure. In the following technical description, for the convenience of explanation, a full understanding of the disclosed embodiments is provided through multiple details. However, one or more embodiments can still be implemented without these details. In other cases, to simplify the drawings, well-known structures and devices can be simplified for display.

[0036] The terms "first", "second", etc. in the specification and claims of the disclosed embodiments and the above-mentioned drawings are used to distinguish similar objects, and are not necessarily used to describe a specific order or sequence. It should be understood that the terms used in this way can be interchanged where appropriate to describe the disclosed embodiments here. In addition, the terms "including" and "having" and any variations thereof are intended to cover non-exclusive inclusions.

[0037] In the embodiments of the present disclosure, the orientation or positional relationship indicated by terms such as "upper", "lower", "inner", "middle", "outer", "front", "rear", etc. is based on the orientation or positional relationship shown in the drawings. These terms are mainly used to better describe the embodiments of the present disclosure and their embodiments, and are not used to limit that the indicated devices, elements or components must have a specific orientation, or be constructed and operated in a specific orientation. Moreover, in addition to being able to represent the orientation or positional relationship, some of the above terms may also be used to represent other meanings. For example, the term "upper" may also be used to represent a certain attachment relationship or connection relationship in some cases. For those of ordinary skill in the art, the specific meanings of these terms in the embodiments of the present disclosure can be understood according to specific circumstances.

[0038] In addition, the terms "arranged", "connected", "fixed" should be understood in a broad sense. For example, "connected" can be a fixed connection, a detachable connection, or an integral structure; it can be a mechanical connection or an electrical connection; it can be directly connected, or indirectly connected through an intermediate medium, or there can also be internal communication between two devices, elements or components. For those of ordinary skill in the art, the specific meanings of the above terms in the embodiments of the present disclosure can be understood according to specific circumstances.

[0039] Unless otherwise specified, the term "plurality" means two or more.

[0040] The term "and / or" is a description of the associated relationship of objects, indicating that three relationships can exist. For example, A and / or B means: A or B, or, A and B these three relationships.

[0041] It should be noted that, without conflict, the embodiments in the embodiments of the present disclosure and the features in the embodiments can be combined with each other.

[0042] For the convenience of description, the up-down, left-right directions are as shown in the drawings.

[0043] Combined Figures 1 to 17 As shown, the embodiments of the present disclosure provide a workstation. As Figure 1 and Figure 2 shown, the workstation includes a feeding device 10, a storage device 20, a conveying device 30, and an operating device 40 arranged in sequence along the conveying direction of the storage member 60. The feeding device 10 is used to supplement the storage member 60; the inlet of the storage device 20 can be communicated with the outlet of the feeding device 10 and is used to store the storage member 60 transferred from the feeding device 10; the inlet of the conveying device 30 can be communicated with the outlet of the storage device 20 and is used to transport the storage member 60 transferred from the storage device 20; the inlet of the operating device 40 can be communicated with the outlet of the conveying device 30 and is used to operate on the workpiece to be transported conveyed by the conveying device 30.

[0044] In the embodiments of the present disclosure, when the storage member 60 in the storage device 20 needs to be replenished, the user can put the storage member 60 into the feeding device 10. The storage member 60 can operate inside the feeding device 10 and then flow into the storage device 20 from the outlet, which can ensure the sufficiency of the number of storage members 60 in the storage device 20. The storage member 60 in the storage device 20 can be transferred to the conveying device 30 and then transferred to the operating device 40 through the conveying device 30. In this way, the full-process management of the storage member 60 is realized, and the full-process automated transportation is achieved. This can not only save manpower but also avoid temperature changes or damage of the storage member 60 during the transfer process, improve the transfer safety and integrity of the storage member 60, and improve the transfer efficiency.

[0045] Optionally, the storage member 60 is a vaccine box, a test tube, or other items to be transported, etc.

[0046] Optionally, as Figures 6 to 10 shown, the feeding device 10 includes a housing and a conveying device. The housing defines a feeding cavity having a feeding port and a discharging port 112; the conveying device is located in the feeding cavity and is used to transport the storage member 60 from the feeding port to the discharging port 112.

[0047] Optionally, the number of feeding ports is multiple. The multiple feeding ports include a first feeding port 11 and a second feeding port 12; the conveying device includes multiple conveying sections, and the multiple conveying sections are connected in sequence. The multiple conveying sections include a first conveying section 13 and a second conveying section 14. The outlet end of the first conveying section 13 is connected to the inlet of the second conveying section 14; wherein, the first feeding port 11 corresponds to the inlet end of the first conveying section 13, the second feeding port 12 corresponds to the position between the first conveying section 13 and the second conveying section 14, and the conveying directions of the first conveying section 13 and the second conveying section 14 are different.

[0048] In the embodiments of the present disclosure, the feeding device 10 is provided with multiple feeding ports, so that feeding can be carried out from different feeding ports. In addition, the conveying device includes multiple conveying sections, and the conveying directions of the multiple conveying sections are different. In this way, the extending direction of the conveying section can be set according to the space and size of the housing, which can reduce the size of the feeding device 10, realize the miniaturization of the feeding device 10, increase the number of usage places and the usage flexibility of the feeding device 10, and further can realize the miniaturized module design of the feeding module, improve the moving convenience, and can achieve rapid feeding. When in use, the storage member 60 can be selectively put into the first feeding port 11 or the second feeding port 12 according to the installation position of the feeding device 10, or the storage member with a conveying member can be put into the first feeding port 11 and the second feeding port 12 at the same time.

[0049] Optionally, the number of feeding ports can also be three, four, or five, and the positions and numbers of the feeding ports can be set according to the requirements according to the setting of the conveying section.

[0050] Optionally, the first feeding port 11 and the second feeding port 12 are not on the same side wall. This enables feeding from different directions of the housing.

[0051] Optionally, the first feeding port 11 is located at the initial end of the conveying device, and the second feeding port 12 is located in the middle of the conveying device.

[0052] Optionally, the number of the second conveying sections 14 can be multiple. The multiple second conveying sections 14 are connected in sequence. The second feeding port 12 can be arranged between two adjacent second conveying sections 14, or can be arranged between the first conveying section 13 and the second conveying section 14 adjacent to the first conveying section 13. In this way, the number, size and extending direction of the conveying sections can be set according to the shape and size of the housing 17.

[0053] Optionally, the first conveying section 13 extends along the width direction of the housing, and the first feeding port 11 is along the front side wall of the housing.

[0054] Optionally, the second feeding port 12 is arranged on the right side wall or the left side wall of the housing.

