Blood sample mixing platform for medical blood detection

By designing a motor-driven dual-rotating disc structure, precise temperature control components and quick-disassembly connected splicing components, the existing blood sample mixing platform is solved, inadequate mixing, inaccurate temperature control and complex operation of the stand-alone chamber when processing high viscosity or large volume blood samples, efficient and uniform mixing of blood samples and precise temperature control are achieved, and the operation of the stand-alone chamber is simplified.

CN119985018AInactive Publication Date: 2025-05-13SHANGHAI BAOSHAN DISTRICT LUODIAN HOSPITAL
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Patent Information

Application Number
CN202510139424.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-08
Publication Date
2025-05-13
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing blood sample mixing platform is insufficiently mixed when processing high viscosity or large volume blood samples. The temperature control system responds slowly and has large temperature fluctuations. The design of the static chamber is complicated and requires manual disassembly and installation, which increases the difficulty of operation and the risk of error.

Method used

A blood sample mixing platform including a motor-driven dual-rotating disc structure, a precise temperature control assembly and a quick-disassembly splicing assembly were designed. Through the meshing connection between the internal tooth ring and the gear and the limitation of the fixing rod, efficient and uniform mixing of blood samples is achieved; the temperature controller and central control system are introduced to achieve precise temperature control; the quick-removal connection block is used to simplify the installation and disassembly of the stationary chamber.

Benefits of technology

It achieves efficient and uniform mixing of blood samples of different viscosity and volume, avoiding the problem of uneven mixing; accurately control the sample temperature, reducing experimental errors; simplifying the operation of the standstill chamber, improving experimental efficiency and safety.

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Abstract

The invention relates to the field of medical detection, and discloses a blood sample mixing platform for medical blood detection, which comprises a mounting platform, a blood sample mixing mechanism is arranged on the mounting platform, a connecting assembly is arranged on the blood sample mixing mechanism, and a temperature control assembly is arranged on the mounting platform. A temperature control assembly is arranged on the mounting platform, a splicing assembly is arranged on the mounting platform, the mounting platform is connected with a standing cabin through the splicing assembly, a temperature controller is arranged on a temperature control sleeve in the temperature control assembly, and the temperature controller transmits collected data to a central control system. A blood sample is efficiently and uniformly mixed through the blood sample mixing mechanism, the problem that the high-viscosity blood treatment effect of traditional equipment is poor is solved, the quick-release connection design of a splicing assembly and a standing cabin is introduced, the experiment efficiency and flexibility are improved, operation is simplified, a temperature controller and a central control system are adopted, it is ensured that the blood sample is uniformly mixed at the ideal temperature, and the experiment efficiency is improved. And the precision and reliability of the whole experiment are improved.
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Description

Technical Field

[0001] The invention relates to the field of medical detection, in particular to a blood sample mixing platform for medical blood detection. Background Art

[0002] A blood sample mixing platform for medical blood testing is a device designed for processing and mixing blood samples. Its main function is to ensure that the blood sample is fully and evenly mixed before analysis in order to obtain accurate test results; Existing blood sample mixing platforms generally use a single oscillation or rotation method to mix blood samples. However, these methods are not ideal when dealing with different types of blood samples, especially high-viscosity or large-volume samples. Generally, although oscillating devices can provide a certain mixing effect, the problem of insufficient mixing is particularly prominent when facing high-viscosity blood, which can easily lead to uneven components in the sample, thereby affecting subsequent test results and causing errors; the temperature control system of existing equipment responds slowly, and the temperature fluctuation is large. The unstable temperature directly affects the stability of blood samples, especially in medical tests that require strict temperature control. Inaccurate or delayed temperature control will cause significant experimental errors. Finally, the static cabin design of many existing platforms is too complicated, and both disassembly and installation require manual operation, which increases the difficulty and inconvenience of operation. In high-throughput testing, frequent disassembly and connection of static cabins not only wastes time, but also easily causes contamination or other failures due to improper operation; Therefore, a blood sample mixing platform for medical blood testing is proposed to solve the above problems. Summary of the invention

[0003] In view of the deficiencies in the prior art, the present invention provides a blood sample mixing platform for medical blood testing, which solves the problem that the existing blood sample mixing platforms generally adopt a single oscillation or rotation method, but the effect is not good when processing high-viscosity or large-volume samples, and the mixing is not sufficient. In addition, the temperature control system of the existing equipment responds slowly and the temperature fluctuates greatly, which affects the stability of the blood sample. In addition, the static cabin design of many platforms is complex and requires manual disassembly and installation, which increases the difficulty of operation. In high-throughput testing, frequent disassembly not only wastes time, but may also cause pollution and malfunction problems.

