Separation and extraction equipment for tetanus human immune globulin

By designing a rotating disk and clamping rod inside the protective shell to fix the test tube, and combining the threaded column and power assembly to control the amount of extract, the problems of test tube unevenness and shaking in existing equipment are solved, and the efficient and stable separation and extraction of tetanus human immunoglobulin is achieved.

CN223474486UActive Publication Date: 2025-10-28BANGHE PHARMA CO LTD
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Patent Information

Application Number
CN202422936615.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-29
Publication Date
2025-10-28
Estimated Expiration
2034-11-29

AI Technical Summary

Technical Problem

When the existing tetanus human immunoglobulin separation and extraction equipment is used, the extract in the test tube is uneven and easily shakes when rotated, which affects the extraction efficiency and increases the risk of breakage.

Method used

A device consisting of a protective shell, a rotating disk, a clamping rod, a threaded column and a power assembly was designed. The test tube was fixed by the clamping rod to ensure uniform separation, and the threaded column and power assembly were used to control the amount of extract in the test tube to achieve uniform separation and stable rotation.

Benefits of technology

The uniformity and stability of the extract in the test tube are achieved, the quality and efficiency of separation and extraction are ensured, and the risk of test tube breakage is reduced.

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Abstract

The utility model belongs to the technical field of separation and extraction equipment, and particularly relates to tetanus human immune globulin separation and extraction equipment which comprises a protective shell, a rotating disc is rotatably mounted in the protective shell, a plurality of placement cavities and a first power cavity are formed in the rotating disc, and clamping rods are slidably mounted in the first power cavity and located on the two sides of the placement cavities; one end of the clamping rod penetrates through the power cavity I and extends into the corresponding placing cavity; the driving assembly is located in the protective shell and used for driving the rotating disc to rotate and driving the multiple clamping rods to slide; the fixed block is fixedly mounted on one side of the protective shell, a sliding groove is formed in the fixed block, and a storage tank is slidably mounted in the sliding groove, so that the positions of the plurality of test tubes can be clamped and fixed, the stability of the test tubes during rotation is ensured, and meanwhile, to-be-extracted products in the plurality of test tubes are ensured to be the same; the same time and rotating speed required by separation and extraction of a plurality of test tubes are ensured, and the same quality of separated and extracted products is ensured.
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Description

Technical Field

[0001] This utility model belongs to the technical field of separation and extraction equipment, and in particular relates to a separation and extraction device for tetanus immunoglobulin. Background Technology

[0002] Tetanus immunoglobulin is a blood product prepared from the plasma of healthy individuals. It contains high-titer tetanus antibodies that can neutralize tetanus toxin. It is mainly used for the prevention and treatment of tetanus. It provides temporary immune protection to the human body through passive immunization and is suitable for those who do not respond to active immunization with tetanus vaccine or have incomplete immunity.

[0003] Most equipment for separating and extracting tetanus immunoglobulin has several drawbacks. For example, during operation, operators must manually inject unequal amounts of extract into multiple test tubes, resulting in varying extraction times and rotation speeds for each tube, thus affecting overall extraction efficiency. Furthermore, the lack of proper fixation of the test tubes during rotation increases the risk of breakage due to vibration. Therefore, we propose a new device for separating and extracting tetanus immunoglobulin. Utility Model Content

[0004] The purpose of this invention is to provide a device for separating and extracting tetanus immunoglobulin, so as to solve the problems mentioned in the background art.

[0005] In view of this, the present invention provides a device for separating and extracting tetanus immunoglobulin, comprising:

[0006] A protective shell, in which a rotating disk is rotatably installed, and the rotating disk has several placement cavities and a power cavity. In the power cavity, a clamping rod is slidably installed on both sides of the several placement cavities. One end of the clamping rod passes through the power cavity and extends into the corresponding placement cavity.

[0007] A drive assembly, located within a protective housing, is used to drive the rotating disk to rotate and to slide several clamping rods.