[0055] Optionally, the second conveying section 14 extends along the width direction of the housing. This can leave a relatively large space for arranging other components, such as the later transfer device 18, identification device and code scanning device 19, etc.

[0056] It can be understood that the first conveying section 13 and / or the second conveying section 14 can also extend along the length direction of the housing.

[0057] Optionally, the conveying device further includes a first inclined track 15. The first inclined track 15 is connected between the outlet end of the first conveying section 13 and the inlet end of the second conveying section 14. Along the direction from the first conveying section 13 to the second conveying section 14, the first inclined track 15 slopes downward; wherein, the first inclined track 15 is located on the side of the second feeding port 12 facing the feeding cavity, and the upper end of the first inclined track 15 is connected to the second feeding port 12.

[0058] In the embodiments of the present disclosure, since the conveying directions of the first conveying section 13 and the second conveying section 14 are different, it is not convenient to arrange a conveying section between the first conveying section 13 and the second conveying section 14. A first inclined track 15 is arranged between the outlet end of the first conveying section 13 and the inlet end of the second conveying section 14, and the outlet end of the first conveying section 13 is higher than the inlet end of the first conveying section 13. In this way, the first inclined track 15 can be arranged obliquely, so that the storage member 60 flowing out of the first conveying section 13 can flow onto the first inclined track 15, and then flow to the inlet end of the second conveying section 14 under the action of gravity along the first inclined track 15, and then move along with the second conveying section 14. Thus, the conveying of the storage member 60 is realized. The second feeding port 12 corresponds to the upper end of the first inclined track 15, so that the belt conveying member replenished by the second feeding port 12 can directly enter the second conveying section 14 along the first inclined track 15, realizing multi-directional feeding.

[0059] Optionally, both the first conveying section 13 and the second conveying section 14 are inclined upward along the conveying direction.

[0060] In the embodiments of the present disclosure, both the first conveying section 13 and the second conveying section 14 are set to a moving mode of climbing upward, which can ensure the uniformity of the transportation speed of the storage member 60. At the same time, the position of the outlet end of each conveying section is relatively high, which is convenient for entering the next conveying section and realizing the cooperation with the next conveying section.

[0061] Optionally, the conveying directions of the first conveying section 13 and the second conveying section 14 are opposite.

[0062] In the embodiments of the present disclosure, the conveying directions of the first conveying section 13 and the second conveying section 14 are opposite, so that the first conveying section 13 and the second conveying section 14 can be arranged side by side. In this way, the length of the conveying section is reduced, and multiple conveying sections can be reasonably arranged in the housing, realizing the miniaturization of the feeding device 10 while realizing the transmission process.

[0063] Optionally, the outlet end of the first conveying section 13 is located above the first end of the first inclined track 15, the second end of the first inclined track 15 is located above the second conveying section 14, the second feeding port 12 is communicated with the third end of the first inclined track 15, and the first inclined track 15 is inclined downward along the direction from the third end of the first inclined track 15 to the second end of the first inclined track 15.

[0064] In the embodiment of the present disclosure, the outlet end of the first conveying section 13 is higher than the first inclined track 15, so that the storage member 60 of the first conveying section 13 can directly fall into the first inclined track 15 and then slide along the first inclined track 15. The outlet end of the first inclined track 15 is higher than the second conveying section 14, so that the storage member 60 at the outlet of the first inclined track 15 can directly slide into the second conveying section 14. At the same time, the second feeding port 12 is located at the third end of the first inclined track 15, that is, at the highest point of the first inclined track 15, which is convenient for the movement of the storage member 60 fed by the second feeding.

[0065] Optionally, the conveying device further includes a third conveying section 17, and the feeding device 10 further includes an identification device. The third conveying section 17 is connected to the outlet end of the second conveying section 14; the third conveying section 17 is communicated with the outlet end of the second conveying section 14; the identification device is arranged on the third conveying section 17 for identifying the storage member 60 on the third conveying section 17.

[0066] In the embodiment of the present disclosure, an identification device is arranged on the third conveying section 17, so that the storage member 60 fed into the feeding port passes through the first conveying section 13 and the second conveying section 14 and runs to the third conveying section 17 for identification to identify the information of the storage member 60 and ensure that the storage member 60 matches the demand.

[0067] Optionally, the conveying device further includes a second inclined track 16. The second inclined track 16 is connected to the outlet end of the second conveying section 14 and slopes downward in a direction away from the second conveying section 14.

[0068] In the embodiment of the present disclosure, since the second conveying section 14 conveys upward, the second inclined track 16 is arranged at the outlet end of the second conveying section 14, so that the storage member 60 delivered from the third conveying section 17 can slide along the second inclined track 16 under the action of gravity to the third conveying section 17 and then move with the third conveying section 17 for scanning.

[0069] Optionally, the feeding device 10 further includes a photoelectric detection switch 161. The photoelectric detection switch 161 is arranged at the outlet end of the second inclined track 16 or on the third conveying section 17 for detecting the number of storage members 60 on the third conveying section 17; wherein, the photoelectric detection switch 161 is electrically connected to the second conveying section 14. When the number of storage members 60 on the third conveying section 17 is greater than or equal to a preset number, the photoelectric detection switch 161 controls the second conveying section 14 to stop conveying.

[0070] In the embodiments of the present disclosure, the optoelectronic detection switch 161 can detect the number of storage members 60 conveyed to the third conveying section 17. When the number of storage members 60 in the third conveying section 17 is greater than or equal to a preset number, the optoelectronic detection switch 161 controls the second conveying section 14 to stop conveying, so as to prevent the storage members 60 from piling up in the third conveying section 17 and affecting the normal rotational conveyance of the storage members 60.

[0071] Optionally, the first conveying section 13, the second conveying section 14, and the third conveying section 17 are all conveyor belts.

[0072] Optionally, the height of the outlet end of the first conveying section 13 is higher than that of the second conveying section 14, and the height of the third conveying section 17 is less than that of the third conveying section 17, which can reduce the length of the second inclined track 16 and reserve sufficient space for the third conveying section 17 to facilitate operations such as identification on the third conveying section 17.

[0073] Optionally, the third conveying section 17 extends along the length direction of the housing, which can ensure the length of the third conveying section 17 so that the third conveying section 17 is higher than the inlet end of the first conveying section 13.

[0074] Optionally, the feeding device 10 further includes a baffle 110. The baffle 110 is provided on the third conveying section 17 and is located on one side of the identification device. It is used to abut against the storage member 60 and flatten the storage member 60, so that the storage member 60 moves to the identification device in a flat and non - stacked manner on the third conveying section 17.

