APOE gene detection kit with temperature indication function
Patent Information
- Application Number
- CN202522245343.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-23
- Publication Date
- 2026-09-25
- Estimated Expiration
- 2035-10-23
AI Technical Summary
[0004]针对现有技术的不足,本实用新型提供了一种带温度指示功能的APOE基因检测试剂盒,解决了其自身的冷却装置还需要手动进行更换的问题
[0012]本实用新型提供了一种带温度指示功能的APOE基因检测试剂盒。与现有技术相比具备以下有益效果:
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Figure CN224798888U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of gene detection technology, specifically to an APOE gene detection kit with temperature indication function. Background Technology
[0002] Gene testing is a technology that detects DNA through blood, other bodily fluids, or cells. An existing patent for a gene testing kit (patent publication number CN216972543U) includes: a box body and a temperature-regulating base disposed within the box body. The temperature-regulating base has multiple placement slots for placing test tubes. The walls of the placement slots have flow channel structures, each including multiple interconnected sub-channels distributed circumferentially along the placement slots. These sub-channels are used to circulate heat exchange media. The solution provided in this application allows the heat exchange media flowing within the sub-channels to exchange heat with the reagents placed in the placement slots through the slot walls. The circumferential distribution of the sub-channels stabilizes the reagent temperature, and the interconnected sub-channels ensure uniform temperature distribution of the reagents in different areas of the temperature-regulating base, thereby improving the accuracy of the test results.
[0003] Regarding the aforementioned technologies, the inventors believe that the following drawbacks exist: although they can detect genes, their own cooling devices need to be manually replaced, which leads to continuous temperature fluctuations and reduces the accuracy of the detection. Therefore, we propose an APOE gene detection kit with temperature indication function to solve the above-mentioned problems. Utility Model Content
[0004] To address the shortcomings of existing technologies, this invention provides an APOE gene detection kit with a temperature indicator function, which solves the problem that its own cooling device still needs to be manually replaced.
[0005] To achieve the above objectives, this utility model is implemented through the following technical solution: an APOE gene detection kit with temperature indication function, including a placement component, wherein the placement component is used to limit the position of the reaction tube; A sealing assembly is provided, wherein multiple sealing assemblies are arranged in a rectangular array, and the sealing assemblies are disposed in the inner cavity of the placement assembly, and the sealing assemblies are used to improve the sealing performance of the placement assembly; A temperature control component, disposed on one side of the placement component, is used to regulate the temperature of the heat exchange medium; and A microcontroller is disposed on one side of the placement component, and a touch screen all-in-one machine is disposed on the side of the microcontroller.
[0006] Preferably, the placement component includes a placement box, with an installation groove centrally located on the top surface of the placement box. A limiting block is provided inside the installation groove, and a placement groove is provided on the top surface of the limiting block. Multiple placement grooves are provided, arranged in a rectangular array. Each placement groove has a guide plate inside its cavity. Fixing grooves are provided on both sides of the upper center position on one side surface of the placement box.
[0007] Preferably, the sealing assembly includes a sealing ring disposed on one side of the guide plate, a temperature sensor disposed on one side of the bottom surface of the sealing ring, and reinforcing rods disposed on both sides of the center position of the bottom surface of the sealing ring.
[0008] Preferably, reinforcing rods are provided on both sides of the center position of the bottom surface of the sealing ring, and the reinforcing rods are used to strengthen the strength of the guide plate.
[0009] Preferably, the temperature control component includes a liquid storage box disposed on one side of the placement box. Two infusion pumps are disposed on both sides of the upper center of one side surface of the liquid storage box. Two infusion pumps are connected to a fixed tank. Each infusion pump has a delivery pipe at its output end. A recovery pipe is disposed directly below each delivery pipe. The liquid storage box has a liquid storage chamber inside. Multiple infusion pipes are disposed on both sides of the delivery pipes, arranged in a linear array. Multiple connection pipes are disposed on both sides of the recovery pipe, arranged in a linear array. A valve is disposed on the outside of the recovery pipe.
[0010] Preferably, a metal plate is provided on one side of the liquid storage chamber, a semiconductor Peltier module is provided on one side of the metal plate, a heat dissipation body is provided on the outside of the semiconductor Peltier module, an L-plate is provided on the bottom surface of the metal plate, a battery is provided in the inner cavity of the L-plate, and a charging port is provided on one side of the battery.
