Test tube storage mechanism capable of being freely combined and test tube placing device
The freely combinable test tube storage mechanism solves the problem that test tube racks cannot adapt to different quantity requirements, enabling accurate placement and storage of test tubes and improving the accuracy and efficiency of blood collection operations.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- THE FIRST AFFILIATED HOSPITAL OF XIAMEN UNIV
- Filing Date
- 2025-03-26
- Publication Date
- 2026-05-12
AI Technical Summary
The existing test tube racks cannot flexibly adapt to the needs of different numbers of blood samples, and the mixed placement of samples from multiple patients can easily lead to mis-taking or omission of information.
The design incorporates a freely combinable test tube storage mechanism. Through the combination of multiple test tube clips and fixing straps, it enables flexible splicing and storage of test tube clips. Combined with Velcro fastening, it ensures accurate placement and storage of test tubes.
It improves the accuracy and efficiency of blood collection operations, reduces the occurrence of incorrect or missed blood collections, and facilitates storage and delivery for testing.
Smart Images

Figure CN224221397U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of medical device technology, specifically relating to a freely combinable test tube storage mechanism and test tube placement device. Background Technology
[0002] In clinical practice, depending on the patient's condition, multiple blood samples are typically drawn for different tests. Different blood samples require different collection tubes, and blood must be drawn strictly in the order of the tests. Current clinically used test tube racks are usually designed with a fixed number of wells, which cannot meet the needs of patients with complex conditions who require more blood collection tubes. They also cannot flexibly accommodate different numbers of blood samples and other pathological samples. Furthermore, multiple blood samples from multiple patients are often placed in the same rack without clear separation markings, relying solely on barcode labels for identification, which may lead to misreading information or missing samples. Utility Model Content
[0003] The purpose of this invention is to overcome the shortcomings of the prior art and provide a test tube storage mechanism and test tube placement device that is easy to assemble and disassemble and can be freely combined to meet the different needs of patients.
[0004] The present invention adopts the following technical solution:
[0005] A freely combinable test tube storage mechanism includes multiple test tube clamps that are sequentially connected and a fixing strap for fixing the multiple test tube clamps.
[0006] The test tube clamp includes a splicing plate, elastic buckles disposed on the splicing plate for fixing blood collection tubes, and a first connector and a second connector respectively rotatably disposed on both sides of the splicing plate. The elastic buckles form a slot for inserting blood collection tubes. The first connector is rotatably connected to the second connector of the adjacent test tube clamp, and the second connector is rotatably connected to the first connector of the adjacent test tube clamp.
[0007] The fixing strap includes a fixing strap body and a first connecting part and a second connecting part respectively disposed at both ends of the fixing strap body. The first connecting part is connected to a first connecting member located at the end. The fixing strap body is arranged around the outer periphery of a plurality of test tube clamps, so that the second connecting part is detachably connected to the first connecting part.
[0008] Furthermore, the first connector includes a first connecting post connected to one side of the splicing plate, a first elastic connecting block disposed outside the first connecting post and connected to one end of the second connector, and a first connecting groove extending inward from the first elastic connecting block and the adjacent second connector facing each other.
[0009] Furthermore, the second connector includes a second connecting post connected to the other side of the splicing plate and a second elastic connecting block disposed outside the second connecting post and capable of being embedded in an adjacent first connecting groove.
[0010] Furthermore, two first rotating seats are formed on one side of the splicing plate, which are opposite each other. The first connecting column includes a first connecting column body and two first connecting rods disposed at the upper and lower ends of the first connecting column body. The two first connecting rods are respectively embedded in the opposite first rotating seats.
[0011] Furthermore, the first connecting part includes a first connecting segment connected to one end of the fixing strap body, a connecting buckle connected to the first connecting segment, and an elastic movable block disposed outside the connecting buckle that can be embedded in the first connecting groove of the end test tube clamp. The connecting buckle is arranged in a square shape.
[0012] Furthermore, the second connecting part includes a second connecting segment connected to the other end of the fixing band body and a positioning block connected to the second connecting segment. When the fixing band body is arranged around the outer periphery of multiple test tube clamps, the inner surface of the second connecting segment is detachably connected to the outer surface of the first connecting segment.