[0075] In the embodiments of the present disclosure, in the related art, it is necessary to set up a three - dimensional camera to observe the height of the storage member 60, and then adjust the height of the transfer device 18 that clamps or adsorbs the storage member 60 so that the height of the storage member 60 matches that of the identification device. In the embodiments of the present disclosure, the baffle 110 is provided on the third conveying section 17 and is located on one side of the identification device. When the third conveying section 17 drives the storage member 60 to move to the baffle 110, the baffle 110 can flatten the storage member 60 and prevent the storage member 60 from stacking. In this way, the storage members 60 flowing through the baffle 110 all move to the identification device at the same height, which is convenient for the identification device to identify. There is no need to additionally adjust the height of the storage member 60. Thus, the feeding device 10 of the embodiments of the present disclosure does not need to set up a three - dimensional camera, which can greatly reduce the cost.

[0076] Optionally, the baffle 110 is arc - shaped, and the arc opening faces away from the side of the identification device.

[0077] This can increase the contact area between the baffle 110 and the storage member 60 and improve the number of flattened storage members 60.

[0078] Optionally, the baffle 110 is spaced above the third conveying section 17, and all the storage members 60 move between the baffle 110 and the third conveying section 17 after being laid flat.

[0079] Optionally, the feeding device 10 further includes a code scanning device 19 and a transfer device 18. The code scanning device 19 is located in the feeding chamber and defines a code scanning area; the transfer device 18 is located in the feeding chamber, and the transfer device 18 can transfer the storage member 60 on the third conveying section 17 to the code scanning area for code scanning.

[0080] In the embodiment of the present disclosure, the transfer device 18 can clamp or adsorb the storage member 60. Then, after the transfer device 18 clamps or adsorbs the storage member 60, it can drive the storage member 60 to move in the feeding chamber to achieve more operations. Here, the transfer device 18 can drive the storage member 60 to be transferred to the code scanning area for code scanning, so as to facilitate the registration and recording of the storage member 60, and facilitate the workstation to obtain the information of the storage member 60 to determine whether the information is accurate.

[0081] Optionally, one end of the third conveying section 17 is connected to the first conveying section 13, and the other end of the third conveying section 17 corresponds to the code scanning area. The feeding device 10 further includes a driving device and a controller. The driving device is drivingly connected to the third conveying section 17 and can drive the third conveying section 17 to move from one end of the third conveying section 17 to the other end, or drive the third conveying section 17 to move from the other end of the third conveying section 17 to one end; the controller is electrically connected to the driving device and the recognition device. The controller is configured to, when the recognition device fails to recognize the storage member 60, control the third conveying section 17 to move in the direction from the other end of the third conveying section 17 to one end of the third conveying section 17, so as to transfer the storage member 60 with recognition failure to the first conveying section 13.

[0082] In the embodiment of the present disclosure, one end of the third conveying section 17 can be connected to the first conveying section 13, and the other end corresponds to the recognition device. In this way, when the storage member 60 moves from the second conveying section 14 to the third conveying section 17, the third conveying section 17 drives the storage member 60 to move towards the other end of the third conveying member. During the movement, it passes through the recognition device. After the recognition device recognizes successfully, the transfer device 18 can transfer the recognized storage member 60 to the code scanning area for the next operation. If the recognition device fails to recognize, at this time, the controller can control the driving device to make the third conveying member move in the reverse direction, drive the storage member 60 towards one end of the third conveying member, and then the storage member 60 with recognition failure can enter the first conveying section 13 from one end of the third conveying member. In this way, the storage member 60 with recognition failure can be re-operated from the first conveying member, pass through the second conveying section 14 in sequence and then be transported to the third conveying section 17 for recognition. This can perform multiple recognitions on the storage member 60 with recognition failure, greatly improving the recognition success rate.

[0083] Optionally, one end of the third conveying section 17 is higher than the inlet end of the first conveying section 13, so that the storage member 60 with failed identification at one end of the third conveying section 17 can automatically fall onto the first conveying section 13.

[0084] Optionally, the third conveying section 17 is further provided with a detection device for detecting the jammed or stationary storage members 60 on the third conveying section 17. When the detection device detects the jammed or stationary storage members 60, the controller also controls the third conveying section 17 to convey in the direction from the other end to one end, so as to send these storage members 60 back to the first conveying section 13 for re - transportation and identification.

[0085] Optionally, the transfer device 18 can move to the position corresponding to the second conveying section 14. The controller is electrically connected to the transfer device 18, and the controller is configured to control the transfer device 18 to transfer the storage member 60 with failed code scanning to the second conveying section 14 when the code scanning device 19 fails to scan the code of the storage member 60.

[0086] In the embodiment of the present disclosure, the transfer device 18 can move to the position of the second conveying section 14. In this way, when the transfer device 18 drives the storage member 60 to scan the code in the code scanning area, if there is a storage member 60 with failed code scanning, the transfer device 18 can transfer the storage member 60 to the second conveying section 14, so that the storage member 60 with failed code scanning can be re - conveyed, identified, and re - scanned, which can also improve the success rate of code scanning.

[0087] Optionally, the transfer device includes a grasping arm and a base. The grasping arm is connected to the base, and the grasping arm can move in six directions relative to the base in the replenishing cavity. Among them, the code scanning area and the second conveying section 14 are respectively located at both ends in the length direction of the base, and the third conveying section 17 is located on one side in the width direction of the base, so that the grasping arm can move among the second conveying section 14, the third conveying section 17, and the identification device.

[0088] Optionally, the replenishing cavity further defines a temporary storage area 111. The temporary storage area 111 is communicated with the third conveying section 17 and is also communicated with the transfer device 18. The temporary storage area 111 is used to receive the storage members 60 with failed identification and / or failed code scanning reaching the preset number of times.

[0089] In the embodiment of the present disclosure, when there are storage members 60 that cannot be identified or scanned all the time, these storage members 60 can be transferred to the temporary storage area 111 through the third conveying section 17 or the transfer device 18, so as to be transferred out of the replenishing cavity for further processing.

[0090] Optionally, when the number of storage members 60 in the first conveying section 13 and the second conveying section 14 is less than a preset number, and the number of times of failure in identifying and / or scanning the first target conveying member exceeds the threshold, the controller is configured to control the third conveying section 17 or the transfer device 18 to transfer the first target conveying member into the temporary storage area 111.