[0004] To achieve the above objectives, the present invention is implemented through the following technical solutions: A blood sample mixing platform for medical blood testing, comprising a mounting platform, a blood sample mixing mechanism is provided on the mounting platform, a connecting component is provided on the blood sample mixing mechanism, a temperature control component is provided on the mounting platform, a splicing component is provided on the mounting platform, and the mounting platform is connected to a static cabin through the splicing component; The blood sample mixing mechanism includes a motor 1, which is arranged inside the mounting platform. The output end of the motor 1 is fixedly connected to a mounting shaft, a rotating disk 1 is arranged on the mounting shaft, the rotating disk 1 is connected to a rotating disk 2 through a connecting component, and a viscous sample mixing component is arranged on the rotating disk 1.

[0005] Preferably, the viscous sample mixing component includes a plurality of rotating tables, which are distributed in a ring on the top of a rotating disk, and the rotating table is connected to a gear through a connecting shaft, and an inner gear ring is provided on the outer side of the rotating disk, and the inner gear ring is meshed with the gear, and a plurality of fixing rods are provided at the bottom of the inner gear ring, and the inner gear ring is connected to the mounting platform through the fixing rods.

[0006] Preferably, the rotating disk 1 and the rotating table are both provided with sample clamps, and a control screen is provided on the front side of the mounting platform.

[0007] Preferably, the connecting assembly includes a second connecting shaft, the second connecting shaft is arranged at the bottom of the second rotating disk, a wedge block is arranged on the second connecting shaft, a wedge groove is opened on the first rotating disk, the wedge groove is engaged and connected with the wedge block, and a fixing assembly is arranged on the second rotating disk.

[0008] Preferably, the fixing assembly includes a plurality of latches, a plurality of pin holes are provided in the rotating disk 1, and the plurality of latches are respectively arranged in the pin holes, a plurality of storage compartments are provided in a ring shape on the connecting shaft 2, a reset spring is provided between the storage compartments and the corresponding latches, a knob is provided on the rotating disk 2, a rotating shaft is provided on the knob, and a cable is provided between the rotating shaft and the latch.

[0009] Preferably, the temperature control component includes a temperature control sleeve, a mounting groove is opened on the mounting platform, the temperature control sleeve is arranged in the mounting groove, a sealing sleeve is arranged at the bottom end of the temperature control sleeve, a visual window is arranged on the temperature control sleeve, and the interior of the temperature control sleeve is sequentially provided with an insulation layer, a resistance heating wire, a refrigeration element and a temperature conduction plate from the outside to the inside.

[0010] Preferably, the splicing assembly includes multiple splicing tubes, each of which is arranged on a mounting platform. A splicing cover and a quick-release connecting block are provided on the splicing tube, a mounting ring is provided on the quick-release connecting block, a baffle is connected to the inside of the mounting ring through a fixing spring, a connecting pin is provided on the baffle, the connecting pin penetrates the mounting ring, the mounting ring is connected to a fixing plate through a connecting shaft, and the fixing plate is provided on the static cabin.

[0011] Preferably, a cabin cover is connected to the top of the static cabin via a hinge, and a static rack is provided in the static cabin.

[0012] Preferably, a temperature controller is provided on the temperature control sleeve in the temperature control assembly, and the temperature controller transmits the collected data to a central control system.

[0013] Preferably, the central control system includes: Acquisition module: It is used to transmit the collected data from the temperature controller to the central control system; Analysis module: It analyzes the data collected in the central control system through the data processing unit; Driving module: It drives the resistance heating wire and cooling element through the analyzed information.