[0011] Preferably, each of the inlet tubes is provided with a control valve on its outer side, the control valve being used to control the inlet tube. Beneficial effects
[0012] This invention provides an APOE gene detection kit with temperature indication function. Compared with the prior art, it has the following advantages: This APOE gene detection kit with temperature indication function allows for temperature adjustment. First, the placement component is positioned in a preset location. Then, a sealing component is fixedly connected to the inner cavity of the placement component. Since a temperature control component is fixedly connected to one side of the placement component, it provides support for both the sealing and temperature control components. This allows the operator to place the reaction tube inside the placement component. The temperature control and sealing components are then controlled via a microcontroller and a touchscreen interface, enabling precise temperature adjustment of the heat exchange medium. This ensures the detection environment within the reaction tube remains within the optimal temperature range. Operators simply input the required temperature parameters on the touchscreen interface, and the microcontroller quickly receives the command and controls the temperature control component to adjust the temperature accordingly. Throughout the detection process, the microcontroller continuously monitors temperature changes and displays the current temperature in real-time on the touchscreen interface, allowing operators to easily monitor the temperature status of the detection environment. Attached Figure Description
[0013] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a schematic diagram of the exploded structure of the placement component of this utility model; Figure 3 This is a schematic diagram of the sealing assembly structure of this utility model; Figure 4 This is a schematic diagram of the temperature control component structure of this utility model; Figure 5 This is a schematic cross-sectional view of the temperature control component of this utility model; Figure 6 This is a schematic diagram of structure A of this utility model.
[0014] In the diagram: 1. Placement component; 11. Placement box; 12. Mounting slot; 13. Limiting block; 14. Placement slot; 15. Guide plate; 16. Fixing slot; 2. Sealing component; 21. Sealing ring; 22. Temperature sensor; 23. Reinforcing rod; 3. Temperature control component; 31. Liquid storage box; 32. Infusion pump; 33. Delivery pipe; 34. Recovery pipe; 35. Liquid storage chamber; 36. Metal plate; 37. Semiconductor Peltier module; 38. Heat sink; 39. L-plate; 310. Battery; 311. Charging port; 312. Inlet pipe; 313. Control valve; 314. Connecting pipe; 4. Microcontroller; 5. Touch screen all-in-one machine. Detailed Implementation
[0015] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0016] Please see Figure 1 - Figure 6 This utility model provides a technical solution: an APOE gene detection kit with temperature indication function, including a placement component 1, which is used to limit the reaction tube; a sealing component 2, of which multiple sealing components 2 are arranged in a rectangular array and disposed in the inner cavity of the placement component 1, which is used to improve the sealing performance of the placement component 1; a temperature regulating component 3, which is disposed on one side of the placement component 1 and is used to regulate the temperature of the heat exchange medium; and a microcontroller 4, which is disposed on one side of the placement component 1 and has a touch screen all-in-one device 5 disposed on one side of the microcontroller 4; When temperature adjustment is required, the placement component 1 is first placed in the preset position, and then the sealing component 2 is fixedly connected to the inner cavity of the placement component 1. Since the temperature regulating component 3 is fixedly connected to one side of the placement component 1, the placement component 1 can provide support for the sealing component 2 and the temperature regulating component 3, allowing the operator to place the reaction tube in the inner cavity of the placement component 1. Then, the temperature regulating component 3 and the sealing component 2 are controlled by the microcontroller 4 and the touch screen all-in-one machine 5, so that the temperature of the heat exchange medium can be precisely adjusted, thereby ensuring that the detection environment inside the reaction tube is within the optimal temperature range. The operator only needs to input the required temperature parameters on the touch screen all-in-one machine 5, and the microcontroller 4 will quickly receive the instruction and control the temperature regulating component 3 to make the corresponding temperature adjustment. Throughout the detection process, the microcontroller 4 continuously monitors the temperature changes and displays the current temperature in real time through the touch screen all-in-one machine 5, making it convenient for the operator to keep track of the temperature status of the detection environment at any time.