[0091] In the embodiments of the present disclosure, the first target conveying member that fails in identification and / or scanning can return to the first conveying section 13 or the second conveying section 14 multiple times to be re-conveyed and then undergo identification and scanning. When only a small number of storage members 60 remain on the entire conveying device 30, after the first target conveying member fails in identification or scanning multiple times, it can be transferred to the temporary storage area 111 for recycling.

[0092] Optionally, the temporary storage area 111 is located at the other end of the third conveying section 17, and the height is less than that of the other end of the third conveying section 17, so that the storage members 60 on the third conveying section 17 can automatically fall into the temporary storage area 111.

[0093] Optionally, the housing is provided with an outlet of the temporary storage area 111, and the bottom wall of the temporary storage area 111 slopes downward from the third conveying section 17 towards the outlet of the temporary storage area 111, so as to facilitate the discharge of the storage members 60 in the temporary storage area 111.

[0094] Optionally, the scanning device 19 includes a scanning platform and a plurality of scanners 192. The scanners 192 are arranged at intervals in sequence along the circumference of the scanning platform to improve the scanning success rate.

[0095] Optionally, a plurality of first convex ribs 131 protrude from the surface of the first conveying section 13. The first convex ribs 131 are arranged at intervals along the conveying direction of the first conveying section 13 on the first conveying section 13. In this way, when the first conveying section 13 moves upward, the first convex ribs 131 can hold up the storage members 60 and drive the storage members 60 to move upward, preventing the storage members 60 from rolling down or detaching from the first conveying section 13.

[0096] Optionally, a plurality of second convex ribs 141 protrude from the surface of the second conveying section 14. The second convex ribs 141 are arranged at intervals along the conveying direction of the second conveying section 14 on the second conveying section 14. In this way, when the second conveying section 14 moves upward, the second convex ribs 141 can hold up the storage members 60 and drive the storage members 60 to move upward, preventing the storage members 60 from rolling down or detaching from the second conveying section 14.

[0097] Optionally, the replenishing chamber is further provided with a discharging port 112. The replenishing device 10 further includes a discharging channel 113. The discharging channel 113 is disposed at the discharging port 112, extends to the outside of the housing, and communicates with the scanning area. The transfer device 18 can transfer the storage member 60 to the discharging channel 113. Wherein, the discharging channel 113 slopes downward in a direction away from the scanning area and slopes toward the left or the right.

[0098] In the embodiment of the present disclosure, the discharging port 112 can separate the storage member 60 in the replenishing chamber from the replenishing device 10. The transfer device 18 can transfer the storage member 60 to the discharging channel 113, and then slide along the discharging channel 113 to slide out of the replenishing device 10. The discharging channel 113 slopes downward in a direction away from the scanning area, so that the storage member 60 can slide downward under the action of gravity to separate from the replenishing device 10. At the same time, the discharging channel 113 also slopes to the left or the right, so that the storage members 60 can be concentrated on the left or the right, and then move downward to discharge from the discharging channel 113. This can prevent the storage member 60 from rotating or shifting, so that the conveying member can keep the length direction consistent with the moving direction, so that the storage member 60 can be discharged at the same angle and direction, which is convenient for maintaining the safety and transfer effect of the storage member 60 and is also convenient for docking with the storage device 20.

[0099] Optionally, the discharging channel 113 is in abutment (fitting or close) with the scanning table 191. The transfer device 18 can transfer the conveying member 60 into the discharging channel 113.

[0100] Optionally, the transfer device 18 can identify the direction of the storage member 60, so that the storage member 60 enters the discharging channel 113 in a preset orientation to improve the uniformity of discharging. For example, when the storage member 60 is a vaccine box, the transfer member can transfer the vaccine boxes into the discharging channel 113 with the moving direction parallel to the length direction.

[0101] Optionally, the bottom wall of the discharging channel 113 is a flow bar, which can improve the smoothness of flow.

[0102] Optionally, the discharging channel 113 includes multiple rows of flow bars to improve the sliding smoothness of the storage member 60 in the up-down direction and the left-right direction.

[0103] Optionally, the discharging channel 113 includes a discharging bottom wall and discharging side walls. The discharging side walls are connected to one side of the discharging bottom wall in the left-right direction. The discharging bottom wall slopes toward the discharging bottom wall direction, and both the discharging bottom wall and the discharging side walls slope downward in a direction away from the replenishing chamber. In this way, the discharging side walls can prevent the storage member 60 from falling off in the left-right direction. Optionally, both the discharging bottom wall and the discharging side walls are provided with flow bars.

[0104] Optionally, the discharge channel 113 further includes a discharge baffle 114, a drive mechanism 116, and an elastic member 115. The discharge baffle 114 is provided at the outlet end of the discharge channel 113; the drive mechanism 116 is drivingly connected to the discharge baffle 114 and can drive the discharge baffle 114 to open the outlet end of the discharge channel 113; the elastic member 115 is connected to the discharge baffle 114, and when the discharge baffle 114 opens the outlet end of the discharge channel 113, the elastic member 115 undergoes elastic deformation.

[0105] In the embodiment of the present disclosure, the discharge baffle 114 can open or close the outlet of the discharge channel 113. The baffle 110 can automatically open the discharge baffle 114 through the drive mechanism 116. When closing is required, the drive mechanism 116 stops driving the discharge baffle 114, and the elastic member 115 can drive the discharge baffle 114 to automatically rebound and close the outlet end of the discharge channel 113.

[0106] Optionally, the discharge baffle 114 is rotatably connected to the discharge channel 113. When the discharge baffle 114 twists, one end of the discharge baffle 114 can rotate out of the discharge channel 113 to facilitate the discharge of the discharge channel 113. The discharge baffle 114 can also twist to block the discharge of the discharge channel 113.

[0107] Optionally, the drive mechanism 116 is an electromagnetic structure. When the electromagnetic mechanism is energized, it can drive the discharge baffle 114 to open the discharge channel 113. After the electromagnetic mechanism is powered off, the discharge baffle 114 is disconnected from the drive mechanism 116, and under the drive of the elastic member 115, it blocks the outlet end of the discharge channel 113.

[0108] Optionally, the discharge baffle 114 is provided at the end of the discharge bottom wall facing away from the replenishing cavity.

[0109] Optionally, rollers are further provided at the bottom of the replenishing device 10 so that the replenishing device 10 can be moved to facilitate cooperation with storage devices 20 at different positions.