[0013] Furthermore, the fixing strap also includes a hook and loop side and a hook and loop side respectively disposed on its outer and inner surfaces.
[0014] Furthermore, the elastic buckle includes a fixing part with an opening on the side to cooperate with the blood collection tube, two arc-shaped limiting parts that are recessed inward on both sides of the opening, and a rubber layer disposed inside the slot and in contact with the outer surface of the blood collection tube, wherein the slot is disposed in the fixing part.
[0015] Furthermore, the splicing plate and the elastic buckle are integrally formed.
[0016] A test tube placement device includes a test tube rack, multiple slots disposed on the test tube rack, and a multiple test tube storage mechanism that can be embedded in the opposing slots.
[0017] As can be seen from the above description of this utility model, compared with the prior art, the beneficial effects of this utility model are as follows: By defining the specific structure of the test tube storage mechanism, this application allows multiple test tube clamps to cooperate with each other through the first connecting member and the second connecting member of the adjacent test tube clamps. Medical staff select multiple test tube clamps corresponding to the patient's test items and splice them together, and embed the required multiple blood collection test tubes into the corresponding slots, realizing one test tube storage mechanism per person. This facilitates medical staff in verifying patient information, effectively reduces the occurrence of incorrect or missed blood collection, and improves the work efficiency of medical staff. Moreover, during the blood collection process, multiple test tube clamps are neatly arranged in a long strip on the table, and medical staff collect blood in sequence according to the blood collection order, which improves the accuracy of the blood collection operation. At the same time, after the blood collection is completed, the spliced multiple test tube clamps are rolled into a cylindrical shape by the fixing strap, which is convenient for storage and delivery for testing. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the test tube storage mechanism.
[0019] Figure 2 This is an exploded view of the test tube storage mechanism.
[0020] Figure 3 This is a schematic diagram of the exploded structure of multiple test tube clamps assembled together.
[0021] Figure 4 This is a schematic diagram of the exploded structure of a test tube clamp.
[0022] Figure 5 This is a structural diagram of the connecting buckle.
[0023] Figure 6 This is a schematic diagram showing the fit between the test tube storage mechanism and the slot.
[0024] In the diagram: 1. Test tube clamp; 11. Splicing plate; 111. First rotating seat; 12. Elastic buckle; 13. First connector; 131. First connecting post; 132. First elastic connecting block; 133. First connecting groove; 134. First connecting post body; 135. First connecting rod; 14. Second connector; 141. Second connecting post; 142. Second elastic connecting block; 15. Slot; 16. Fixing part; 17. Arc-shaped limiting part; 18. Rubber layer; 2. Fixing strap; 21. First connecting part; 22. Second connecting part; 23. First connecting section; 24. Connecting buckle; 25. Elastic movable block; 26. Second connecting section; 27. Positioning block; 28. Velcro surface; 29. Velcro hook surface; 3. Test tube rack; 31. Slot. Detailed Implementation
[0025] The present invention will be further described below through specific embodiments.
[0026] like Figures 1 to 6 As shown, this embodiment provides a test tube placement device, including a test tube rack 3, multiple slots 31 disposed on the test tube rack 3, and multiple test tube storage mechanisms that can be embedded in the relative slots 31. The test tube storage mechanism includes multiple test tube clamps 1 connected in sequence and a fixing strap 2 for fixing the multiple test tube clamps 1.