[0017] See Figure 1 , Figure 2 The placement component 1 includes a placement box 11. A mounting groove 12 is provided at the center of the top surface of the placement box 11. A limiting block 13 is provided in the inner cavity of the mounting groove 12. A placement groove 14 is provided on the top surface of the limiting block 13. Multiple placement grooves 14 are provided and distributed in a rectangular array. A guide plate 15 is provided in the inner cavity of each placement groove 14. Fixing grooves 16 are provided on both sides of the upper center of one side surface of the placement box 11. The placement box 11 in the placement component 1 can be placed in a preset position and also provides an installation base for the installation slot 12. Since the inner cavity of the installation slot 12 is fixedly connected to the limiting block 13, and the top surface of the limiting block 13 is provided with a placement slot 14, and multiple placement slots 14 are provided, and the inner cavity of each placement slot 14 is fixedly connected to the guide plate 15, a cavity can be formed between the guide plate 15 and the placement slot 14, so that the operator can place the reaction tube in the inner cavity of the guide plate 15. Since the upper center position of one side surface of the placement box 11 is provided with fixing slots 16 on both sides, and the fixing slots 16 are connected to the temperature control component 3, the temperature control component 3 can add the heat exchange medium into the cavity formed between the guide plate 15 and the placement slot 14, so that the heat exchange medium can regulate the temperature of the reaction tube to achieve the appropriate temperature environment required for APOE gene detection.
[0018] See Figure 1 , Figure 3 The sealing assembly 2 includes a sealing ring 21, which is disposed on one side of the guide plate 15. A temperature sensor 22 is disposed on one side of the bottom surface of the sealing ring 21. Reinforcing rods 23 are disposed on both sides of the center position of the bottom surface of the sealing ring 21. The reinforcing rods 23 are used to strengthen the strength of the guide plate 15. The sealing ring 21 in the sealing assembly 2 can be fixedly connected to one side of the guide plate 15 and also serve as a support for the temperature sensor 22. This allows the guide plate 15 to support the sealing ring 21, which in turn supports the temperature sensor 22, enabling the temperature sensor 22 to monitor the temperature of the heat exchange medium and ensure a suitable temperature environment for APOE gene detection. Since reinforcing rods 23 are fixedly connected to both sides of the bottom surface of the sealing ring 21, the sealing ring 21 supports the reinforcing rods 23, which in turn increases the strength between the guide plate 15 and the placement groove 14, thereby improving the strength of the guide plate 15.
[0019] See Figure 1 , Figure 4 - Figure 6The temperature control component 3 includes a liquid storage box 31, which is located on one side of the placement box 11. Two infusion pumps 32 are positioned on either side of the upper center of one side surface of the liquid storage box 31. The two infusion pumps 32 are connected to the fixing tank 16. Each infusion pump 32 has a delivery pipe 33 at its output end. A recovery pipe 34 is positioned directly below each delivery pipe 33. A liquid storage chamber 35 is formed inside the liquid storage box 31. Multiple infusion pipes 312 are arranged in a linear array on both sides of the delivery pipes 33. Connecting pipes 34 are positioned on both sides of the recovery pipes 34. 14. Multiple connecting pipes 314 are provided, and the multiple connecting pipes 314 are distributed in a linear array. A valve is provided on the outside of the recovery pipe 34. A metal plate 36 is provided on one side of the liquid storage chamber 35. A semiconductor Peltier module 37 is provided on one side of the metal plate 36. A heat dissipation body 38 is provided on the outside of the semiconductor Peltier module 37. An L-plate 39 is provided on the bottom surface of the metal plate 36. A battery 310 is provided in the inner cavity of the L-plate 39. A charging port 311 is provided on one side of the battery 310. A control valve 313 is provided on the outside of each inlet pipe 312. The control valve 313 is used to control the inlet pipe 312. The liquid storage box 31 in the temperature control component 3 can be fixedly connected to one side of the placement box 11 and also provides an installation base for the two infusion pumps 32. Since the two infusion pumps 32 are connected to the fixing groove 16, and the output ends of the two infusion pumps 32 are fixedly connected to the delivery pipes 33, and the bottom of the two delivery pipes 33 are fixedly connected to the recovery pipes 34, and the inner cavity of the liquid storage box 31 has a liquid