[0110] Optionally, as Figures 3 to 5C shown, the storage device 20 includes a housing 17, a slideway 26, and a manipulator 25. The housing 17 defines a storage space 21 having a feed inlet 211 and a discharge outlet 212; the slideway 26 is provided in the storage space 21, and the slideway 26 slopes downward along the direction from the feed inlet 211 to the discharge outlet 212. The slideway 26 is configured with a plurality of chutes for placing storage members 60; the manipulator 25 is located on one side of the housing 17 and corresponds to the feed inlet 211, and can be docked with any one of the plurality of chutes for conveying the storage members 60 into the chutes.

[0111] In the embodiments of the present disclosure, an inclined chute 26 is provided in the storage device 20, so that the manipulator 25 can convey the storage member 60 into any chute. The chute 26 is inclined, so that the storage member 60 can slide along the chute to the discharge port 212 under the action of gravity, and then be discharged from the discharge port 212 out of the storage device 20.

[0112] Optionally, the manipulator 25 is provided with a docking portion, and the docking portion can be docked with the outlet end of the discharge channel 113 to receive the storage member 60 transmitted by the replenishing device 10.

[0113] In the embodiments of the present disclosure, the docking portion of the manipulator 25 can correspond to the outlet end of the discharge channel 113, so that the conveying member sliding out along the discharge channel 113 can flow into the docking portion of the manipulator 25, and then enter the target chute along with the movement of the manipulator 25.

[0114] Optionally, the docking portion includes a docking chute 251 and a docking slider 252. The docking slider 252 is arranged in the docking chute 251, and the docking slider 252 can define a docking channel 253 with a side wall of the docking chute 251; wherein, the docking slider 252 is movably arranged in the docking chute 251 and can adjust the width of the docking channel 253 so that the width of the docking channel 253 matches the width of the storage member 60.

[0115] In the embodiments of the present disclosure, the docking slider 252 can move relative to the docking chute 251, and thus can adjust the width of the docking channel 253. In this way, the storage device 20 can obtain the size of the target conveying member discharged from the discharge port 112 of the replenishing device 10 through the controller, and then control the movement of the docking slider 252 to adjust the width of the docking chute 251, so as to ensure that the docking chute 251 matches the size of the target conveying member, avoid the target conveying member from shifting or rotating, and further enable the target conveying member to enter the chute in the same direction.

[0116] Optionally, the docking channel 253 includes an adjustment channel 254 and a transportation channel 255. The transportation channel 255 extends in a quasi-straight line. The adjustment channel 254 is connected to the side of the transportation channel 255 facing the discharge channel 113, and the width of the adjustment channel 254 gradually decreases along the side away from the discharge channel 113.

[0117] In the embodiments of the present disclosure, the width of the adjustment channel 254 at the inlet end of the docking channel 253 is relatively large, so that it is convenient for the target conveying member to enter the docking channel 253. Along the conveying direction, the width of the adjustment channel 254 gradually decreases, so that the direction of the target conveying member can be adjusted. After the target conveying member enters the transportation channel 255, the length of the storage member 60 can match the transportation channel 255, so that the extending direction of the target conveying member is consistent, which is convenient for transferring it into the chute 26.

[0118] Optionally, the docking slideway 251 slopes downward in a direction close to the slideway 26.

[0119] In the embodiment of the present disclosure, the docking slideway 251 slopes downward in a direction close to the slideway 26. In this way, when the manipulator 25 is located at the corresponding chute, the storage member 60 can slide into the chute along the docking slideway 251 under the action of gravity.

[0120] Optionally, the manipulator 25 further includes a discharge baffle 110. The discharge baffle 110 is located at the outlet end of the docking channel 253. When the manipulator 25 moves, the discharge baffle 110 closes the outlet end of the docking channel 253 to prevent the storage member 60 in the docking slideway 251 from falling. After the manipulator 25 is docked with the corresponding chute, the discharge baffle 110 opens to enable the storage member 60 to enter the corresponding chute.

[0121] Optionally, the number of the slideways 26 is multiple. The multiple slideways 26 are sequentially arranged at intervals in the height direction of the housing 17. A ventilation gap is formed between adjacent slideways 26. The slideway 26 is configured with a chute for placing the storage member 60; the storage device 20 further includes a blower 22. The blower 22 is disposed in the storage space 21. The blower 22 can drive the air flow in the storage space 21 to flow through the ventilation gap and then flow out from the air outlet 214, and can drive the air flow outside the storage space 21 to flow into the storage space 21 through the air inlet 213, so as to form a circulating air duct inside and outside the housing 17.

[0122] In the storage device 20 in the embodiment of the present disclosure, the storage space 21 is provided with an air inlet 213 and an air outlet 214. In this way, the blower 22 can drive the air flow in the storage space 21 to form a circulating air duct with the air flow outside the housing 17. In this way, the blower 22 can drive the air flow to take away the temperature in the storage space 21, thereby maintaining the temperature of the storage space 21. The slideways 26 in the storage space 21 are arranged in multiple layers. The blower 22 can drive the air flow to flow in the ventilation gaps between the multiple slideways 26. In this way, the air flow velocity between the slideways 26 can be increased, heat dissipation can be accelerated, the temperature of the storage space 21 can be maintained, and the storage effect of the storage member 60 such as vaccines can be improved.

[0123] In addition, the heat generated by other devices in the storage device 20, such as linear modules, belts, motors, etc., can also be discharged through the circulating air duct, overall reducing the temperature in the storage space 21 and ensuring the preservation effect and activity of the storage member 60.

[0124] Optionally, the storage device 20 further includes a partition 23 located within the storage space 21, which divides the storage space 21 into an air inlet chamber 215 and an air outlet chamber 216. The air outlet chamber 216 is located above the air inlet chamber 215, and the slideway 26 is located within the air outlet chamber 216. Among them, the fan 22 is provided on the partition 23 and above the partition 23, and the fan 22 drives the air flow in the air inlet chamber 215 to flow towards the air outlet chamber 216.

[0125] In the embodiment of the present disclosure, the partition 23 divides the storage space 21 into two parts, so that the slideway 26 is placed in the air outlet chamber 216 and the fan 22 is located in the air outlet chamber 216. This can improve the driving effect of the fan 22 on the air flow in the air outlet chamber 216, thereby facilitating the acceleration of the air flow velocity in the slideway 26 and the ventilation gap, accelerating heat dissipation, and maintaining the temperature of the storage space 21. Moreover, the air inlet chamber 215 and the return air chamber are separated, which can avoid air flow disorder, realize a circulating air duct, and improve the circulation persistence of the air flow.