[0027] The test tube clamp 1, made of elastic material, includes a splicing plate 11, elastic buckles 12 on the splicing plate 11 for fixing blood collection tubes, and a first connecting member 13 and a second connecting member 14 rotatably disposed on both sides of the splicing plate 11. The elastic buckles 12 form slots 15 for inserting blood collection tubes. The first connecting member 13 is rotatably connected to the second connecting member 14 of the adjacent test tube clamp 1, and the second connecting member 14 is rotatably connected to the first connecting member 13 of the adjacent test tube clamp 1. Through the cooperation of the first connecting member 13 and the second connecting member 14 of the adjacent test tube clamp 1, medical staff can select and assemble multiple test tube clamps 1 corresponding to the patient's test items, realizing a one-person-one-test-tube storage mechanism, which is convenient for medical staff to verify the patient's test items. This information is used to effectively reduce the occurrence of incorrect or missed blood collections and improve the work efficiency of medical staff. Specifically, the first connecting member 13 includes a first connecting post 131 connected to one side of the splicing plate 11, a first elastic connecting block 132 disposed outside the first connecting post 131 and connected to one end of the second connecting member 14, and a first connecting groove 133 extending inward from the first elastic connecting block 132 and the adjacent second connecting member 14. The second connecting member 14 includes a second connecting post 141 connected to the other side of the splicing plate 11 and a second elastic connecting block 142 disposed outside the second connecting post 141 that can be embedded in the adjacent first connecting groove 133. Furthermore, in the pre-blood collection process, medical staff first connect multiple test tube clamps 1 to the adjacent test tubes through the first connecting groove 133. The second elastic connecting blocks 142 of the test tube clamp 1 are sequentially spliced together, and multiple blood collection test tubes required by the patient are embedded into the corresponding slots 15 of the test tube clamp 1. The operation is simple and saves time for medical staff. Then, during the blood collection process, the medical staff unfolds the spliced multiple test tube clamps 1 into a long strip and arranges them neatly on the table. The medical staff collects blood in the order of blood collection, which improves the accuracy of the blood collection operation. Furthermore, two first rotating seats 111 with upper and lower opposite sides are formed on one side of the splicing plate 11. The first connecting column 131 includes a first connecting column body 134 and two first connecting rods 135 set at the upper and lower ends of the first connecting column body 134. The two first connecting rods 135 are respectively embedded in the corresponding first rotating seats 111. Furthermore, the second connecting... The structure of the column 141 is the same as that of the first connecting column 131, and the way it cooperates with the splicing plate 11 is the same as that of the first connecting column 131 and the splicing plate 11. The second connecting column 141 will not be described in detail here. Furthermore, the elastic buckle 12 includes a fixing part 16 with an opening on the side to cooperate with the blood collection tube, two arc-shaped limiting parts 17 that are recessed inward on both sides of the opening, and a rubber layer 18 that is disposed inside the slot 15 and contacts the outer surface of the blood collection tube. The slot 15 is disposed in the fixing part 16. By adding the rubber layer 18 inside the slot 15, the friction between the slot 15 and the blood collection tube is increased, preventing the blood collection tube from moving freely in the slot 15. Furthermore, the splicing plate 11 and the elastic buckle 12 are integrally formed.
[0028] The fixing strap 2 includes a fixing strap body and a first connecting portion 21 and a second connecting portion 22 respectively disposed at both ends of the fixing strap body. The first connecting portion 21 is connected to a first connecting member 13 located at the end. The fixing strap body is arranged around the outer periphery of multiple test tube clamps 1, so that the outer surface of the second connecting portion 22 is detachably connected to the outer surface of the first connecting portion 21. After blood collection, the fixing strap 2 is used to roll up the spliced multiple test tube clamps 1 into a roll shape, so that it is inserted upright into the corresponding slots 31 for easy storage and delivery. Specifically, the first connecting portion 21 includes a first connecting section 23 connected to one end of the fixing strap body, a connecting buckle 24 connected to the first connecting section 23, and an elastic movable block 25 disposed outside the connecting buckle 24 that can be embedded in the first connecting groove 133 of the end test tube clamp 1. The second connecting part 22 includes a second connecting section 26 connected to the other end of the fixing band body and a positioning block 27 connected to the second connecting section 26. When the fixing band body is arranged around the periphery of the multiple test tube clamps 1, the inner surface of the second connecting section 26 is detachably connected to the outer surface of the first connecting section 23. Furthermore, the connecting buckle 24 is arranged in a U-shape. Furthermore, the fixing band body is integrally formed with the first connecting section 23 and the second connecting section 26. Furthermore, the fixing band 2 also includes a hook and loop fastener 28 and a hook and loop fastener 29 respectively provided on its outer and inner surfaces. The hook and loop fastener 28 and the hook and loop fastener 29 are used to attach the inner surface of the second connecting section 26 to the outer surface of the first connecting section 23 to fix the multiple test tube clamps 1 inside the fixing band 2.