storage chamber 35, the operator can add the heat exchange medium into the inner cavity of the liquid storage chamber 35, and then the infusion pumps 32 can pump the heat exchange medium in the inner cavity of the liquid storage chamber 35 into the inner cavity of the delivery pipes 33. Since the delivery pipes 33 are fixedly connected to both sides with multiple inlet pipes 312, and the recovery pipes 34 are fixedly connected to both sides, the liquid storage box 31 has a liquid storage chamber 35. Since the delivery pipes 33 are fixedly connected to both sides with multiple inlet pipes 312, and the recovery pipes 34 are fixedly connected to both sides with multiple inlet pipes 312, the liquid storage box 31 has a liquid storage chamber 35. Since the delivery pipes 312 ... have multiple in All are fixedly connected with connecting pipes 314, and there are multiple connecting pipes 314, so that the delivery pipe 33 can deliver the heat exchange medium to the inner cavity of the inlet pipe 312, and then the inlet pipe 312 can deliver the heat exchange medium to the corresponding inner cavity, so that the heat exchange medium can regulate the temperature of the reaction tube. Then, through the connecting pipes 314, the input end of the connecting pipe 314 is connected to the bottom end of the corresponding cavity, so that the heat exchange medium can flow back to the inner cavity of the recovery pipe 34 through the connecting pipe 314, and then the recovery pipe 34 can deliver the heat exchange medium back to the inner cavity of the storage chamber 35, so as to form a cycle. Since the recovery pipe 34 is fixedly connected to the outside of the valve, and through the microcontroller 4 and the touch screen all-in-one machine 5, it can be controlled. The recovery pipe 34 is controlled to open and close as needed. A metal plate 36 is fixedly connected to one side of the liquid storage chamber 35, and a semiconductor Peltier module 37 is fixedly connected to one side of the metal plate 36. A heat sink 38 is fixedly connected to the outside of the semiconductor Peltier module 37. The Peltier module can be reverse-energized to change its cold side to a hot side, allowing the semiconductor Peltier module 37 to regulate the temperature of the heat exchange medium in the liquid storage chamber 35. This enables the heat sink 38 to dissipate the heat generated by the semiconductor Peltier module 37 during operation, ensuring its continuous and stable operation. Then, through the microcontroller 4 and the touch screen all-in-one machine 5, precise... The temperature of the heat exchange medium is controlled to meet the specific temperature requirements of the reaction tube at different detection stages, ensuring the temperature stability of the reaction environment during APOE gene detection and improving the accuracy and reliability of the detection results. Since the bottom surface of the metal plate 36 is fixedly connected to the L plate 39, and the inner cavity of the L plate 39 is fixedly connected to the battery 310, and the side of the battery 310 is fixedly connected to the charging port 311, the L plate 39 can protect the battery 310, and the staff can charge the battery through the charging port 311. This provides stable and continuous power support for the temperature control system and other electrical components of the entire kit, ensuring that the APOE gene detection process will not be interrupted due to power problems.
[0020] During operation, when temperature adjustment is required, the placement component 1 is first placed in the preset position, and then the sealing component 2 is fixedly connected to the inner cavity of the placement component 1. Since the temperature regulating component 3 is fixedly connected to one side of the placement component 1, the placement component 1 can provide support for the sealing component 2 and the temperature regulating component 3, allowing the operator to place the reaction tube in the inner cavity of the placement component 1. Then, the temperature regulating component 3 and the sealing component 2 are controlled by the microcontroller 4 and the touch screen all-in-one machine 5, thereby accurately adjusting the temperature of the heat exchange medium and ensuring that the detection environment inside the reaction tube is within the optimal temperature range. The operator only needs to input the required temperature parameters on the touch screen all-in-one machine 5, and the microcontroller 4 will quickly receive the instruction and control the temperature regulating component 3 to make the corresponding temperature adjustment. Throughout the detection process, the microcontroller 4 continuously monitors temperature changes and displays the current temperature in real time through the touch screen all-in-one machine 5, allowing the operator to keep track of the temperature status of the detection environment at any time.
