Total triiodothyronine detection kit
By designing rebound components, fixing components and pressurization mechanisms in the total triiodothyroid thyroid acid detection kit, combined with limiting top plate and splint, the problem of fragility of glass test tubes in the kit is solved, and effective fixation and protection of test tubes are achieved.
Patent Information
- Application Number
- CN202421591151.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-08
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2034-07-08
AI Technical Summary
In the existing total triiodothyroid thyroid acid detection kit, the test tube rack lacks protection and limit structure for glass test tubes, which causes the glass test tubes to shake and break when they are carried and moved, causing loss of the detection sample.
A total triiodothyroid thyroid acid detection kit is designed, using a combination of rebound assembly, fixing assembly and pressing mechanism. Through the design of limiting top plate and splint, the glass test tube is fixed in the placement groove to avoid shaking.
It effectively prevents the glass test tube from shaking during the kit carrying and moving, avoids the loss of the detection sample, and at the same time achieves protection and limiting of the test tube.
Smart Images

Figure CN222860009U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of kits, and in particular to a total triiodothyronine detection kit. Background Art
[0002] In vitro diagnostic reagents and instruments are part of medical devices. Thyroid diseases are becoming more and more common in my country and are on the rise. Quantitative chemiluminescence detection of free triiodothyronine is an important technical means to diagnose thyroid diseases.
[0003] Existing patent application number CN201720103494.5 discloses a free triiodothyronine chemiluminescent quantitative detection kit, including a kit body, a test tube, a test tube rack, a hinge, a first upper cover, a buckle, a second upper cover, a tool slot, a drawer, a reagent bottle placement slot and a slot. One side of the kit body is provided with a first upper cover and a second upper cover, the first upper cover and the second upper cover are respectively hinged to the kit body by hinges, the first upper cover and the second upper cover are both provided with buckles, and the kit body is also provided with a slot matching the buckle, the kit body corresponding to the first upper cover is provided with a test tube rack, the test tube rack is provided with a test tube, and the kit body corresponding to the second upper cover is provided with a reagent bottle placement slot. This free triiodothyronine chemiluminescent quantitative detection kit can divide the kit into two by setting the first upper cover and the second upper cover, so that the test tube rack and the reagent utensils are separated, and the device is easy to carry.
[0004] The above scheme has the following shortcomings during implementation: since there is no structure in the test tube rack to protect and limit the glass test tube, the glass test tube is prone to shake up and down between the test tube rack and the first upper cover during the carrying and movement of the test kit, which makes the glass test tube prone to breakage and damage, thereby causing the loss of the test sample. Therefore, a rural water supply pipeline installation connection structure is needed to solve the above problem. Utility Model Content
[0005] The utility model aims to provide a total triiodothyronine detection kit, which solves the problem in the prior art that, due to the lack of a structure for protecting and limiting the glass test tube in the test tube rack, the glass test tube is prone to shake up and down between the test tube rack and the first upper cover during the carrying and movement of the kit, thereby causing the glass test tube to be easily broken and damaged, thereby causing the loss of the test sample.
[0006] The utility model provides the following technical scheme: a total triiodothyronine detection kit, comprising a kit, wherein a plurality of placement grooves are opened at the top of the kit, a plurality of circular grooves are opened at the left and right side ends of each placement groove, a rebound component is arranged in each circular groove, a fixing component is arranged between the side ends of each adjacent two rebound components, a pressing mechanism is arranged at the inner bottom end of each placement groove, and a glass test tube is placed at the top of each pressing mechanism.
[0007] As a preferred embodiment of the above technical solution, the rebound component includes a round rod, which is inserted from the placement groove into the circular groove, the side end of the round rod located in the circular groove is fixedly connected with a circular plate, and the outer end of the round rod is sleeved with a spring.
[0008] As a preferred embodiment of the above technical solution, the fixing assembly includes a splint, which is fixedly connected to the side end of the round rod, the top end of the splint is fixedly connected to a limited top plate, and the side end of the splint is fixedly connected to a plurality of silicone pads.
[0009] As a preferred embodiment of the above technical solution, the top side end of the limiting top plate is arc-shaped.
[0010] As a preferred embodiment of the above technical solution, the pressing mechanism includes a second spring, the second spring is fixedly connected to the inner bottom end of the placement groove, and the top end of the second spring is fixedly connected to a pressing plate.
[0011] As a preferred embodiment of the above technical solution, the glass test tube is located between the top end of the pressure plate and the bottom end of the limiting top plate.
[0012] As a preferred embodiment of the above technical solution, a tool slot is provided at the top of the reagent box, and a top cover is rotatably connected to the top of the reagent box.
