Portable infectious disease analysis device
The design of a portable infectious disease analysis device has solved the problems of cross-infection and waste of human resources in primary healthcare institutions, and has achieved portable, safe and efficient infectious disease testing.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- SHANGHAI STOMATOLOGICAL HOSPITAL FUDAN UNIV
- Filing Date
- 2023-12-26
- Publication Date
- 2026-04-24
AI Technical Summary
Existing portable infectious disease analysis devices pose a high risk of cross-infection and waste of human resources in primary healthcare institutions, especially when testing multiple people, making it difficult to effectively avoid cross-infection and save manpower.
A portable infectious disease analysis device was designed, comprising a portable analysis box, a display screen, a blood analysis unit, a stabilization auxiliary unit, and an automated blood detection module. Through capillary blood collection, automated blood detection, and the portability of the device, the risk of cross-infection is reduced and manpower is saved.
It is easy to carry and use in primary healthcare institutions, reduces the risk of cross-infection, improves testing efficiency, saves human resources, and is suitable for testing common and serious diseases in primary healthcare institutions.
Smart Images

Figure CN121910366A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of detection device technology, and in particular relates to a portable infectious disease analysis device. Background Technology
[0002] Infectious diseases are a class of diseases caused by various pathogens and that can be transmitted between humans, animals, or between humans and animals. They are characterized by rapid spread, wide distribution, and high morbidity. Therefore, developing detection devices for infectious pathogens plays a crucial role in the control of infectious diseases.
[0003] Patent CN107525931A discloses an analytical device for detecting infectious pathogens. This analytical device includes a sealed housing, an analytical unit, a drawer assembly, a test kit, and a drive unit. It is small in size, easy to carry, and has high detection efficiency, making it suitable for various testing occasions, especially for non-fixed locations such as rural medical outreach programs.
[0004] However, for those skilled in the art, the analytical device still has unresolved technical problems: due to the shortage of resources in primary medical institutions, medical institutions also have problems such as limited functions, low performance, poor usability, and inapplicability. When the testing machine tests multiple people in turn, cross-infection is likely to occur. At the same time, when testing the people to be tested, medical staff are required to assist in blood collection and testing, which will waste a certain amount of human resources.
[0005] Therefore, a new type of portable infectious disease analysis device still needs to be developed, which can sample and analyze pathogens from patients while avoiding cross-infection and saving manpower. Summary of the Invention
[0006] The purpose of this invention is to provide a portable infectious disease analysis device to overcome the shortcomings of existing technologies that cannot sample and analyze pathogens from patients while avoiding cross-infection and saving manpower.
[0007] The objective of this invention can be achieved through the following technical solutions:
[0008] A portable infectious disease analysis device includes a portable analysis box, and a display screen is fixedly connected to one side of the top of the portable analysis box.
[0009] The portable analysis box has a first reserved slot at the bottom of the inner side near the display screen, and a blood analysis unit is installed at the top of the first reserved slot; the portable analysis box also has a second reserved slot at the inner side near the display screen, which is located at the top of the first reserved slot and is connected to it; the second reserved slot has a first circular groove at the side near the display screen, and the portable analysis box has a third and a fourth reserved slot at the inner side away from the display screen, with the third reserved slot located at the top of the fourth reserved slot and being connected to it;
[0010] The blood analysis unit includes a blood collection device storage module, a mobile clamping module, a blood retrieval device storage module, a blood testing and analysis module, a collection box, and a guide groove. The blood collection device storage module is installed inside the first circular groove, the mobile clamping module is installed inside the second reserved groove, and the blood retrieval device storage module is installed at the top of the second reserved groove. The blood testing and analysis module is fixedly connected to the inside of the third reserved groove and is connected to a display screen. The collection box is inserted into the inside of the fourth reserved groove. The first reserved groove and the fourth reserved groove are interconnected, and a guide groove is fixedly connected at the connection point.
[0011] A stabilizing auxiliary unit is also installed inside the first reserved slot.
[0012] Furthermore, the blood collection device storage module includes a stop gate, a threaded rod, a guide rod, a first motor, a first rotating rod, a bevel gear set, a sliding block, and a rotating ring.
[0013] Furthermore, a stop is rotatably connected to the outer side of the first circular groove via a hinge.
[0014] Furthermore, a first sliding groove and a second sliding groove are respectively provided at the top and bottom of the first circular groove. A threaded rod is rotatably connected to the inner side of the first sliding groove, and a guide rod is fixedly connected to the inner side of the second sliding groove.
[0015] Furthermore, a vertical groove is provided at the top of the first sliding groove, and a first motor is fixedly connected to the top of the inner side of the vertical groove. A first rotating rod is fixedly connected to the output end of the first motor, and a bevel gear set is provided at the bottom of the first rotating rod. The bottom of the first rotating rod is rotatably connected to the threaded rod through the bevel gear set.