[0021] The placement box 11 in the placement component 1 can be placed in a preset position and also provides an installation base for the installation slot 12. Since the inner cavity of the installation slot 12 is fixedly connected to the limiting block 13, and the top surface of the limiting block 13 is provided with a placement slot 14, and multiple placement slots 14 are provided, and the inner cavity of each placement slot 14 is fixedly connected to the guide plate 15, a cavity can be formed between the guide plate 15 and the placement slot 14, so that the operator can place the reaction tube in the inner cavity of the guide plate 15. Since the upper center position of one side surface of the placement box 11 is provided with fixing slots 16 on both sides, and the fixing slots 16 are connected to the temperature control component 3, the temperature control component 3 can add the heat exchange medium into the cavity formed between the guide plate 15 and the placement slot 14, so that the heat exchange medium can regulate the temperature of the reaction tube to achieve the appropriate temperature environment required for APOE gene detection.
[0022] The sealing ring 21 in the sealing assembly 2 can be fixedly connected to one side of the guide plate 15 and also serve as a support for the temperature sensor 22. This allows the guide plate 15 to support the sealing ring 21, which in turn supports the temperature sensor 22, enabling the temperature sensor 22 to monitor the temperature of the heat exchange medium and ensure a suitable temperature environment for APOE gene detection. Since reinforcing rods 23 are fixedly connected to both sides of the bottom surface of the sealing ring 21, the sealing ring 21 supports the reinforcing rods 23, which in turn increases the strength between the guide plate 15 and the placement groove 14, thereby improving the strength of the guide plate 15.
[0023] The liquid storage box 31 in the temperature control component 3 can be fixedly connected to one side of the placement box 11 and also provides an installation base for the two infusion pumps 32. Since the two infusion pumps 32 are connected to the fixing groove 16, and the output ends of the two infusion pumps 32 are fixedly connected to the delivery pipes 33, and the bottom of the two delivery pipes 33 are fixedly connected to the recovery pipes 34, and the inner cavity of the liquid storage box 31 has a liquid storage chamber 35, the operator can add the heat exchange medium into the inner cavity of the liquid storage chamber 35, and then the infusion pumps 32 can pump the heat exchange medium in the inner cavity of the liquid storage chamber 35 into the inner cavity of the delivery pipes 33. Since the delivery pipes 33 are fixedly connected to both sides with multiple inlet pipes 312, and the recovery pipes 34 are fixedly connected to both sides, the liquid storage box 31 has a liquid storage chamber 35. Since the delivery pipes 33 are fixedly connected to both sides with multiple inlet pipes 312, and the recovery pipes 34 are fixedly connected to both sides with multiple inlet pipes 312, the liquid storage box 31 has a liquid storage chamber 35. Since the delivery pipes 312 ... have multiple in All are fixedly connected with connecting pipes 314, and there are multiple connecting pipes 314, so that the delivery pipe 33 can deliver the heat exchange medium to the inner cavity of the inlet pipe 312, and then the inlet pipe 312 can deliver the heat exchange medium to the corresponding inner cavity, so that the heat exchange medium can regulate the temperature of the reaction tube. Then, through the connecting pipes 314, the input end of the connecting pipe 314 is connected to the bottom end of the corresponding cavity, so that the heat exchange medium can flow back to the inner cavity of the recovery pipe 34 through the connecting pipe 314, and then the recovery pipe 34 can deliver the heat exchange medium back to the inner cavity of the storage chamber 35, so as to form a cycle. Since the recovery pipe 34 is fixedly connected to the outside of the valve, and through the microcontroller 4 and the touch screen all-in-one machine 5, it can be controlled. The recovery pipe 34 is controlled to open and close as needed. A metal plate 36 is fixedly connected to one side of the liquid storage chamber 35, and a semiconductor Peltier module 37 is fixedly connected to one side of the metal plate 36. A heat sink 38 is fixedly connected to the outside of the semiconductor Peltier module 37. The Peltier module can be reverse-energized to change its cold side to a hot side, allowing the semiconductor Peltier module 37 to regulate the temperature of the heat exchange medium in the liquid storage chamber 35. This enables the heat sink 38 to dissipate the heat generated by the semiconductor Peltier module 37 during operation, ensuring its continuous and stable operation. Then, through the microcontroller 4 and the touch screen all-in-one machine 5, precise... The temperature of the heat exchange medium is controlled to meet the specific temperature requirements of the reaction tube at different detection stages, ensuring the temperature stability of the reaction environment during APOE gene detection and improving the accuracy and reliability of the detection results. Since the bottom surface of the metal plate 36 is fixedly connected to the L plate 39, and the inner cavity of the L plate 39 is fixedly connected to the battery 310, and the side of the battery 310 is fixedly connected to the charging port 311, the L plate 39 can protect the battery 310, and the staff can charge the battery through the charging port 311. This provides stable and continuous power support for the temperature control system and other electrical components of the entire kit, ensuring that the APOE gene detection process will not be interrupted due to power problems.