[0008] A fixed block is fixedly installed on one side of the protective shell. A sliding groove is provided in the fixed block, and a storage tank is slidably installed in the sliding groove. A threaded column is rotatably installed in the sliding groove. The upper end of the threaded column passes through the storage tank and the sliding groove and extends to the outside. The threaded column is threadedly connected to the storage tank. The storage tank has several storage cavities and a power cavity. Two discs are rotatably installed in the power cavity. The two discs are located on the upper and lower sides of the several storage cavities, respectively. Several through holes are provided on the discs, and the several through holes are respectively connected to the several storage cavities.

[0009] A power unit, located inside the storage tank, is used to drive the rotation of two disks.

[0010] In this technical solution, when it is necessary to separate and extract tetanus immunoglobulin, firstly, several test tubes are placed into several placement cavities. Through the set drive component, several clamping rods can be driven to slide, and then the clamping rods can clamp and fix the positions of several test tubes. Finally, the threaded column is rotated, and under the action of the thread, the storage tank slides downward. When several discharge pipes at the bottom of the storage tank are inserted into several test tubes, the set power component can drive two discs to rotate in the forward direction. When several through holes at the top are no longer connected to several storage cavities, several through holes at the bottom are connected to several storage cavities. Finally, the extract to be extracted in several storage cavities enters several test tubes, ensuring that the amount of extract to be extracted in several test tubes is the same, ensuring that the time and rotation speed required for separation and extraction of several test tubes are the same, and ensuring that the quality of separation and extraction is the same. Through the set power component, the two discs can be driven to rotate in the reverse direction. When several through holes at the bottom are no longer connected to several storage cavities, several through holes at the top are connected to several storage cavities. Finally, the extract to be extracted in the storage tank enters several storage cavities.

[0011] The staff first seals several test tubes. Through the set drive component, the rotating disk can be driven to rotate, and the rotating disk drives the test tubes to rotate. The rotation of the test tubes can separate the tetanus immunoglobulin inside. The above reverse operation can be used to remove the fixation of the test tubes.

[0012] In the above technical solution, the driving component further includes:

[0013] The second power chamber is located inside the protective shell. A motor is fixedly installed inside the second power chamber. A gear is fixedly installed on the output shaft of the motor. A gear is meshed with a gear two fixed to the rotating disk on one side of the gear one. Both the gear one and the gear two are rotatably connected to the second power chamber.

[0014] A cylinder is fixedly installed inside the second power chamber and directly below the second gear. The output end of the cylinder passes through the second gear and the protective shell and extends into the first power chamber. A fixed column is rotatably installed on the output end of the cylinder. A sliding frame is fixedly installed on the top of the fixed column. The sliding frame has several guide grooves. Guide columns are slidably installed in each of the several guide grooves. The several guide columns are located on one side of several clamping rods and are fixedly connected to the several clamping rods. The output end of the cylinder is slidably connected to the second power chamber, the second gear, the protective shell, and the first power chamber. The fixed column and the sliding frame are both slidably connected to the first power chamber.

[0015] In this technical solution, when it is necessary to separate and extract tetanus immunoglobulin, firstly, several test tubes are placed into several placement cavities, then the cylinder is activated. The output end of the cylinder drives the first fixed column, the sliding frame and several second fixed columns to slide downward. The sliding frame drives several guide columns to slide through several guide grooves, and the several guide columns drive several clamping rods to slide. Then, the several clamping rods can clamp and fix the position of several test tubes respectively.

[0016] The staff first seals several test tubes, starts the motor and drives gear one to rotate. Gear one drives gear two, which meshes with it, to rotate. Gear two drives a rotating disk to rotate, and the rotating disk drives several test tubes to rotate. The rotation of the test tubes can separate the tetanus immunoglobulin inside them. Then, by reversing the above operation, the fixation of the test tubes can be removed.