[0126] Optionally, an air outlet 214 is provided on the side wall of the air outlet chamber 216, and an air inlet 213 is provided on the side wall of the air inlet chamber 215. Among them, the air outlet 214 corresponds to a plurality of slideways 26.

[0127] In the embodiment of the present disclosure, an air outlet 214 is provided on the side wall of the air outlet chamber 216, and the air outlet 214 is arranged corresponding to a plurality of slideways 26. This can improve the air flow velocity of the slideway 26, enhance the heat dissipation of the slideway 26, prevent heat accumulation at the slideway 26, and improve the heat dissipation effect.

[0128] Optionally, the size of the air outlet 214 can be the same as or similar to that of a plurality of slideways 26.

[0129] Optionally, the number of the air outlets 214 is one or more.

[0130] Optionally, the air outlet 214 corresponds to the middle slideway 26 among a plurality of slideways 26. Among the plurality of slideways 26, the density of the surrounding slideways 26 and the storage member 60 is relatively large in the middle slideway, and the heat generation is large. The correspondence between the air outlet 214 and the middle slideway 26 can ensure the heat dissipation effect of the middle slideway 26.

[0131] Optionally, the housing 17 includes a first side wall, a second side wall, a third side wall, and a fourth side wall that are sequentially connected along the circumference. The first side wall and the third side wall are oppositely arranged. The first side wall is provided with a feed inlet 211, and the third side wall is provided with a discharge outlet 212. Among them, the second side wall and / or the fourth side wall are provided with air outlets 214.

[0132] Optionally, the feed inlet 211 and the discharge outlet 212 are matched with the slideway 26, which can ensure the sizes of the feed inlet 211 and the discharge outlet 212 and facilitate feeding or discharging into each chute.

[0133] Optionally, the chute 26 slopes downward in the direction from the feed inlet 211 to the discharge outlet 212, wherein the angle between the chute 26 and the horizontal direction is greater than or equal to 15° and less than or equal to 20°.

[0134] In the embodiment of the present disclosure, when the angle between the chute 26 and the horizontal direction is less than 15°, the inclination angle of the chute 26 is too small to ensure the sliding length of the storage member 60, which may cause the storage member 60 to get stuck in the chute and unable to slide out. When the angle between the chute 26 and the horizontal direction is greater than 20°, the inclination angle of the chute 26 is relatively large. In this case, when the height of the storage space 21 is fixed, the number of such chutes 26 is limited, resulting in a limited storage capacity of the storage space 21.

[0135] Preferably, the chute 26 slopes downward in the direction from the feed inlet 211 to the discharge outlet 212, and the angle between the chute 26 and the horizontal direction is 18°.

[0136] In the embodiment of the present disclosure, when the chute 26 slopes at 18°, it can not only ensure the sliding length and smoothness, but also ensure the number of chutes 26.

[0137] Optionally, the storage device 20 further includes a stop mechanism disposed at the outlet end of the chute for opening or closing the outlet end of the chute. In the embodiment of the present disclosure, the stop structure can open or close the outlet end of the chute, so that by controlling the stop mechanism, the outlet end of the target chute can be selectively opened to facilitate the discharge of the storage member 60.

[0138] Optionally, the storage device 20 further includes a detection mechanism disposed at the outlet end of the chute for detecting whether the vaccine passes through the outlet end. The storage device 30 further includes a reminder device electrically connected to the detection mechanism. The reminder device is configured to control the reminder device to remind the user when the storage member 60 does not pass through the outlet end. In the embodiment of the present disclosure, through the reminder device and the detection mechanism, it is possible to timely detect whether the storage member is stuck.

[0139] Optionally, the bottom wall of the chute 26 is a flow strip, and the blower 22 can drive the air flow to flow through the gaps of the flow strip. In the embodiment of the present disclosure, the bottom wall of the chute 26 also adopts a flow strip structure. The flow strip can not only improve the sliding smoothness of the storage member 60 and avoid jamming. Moreover, the flow strip is composed of a plurality of balls. When the blower 22 drives the air flow to flow between the chutes 26, the air flow can also flow through the gaps between the adjacent balls of the flow strip, thereby realizing the heat dissipation effect between the plurality of storage members 60 in one chute.

[0140] Optionally, the slideway 26 further includes a partition board located inside the bottom wall of the slideway 26. The partition board divides the slideway 26 into a plurality of sliding grooves, and the plurality of sliding grooves are all inclined downward along the direction from the feed inlet 211 to the discharge outlet 212.

[0141] Optionally, the workstation further includes a cold storage 50 filled with cold air and provided with a cooling fan 22. The storage device 20 is located inside the cold storage 50, and the cooling fan 22 can drive cold air flow into the storage space 21.

[0142] In the embodiment of the present disclosure, when the storage device 20 is arranged inside the cold storage 50, the storage device 20 itself does not need to be provided with a refrigeration system. The cooling fan 22 inside the cold storage 50 can drive cold air to enter the storage space 21 from the air inlet 213, the feed inlet 211, and the discharge outlet 212 of the storage device 20, so that the storage space 21 can be filled with refrigerating gas to realize the refrigeration of the storage parts 60 inside the storage space 21. When the storage device in the related art is placed inside the cold storage 50, the high-volume cooling fan 22 works to cool the periphery of the storage device 20. Due to air resistance, the air flow inside the storage device 20 is not smooth, forming a "heat island effect", resulting in the inability to smoothly export the heat inside the storage device 20. In the embodiment of the present disclosure, by arranging the fan 22 inside the storage device 20, the air flow inside the storage space 21 can be improved, and a circulating air duct is formed between the storage space 21 and the environment of the cold storage 50, so that the hot air flow inside the storage space 21 enters the cold storage 50 for cooling and then returns to the storage space 21 from the air inlet 213, ensuring the temperature stability inside the storage space 21.

[0143] Optionally, the number of the storage devices 20 can be one or more. When there are multiple storage devices 20, the multiple storages can be arranged side by side and in contact with each other. The manipulator 25 corresponds to each of the multiple storage devices 20, and the manipulator 25 can supply materials to the multiple storage devices 20.

[0144] Optionally, as Figure 3 shown, the conveying device 30 is located on one side adjacent to the discharge outlet 212 of the storage device 20 and below the slideway 26. When the outlet end of the sliding groove of the storage device 20 is opened, the storage parts 60 inside the sliding groove can fall onto the conveying device 30 and then be transported to the operating device 40 under the drive of the conveying device 30. Optionally, the conveying device 30 is a conveyor belt.