[0016] Furthermore, both the first and second sliding grooves are slidably connected to sliding blocks on their inner sides. One of the sliding blocks is threadedly connected to the threaded rod, and the other sliding block is slidably connected to the guide rod. A rotating ring is provided between the two sliding blocks, and the top and bottom of the rotating ring are slidably connected to both sliding blocks.
[0017] Furthermore, the blood collection device storage module also includes a placement tray, a disposable blood collector, a fixed semi-circular plate, a fixing block, a second rotating rod, a first gear, a second motor, a single-tooth lever, and a fixing tooth block.
[0018] Furthermore, a placement tray is rotatably connected to the inner side of the rotating ring, and multiple disposable blood collection devices are inserted into the inner side of the placement tray in a circumferential array.
[0019] Furthermore, a fixed semi-arc plate is fixedly connected to one end of the rotating ring, and multiple toothed grooves are formed on the end of the fixed semi-arc plate away from the rotating ring.
[0020] Furthermore, a fixing block is fixedly connected to one end of the fixed semi-arc plate near the rotating ring, and a second rotating rod is rotatably connected to one end of the fixing block near the rotating ring. The second rotating rod is fixedly connected to the placement plate, and a first gear is also fixedly connected to the outside of the second rotating rod.
[0021] Furthermore, a second motor is connected to the bottom of the fixed block, and a single-tooth lever is fixedly connected to the output end of the second motor. The single-tooth lever meshes with the first gear.
[0022] Furthermore, a fixed tooth block is connected to one side of the inner side of the first circular groove, and the fixed tooth block meshes with the tooth groove on the fixed semi-arc plate.
[0023] Furthermore, the movable clamping module includes a drive block, a rotating wheel, a first clamping module, and a second clamping module.
[0024] Furthermore, a third sliding groove is provided on both sides of the second reserved groove, and a driving block is provided inside the second reserved groove. Both ends of the driving block are rotatably connected to a rotating wheel, and both rotating wheels are slidably connected to the third sliding groove.
[0025] Furthermore, a first clamping module is installed at one end of the drive block, and a second clamping module is installed at the top of the drive block.
[0026] Furthermore, the first clamping module includes a first telescopic rod, a circular recess, a clamping rod, a third motor, and a first rotating disk.
[0027] Furthermore, a first telescopic rod is fixedly connected to the inner side of one end of the drive block, and a circular recess is fixedly connected to the end of the first telescopic rod away from the drive block.
[0028] Furthermore, a first rotating groove is provided on the inner side of the circular recess, and four clamping rods are slidably connected to the inner side of the circular recess, with one end of each of the four clamping rods extending into the inner side of the first rotating groove.
[0029] Furthermore, a third motor is fixedly connected to the inner side of the first rotating groove, and a first rotating disk is fixedly connected to the output end of the third motor.
[0030] Furthermore, a sliding groove is fixedly connected to the end of the first rotating disk away from the third motor, and the ends of the four clamping rods are all slidably connected to the sliding groove. The first rotating disk drives the four clamping rods to move together and separate through the sliding groove.
[0031] Furthermore, the second clamping module includes a second telescopic rod, a square base, a fourth motor, a second rotating disk, a rotating plate, a rotating seat, and a clamping plate.
[0032] Furthermore, a second telescopic rod is fixedly connected to the top of the drive block, a square base is fixedly connected to the top of the second telescopic rod, and a fourth motor is fixedly connected to the inner side of the square base.
[0033] Furthermore, the output end of the fourth motor is rotatably connected to a second rotating disk, and rotating plates are rotatably connected to the top of both sides of the second rotating disk. Rotating seats are rotatably connected to the top of both rotating plates on the sides away from the second rotating disk. Clamping plates are fixedly connected to the top of both rotating seats, and both clamping plates are located on the top of the square base.
[0034] Furthermore, the blood collection device storage module includes a storage box, a first spring, a squeeze push plate, a blood collection soft bottle, a rolling push shaft, and a second spring.
[0035] Furthermore, a storage box is inserted into the end of the portable analysis box away from the display screen, and the storage box is located at the top of the second reserved slot.
[0036] Furthermore, the storage box has a feeding trough at one end near the display screen, and the feeding trough is connected to the second reserved trough.
[0037] Furthermore, a first spring is fixedly connected to the inner side of the storage box away from the display screen, and a pressing push plate is connected to the other end of the first spring, with the pressing push plate slidably connected to the inner side of the storage box.
[0038] Furthermore, multiple blood collection soft bottles are placed inside the storage box.
[0039] Furthermore, a fourth sliding groove is provided at one end of the feeding trough, and a rolling push shaft is provided inside the fourth sliding groove. A second spring is fixedly connected to both sides of the rolling push shaft, and the two second springs are fixedly connected to the fourth sliding groove.
[0040] Furthermore, the blood collection device storage module also includes a third spring, a sliding support plate, a horizontal linkage rod, a push block, and a vertical linkage rod.
[0041] Furthermore, a third sliding groove is provided on both sides of the second reserved groove. Each third sliding groove has multiple third springs fixedly connected to the inner side of the end closest to the display screen, and a sliding support plate is fixedly connected to the end of the multiple third springs away from the display screen.