[0014] The present invention provides a blood sample mixing platform for medical blood testing, which has the following beneficial effects: 1. The present invention provides power through a motor 1, realizes a double rotating disk structure by using a connecting assembly, and then utilizes the meshing connection between an inner gear ring 1 and a gear 1 and the restriction of a fixed rod to enable the rotating table to realize self-rotation while the rotating disk 1 rotates. The blood sample fixed by the sample clamp can achieve the technical effect of efficiently and evenly mixing the blood sample. Compared with the single oscillation or rotation method in the prior art, the combination of the double rotating disks can better cope with blood samples of different viscosities and volumes, avoids the situation of uneven mixing, and solves the problem that the traditional equipment is not effective in processing high-viscosity blood.

[0015] 2. The present invention introduces a design of connecting the splicing assembly with the static cabin, which achieves the technical effect of improving experimental efficiency and flexibility. Different from the method in the prior art that requires manual handling and separation of the static cabin, the quick-release connection function of the present invention makes the installation and disassembly of the static cabin more convenient, avoiding the trouble caused by improper manual operation, and at the same time improving the efficiency of multi-sample processing.

[0016] 3. The present invention detects the temperature inside the temperature control sleeve through a temperature controller, and uses a central control system to start and disconnect the resistance heating wire or the refrigeration element in a timely manner, thereby achieving the technical effect of accurately controlling the sample temperature. Compared with the problems of slow response and large fluctuations of the temperature control system in the prior art, the present invention can respond quickly and accurately adjust the temperature, ensuring that the blood sample is mixed within the ideal temperature range, thereby avoiding experimental errors caused by improper temperature control. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 A perspective view of the present invention; Figure 2 It is a schematic diagram of the splitting of the present invention; Figure 3 It is a top view schematic diagram of the present invention; Figure 4 It is a front view schematic diagram of the present invention; Figure 5 It is a schematic diagram of the blood sample mixing mechanism of the present invention; Figure 6 It is a schematic diagram of the connection assembly of the present invention; Figure 7 It is a schematic diagram of the temperature control component of the present invention; Figure 8 It is a schematic diagram of the splicing assembly of the present invention; Fig. 9 for Figure 2 The enlarged view of point A in the middle; Fig.10 It is a framework diagram of the central control system of the present invention.

[0018] Among them, 1. Installation platform; 2. Blood sample mixing mechanism; 201. Motor 1; 202. Installation shaft; 203. Rotating disk 1; 204. Rotating disk 2; 205. Rotating table; 206. Connecting shaft 1; 207. Internal gear ring 1; 208. Gear 1; 209. Sample clamp; 210. Fixed rod; 3. Connecting assembly; 301. Connecting shaft 2; 302. Wedge block; 303. Wedge groove; 304. Latch; 305. Pin hole; 306. Storage compartment; 307. Return spring; 308. Cable; 309. Rotating shaft; 310. Knob; 4. Temperature control Components; 401, mounting groove; 402, temperature control sleeve; 403, sealing sleeve; 404, visual window; 405, insulation layer; 406, resistance heating wire; 407, refrigeration element; 408, temperature conduction plate; 5, temperature controller; 6, control panel; 7, static cabin; 701, cabin cover; 702, static rack; 8, splicing components; 801, splicing tube one; 802, splicing cover; 803, quick-release connecting block; 804, mounting ring; 805, baffle; 806, connecting pin; 807, fixing spring; 808, connecting shaft three; 809, fixing plate. DETAILED DESCRIPTION