[0017] In the above technical solution, the power component further includes:

[0018] Gear 3 is rotatably mounted inside power cavity 3 and located between two disks. The upper and lower ends of gear 3 are fixedly connected to the two disks respectively. A rack is meshed on one side of gear 3. Several springs fixed to the inner wall of power cavity 3 are fixedly mounted on one end of rack. The other end of rack passes through power cavity 3 and extends to the outside. Rack is slidably connected to power cavity 3.

[0019] In this technical solution, the operator pushes the rack towards the springs, while several springs are compressed and contracted. The rack drives the gear three meshing with it to rotate in the forward direction. The gear three drives the two discs to rotate in the forward direction. When the several through holes above are no longer connected to the several storage cavities, the several through holes below are connected to the several storage cavities respectively. Finally, the extracts to be extracted from the several storage cavities enter several test tubes respectively, ensuring that the amount of extracts in the several test tubes is the same, ensuring that the time and rotation speed required for separation and extraction in the several test tubes are the same, and ensuring that the quality of the separated extracts is the same. Then, the rack is released. Under the action of the rebound force of several springs, the rack slides away from the springs. The rack drives the gear three meshing with it to rotate in the reverse direction. The gear three drives the two discs to rotate in the reverse direction. When the several through holes below are no longer connected to the several storage cavities, the several through holes above are connected to the several storage cavities respectively. Finally, the extracts to be extracted from the storage tank enter the several storage cavities respectively.

[0020] In the above technical solution, further, a plurality of fixed columns two are fixedly installed on the fixed column one, the plurality of fixed columns two are respectively located at the bottom of a plurality of placement cavities, and the upper ends of the plurality of fixed columns two all penetrate the power cavity one and extend into the plurality of placement cavities respectively, the plurality of fixed columns two are slidably connected to the plurality of placement cavities respectively, and the plurality of fixed columns two are all slidably connected to the power cavity one.

[0021] In this technical solution, several fixed columns slide upwards to push several test tubes out of several placement cavities, making it convenient for staff to retrieve the test tubes.

[0022] In the above technical solution, furthermore, the plurality of storage cavities and the plurality of placement cavities are all distributed in a ring with equal spacing, and the plurality of through holes on the two disks are distributed in an alternating manner.

[0023] In this technical solution, the uniformity and stability of tetanus immunoglobulin extraction are ensured, and the amount of extract to be extracted in several storage cavities is the same.

[0024] In the above technical solution, a sealing cover is further hinged to the top of the protective shell.

[0025] In this technical solution, the protective shell can be sealed by the sealing cover.

[0026] In the above technical solution, further, a plurality of discharge pipes are fixedly installed at the bottom of the storage tank, and the plurality of discharge pipes are respectively connected to a plurality of storage cavities.

[0027] In this technical solution, it is ensured that the extracts in several storage cavities can be respectively introduced into several test tubes through several discharge pipes.

[0028] The beneficial effects of this utility model are:

[0029] 1. The tetanus immunoglobulin separation and extraction equipment, when it is necessary to separate and extract tetanus immunoglobulin, firstly, several test tubes are placed into several placement chambers respectively, then the cylinder is started, the output end of the cylinder drives the fixed column one, the sliding frame and several fixed columns two to slide downwards, the sliding frame drives several guide columns to slide through several guide grooves, the several guide columns drive several clamping rods to slide, and then the several clamping rods can clamp and fix the position of several test tubes respectively to ensure the stability of the test tubes during rotation.

[0030] 2. This tetanus immunoglobulin separation and extraction device, through a set power component, can drive two discs to rotate in the forward direction. When the upper through holes are no longer connected to the storage chambers, the lower through holes are connected to the storage chambers respectively. Finally, the extracts in the storage chambers are respectively entered into the test tubes, ensuring that the amount of extracts in the test tubes is the same, ensuring that the separation and extraction time and rotation speed required for the test tubes are the same, and ensuring that the quality of the separated and extracted products is the same. Attached Figure Description

[0031] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0032] Figure 2This is one of the schematic diagrams of the cross-sectional structure of the protective shell of this utility model;