[0042] Furthermore, the top of the sliding support plate is sloped, and each sliding support plate is slidably connected to the third sliding groove.
[0043] Furthermore, the top of the storage box is provided with a fifth reserved slot, and both sides of the fifth reserved slot are connected to the third sliding slot.
[0044] Furthermore, a horizontal linkage rod is slidably connected to the inner side of the fifth reserved slot, and a push block is fixedly connected to the center of the bottom of the horizontal linkage rod, and the push block and the discharge port are in sliding fit.
[0045] Furthermore, vertical linkage rods are fixedly connected to both sides of the bottom of the horizontal linkage rod, and the bottom of both vertical linkage rods are in a squeezing and sliding fit with the sliding support plate.
[0046] Furthermore, the blood testing and analysis module is connected to the display screen, enabling it to transmit the test and analysis data to the display screen.
[0047] Furthermore, the blood testing and analysis module incorporates two disposable pipette tips, diluent, hemolysin, red blood cell channel, white blood cell channel, dilution position, CRP-R, CRP-L, SAA-R, and SAA-L modules. Blood is collected through the disposable pipette tips, and diluent or hemolysin is added as needed to process the blood before testing. This part utilizes existing automated blood testing technologies.
[0048] Furthermore, the stabilizing auxiliary unit includes a fixed ring, a first arc plate, a second arc plate, a movable push plate, a rack, a fifth motor, a third rotating rod, and a second gear.
[0049] Furthermore, a fixing ring is fixedly connected to the outlet position of the first reserved slot, a first arc plate is fixedly connected to the bottom of the inner side of the first reserved slot, and a second arc plate is rotatably connected to both sides of the first arc plate. A movable push plate is rotatably connected to the side of the two second arc plates that is far apart from each other. The bottom of the two movable push plates extends to the bottom of the first arc plate and is symmetrically provided with a fourth sliding groove. A rack is fixedly connected to the bottom of the two movable push plates on adjacent sides, and the two racks are in sliding engagement with the fourth sliding groove at the bottom of the other movable push plate.
[0050] Furthermore, a third rotating rod is fixedly connected to the bottom of the second reserved slot, and a second gear is fixedly connected to the top output end of the third rotating rod. The second gear is meshed with the two racks.
[0051] Furthermore, the stabilization auxiliary unit also includes a first elastic band, a fourth spring, a second elastic band, and a moving link.
[0052] Furthermore, a groove is provided on the inner side of the fixing ring, and a first elastic band is provided on the top of the inner side of the groove.
[0053] Furthermore, a plurality of fourth springs are fixedly connected to the top of the inner groove of the fixing ring, and the other ends of the plurality of fourth springs are fixedly connected to the first elastic band.
[0054] Furthermore, a second elastic band is fixedly connected to the bottom of both sides of the first elastic band, and the second elastic bands on both sides are arranged in a cross pattern and extend to the bottom of the first arc plate. A movable connecting rod is fixedly connected to the bottom of both second elastic bands, and the end of each movable connecting rod away from the second elastic band is fixedly connected to the end of the rack.
[0055] Compared with the prior art, the present invention has the following beneficial effects:
[0056] (1) This invention makes the analysis device easy to carry by using a portable analysis box; it displays the test results to staff by using a display screen; it allows for peripheral blood sampling of test subjects by using a blood analysis unit, while reducing the risk of cross-infection; and it stabilizes the fingers of test subjects by using a stabilizing auxiliary unit, while also holding the fingers to reduce blood flow to the fingertips, thereby improving the efficiency of the test. Therefore, the portable infectious disease analysis device of this invention can effectively avoid cross-infection and save manpower while sampling and analyzing pathogens from patients.
[0057] (2) The present invention can avoid cross-infection when multiple people are queuing for testing by rotating disposable blood collection devices and blood collection bottles.
[0058] (3) The present invention can fix the finger to be tested while binding the finger, thereby reducing blood flow at the fingertip and improving the blood collection effect of the finger.
[0059] (4) The present invention reduces the size of the analysis device and realizes the goal of “minor illnesses can be treated in the village, common illnesses in the township, and major illnesses in the county” by making the device portable, which can truly empower grassroots medical institutions. Attached Figure Description
[0060] Figure 1 This is a schematic diagram of the overall structure of a portable infectious disease analysis device provided by the present invention.
[0061] Figure 2 This is an exploded structural diagram of the blood analysis unit of a portable infectious disease analysis device provided by the present invention.
[0062] Figure 3This is a schematic diagram of the guide slot of a portable infectious disease analysis device provided by the present invention.
[0063] Figure 4 This is a schematic diagram of the structure of a blood collection device storage module for a portable infectious disease analysis device provided by the present invention.
[0064] Figure 5 This is a schematic diagram of the structure of the first gear of a portable infectious disease analysis device provided by the present invention.