[0019] The following will be combined with the drawings in the specification of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0020] Please see attached Figure 1 , Attachment Figure 2 , Attachment Figure 3 , Attachment Figure 4 , Attachment Figure 5 and attached Fig. 9The embodiment of the present invention provides a blood sample mixing platform for medical blood testing, including a mounting platform 1, on which a blood sample mixing mechanism 2 is disposed, the blood sample mixing mechanism 2 includes a motor 1 201, the motor 1 201 is disposed inside the mounting platform 1, the output end of the motor 1 201 is fixedly connected to a mounting shaft 202, a rotating disk 1 203 is disposed on the mounting shaft 202, the rotating disk 1 203 is connected to a rotating disk 2 204 through a connecting component 3, and a viscous sample mixing component is disposed on the rotating disk 1 203; The viscous sample mixing component includes a plurality of rotating tables 205, which are annularly distributed on the top of the rotating disk 203. The rotating table 205 is connected to a gear 208 via a connecting shaft 206. An inner gear ring 207 is disposed on the outer side of the rotating disk 203, and the inner gear ring 207 is meshedly connected with the gear 208. A plurality of fixing rods 210 are disposed at the bottom of the inner gear ring 207, and the inner gear ring 207 is connected to the mounting platform 1 via the fixing rods 210. The rotating disk 203 and the rotating table 205 are both provided with sample holders 209 , and the front side of the mounting platform 1 is provided with a control screen 6 .

[0021] Specifically, the mounting platform 1 serves as the basic structure of the entire blood sample mixing platform, providing a position for supporting and mounting all other components. The motor 201 is the driving source of the blood sample mixing mechanism 2. The mounting shaft 202 is an intermediate component connecting the motor 201 and the rotating disk 203, ensuring that the rotation of the motor 201 can be effectively transmitted to the rotating disk 203. The fixing rod 210 can fix the position of the inner gear ring 207. By utilizing the meshing relationship between the inner gear ring 207 and the gear 208 and the connection function of the connecting shaft 206, the rotating platform 205 can rotate with the rotation of the rotating disk 203. The sample holder 209 is used to fix the blood sample on the rotating disk 1 203 and the rotating disk 2 204. The control screen 6 is the interactive interface between the user and the device, providing an intuitive operation interface and feedback. The user can set the mixing time, speed, temperature and other parameters through the control screen 6, and monitor the mixing progress and device status in real time to ensure simple and efficient operation.

[0022] Please see attached Figure 2 , Attachment Figure 5 and attached Figure 6 The blood sample mixing mechanism 2 is provided with a connecting assembly 3, the connecting assembly 3 includes a second connecting shaft 301, the second connecting shaft 301 is provided at the bottom of the second rotating disk 204, a wedge block 302 is provided on the second connecting shaft 301, a wedge groove 303 is provided on the first rotating disk 203, the wedge groove 303 is engaged and connected with the wedge block 302, and a fixing assembly is provided on the second rotating disk 204; The fixing assembly includes a plurality of latches 304, a plurality of pin holes 305 are provided in the rotating disk 1 203, and the plurality of latches 304 are respectively arranged in the pin holes 305. A plurality of storage compartments 306 are provided in a ring shape on the connecting shaft 2 301, and a return spring 307 is provided between the storage compartments 306 and the corresponding latches 304. A knob 310 is provided on the rotating disk 204, a rotating shaft 309 is provided on the knob 310, and a cable 308 is provided between the rotating shaft 309 and the latch 304.

[0023] Specifically, the wedge block 302 and the wedge groove 303 are used to transmit the movement of the rotating disk 1 203 to the rotating disk 2 204, and the pin 304 is inserted into the pin hole 305 to fix the connecting shaft 2 301 when connected to prevent the connecting shaft 2 301 from moving up and down. The storage compartment 306 serves as a storage place for the pin 304 during disassembly and is also an installation place for the reset spring 307. The reset spring 307 is a component for quick disassembly and assembly, the knob 310 is used as a point of action for manual disassembly, the rotating shaft 309 and the cable 308 play a role in motion transmission, so that the movement of the knob 310 is converted into the movement of the pin 304.

[0024] Please see attached Figure 1 , Attachment Figure 2 , Attachment Figure 3 , Attachment Figure 4 and attached Figure 7 A temperature control component 4 is arranged on the installation platform 1, and the temperature control component 4 includes a temperature control sleeve 402. A mounting groove 401 is opened on the installation platform 1, and the temperature control sleeve 402 is arranged in the mounting groove 401. A sealing sleeve 403 is arranged at the bottom of the temperature control sleeve 402, and a visual window 404 is arranged on the temperature control sleeve 402. The interior of the temperature control sleeve 402 is sequentially provided with an insulation layer 405, a resistance heating wire 406, a cooling element 407 and a temperature conduction plate 408 from the outside to the inside. A temperature controller 5 is arranged on the temperature control sleeve 402 in the temperature control component 4, and the temperature controller 5 transmits the collected data to the central control system.