[0033] Figure 3 This is the second schematic diagram of the cross-sectional structure of the protective shell of this utility model;

[0034] Figure 4 This is one of the schematic diagrams of a partial explosion structure of this utility model;

[0035] Figure 5 This is the second schematic diagram of the partial explosion structure of this utility model;

[0036] Figure 6 This is a schematic diagram of the cross-sectional structure of the fixing block of this utility model;

[0037] Figure 7 This is one of the schematic diagrams of the cross-sectional structure of the storage tank of this utility model;

[0038] Figure 8 This is a schematic diagram of the three-region structure of the gear of this utility model;

[0039] Figure 9 This is the second schematic diagram of the cross-sectional structure of the storage tank of this utility model.

[0040] The markings in the diagram are as follows:

[0041] 1. Protective shell; 2. Rotating disk; 3. Threaded column; 4. Placement cavity; 5. Power cavity one; 6. Clamping rod; 7. Fixing block; 8. Sliding groove; 9. Storage tank; 10. Storage cavity; 11. Disc; 12. Through hole; 13. Power cavity two; 14. Motor; 15. Gear one; 16. Gear two; 17. Cylinder; 18. Fixing column one; 19. Sliding frame; 20. Guide groove; 21. Guide column; 22. Gear three; 23. Rack; 24. Spring; 25. Power cavity three; 26. Fixing column two; 27. Sealing cover. Detailed Implementation

[0042] The technical solutions of the embodiments of this application will be clearly described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this application. All other embodiments obtained by those skilled in the art based on the embodiments of this application are within the scope of protection of this application.

[0043] In the description of this application, it should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the exemplary embodiments according to this application. For ease of description, the dimensions of the various parts shown in the drawings are not drawn to actual scale. Techniques, methods, and devices known to those skilled in the art may not be discussed in detail, but where appropriate, such techniques, methods, and devices should be considered part of the specification. In all examples shown and discussed herein, any specific values ​​should be interpreted as merely exemplary and not as limitations. Therefore, other examples of exemplary embodiments may have different values. It should be noted that similar reference numerals and letters in the following drawings denote similar items, and therefore, once an item is defined in one drawing, it need not be further discussed in subsequent drawings.

[0044] It should be noted that the terms "first," "second," etc., used in the specification and claims of this application are used to distinguish similar objects and not to describe a specific order or sequence. It should be understood that such use of data can be interchanged where appropriate so that embodiments of this application can be implemented in orders other than those illustrated or described herein, and the objects distinguished by "first," "second," etc., are generally of the same class and are not limited in number; for example, a first object can be one or more. Furthermore, in the specification and claims, "and / or" indicates at least one of the connected objects, and the character " / " generally indicates that the preceding and following objects are in an "or" relationship.

[0045] It should be noted that in the description of this application, the directional terms such as "front, back, up, down, left, right", "horizontal, vertical, horizontal" and "top, bottom" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description. Unless otherwise stated, these directional terms do not indicate or imply that the device or element referred to must have a specific orientation or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation on the scope of protection of this application. The directional terms "inner" and "outer" refer to the inner and outer contours relative to the outline of each component itself.

[0046] It should be noted that, in this application, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes that element. Furthermore, it should be noted that the scope of the methods and apparatuses in the embodiments of this application is not limited to performing functions in the order shown or discussed, but may also include performing functions substantially simultaneously or in the reverse order, depending on the functions involved. For example, the described methods may be performed in a different order than described, and various steps may be added, omitted, or combined. Additionally, features described with reference to certain examples may be combined in other examples.

[0047] Example 1:

[0048] Please see Figure 1 - Figure 9 As shown, this embodiment provides a device for separating and extracting tetanus immunoglobulin, comprising:

[0049] The protective shell 1 has a rotating disk 2 rotatably installed inside it. The rotating disk 2 has several placement cavities 4 and a power cavity 5. Clamping rods 6 are slidably installed in the power cavity 5 on both sides of the placement cavities 4. One end of the clamping rod 6 passes through the power cavity 5 and extends into the corresponding placement cavity 4.