[0065] Figure 6 This is a schematic diagram of the structure of a portable infectious disease analysis device mobile clamping module provided by the present invention.
[0066] Figure 7 This is a schematic diagram of the structure of the first clamping module of a portable infectious disease analysis device provided by the present invention.
[0067] Figure 8 This is a schematic diagram of the back structure of the first clamping module of a portable infectious disease analysis device provided by the present invention.
[0068] Figure 9 This is a schematic diagram of the structure of the second clamping module of a portable infectious disease analysis device provided by the present invention.
[0069] Figure 10 This is a schematic diagram of the structure of a blood collection device storage module for a portable infectious disease analysis device provided by the present invention.
[0070] Figure 11 This invention provides a portable infectious disease analysis device. Figure 10 A schematic diagram of the structure at point A.
[0071] Figure 12 This is a schematic diagram of the structure of a stabilization auxiliary unit for a portable infectious disease analysis device provided by the present invention.
[0072] Figure 13 This is an exploded structural diagram of a stabilization auxiliary unit for a portable infectious disease analysis device provided by the present invention.
[0073] Explanation of markings in the diagram:
[0074] 1-Portable analysis box;
[0075] 2-Display screen;
[0076] 3-Blood analysis unit, 31-Blood collection device storage module, 3101-Block, 3102-Threaded rod, 3103-Guide rod, 3104-First motor, 3105-First rotating rod, 3106-Bevel gear set, 3107-Sliding block, 3108-Rotating ring, 3109-Placement tray, 3110-Disposable blood collection device, 3111-Fixed semi-arc plate, 3112-Fixed block, 3113-Second rotating rod, 3114-First gear, 3115-Second motor, 3116-Single toothed block, 3117-Fixed toothed block;
[0077] 32-Mobile clamping module, 321-Drive block, 322-Rotating wheel, 323-First clamping module, 323.1-First telescopic rod, 323.2-Circular recessed seat, 323.3-Clamping rod, 323.4-Third motor, 323.5-First rotating disk, 324-Second clamping module, 324.1-Second telescopic rod, 324.2-Square base, 324.3-Fourth motor, 324.4-Second rotating disk, 324.5-Rotating plate, 324.6-Rotating seat, 324.7-Clamping plate;
[0078] 33-Blood collection device storage module, 3301-Storage box, 3302-First spring, 3303-Squeezing push plate, 3304-Blood collection soft bottle, 3305-Rolling push shaft, 3306-Second spring, 3307-Third spring, 3308-Sliding support plate, 3309-Horizontal linkage rod, 3310-Push block, 3311-Vertical linkage rod;
[0079] 34-Blood testing and analysis module; 35-Collection box; 36-Guide slot;
[0080] 4-Stabilizing auxiliary unit, 401-Fixed ring, 402-First arc plate, 403-Second arc plate, 404-Moving push plate, 405-Rack, 406-Fifth motor, 407-Third rotating rod, 408-Second gear, 409-First elastic band, 410-Fourth spring, 411-Second elastic band, 412-Moving connecting rod. Detailed Implementation
[0081] The present invention will now be described in detail with reference to the accompanying drawings and specific embodiments. These embodiments are based on the technical solution of the present invention and provide detailed implementation methods and specific operating procedures. However, the scope of protection of the present invention is not limited to the following embodiments.
[0082] As mentioned in the background section, there is a shortage of resources in primary healthcare institutions, and these institutions also suffer from problems such as limited functionality, low performance, poor usability, and inapplicability. When testing machines are used to test multiple people in turn, cross-infection is likely to occur. In addition, when testing individuals, medical staff are required to assist in blood collection, which wastes certain human resources.
[0083] To address this technical problem, the present invention provides a portable infectious disease analysis device that enables "minor illnesses to be treated in the village, common illnesses in the township, and major illnesses in the county" through its portability, thus truly empowering grassroots medical institutions.
[0084] For details, please refer to Figures 1-2 A portable infectious disease analysis device specifically includes a portable analysis box 1, a display screen 2 fixedly connected to one side of the top of the portable analysis box 1, a first reserved slot opened at the bottom of the inner side of the portable analysis box 1 near the display screen 2, a blood analysis unit 3 installed inside the portable analysis box 1, and the blood analysis unit 3 located at the top of the first reserved slot, and a stabilizing auxiliary unit 4 installed inside the first reserved slot.
[0085] To enable those skilled in the art to better understand the present invention, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings.
[0086] Example 1:
[0087] Please refer to Figures 1-3 A portable infectious disease analysis device includes a portable analysis box 1, a display screen 2 fixedly connected to one side of the top of the portable analysis box 1, a first reserved slot opened at the bottom of the inner side of the portable analysis box 1 near the display screen 2, a blood analysis unit 3 installed inside the portable analysis box 1 and the blood analysis unit 3 located at the top of the first reserved slot, and a stabilizing auxiliary unit 4 installed inside the first reserved slot.