[0025] Specifically, the installation groove 401 provides a dedicated space to ensure the correct installation and fixation of the temperature control sleeve 402. The function of the sealing sleeve 403 is to ensure good sealing between the temperature control sleeve 402 and the installation platform 1 to prevent the entry of outside air or temperature loss, thereby improving the efficiency of temperature control. The visual window 404 provides an observation window inside the temperature control sleeve 402, so that the user can easily view the operating status of the temperature control sleeve 402 and the condition of the sample; The temperature control sleeve 402 serves as the installation base of the temperature control component 4. The insulation layer 405 can effectively reduce the loss of external heat, maintain the stability of the internal temperature, and reduce energy waste. The resistance heating wire 406 is used to heat the sample. The resistance when the current passes through the heating wire generates heat, thereby increasing the temperature. The precision adjustment of the heating wire can quickly and accurately adjust the temperature of the device; the cooling element 407 (such as a thermoelectric cooler or a cooling plate) can quickly reduce the temperature to ensure that the blood sample is processed at a low temperature. The cooling element 407 provides temperature cooling control to ensure that the sample is not disturbed by the outside world when it is processed under low temperature conditions. The temperature conduction plate 408 is responsible for uniformly transmitting the temperature generated by the heating or cooling component to the blood samples on the rotating disk 1 203 and the rotating disk 2 204, thereby ensuring uniform temperature distribution during the mixing process. The temperature controller 5 is the information acquisition unit of the central control system. It can accurately measure the temperature inside the temperature control sleeve 402 and provide data support for subsequent temperature control.

[0026] Please see attached Figure 1 , Attachment Figure 2 , Attachment Figure 3 , Attachment Figure 4 and attached Figure 8 , a splicing assembly 8 is provided on the mounting platform 1, and the mounting platform 1 is connected to the static cabin 7 through the splicing assembly 8, and the splicing assembly 8 includes a plurality of splicing tubes 801, and the splicing tubes 801 are respectively arranged on the mounting platform 1, and the splicing tubes 801 are provided with a splicing cover 802 and a quick-release connection block 803, and the quick-release connection block 803 is provided with a mounting ring 804, and the mounting ring 804 is connected with a baffle 805 through a fixing spring 807, and the baffle 805 is provided with a connecting pin 806, and the connecting pin 806 penetrates the mounting ring 804, and the mounting ring 804 is connected with a fixing plate 809 through a connecting shaft 3 808, and the fixing plate 809 is arranged on the static cabin 7; A hatch cover 701 is connected to the top of the static cabin 7 via a hinge, and a static frame 702 is arranged in the static cabin 7.

[0027] Specifically, the splicing tube 801 is a key component for realizing the connection between the static cabin 7 and the installation platform 1. The installation ring 804 is a component for rapid disassembly and assembly. The elastic potential energy of the fixing spring 807 is used to clamp the baffle 805 to the splicing tube 801. The splicing cover 802 on the splicing tube 801 can prevent the installation ring 804 from sliding out. The quick-release connection block 803 can move with the installation ring 804 during disassembly and enter the splicing cover 802, so that the baffle 805 of the installation ring 804 is not restricted by the splicing cover 802 and can be removed from the splicing tube 801. The connecting pin 806 is used to limit the movement trajectory of the baffle 805. The connecting shaft 808 and the fixing plate 809 play a connecting role, so that the installation ring 804 is connected to the static cabin 7. The hatch cover 701 is connected to the top of the static chamber 7 by a hinge, so that the hatch cover 701 can be opened and closed freely, allowing the user to easily put in or take out the blood sample. At the same time, the hatch cover 701 can also effectively seal the static chamber 7 to prevent external contaminants from entering. The static rack 702 provides a stable storage location for the blood sample.