[0050] The drive assembly is located inside the protective shell 1 and is used to drive the rotating disk 2 to rotate and several clamping rods 6 to slide.

[0051] A fixing block 7 is fixedly installed on one side of the protective shell 1. A sliding groove 8 is provided in the fixing block 7. A storage tank 9 is slidably installed in the sliding groove 8. A threaded column 3 is rotatably installed in the sliding groove 8. The upper end of the threaded column 3 passes through the storage tank 9 and the sliding groove 8 and extends to the outside. The threaded column 3 is threadedly connected to the storage tank 9. A number of storage cavities 10 and a power cavity 25 are provided in the storage tank 9. Two discs 11 are rotatably installed in the power cavity 25. The two discs 11 are located on the upper and lower sides of the number of storage cavities 10 respectively. A number of through holes 12 are provided on the discs 11. The number of through holes 12 are respectively connected to the number of storage cavities 10.

[0052] The power unit is located inside the storage tank 9 and is used to drive the two disks 11 to rotate.

[0053] When it is necessary to separate and extract tetanus immunoglobulin, several test tubes are first placed into several placement cavities 4. A drive assembly then moves several clamping rods 6, which clamp and fix the test tubes in place. Finally, the threaded column 3 is rotated, causing the storage tank 9 to slide downwards. After several discharge pipes at the bottom of the storage tank 9 are inserted into the test tubes, a power assembly drives two discs 11 to rotate forward. When the through holes 12 above are no longer connected to the storage cavities 10... The lower through holes 12 are connected to the storage chambers 10 respectively. Finally, the extracts in the storage chambers 10 are transferred into the test tubes respectively, ensuring that the amount of extracts in the test tubes is the same, ensuring that the time and rotation speed required for separation and extraction in the test tubes are the same, and ensuring that the quality of the separated extracts is the same. Through the set power component, the two discs 11 can be driven to rotate in opposite directions. When the lower through holes 12 are no longer connected to the storage chambers 10, the upper through holes 12 are connected to the storage chambers 10 respectively, and finally the extracts in the storage tank 9 are transferred into the storage chambers 10 respectively.

[0054] The staff first seals several test tubes. Through the set drive component, the rotating disk 2 can be driven to rotate. The rotating disk 2 drives several test tubes to rotate. The rotation of several test tubes can separate the tetanus immunoglobulin inside them. The above reverse operation can remove the fixation of several test tubes.

[0055] In this embodiment, the driving component includes:

[0056] The second power chamber 13 is located inside the protective shell 1. A motor 14 is fixedly installed inside the second power chamber 13. A gear 15 is fixedly installed on the output shaft of the motor 14. A gear 2 16 fixed to the rotating disk 2 is meshed on one side of the gear 15. Both the gear 15 and the gear 2 16 are rotatably connected to the second power chamber 13.

[0057] Cylinder 17 is fixedly installed in power chamber 2 13 and located directly below gear 2 16. The output end of cylinder 17 passes through gear 2 16 and protective shell 1 and extends into power chamber 1 5. A fixed post 18 is rotatably installed on the output end of cylinder 17. A sliding frame 19 is fixedly installed on the top of fixed post 18. Several guide grooves 20 are opened on the sliding frame 19. Guide posts 21 are slidably installed in each of the several guide grooves 20. The several guide posts 21 are located on one side of several clamping rods 6, and the several guide posts 21 are fixedly connected to the several clamping rods 6. The output end of cylinder 17 is slidably connected to power chamber 2 13, gear 2 16, protective shell 1 and power chamber 1 5. Fixed post 18 and sliding frame 19 are slidably connected to power chamber 1 5.

[0058] When it is necessary to separate and extract tetanus immunoglobulin, firstly, several test tubes are placed into several placement cavities 4 respectively. Then, cylinder 17 is activated. The output end of cylinder 17 drives the first fixed column 18, the sliding frame 19 and several second fixed columns 26 to slide downward. The sliding frame 19 drives several guide columns 21 to slide through several guide grooves 20 respectively. The several guide columns 21 drive several clamping rods 6 to slide respectively. Then, the several clamping rods 6 can clamp and fix the position of several test tubes respectively.