[0029] In summary, by utilizing the above-mentioned technical solution of this utility model, through the cooperation of the first connecting member 13 and the second connecting member 14 of the adjacent test tube clamp 1, medical staff can select multiple test tube clamps 1 corresponding to the patient's test items and splice them together, realizing a test tube storage mechanism for each person. This facilitates medical staff in verifying patient information, effectively reduces the occurrence of incorrect or missed blood collection, and improves the work efficiency of medical staff. In addition, during the blood collection process, the spliced multiple test tube clamps 1 are unfolded into long strips and neatly arranged on the table. Medical staff collect blood in sequence according to the blood collection order, which improves the accuracy of the blood collection operation. Furthermore, the multiple spliced test tube clamps 1 are rolled into a cylindrical shape by the fixing strap 2 and inserted upright into the corresponding slot 31 for convenient storage and delivery for testing.
[0030] The above description is merely a preferred embodiment of the present utility model, and therefore cannot be construed as limiting the scope of the present utility model. All equivalent changes and modifications made in accordance with the scope of the present utility model application and the contents of the specification should still fall within the scope of the present utility model application.
Claims
1. A freely combinable test tube storage mechanism, characterized in that: It includes multiple test tube clamps that are assembled in sequence and a fixing strap for securing the multiple test tube clamps; The test tube clamp includes a splicing plate, elastic buckles disposed on the splicing plate for fixing blood collection tubes, and a first connector and a second connector respectively rotatably disposed on both sides of the splicing plate. The elastic buckles form a slot for inserting blood collection tubes. The first connector is rotatably connected to the second connector of the adjacent test tube clamp, and the second connector is rotatably connected to the first connector of the adjacent test tube clamp. The fixing strap includes a fixing strap body and a first connecting part and a second connecting part respectively disposed at both ends of the fixing strap body. The first connecting part is connected to a first connecting member located at the end. The fixing strap body is arranged around the outer periphery of a plurality of test tube clamps, so that the outer surface of the second connecting part is detachably connected to the outer surface of the first connecting part.
2. The freely combinable test tube storage mechanism according to claim 1, characterized in that: The first connector includes a first connecting post connected to one side of the splicing plate, a first elastic connecting block disposed outside the first connecting post and connected to one end of the second connector, and a first connecting groove extending inward from the first elastic connecting block and the adjacent second connector.
3. The freely combinable test tube storage mechanism according to claim 2, characterized in that: The second connector includes a second connecting post connected to the other side of the splicing plate and a second elastic connecting block disposed outside the second connecting post and capable of being embedded in an adjacent first connecting groove.
4. The freely combinable test tube storage mechanism according to claim 2, characterized in that: The splicing plate has two first rotating seats that are opposite each other on one side. The first connecting column includes a first connecting column body and two first connecting rods disposed at the upper and lower ends of the first connecting column body. The two first connecting rods are respectively embedded in the opposite first rotating seats.
5. The freely combinable test tube storage mechanism according to claim 2, characterized in that: The first connecting part includes a first connecting segment connected to one end of the fixing strap body, a connecting buckle connected to the first connecting segment, and an elastic movable block disposed outside the connecting buckle and can be embedded in the first connecting groove of the end test tube clamp. The connecting buckle is arranged in a square shape.
6. The freely combinable test tube storage mechanism according to claim 5, characterized in that: The second connecting part includes a second connecting segment connected to the other end of the fixing band body and a positioning block connected to the second connecting segment. When the fixing band body is arranged around the outer periphery of multiple test tube clamps, the inner surface of the second connecting segment is detachably connected to the outer surface of the first connecting segment.
7. The freely combinable test tube storage mechanism according to claim 1, characterized in that: The fastening strap includes a hook and loop side and a hook and loop side respectively disposed on its outer and inner surfaces.
8. The freely combinable test tube storage mechanism according to claim 1, characterized in that: The elastic buckle includes a fixing part with an opening on the side to cooperate with the blood collection tube, two arc-shaped limiting parts that are recessed inward on both sides of the opening, and a rubber layer that is disposed inside the slot and contacts the outer surface of the blood collection tube. The slot is disposed in the fixing part.
9. The freely combinable test tube storage mechanism according to claim 1, characterized in that: The splicing plate and the elastic buckle are integrally formed.
10. A test tube placement device, characterized in that: It includes a test tube rack, a plurality of slots disposed on the test tube rack, and a plurality of test tube storage mechanisms as described in any one of claims 1 to 9 that can be embedded in the opposing slots.