[0088] The portable analysis box 1 has a second reserved slot on the inner side near the display screen 2. The second reserved slot is located on top of the first reserved slot and is connected to it. The second reserved slot has a first circular groove on the side near the display screen 2. The portable analysis box 1 has a third reserved slot and a fourth reserved slot on the inner side away from the display screen 2. The third reserved slot is located on top of the fourth reserved slot and is connected to it.
[0089] By using the portable analysis box 1, the size of the analysis device can be reduced, making the analysis device easy to carry.
[0090] The test results can be displayed to staff through the settings of display screen 2.
[0091] By setting up the blood analysis unit 3, peripheral blood sampling tests can be performed on the test subjects, while reducing the risk of cross-infection among the test subjects.
[0092] By setting up the stabilization auxiliary unit 4, the fingers of the person being tested can be stabilized, and the fingers can be clamped to reduce blood flow to the fingertips, thereby improving the efficiency of the test.
[0093] During testing, the person to be tested can disinfect their finger, then place it inside the stabilizing auxiliary unit 4, and turn on the blood analysis unit 3 to collect blood from the finger. The blood is then analyzed by the blood analysis unit 3 and displayed on the display screen 2, allowing the analysis device to perform tests on multiple people in turn, thus improving the efficiency of the analysis device.
[0094] Example 2:
[0095] This embodiment 2 further discloses the specific structure of the blood analysis component unit 3 based on the above embodiments. By combining the blood analysis component unit 3 with the structure in the above embodiments, cross-infection can be avoided when multiple people are queuing for testing by rotating the disposable blood collection device 3110 and the blood collection soft bottle 3304.
[0096] The portable infectious disease analysis device provided in Example 1 has been further optimized, specifically, as follows: Figures 4-11 As shown, the blood analysis component unit 3 includes a blood collection device storage module 31, a movable clamping module 32, a blood collection device storage module 33, a blood testing and analysis module 34, a collection box 35, and a guide groove 36. The blood collection device storage module 31 is installed inside the first circular groove, the movable clamping module 32 is installed inside the second reserved groove, the blood collection device storage module 33 is installed on the top of the second reserved groove, the blood testing and analysis module 34 is fixedly connected inside the third reserved groove, and the collection box 35 is inserted into the fourth reserved groove. The first reserved groove and the fourth reserved groove are connected, and the guide groove 36 is fixedly connected at the connection position.
[0097] During testing, a disposable blood collection device 3110 can be placed inside the blood collection device storage module 31, and a blood collection soft bottle 3304 can be placed inside the blood collection device storage module 33. When the person to be tested places their finger inside the stabilizing auxiliary unit 4, the disposable blood collection device 3110 inside the blood collection device storage module 31 can be removed by moving the movable clamping module 32, and a distal blood collection operation can be performed on the fingertip. At the same time, the blood collection soft bottle 3304 inside the blood collection device storage module 33 can be removed by moving the movable clamping module 32 to perform a blood collection operation. Subsequently, the collected blood collection soft bottle 3304 can be moved to the blood collection device storage module 33 by moving the movable clamping module 32. The blood collection soft bottle 3304 is inserted into the blood detection and analysis module 34 for detection. Simultaneously, the used disposable blood collection device 3110 is thrown into the guide groove 36 by the rotation setting of the moving clamp module 32, and guided into the collection box 35 through the guide groove 36. After being detected by the blood detection and analysis module 34, the blood collection soft bottle 3304 is also placed into the collection box 35 through the bottom of the blood detection and analysis module 34. Then, the detection results of the blood detection and analysis module 34 are displayed on the display screen 2, thereby reducing the workload of staff analyzing multiple people to be tested.
[0098] The blood collection device storage module 31 includes a stop gate 3101, a threaded rod 3102, a guide rod 3103, a first motor 3104, a first rotating rod 3105, a bevel gear set 3106, a sliding block 3107, and a rotating ring 3108. The stop gate 3101 is rotatably connected to the outer side of the first circular groove via a hinge. A first sliding groove and a second sliding groove are respectively formed at the top and bottom of the first circular groove. The threaded rod 3102 is rotatably connected to the inner side of the first sliding groove, and the guide rod 3103 is fixedly connected to the inner side of the second sliding groove. A vertical groove is formed at the top of the first sliding groove, and the first motor 3104 is fixedly connected to the top of the inner side of the vertical groove. The first motor 3104 outputs... A first rotating rod 3105 is fixedly connected to the outlet end. A bevel gear set 3106 is provided at the bottom of the first rotating rod 3105, and the bottom of the first rotating rod 3105 is rotatably connected to the threaded rod 3102 through the bevel gear set 3106. Sliding blocks 3107 are slidably connected to the inner sides of the first sliding groove and the second sliding groove. One sliding block 3107 is threadedly connected to the threaded rod 3102, and the other sliding block 3107 is slidably connected to the guide rod 3103. A rotating ring 3108 is provided between the two sliding blocks 3107, and the top and bottom of the rotating ring 3108 are rotatably connected to the two sliding blocks 3107.