[0059] The staff first seals several test tubes, starts motor 14 and drives gear 15 to rotate. Gear 15 drives gear 2 16, which meshes with it, to rotate. Gear 2 16 drives rotating disk 2 to rotate. Rotating disk 2 drives several test tubes to rotate. The rotation of several test tubes can separate the tetanus immunoglobulin inside them. Then, by reversing the above operation, the fixation of several test tubes can be removed.

[0060] In this embodiment, the power assembly includes:

[0061] Gear 3 22 is rotatably installed inside power cavity 3 25 and located between two disks 11. The upper and lower ends of gear 3 22 are fixedly connected to the two disks 11 respectively. A rack 23 is meshed on one side of gear 3 22. Several springs 24 fixed to the inner wall of power cavity 3 25 are fixedly installed on one end of rack 23. The other end of rack 23 passes through power cavity 3 25 and extends to the outside. Rack 23 is slidably connected to power cavity 3 25.

[0062] In this process, the staff pushes the rack 23 to slide towards the spring 24, while several springs 24 are compressed and contracted. The rack 23 drives the gear 3 22 meshing with it to rotate in the forward direction. The gear 3 22 drives the two discs 11 to rotate in the forward direction. When the several through holes 12 above are no longer connected to the several storage cavities 10, the several through holes 12 below are connected to the several storage cavities 10 respectively. Finally, the extract to be extracted in the several storage cavities 10 enters several test tubes respectively, ensuring that the amount of extract to be extracted in the several test tubes is the same, ensuring that the time and rotation speed required for the separation and extraction of the several test tubes are the same, and ensuring that the quality of the separated extract is the same. Then, the rack 23 is released. Under the action of the rebound force of the several springs 24, the rack 23 slides away from the springs 24. The rack 23 drives the gear 3 22 meshing with it to rotate in the reverse direction. The gear 3 22 drives the two discs 11 to rotate in the reverse direction. When the several through holes 12 below are no longer connected to the several storage cavities 10, the several through holes 12 above are connected to the several storage cavities 10 respectively. Finally, the extract to be extracted in the storage tank 9 enters the several storage cavities 10 respectively.

[0063] Example 2:

[0064] This embodiment provides a device for separating and extracting tetanus immunoglobulin, which, in addition to the technical solutions of the above embodiments, also has the following technical features.

[0065] In this embodiment, a plurality of fixed posts 26 are fixedly installed on the fixed post 18. The fixed posts 26 are located at the bottom of the plurality of placement cavities 4, and the upper ends of the fixed posts 26 penetrate the power cavity 5 and extend into the plurality of placement cavities 4. The fixed posts 26 are slidably connected to the plurality of placement cavities 4, and the fixed posts 26 are slidably connected to the power cavity 5.

[0066] Among them, several fixed columns 26 slide upward to push several test tubes out of several placement cavities 4, making it convenient for staff to take the test tubes.

[0067] Example 3:

[0068] This embodiment provides a device for separating and extracting tetanus immunoglobulin, which, in addition to the technical solutions of the above embodiments, also has the following technical features.

[0069] In this embodiment, the storage cavities 10 and the placement cavities 4 are all distributed in a ring with equal spacing, and the through holes 12 on the two disks 11 are distributed in an alternating manner.

[0070] This includes ensuring the uniformity and stability of tetanus immunoglobulin extraction, and guaranteeing that the amount of extract to be extracted is the same in several storage cavities 10.

[0071] Example 4:

[0072] This embodiment provides a device for separating and extracting tetanus immunoglobulin, which, in addition to the technical solutions of the above embodiments, also has the following technical features.

[0073] In this embodiment, a sealing cap 27 is hinged to the top of the protective shell 1.

[0074] The protective shell 1 can be sealed by the sealing cover 27.