[0024] In summary, this device can both regulate the temperature and cool it down as needed, eliminating the need for manual replacement and ensuring that the temperature does not fluctuate continuously, thus ensuring the accuracy of the detection.
[0025] Furthermore, any content not described in detail in this specification is existing technology known to those skilled in the art.
Claims
1. An APOE gene detection kit with temperature indication function, characterized in that: include: Placement assembly (1), which is used to limit the reaction tube; A sealing component (2) is provided in multiple ways, and the multiple sealing components (2) are distributed in a rectangular array. The sealing component (2) is disposed in the inner cavity of the placement component (1). The sealing component (2) is used to improve the sealing performance of the placement component (1). A temperature control component (3) is disposed on one side of the placement component (1), and the temperature control component (3) is used to regulate the temperature of the heat exchange medium; and A microcontroller (4) is disposed on one side of the placement component (1), and a touch all-in-one machine (5) is disposed on one side of the microcontroller (4).
2. The APOE gene detection kit with temperature indication function according to claim 1, characterized in that: The placement component (1) includes a placement box (11). The top surface of the placement box (11) is provided with an installation groove (12) at the center. The inner cavity of the installation groove (12) is provided with a limiting block (13). The top surface of the limiting block (13) is provided with a placement groove (14). Multiple placement grooves (14) are provided. The multiple placement grooves (14) are distributed in a rectangular array. The inner cavity of each placement groove (14) is provided with a guide plate (15). Fixing grooves (16) are provided on both sides of the upper center position of one side surface of the placement box (11).
3. The APOE gene detection kit with temperature indication function according to claim 2, characterized in that: The sealing assembly (2) includes a sealing ring (21), which is disposed on one side of the guide plate (15). A temperature sensor (22) is disposed on one side of the bottom surface of the sealing ring (21), and reinforcing rods (23) are disposed on both sides of the center position of the bottom surface of the sealing ring (21).
4. The APOE gene detection kit with temperature indication function according to claim 3, characterized in that: The sealing ring (21) has reinforcing rods (23) on both sides of the center position of the bottom surface. The reinforcing rods (23) are used to strengthen the strength of the guide plate (15).
5. The APOE gene detection kit with temperature indication function according to claim 2, characterized in that: The temperature control component (3) includes a liquid storage box (31), which is located on one side of the placement box (11). Two infusion pumps (32) are provided on both sides of the upper center of one side surface of the liquid storage box (31). The two infusion pumps (32) are connected to the fixed groove (16). The output end of the two infusion pumps (32) is provided with a delivery pipe (33). A recovery pipe (34) is provided directly below the two delivery pipes (33). The inner cavity of the liquid storage box (31) is provided with a liquid storage chamber (35). Multiple infusion pipes (312) are provided on both sides of the delivery pipes (33) and are arranged in a linear array. Multiple connection pipes (314) are provided on both sides of the recovery pipes (34) and are arranged in a linear array.
6. The APOE gene detection kit with temperature indication function according to claim 5, characterized in that: A metal plate (36) is provided on one side of the liquid storage chamber (35), a semiconductor Peltier module (37) is provided on one side of the metal plate (36), a heat dissipation body (38) is provided on the outside of the semiconductor Peltier module (37), an L-plate (39) is provided on the bottom surface of the metal plate (36), a battery (310) is provided in the inner cavity of the L-plate (39), and a charging port (311) is provided on one side of the battery (310).
7. The APOE gene detection kit with temperature indication function according to claim 5, characterized in that: Each of the inlet tubes (312) is provided with a control valve (313) on the outside, which is used to control the inlet tubes (312).
Citation Information
Patent Citations
Gene detection kit
CN216972543U