[0013] Compared with the prior art, the beneficial effects of the utility model are:
[0014] The utility model arranges the rebound component, the fixing component and the pressing mechanism, and the glass test tube is inserted downward from the limit top plate and placed. Since the top side end of the limit top plate is arranged in an arc shape, when the bottom end of the glass test tube is pressed downward, the limit top plates and the clamping plates at both ends can be pushed open, and the glass test tube can enter between the clamping plates. When the bottom end of the glass test tube contacts the pressing plate, the glass test tube is continuously pressed downward until the cover of the glass test tube enters the inner side of the clamping plate and is located at the bottom end of the limit top plate, the glass test tube is installed. Spring 1 rebounds against the clamping plate, so that the clamping plate and the silicone pad always clamp and fix the side end of the glass test tube, and spring 2 also always rebounds against the pressure plate, and the pressure plate and the limiting top plate press and fix the bottom and top ends of the glass test tube, thereby achieving both protection and limitation of the glass test tube in the placement slot, and at the same time, during the process of carrying and moving the test kit, the glass test tube will not shake up and down in the placement slot, thereby avoiding the glass test tube from being broken and damaged due to up and down shaking, thereby avoiding the loss of test samples. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 This is a schematic diagram of the overall structure of a total triiodothyronine detection kit;
[0016] Figure 2 It is a schematic diagram of the cross-sectional structure of a total triiodothyronine detection kit;
[0017] Figure 3 for Figure 2 A is a schematic diagram of the partially enlarged structure of the middle part;
[0018] Figure 4 for Figure 2 Schematic diagram of the partially enlarged structure of B.
[0019] In the figure: 1. reagent box; 101. placement slot; 102. round slot; 103. tool slot; 2. round rod; 201. round plate; 202. spring 1; 203. clamping plate; 204. limit top plate; 205. silicone pad; 3. glass test tube; 4. spring 2; 401. pressure plate. DETAILED DESCRIPTION
[0020] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the accompanying drawings in the embodiments of the present invention.
[0021] like Figure 1-4As shown, the utility model provides a technical solution: a total triiodothyronine detection kit, comprising a kit 1, a tool groove 103 is provided at the top of the kit 1, a top cover is rotatably connected to the top of the kit 1, a plurality of placement grooves 101 are provided at the top of the kit 1, a plurality of circular grooves 102 are provided at the left and right sides of each placement groove 101, a rebound component is provided in each circular groove 102, a fixing component is provided between the side ends of each adjacent two rebound components, a pressing mechanism is provided at the bottom end of each placement groove 101, a glass test tube 3 is placed at the top of each pressing mechanism, and through the arrangement of the rebound component, the fixing component and the pressing mechanism, it is achieved that the glass test tube 3 in the placement groove 101 can be protected and limited, and at the same time, in the process of carrying and moving the kit 1, the glass test tube 3 will not shake up and down in the placement groove 101, thereby avoiding the glass test tube 3 from being broken and damaged due to shaking up and down, thereby avoiding the loss of the test sample.
[0022] As an implementation method in this embodiment, Figure 3 As shown, the rebound component includes a round rod 2, which is inserted from the placement groove 101 into the circular groove 102, and the side end of the round rod 2 located in the circular groove 102 is fixedly connected with a circular plate 201, and the outer end of the round rod 2 is sleeved with a spring 202, and the fixing component includes a clamping plate 203, and the clamping plate 203 is fixedly connected to the side end of the round rod 2, and the top of the clamping plate 203 is fixedly connected to a limited top plate 204, and the top side end of the limited top plate 204 is an arc setting, and the side end of the clamping plate 203 is fixedly connected with a plurality of silicone pads 205. In practice, the glass test tube 3 is inserted downward from the limited top plate 204 and placed. Since the top side end of the limited top plate 204 is an arc setting, when When the bottom end of the glass test tube 3 is pressed downward, the limiting top plates 204 and the clamping plates 203 at both ends can be pushed open, and the glass test tube 3 can enter between the clamping plates 203. At this time, the spring 202 rebounds against the clamping plates 203, so that the clamping plates 203 and the silicone pads 205 always clamp and fix the side ends of the glass test tube 3. The silicone pads 205 protect the side walls of the glass test tube 3, thereby facilitating the fixation of the glass test tube 3. With the use of the pressing mechanism, the glass test tube 3 in the placement slot 101 can be protected and limited. At the same time, during the carrying and moving of the reagent kit 1, the glass test tube 3 will not shake up and down in the placement slot 101.