[0028] Please see attached Fig.10 , the central control system includes: Collection module: used to transmit the collected data by the temperature controller 5 to the central control system; Analysis module: It analyzes the data collected in the central control system through the data processing unit; Driving module: It drives the resistance heating wire 406 and the cooling element 407 through the analyzed information.

[0029] Working principle: fix the blood sample on the rotating disk 203 through the sample clamp 209, then start the motor 201, the motor 201 rotates the mounting shaft 202, the rotating mounting shaft 202 drives the rotating disk 203 to rotate, when the rotating disk 203 rotates, the internal gear 208 rotates accordingly, and the fixing rod 210 fixes the inner gear ring 207, when the gear 208 rotates with the rotating disk, it meshes with the gear 208 through the inner gear ring 207, so that the gear 208 rotates, and the movement generated by the rotating gear 208 is driven to the rotating table 205 through the connecting shaft 206, and the blood sample fixed on the rotating table 205 by the sample clamp 209 rotates, so that the viscous blood sample can be shaken; When it is necessary to process multiple layers of blood samples, the knob 310 on the second rotating disk 204 is turned, and the knob 310 causes the rotating shaft 309 to rotate. When the rotating shaft 309 rotates, the cable 308 is retracted, and the cable 308 stores the latch 304 in the storage compartment 306. When storing, the return spring 307 is compressed, and then the wedge block 302 on the second connecting shaft 301 is inserted into the wedge groove 303 on the first rotating disk 203. Then, the knob 310 is released, and the return spring 307 pushes the latch 304 into the pin hole 305, so that the second rotating disk 204 is fixed, and the blood sample can be fixed in the sample clamps 209 on the first rotating disk 203 and the second rotating disk 204; When the temperature needs to be controlled when processing the blood sample, the temperature control sleeve 402 is connected to the installation slot 401, and then the resistance heating wire 406 or the cooling element 407 is started through the control panel 6, and the temperature conduction plate 408 transmits the temperature generated by the resistance heating wire 406 or the cooling element 407 to the blood sample on the internal rotating disk 1 203 and the rotating disk 2 204, and the temperature controller 5 detects the temperature inside the temperature control sleeve 402, and the temperature controller 5 transmits the detected information to the central control system. When the central control system detects that the internal temperature reaches the temperature threshold, the resistance heating wire 406 or the cooling element 407 is disconnected through the driving module; The mounting ring 804 is slid into the splicing tube 801. During the sliding process, when the baffle 805 hits the splicing cover 802, the baffle 805 is retracted into the mounting ring 804. At this time, the extrusion fixing spring 807 is squeezed. When the mounting ring 804 slides to the middle section of the mounting column, the fixing spring 807 releases its elastic potential energy, and the baffle 805 pops out, and the static cabin 7 connected by the connecting shaft 3 808 and the fixing plate 809 is fixed on the mounting platform 1. When the blood sample needs to be left to stand for a period of time after mixing, the door of the static cabin 7 is opened, and the test tube containing the blood sample is placed on the static rack 702. When the static cabin 7 is not needed, the mounting ring 804 can be slid, and the mounting ring 804 can be removed from the splicing tube 801 through the quick-release connecting block 803, and the static cabin 7 can be separated from the mounting platform 1.

[0030] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A blood sample mixing platform for medical blood testing, comprising a mounting platform (1), characterized in that: The installation platform (1) is provided with a blood sample mixing mechanism (2), the blood sample mixing mechanism (2) is provided with a connecting component (3), the installation platform (1) is provided with a temperature control component (4), the installation platform (1) is provided with a splicing component (8), and the installation platform (1) is connected to a stationary cabin (7) via the splicing component (8); The blood sample mixing mechanism (2) comprises a motor 1 (201), wherein the motor 1 (201) is arranged inside the mounting platform (1), and the output end of the motor 1 (201) is fixedly connected to a mounting shaft (202), a rotating disk 1 (203) is arranged on the mounting shaft (202), the rotating disk 1 (203) is connected to a rotating disk 2 (204) via a connecting component (3), and a viscous sample mixing component is arranged on the rotating disk 1 (203).