[0099] The blood collection device storage module 31 also includes a placement tray 3109, a disposable blood collection device 3110, a fixed semi-arc plate 3110, a fixing block 3112, a second rotating rod 3113, a first gear 3114, a second motor 3115, a single-tooth lever 3116, and a fixed tooth block 3117. The placement tray 3109 is rotatably connected to the inner side of the rotating ring 3108. Multiple disposable blood collection devices 3110 are inserted into the inner side of the placement tray 3109 in a circular array. The fixed semi-arc plate 3110 is fixedly connected to one end of the rotating ring 3108. The fixed semi-arc plate 3110 has multiple toothed grooves at the end away from the rotating ring 3108. The fixed semi-arc plate 3110 is close to the rotating ring 3108. One end of 108 is fixedly connected to a fixing block 3112. The end of the fixing block 3112 near the rotating ring 3108 is rotatably connected to a second rotating rod 3113. The second rotating rod 3113 is fixedly connected to the placement plate 3109. The outer side of the second rotating rod 3113 is fixedly connected to a first gear 3114. The bottom of the fixing block 3112 is fixedly connected to a second motor 3115. The output end of the second motor 3115 is fixedly connected to a single-tooth paddle 3116. The single-tooth paddle 3116 is meshed with the first gear 3114. A fixing tooth block 3117 is fixedly connected to one side of the inner side of the first circular groove. The fixing tooth block 3117 is meshed with multiple tooth grooves.
[0100] Before use, the disposable blood collection device 3110 can be inserted into the placement tray 3109 and then the barrier door 3101 can be closed. By setting the barrier door 3101, the contact between the disposable blood collection device 3110 and the outside world can be reduced, thereby reducing the impact of dust and impurities falling on the surface of the disposable blood collection device 3110 on the test results.
[0101] By activating the first motor 3104, the first rotating rod 3105 can be driven to rotate. Simultaneously, the bevel gear set 3106 drives the threaded rod 3102 to rotate synchronously, thereby causing the top sliding block 3107 to slide inside the first sliding groove. At the same time, through the connection of the rotating ring 3108, the bottom sliding block 3107 can be driven to slide inside the second sliding groove, so as to achieve the effect of moving the rotating ring 3108 inside the first circular groove. Meanwhile, the guide rod 3103 provides guidance for the sliding block 3107 during its movement in the second sliding groove, making the movement of the sliding block 3107 more stable.
[0102] As the rotating ring 3108 approaches the second reserved slot, one side of the rotating ring 3108 will contact the fixed tooth block 3117. Through the meshing of the toothed grooves on both sides of the rotating ring 3108 and the outer side of the fixed semi-arc plate 3110 with the fixed tooth block 3117, the rotating ring 3108 can rotate itself, thereby achieving the effect of flipping the rotating ring 3108. This allows the ends of the multiple fixed blocks 3112 inside the placement tray 3109 that are exposed to the outside to face the inside of the second reserved slot, making it easier to remove the moving clamping module 32.
[0103] Simultaneously, the second motor 3115 can be turned on to drive the single-tooth lever 3116 to rotate, and through its meshing with the first gear 3114, it can drive the first gear 3114 to rotate. At the same time, through the fixed connection of the second rotating rod 3113, the rotation of the first gear 3114 will drive the placement plate 3109 to rotate synchronously inside the rotating ring 3108, thereby achieving the effect of adjusting the position of the disposable blood collection device 3110.
[0104] Meanwhile, by setting the single-tooth paddle block 3116, the rotation angle of the first gear 3114 can always remain consistent, so that each disposable blood collection device 3110 can be rotated to a position that is easy for the mobile clamping module 32 to remove, thereby improving the efficiency of removing the disposable blood collection device 3110.
[0105] The movable clamping module 32 includes a drive block 321, a rotating wheel 322, a first clamping module 323, and a second clamping module 324. A third sliding groove is provided on both sides of the second reserved groove. The drive block 321 is disposed inside the second reserved groove. Rotating wheels 322 are rotatably connected to both ends of the drive block 321, and both rotating wheels 322 are slidably connected to the two third sliding grooves. The first clamping module 323 is installed at one end of the drive block 321, and the second clamping module 324 is installed on the top of the drive block 321.
[0106] By setting the drive block 321, the rotating wheel 322 can be driven to move inside the two third sliding grooves. Through the rotation of the rotating wheel 322, the drive block 321 can rotate itself, thereby adjusting the angle of the first clamping module 323 and the second clamping module 324, thereby improving the working efficiency of the first clamping module 323 and the second clamping module 324.