[0023] As an implementation method in this embodiment, Figure 4As shown, the pressing mechanism includes a spring 24, which is fixedly connected to the inner bottom end of the placement groove 101, and the top of the spring 24 is fixedly connected to a pressing plate 401. The glass test tube 3 is located between the top of the pressing plate 401 and the bottom of the limit top plate 204. In practice, when the bottom end of the glass test tube 3 is pressed downward, the limit top plates 204 and the clamping plates 203 at both ends can be easily pushed open. At this time, the glass test tube 3 can enter between the clamping plates 203. When the bottom end of the glass test tube 3 contacts the pressing plate 401, the glass test tube 3 continues to be pressed downward until the glass After the cover of the test tube 3 enters the inner side of the clamping plate 203 and is located at the bottom end of the limiting top plate 204, the glass test tube 3 is installed. At this time, the spring 1 202 rebounds against the clamping plate 203, so that the clamping plate 203 and the silicone pad 205 always clamp and fix the side end of the glass test tube 3, and the spring 2 4 also always rebounds against the pressure plate 401. The pressure plate 401 and the limiting top plate 204 press and fix the bottom and top ends of the glass test tube 3, thereby avoiding the glass test tube 3 from being broken and damaged due to up and down shaking, thereby avoiding the loss of the test sample.
[0024] Furthermore, when the glass test tube 3 needs to be taken out, the limiting top plates 204 at both ends are pushed outward to separate from the top of the glass test tube 3. At this time, the spring 24 can move upward against the pressure plate 401, driving the glass test tube 3 to move upward, thereby facilitating the glass test tube 3 to be taken out of the placement groove 101.
[0025] Working principle: by inserting the glass test tube 3 downward from the limiting top plate 204, since the top side end of the limiting top plate 204 is set in an arc shape, when the bottom end of the glass test tube 3 is pressed downward, the limiting top plates 204 and the clamping plates 203 at both ends can be pushed open, and the glass test tube 3 can enter between the clamping plates 203. When the bottom end of the glass test tube 3 contacts the pressing plate 401, the glass test tube 3 is continuously pressed downward until the cover of the glass test tube 3 enters the inner side of the clamping plate 203 and is located at the bottom end of the limiting top plate 204. Then, the glass test tube 3 is installed. At this time, the spring 1 202 presses against the clamping plate 203. The spring 204 also always rebounds against the pressure plate 401, and the pressure plate 401 and the limiting top plate 204 press and fix the bottom and top ends of the glass test tube 3, thereby achieving the protection and limiting of the glass test tube 3 in the placement groove 101. At the same time, when the reagent kit 1 is carried and moved, the glass test tube 3 will not shake up and down in the placement groove 101, thereby avoiding the glass test tube 3 from being broken and damaged due to the up and down shaking, thereby avoiding the loss of the test sample.
[0026] When the glass test tube 3 needs to be taken out, the limiting top plates 204 at both ends are pushed outward to separate from the top of the glass test tube 3. At this time, the spring 24 can move upward against the pressure plate 401 to drive the glass test tube 3 upward, thereby facilitating the glass test tube 3 to be taken out of the placement groove 101.
[0027] The above embodiments are only used to illustrate the technical solution of the present invention, but not to limit it.
Claims
1. A total triiodothyronine detection kit, comprising the kit (1), characterized in that: The top of the reagent box (1) is provided with a plurality of placement grooves (101), the left and right side ends of each placement groove (101) are provided with a plurality of circular grooves (102), each circular groove (102) is provided with a rebound component, and a fixing component is provided between the side ends of each adjacent two rebound components, and the bottom end of each placement groove (101) is provided with a pressing mechanism, and a glass test tube (3) is placed on the top of each pressing mechanism.
2. A total triiodothyronine detection kit according to claim 1, characterized in that: The rebound component comprises a round rod (2), the round rod (2) being inserted from the placement groove (101) into the circular groove (102), the side end of the round rod (2) in the circular groove (102) being fixedly connected to a round plate (201), and the outer end of the round rod (2) being sleeved with a spring 1 (202).
3. A total triiodothyronine detection kit according to claim 2, characterized in that: The fixing assembly comprises a clamping plate (203), wherein the clamping plate (203) is fixedly connected to the side end of the round rod (2), the top end of the clamping plate (203) is fixedly connected to a limiting top plate (204), and the side end of the clamping plate (203) is fixedly connected to a plurality of silicone pads (205).
4. A total triiodothyronine detection kit according to claim 3, characterized in that: The top side end of the limiting top plate (204) is arranged in an arc shape.
5. A total triiodothyronine detection kit according to claim 3, characterized in that: The pressing mechanism comprises a second spring (4), wherein the second spring (4) is fixedly connected to the inner bottom end of the placement groove (101), and the top end of the second spring (4) is fixedly connected to a pressing plate (401).
6. A total triiodothyronine detection kit according to claim 5, characterized in that: The glass test tube (3) is located between the top end of the pressing plate (401) and the bottom end of the limiting top plate (204).
7. A total triiodothyronine detection kit according to claim 1, characterized in that: A tool slot (103) is provided at the top of the reagent box (1), and a top cover is rotatably connected to the top of the reagent box (1).
Citation Information
Patent Citations
Free triiodothyronine chemiluminescence quantitative determination kit
CN206497045U