[0145] Optionally, the conveying device 30 extends in the horizontal direction. This facilitates the setting of the device.

[0146] Optionally, the conveying device 30 includes an inclined conveying section, and the inclined conveying section can adjust the conveying height of the storage parts 60 according to the height of the operating device 40 or the cold storage 50.

[0147] Optionally, the inclined conveying section may be inclined upward or downward along the conveying direction.

[0148] Alternatively, if Figures 11 to 17 As shown, the operating device 40 includes an operating table 41 and a docking device 42, which connects the outlet of the storage device 20 with the operating table 41; the docking device 42 is arranged on the operating table 41 and is located on one side of the conveyor belt; wherein the docking device 42 includes a hook 421, which can extend to the conveyor belt area, block the storage component 60, and drive the storage component 60 to move to the operating table 41.

[0149] In the operating device 40 of the disclosed embodiment, the operating table 41 is located at one side of the conveying device 30, and the docking device 42 can quickly transfer the storage element 60 conveyed by the conveying device 30 to the operating table 41 through the hook 421. In this way, the storage element 60 taken out from the storage device 20 can be transferred to one side of the operating table 41 by the conveying device 30 without manual transfer, and when the storage element 60 moves on the conveying device 30, the docking device 42 can directly transfer the storage element 60 conveyed by the conveying device 30 to the operating table 41 without manual pick-up, which further improves the efficiency of the storage element 60 transfer and saves manpower.

[0150] Optionally, the docking device 42 further includes a docking drive device, which is drivingly connected to the hook portion 421 and can drive the hook portion 421 to extend to the conveyor belt area or drive the hook portion 421 back to the operating platform 41 .

[0151] In the disclosed embodiment, the hook portion 421 can be drivably connected to the docking drive device, so that the hook portion 421 can be automatically retracted and extended, so that the hook portion 421 can hook the storage unit 60 back to the operating table 41 .

[0152] Optionally, the docking drive device includes an electric slider 43, which is connected to the hook 421; the inoculation table is also constructed with a slide rail 44, which extends from the inoculation table to the transmission belt, and the electric slider 43 can drive the hook 421 to move along the slide rail 44.

[0153] Optionally, the hook portion 421 includes a driving rod 422 and a blocking rod 423, the driving rod 422 is connected to the docking drive device; the blocking rod is arranged at the end of the driving rod 422 facing the conveyor belt, and extends in a direction opposite to the conveying direction of the conveyor belt, and the blocking rod forms an angle with the driving portion; wherein, when the hook portion 421 extends to the conveyor belt area, the driving rod 422 spans the conveyor belt and blocks the storage component 60 from moving with the conveyor belt, and the blocking rod can drive the conveying component to move toward the operating table 41.

[0154] In the disclosed embodiment, the driving rod 422 and the baffle rod 423 form a structure with an angle, wherein the baffle 110 can prevent the conveying member from continuing to move along the conveyor belt, and the driving rod 422 extends in the opposite direction of the conveyor belt. In this way, when the hook 421 moves toward the operating table 41, the driving rod 422 can drive the storage member 60 to move toward the operating table 41.

[0155] Optionally, the docking device 42 further includes a lifting cylinder 451 and a lifting platform 452, wherein the lifting cylinder 451 has openings at both the upper and lower ends; the lifting platform 452 is located in the lifting cylinder 451 and can be lifted and lowered along the lifting cylinder 451; wherein, when the hook 421 returns to the inoculation platform, the lifting platform 452 is located at the lower end opening 456 of the lifting cylinder 451, and the hook 421 corresponds to the lifting platform 452, and the hook 421 can drive the storage unit 60 to the lifting platform 452, and then the lifting platform 452 drives the storage unit 60 to rise along the lifting cylinder 451 to the upper end opening 455 of the lifting cylinder 451. Optionally, the driving rod 422 and the blocking rod 423 are vertically arranged.

[0156] Optionally, the driving rod 422 is arc-shaped toward the side wall of the lifting device 45 , which can increase the number of storage elements 60 that are blocked and pulled and avoid collision with the storage elements 60 .

[0157] In the disclosed embodiment, the lifting platform 452 and the lifting cylinder 451 can lift the storage element 60 hooked by the hook 421 to the height of the lifting cylinder 451 , so that the height of the storage element 60 can be adjusted to facilitate operation of the storage element 60 .

[0158] Optionally, the side wall of the lifting cylinder 451 is constructed with a lifting groove 457, which extends in the vertical direction. The docking device 42 also includes a lifting drive device, which is arranged on the outside of the lifting cylinder 451 and is connected to the lifting platform 452 through the lifting groove 457. The lifting drive device drives the lifting platform 452 to rise and fall.

[0159] In the disclosed embodiment, the lifting cylinder 451 is provided with a lifting groove 457 extending in the vertical direction and penetrating the side wall of the lifting cylinder 451 , so that the lifting drive device outside the lifting cylinder 451 can extend into the lifting cylinder 451 , so that the lifting drive device drives the lifting platform 452 to rise and fall along the lifting groove 457 .

[0160] Optionally, the lifting drive device includes a lifting motor 453 and a connecting rod 454 , and the connecting rod 454 passes through the lifting slot 457 and is connected between the lifting motor 453 and the lifting platform 452 to achieve automatic lifting of the lifting platform 452 .

[0161] Optionally, the connecting rod 454 may be a straight rod or a bent rod, and the lifting motor 453 may be arranged according to the space, and then the extending direction of the driving rod 422 may be arranged according to the lifting motor 453 .

[0162] In some other optional embodiments, the lifting drive device may be an electric push rod, which is located below the lifting platform 452 and can drive the lifting platform 452 to move up and down.

[0163] Optionally, the lifting entrance is located at the bottom of the lifting cylinder 451 and faces the conveyor belt, so that the hook 421 can drive the blocked storage element 60 directly into the lifting cylinder 451 and then be located on the lifting platform 452 .

[0164] Optionally, the lifting cylinder 451 is embedded in the operating table 41, and the upper end opening 455 of the lifting cylinder 451 is flush with the inoculation table. In the disclosed embodiment, the lifting cylinder 451 is embedded in the operating table 41, so that the lifting cylinder 451 and the operating table 41 are an integrated structure, so that the user can directly take the storage unit 60 raised to the lifting outlet on the operating table 41.

[0165] Optionally, the docking device 42 also includes a sliding surface, which is connected between the conveying device 30 and the lower end entrance of the lifting cylinder 451, and the sliding surface is flush with the conveyor belt and the lifting platform 452 located at the lower end entrance of the lifting cylinder 451, so that the hook 421 can pull the storage element 60 of the conveying device 30 along the sliding surface to the lifting platform 452.