[0107] The first clamping module 323 includes a first telescopic rod 323.1, a circular recess 323.2, clamping rods 323.3, a third motor 323.4, and a first rotating disk 323.5. The first telescopic rod 323.1 is fixedly connected to the inner side of one end of the drive block 321. The circular recess 323.2 is fixedly connected to the end of the first telescopic rod 323.1 away from the drive block 321. A first rotating groove is formed on the inner side of the circular recess 323.2. Four clamping rods 323.3 are slidably connected to the inner side of the circular recess 323.2. Furthermore, one end of each of the four clamping rods 323.3 extends into the inner side of the first rotating groove. A third motor 323.4 is fixedly connected to the inner side of the first rotating groove. A first rotating disk 323.5 is fixedly connected to the output end of the third motor 323.4. A sliding track is fixedly connected to the end of the first rotating disk 323.5 away from the third motor 323.4. The ends of the four clamping rods 323.3 are slidably connected to the sliding track. The first rotating disk 323.5 drives the four clamping rods 323.3 to move together and separate through the sliding track.
[0108] When the drive block 321 moves to the appropriate position, the first telescopic rod 323.1 can be activated, and the telescopic effect of the first telescopic rod 323.1 can drive the circular recess 323.2 to move laterally.
[0109] When the first telescopic rod 323.1 drives the circular recess 323.2 to partially wrap the end of the disposable blood collection device 3110, the third motor 323.4 can be turned on to drive the first rotating disk 323.5 to rotate inside the first rotating groove inside the circular recess 323.2. While the first rotating disk 323.5 rotates, it will drive the roller slide fixedly connected to the first rotating disk 323.5 to rotate. Thus, through the connection and cooperation between the roller slide and the end of the clamping rod 323.3, the rotation of the roller slide will drive the four clamping rods 323.3 to retract and clamp the end of the disposable blood collection device 3110. Thus, the disposable blood collection device 3110 can be taken out from the inside of the placement tray 3109. The rotation effect of the drive block 321 can adjust the disposable blood collection device 3110 to a vertical angle and perform blood collection operation on the finger of the person to be tested.
[0110] Subsequently, the used disposable blood collection device 3110 can be moved to the top of the guide groove 36 by the setting of the drive block 321. Then, by turning on the third motor 323.4, the first rotating disk 323.5 is rotated in the opposite direction. The coiled spring on the outside of the first rotating disk 323.5 drives the four clamping rods 323.3 to move away from the device, so that the four clamping rods 323.3 can release the clamping effect on the disposable blood collection device 3110. At the same time, the used disposable blood collection device 3110 is guided into the inside of the collection box 35 for collection through the guide groove 36.
[0111] The second clamping module includes a second telescopic rod 324.1, a square base 324.2, a fourth motor 324.3, a second rotating disk 324.4, a rotating plate 324.5, a rotating seat 324.6, and a clamping plate 324.7. The second telescopic rod 324.1 is fixedly connected to the top of the drive block 321. The square base 324.2 is fixedly connected to the top of the second telescopic rod 324.1. The fourth motor 324.3 is fixedly connected to the inner side of the square base 324.2. The output end of the fourth motor 324.3 is rotatably connected to the second rotating disk 324.4. The rotating plates 324.5 are rotatably connected to the top of both sides of the second rotating disk 324.4. The rotating seats 324.6 are rotatably connected to the top of both rotating plates 324.5 on the sides away from the second rotating disk 324.4. The clamping plates 324.7 are fixedly connected to the top of both rotating seats 324.6, and both clamping plates 324.7 are located on the top of the square base 324.2.
[0112] The telescopic mechanism of the second telescopic rod 324.1 is used to move the square base 324.2 vertically upwards and move it to the bottom of the blood collection soft bottle 3304.
[0113] At this time, the fourth motor 324.3 can be turned on to drive the second rotating disk 324.4 to rotate. While the second rotating disk 324.4 is rotating, it will drive the two rotating plates 324.5 to retract. Through the connection of the rotating seat 324.6, it will drive the two clamping plates 324.7 to move closer together, so as to drive the two clamping plates 324.7 to clamp the blood collection soft bottle 3304 that is leaking out of the storage box 3301.
[0114] Simultaneously, the drive block 321 flips the bottle, causing the end of the blood collection soft bottle 3304 to face downwards, collecting blood from the bleeding area of the test subject's finger. By controlling the fourth motor 324.3 to continue rotating the second rotating disk 324.4, the distance between the two clamping plates 324.7 can be further increased, thereby creating a squeezing effect on the blood collection soft bottle 3304. Then, the fourth motor 324.3 is controlled to rotate in the opposite direction to reduce the squeezing effect of the two clamping plates 324.7 on the blood collection soft bottle 3304. The blood is drawn and collected from the test subject's finger by changing the internal air pressure of the blood collection soft bottle 3304.
[0115] Subsequently, through the flipping and moving effect of the drive block 321, the collected blood collection soft bottle 3304 is moved to one end of the blood detection and analysis module 34, and the end of the blood collection soft bottle 3304 is inserted into the inside of the blood detection and analysis module 34. Through the settings of the blood detection and analysis module 34, the blood inside the blood collection soft bottle 3304 is analyzed and detected.