2. A blood sample mixing platform for medical blood testing according to claim 1, characterized in that: The viscous sample mixing component comprises a plurality of rotating tables (205), wherein the plurality of rotating tables (205) are distributed in a ring shape on the top of a rotating disk (203), the rotating table (205) is connected to a gear (208) via a connecting shaft (206), an inner gear ring (207) is arranged on the outer side of the rotating disk (203), the inner gear ring (207) is meshingly connected to the gear (208), a plurality of fixing rods (210) are arranged on the bottom of the inner gear ring (207), and the inner gear ring (207) is connected to the mounting platform (1) via the fixing rods (210).

3. A blood sample mixing platform for medical blood testing according to claim 1, characterized in that: The rotating disk 1 (203) and the rotating table (205) are both provided with a sample clamp (209), and the front side of the mounting platform (1) is provided with a control screen (6).

4. A blood sample mixing platform for medical blood testing according to claim 1, characterized in that: The connecting assembly (3) comprises a second connecting shaft (301), the second connecting shaft (301) being arranged at the bottom of the second rotating disk (204), the second connecting shaft (301) being provided with a wedge block (302), the first rotating disk (203) being provided with a wedge groove (303), the wedge groove (303) being engaged and connected with the wedge block (302), and the second rotating disk (204) being provided with a fixing assembly.

5. A blood sample mixing platform for medical blood testing according to claim 4, characterized in that: The fixing assembly comprises a plurality of latches (304), a plurality of pin holes (305) are provided in the rotating disk 1 (203), the plurality of latches (304) are respectively arranged in the pin holes (305), a plurality of storage compartments (306) are provided in a ring shape on the connecting shaft 2 (301), a return spring (307) is provided between the storage compartments (306) and the corresponding latches (304), a knob (310) is provided on the rotating disk 2 (204), a rotating shaft (309) is provided on the knob (310), and a pull cable (308) is provided between the rotating shaft (309) and the latch (304).

6. A blood sample mixing platform for medical blood testing according to claim 1, characterized in that: The temperature control assembly (4) comprises a temperature control sleeve (402), the installation platform (1) is provided with an installation groove (401), the temperature control sleeve (402) is arranged in the installation groove (401), a sealing sleeve (403) is arranged at the bottom end of the temperature control sleeve (402), a visual window (404) is arranged on the temperature control sleeve (402), and the interior of the temperature control sleeve (402) is provided with a thermal insulation layer (405), a resistance heating wire (406), a cooling element (407) and a temperature conduction plate (408) in sequence from the outside to the inside.

7. A blood sample mixing platform for medical blood testing according to claim 1, characterized in that: The splicing assembly (8) comprises a plurality of splicing tubes (801), each of which is arranged on a mounting platform (1); a splicing cover (802) and a quick-release connection block (803) are arranged on the splicing tube (801); a mounting ring (804) is arranged on the quick-release connection block (803); a baffle (805) is connected to the inside of the mounting ring (804) via a fixing spring (807); a connecting pin (806) is arranged on the baffle (805); the connecting pin (806) penetrates the mounting ring (804); the mounting ring (804) is connected to a fixing plate (809) via a connecting shaft (808); and the fixing plate (809) is arranged on the stationary cabin (7).

8. The blood sample mixing platform for medical blood testing according to claim 1, characterized in that: The top of the static cabin (7) is connected to a cabin cover (701) via a hinge, and a static frame (702) is provided in the static cabin (7).

9. A blood sample mixing platform for medical blood testing according to claim 1, characterized in that: A temperature controller (5) is provided on the temperature control sleeve (402) in the temperature control component (4), and the temperature controller (5) transmits collected data to a central control system.

10. A blood sample mixing platform for medical blood testing according to claim 9, characterized in that: The central control system comprises: Collection module: used for transmitting the data collected by the temperature controller (5) to the central control system; Analysis module: It analyzes the data collected in the central control system through the data processing unit; Driving module: it drives the resistance heating wire (406) and the cooling element (407) through the analyzed information.