[0075] Example 5:

[0076] This embodiment provides a device for separating and extracting tetanus immunoglobulin, which, in addition to the technical solutions of the above embodiments, also has the following technical features.

[0077] In this embodiment, a plurality of discharge pipes are fixedly installed at the bottom of the storage tank 9, and the plurality of discharge pipes are respectively connected to a plurality of storage cavities 10.

[0078] Specifically, it is ensured that the extracts in several storage cavities 10 can be respectively introduced into several test tubes through several discharge pipes.

[0079] Working principle: When it is necessary to separate and extract tetanus immunoglobulin, firstly, several test tubes are placed into several placement chambers 4. Then, cylinder 17 is activated. The output end of cylinder 17 drives the fixed column 18, sliding frame 19, and several fixed columns 26 to slide downward. The sliding frame 19 drives several guide columns 21 to slide through several guide grooves 20. The guide columns 21 drive several clamping rods 6 to slide. Then, the clamping rods 6 can clamp and fix the position of several test tubes. Finally, the threaded column 3 is rotated. Under the action of the thread, the storage tank 9 slides downward. After several discharge pipes at the bottom of the storage tank 9 are inserted into several test tubes, the operator pushes the rack 23 to slide towards the spring 24. At the same time, several springs 24 are compressed and contracted. The rack 23 drives the gear 3 22 meshing with it to rotate forward. The gear 3 22 drives two When the disk 11 rotates in the forward direction, and the upper through holes 12 are no longer connected to the storage cavities 10, the lower through holes 12 are connected to the storage cavities 10 respectively. Finally, the extracts to be extracted from the storage cavities 10 enter the test tubes respectively, ensuring that the amount of extracts in the test tubes is the same, ensuring that the time and rotation speed required for separation and extraction of the test tubes are the same, and ensuring that the quality of the separated extracts is the same. Then, the rack 23 is released, and under the action of the rebound force of the springs 24, the rack 23 slides away from the springs 24. The rack 23 drives the gear 3 22 meshing with it to rotate in the opposite direction. The gear 3 22 drives the two disks 11 to rotate in the opposite direction. When the lower through holes 12 are no longer connected to the storage cavities 10, the upper through holes 12 are connected to the storage cavities 10 respectively. Finally, the extracts to be extracted from the storage tank 9 enter the storage cavities 10 respectively.

[0080] First, the staff seals several test tubes, then rotates the sealing cap 27 downwards to seal the protective shell 1. The motor 14 is started and drives gear 15 to rotate. Gear 15 drives gear 2 16, which meshes with it, to rotate. Gear 2 16 drives the rotating disk 2 to rotate. The rotating disk 2 drives several test tubes to rotate. The rotation of several test tubes can separate the tetanus immunoglobulin inside them. Finally, the sealing cap 27 is rotated upwards. By reversing the above operation, the several test tubes can be unfixed. At the same time, several fixing posts 26 push several test tubes out of several placement cavities 4, making it convenient for the staff to take out the test tubes.

[0081] The embodiments of this application have been described above with reference to the accompanying drawings. Unless otherwise specified, the embodiments and features in the embodiments of this application can be combined with each other. This application is not limited to the specific embodiments described above. The specific embodiments described above are merely illustrative and not restrictive. Those skilled in the art can make many other forms under the guidance of this application without departing from the spirit and scope of the claims, and all of these forms are within the protection scope of this application.