[0166] Optionally, there are multiple operating tables 41 , which are arranged in sequence and spaced apart along the conveying direction of the conveying device 30 , wherein the number of the docking devices 42 is the same as that of the operating tables 41 and they correspond one to one.

[0167] In the disclosed embodiment, the operating device 40 may be provided with a plurality of operating tables 41, which facilitates simultaneous operation by multiple persons, such as inoculation operations, thereby improving work efficiency. Each operating table 41 is provided with a corresponding docking device 42, so that each operating table 41 can independently take the storage element 60 from the conveyor belt, thereby improving work efficiency.

[0168] Optionally, the workstation further includes a cold storage 50 , the feeding device 10 and the storage device 20 are located inside the cold storage 50 , the operating device 40 is located outside the cold storage 50 , and the conveying device 30 is connected between the storage device 20 and the operating device 40 .

[0169] In the disclosed embodiment, the cold storage 50 can have a cold air blower 22 and a refrigeration system. The refrigeration airflow in the cold storage 50 can flow into the storage device 20 and the feeding device 10 under the drive of the cold air blower 22, so that the storage device 20 and the feeding device 10 are both located in a low-temperature environment, thereby improving the refrigeration effect of the storage element 60 and maintaining activity. In addition, the operating device 40 is located outside the cold storage 50, so as to facilitate operations such as vaccination and packaging by external personnel. One end of the conveying device is located inside the cold storage 50, and the other end is located outside the cold storage 50, so as to achieve communication between the storage device 20 and the operating device 40.

[0170] Optionally, the conveying device 30 is disposed below the ground or above the ground.

[0171] In the disclosed embodiment, the conveying device 30 can be arranged below the ground or above the ground, which improves the installation flexibility of the transmission device. When the conveying device 30 is located below the ground, the workstation further includes a cover plate, the ground is recessed to form an installation groove, the conveying device 30 is located in the installation groove, the cover plate is arranged above the installation groove, and the installation groove is connected to the cold storage 50, so that the parts to be transported can always maintain a low temperature environment to ensure activity.

[0172] Optionally, when the conveying device 30 is located above the ground, the conveying device 30 also includes a conveying cover 46 and a conveying frame. The conveyor belt is arranged above the conveying frame, and the conveying cover 46 is arranged to cover the conveying frame and the conveyor belt. The conveying cover 46 and the conveying frame enclose a conveying cavity. One end of the conveying cavity can extend into the cold storage 50 or be connected to the cold storage 50, and the conveying cavity is connected to the cold storage 50, so that the cold air of the cold storage 50 can flow into the conveying cavity, so that the parts to be transported can always maintain a low temperature environment to ensure activity.

[0173] Optionally, the operating table 41 may be an inoculation table, a packaging table, a sorting table, or the like.

[0174] The above description and the accompanying drawings sufficiently illustrate the embodiments of the present disclosure to enable those skilled in the art to practice them. Other embodiments may include structural and other changes. The embodiments represent only possible variations. Unless explicitly required, individual components and functions are optional, and the order of operations may vary. Portions and features of some embodiments may be included in or replace portions and features of other embodiments. The embodiments of the present disclosure are not limited to the structures described above and shown in the accompanying drawings, and various modifications and changes may be made without departing from the scope thereof. The scope of the present disclosure is limited only by the appended claims.

Claims

1. A storage device, characterized in that, Comprising: A housing that defines a storage space with an air outlet and an air inlet, both the air inlet and the air outlet being in communication with the outside of the housing; Slides that are inclined and arranged in the storage space. The number of slides is multiple, and ventilation gaps are formed between adjacent slides. The slides are configured with chutes for placing storage components; A fan that is arranged in the storage space. The fan can drive the air flow in the storage space to flow out from the air outlet after passing through the ventilation gaps, and can drive the air flow outside the housing to flow back into the storage space through the air inlet, so as to form a circulating air duct inside and outside the housing.

2. The storage device according to claim 1, wherein Further comprising: A partition that is located in the storage space and divides the storage space into an air inlet chamber and an air outlet chamber. The air outlet chamber is located above the air inlet chamber, and the slides are located in the air outlet chamber; Wherein, the fan is arranged above the partition, and the fan drives the air flow in the air inlet chamber to flow towards the air outlet chamber.

3. The storage device according to claim 1, wherein the outer shell Comprising: The housing includes a first side wall, a second side wall, a third side wall, and a fourth side wall that are sequentially connected along the circumference of the storage space. The first side wall and the third side wall are oppositely arranged. The first side wall is provided with a feeding port, and the third side wall is provided with a discharging port. The second side wall and the fourth side wall are oppositely arranged; Wherein, the second side wall and / or the fourth side wall are provided with air outlets, and the air outlets correspond to the middle parts of multiple slides.

4. The storage device according to claim 3, wherein The slides are inclined downward along the direction from the feeding port to the discharging port. Among them, the angle between the slides and the horizontal direction is greater than or equal to 15° and less than or equal to 20°; or, the slides are inclined downward along the direction from the feeding port to the discharging port, and the angle between the slides and the horizontal direction is 18°.

5. The storage device according to claim 3, characterized in that, Further comprising: A manipulator that is movably arranged on one side of the feeding port. The manipulator is configured with a docking slide, and the manipulator can move to any chute and connect the docking slide with the inlet end of the chute.

6. The storage device according to claim 1, wherein Further comprising: A stop mechanism that is arranged at the outlet end of the chute for opening or closing the outlet end of the chute; And / or, A detection mechanism that is arranged at the outlet end of the chute for detecting whether a storage component passes through the outlet end of the chute.

7. The storage device according to claim 1, wherein The number of slides is multiple, and the multiple slides are sequentially arranged at intervals along the height direction of the housing; and / or, Each slide is configured with multiple chutes arranged side by side.

8. The storage device according to any one of claims 1 to 7, wherein The bottom wall of the slide is a flow strip, and the fan can drive the air flow to flow through the gaps of the flow strip.

9. A workstation, characterized in that, Comprising: A cold storage with a cooling fan; The storage device according to any one of claims 1 to 8, the storage device is located in the cold storage, and the cooling fan can drive the cold air flow into the storage space.

10. The workstation according to claim 9, characterized in that, Further comprising: A feeding device with a discharging channel that can be docked with the manipulator for transferring storage components to the docking slide of the manipulator.