Claims

1. A device for separating and extracting tetanus immunoglobulin, characterized in that, include: A protective shell (1) is provided, and a rotating disk (2) is rotatably installed inside the protective shell (1). The rotating disk (2) is provided with several placement cavities (4) and a power cavity (5). A clamping rod (6) is slidably installed in the power cavity (5) and on both sides of the several placement cavities (4). One end of the clamping rod (6) passes through the power cavity (5) and extends into the corresponding placement cavity (4). A drive assembly located inside a protective housing (1) and used to drive the rotating disk (2) to rotate and a plurality of clamping rods (6) to slide. A fixing block (7) is fixedly installed on one side of the protective shell (1). A sliding groove (8) is provided in the fixing block (7). A storage tank (9) is slidably installed in the sliding groove (8). A threaded column (3) is rotatably installed in the sliding groove (8). The upper end of the threaded column (3) passes through the storage tank (9) and the sliding groove (8) and extends to the outside. The threaded column (3) is threadedly connected to the storage tank (9). A plurality of storage cavities (10) and a power cavity three (25) are provided in the storage tank (9). Two discs (11) are rotatably installed in the power cavity three (25). The two discs (11) are located on the upper and lower sides of the plurality of storage cavities (10) respectively. A plurality of through holes (12) are provided on the discs (11). The plurality of through holes (12) are connected to the plurality of storage cavities (10) respectively. A power unit located inside the storage tank (9) is used to drive the two disks (11) to rotate.

2. The device for separating and extracting tetanus immunoglobulin according to claim 1, characterized in that, The driving component includes: Power cavity two (13) is opened inside the protective shell (1). A motor (14) is fixedly installed inside the power cavity two (13). A gear one (15) is fixedly installed on the output shaft of the motor (14). A gear two (16) fixed to the rotating disk (2) is meshed on one side of the gear one (15). Both the gear one (15) and the gear two (16) are rotatably connected to the power cavity two (13). The cylinder (17) is fixedly installed in the second power chamber (13) and located directly below the second gear (16). The output end of the cylinder (17) passes through the second gear (16), the protective shell (1) and extends into the first power chamber (5). The output end of the cylinder (17) is rotatably mounted with a first fixed column (18). The top of the first fixed column (18) is fixedly mounted with a sliding frame (19). The sliding frame (19) is provided with several guide grooves (20). Guide columns (21) are slidably installed in several guide grooves (20). Several guide columns (21) are located on one side of several clamping rods (6) respectively, and several guide columns (21) are fixedly connected to several clamping rods (6) respectively. The output end of the cylinder (17) is slidably connected to the second power chamber (13), the second gear (16), the protective shell (1) and the first power chamber (5). The first fixed column (18) and the sliding frame (19) are slidably connected to the first power chamber (5).

3. The device for separating and extracting tetanus immunoglobulin according to claim 2, characterized in that, The power assembly includes: Gear 3 (22) is rotatably installed in power cavity 3 (25) and located between two discs (11). The upper and lower ends of gear 3 (22) are fixedly connected to the two discs (11) respectively. A rack (23) is meshed on one side of gear 3 (22). A number of springs (24) fixed to the inner wall of power cavity 3 (25) are fixedly installed on one end of rack (23). The other end of rack (23) passes through power cavity 3 (25) and extends to the outside. Rack (23) is slidably connected to power cavity 3 (25).

4. The device for separating and extracting tetanus immunoglobulin according to claim 2, characterized in that, A plurality of fixed columns two (26) are fixedly installed on the fixed column one (18). The plurality of fixed columns two (26) are located at the bottom of the plurality of placement cavities (4), and the upper ends of the plurality of fixed columns two (26) penetrate the power cavity one (5) and extend into the plurality of placement cavities (4). The plurality of fixed columns two (26) are slidably connected to the plurality of placement cavities (4), and the plurality of fixed columns two (26) are slidably connected to the power cavity one (5).

5. The device for separating and extracting tetanus immunoglobulin according to claim 1, characterized in that, The storage cavities (10) and the placement cavities (4) are all distributed in a ring at equal intervals, and the through holes (12) on the two disks (11) are distributed in an alternating pattern.

6. The device for separating and extracting tetanus immunoglobulin according to claim 1, characterized in that, The top of the protective shell (1) is hinged with a sealing cap (27).

7. The device for separating and extracting tetanus immunoglobulin according to claim 1, characterized in that, The bottom of the storage tank (9) is fixedly equipped with several discharge pipes, which are respectively connected to several storage cavities (10).