[0116] The blood testing and analysis module 34 is connected to the display screen 2, enabling it to transmit the test and analysis data to the display screen for medical personnel to view. The blood testing and analysis module 34 incorporates two disposable pipette tips, diluent, hemolysin, red blood cell channel, white blood cell channel, dilution position, CRP-R, CRP-L, SAA-R, and SAA-L modules. Blood is collected via the disposable pipette tips, and diluent or hemolysin is added as needed for blood processing before testing. The principle behind this part is based on existing automated blood testing and analysis technology and will not be elaborated further here.
[0117] The blood collection device storage module 33 includes a storage box 3301, a first spring 3302, a squeezing push plate 3303, a blood collection soft bottle 3304, a rolling push shaft 3305, and a second spring 3306. A storage box 3301 is inserted into the end of the portable analysis box 1 away from the display screen 2. The storage box 3301 is located at the top of the second reserved slot. A feeding groove is opened at the end of the storage box 3301 near the display screen 2, and the feeding groove is connected to the second reserved slot. A first spring 3302 is fixedly connected to the inner side of the storage box 3301 away from the display screen 2. A squeezing push plate 3303 is fixedly connected to the other end of the first spring 3302. The squeezing push plate 3303 is slidably connected to the inner side of the storage box 3301. Multiple blood collection soft bottles 3304 are placed inside the storage box 3301. A fourth sliding groove is opened at one end of the feeding groove. A rolling push shaft 3305 is set inside the fourth sliding groove. A second spring 3306 is fixedly connected to both sides of the rolling push shaft 3305. The two second springs 3306 are fixedly connected to the fourth sliding groove.
[0118] The blood collection device storage module 33 also includes a third spring 3307, a sliding support plate 3308, a horizontal linkage rod 3309, a push block 3310, and a vertical linkage rod 3311. Multiple third springs 3307 are fixedly connected to the inner side of each third sliding groove near the display screen 2. A sliding support plate 3308 is fixedly connected to the end of each third spring 3307 away from the display screen 2. The top of the sliding support plate 3308 is sloped, and each sliding support plate 3308 is slidably connected to each third sliding groove.
[0119] The storage box 3301 has a fifth reserved slot at the top, and both sides of the fifth reserved slot are connected to the third sliding slot. A horizontal linkage rod 3309 is slidably connected inside the fifth reserved slot. A push block 3310 is fixedly connected to the center of the bottom of the horizontal linkage rod 3309, and the push block 3310 is slidably engaged with the discharge port. Vertical linkage rods 3311 are fixedly connected to both sides of the bottom of the horizontal linkage rod 3309, and the bottom of the two vertical linkage rods 3311 is in a squeezing sliding engagement with the two sliding support plates 3308.
[0120] Before use, multiple blood collection soft bottles 3304 can be placed inside the storage box 3301 for preparation. The storage box 3301 is then inserted into the portable analysis box 1. At this time, the end of the storage box 3301 will be at the top of the second reserved slot. Simultaneously, the first spring 3302 will drive the squeezing push plate 3303 to continuously squeeze the multiple blood collection soft bottles 3304, so that when a blood collection soft bottle 3304 is taken out, there will be a new blood collection soft bottle 3304 waiting at the feeding port.
[0121] Meanwhile, through the cooperation of the rolling push shaft 3305 and the second spring 3306, the blood collection soft bottle 3304 can be stuck in the feeding port, preventing the blood collection soft bottle 3304 from falling into the second reserved groove and affecting the movement effect of the moving clamping module 32. At the same time, through the rolling setting of the rolling push shaft 3305, the resistance of the second clamping module when removing the blood collection soft bottle 3304 can be reduced, thereby improving the working efficiency of removing the blood collection soft bottle 3304.
[0122] When the drive block 321 drives the rotating wheel 322 to slide inside the third sliding groove, the rotating wheel 322 can squeeze the sliding support plate 3308. At this time, the sliding support plate 3308 will cancel the support effect on the vertical linkage rod 3311. At this time, the two vertical linkage rods 3311 will move downward at the same time, and drive the top horizontal linkage rod 3309 to move downward synchronously. At this time, the push block 3310 at the bottom of the horizontal linkage rod 3309 can be driven to extend into the discharge port and squeeze the blood collection soft bottle 3304 waiting in the discharge port, causing the blood collection soft bottle 3304 to move downward and move most of the blood collection soft bottle 3304 out of the discharge port. At the same time, the blood collection soft bottle 3304 can be removed by clamping the bottom of the blood collection soft bottle 3304 through the second clamping module.
[0123] When the drive block 321 drives the rotating wheel 322 to move out of the range of the squeezing of the sliding support plate 3308, the sliding support plate 3308 can be fixed back to the bottom of the vertical linkage rod 3311 by the setting of the third spring 3307, and the vertical linkage rod 3311 can be lifted up again by the inclined surface of the top of the sliding support plate 3308, thereby driving the push block 3310 to move upward and get out of the inside of the feed port.
[0124] Example 3:
[0125] This embodiment 3 further discloses the specific structure of the stabilizing auxiliary unit 4 based on the above embodiments. By cooperating with the structure in the above embodiments, the stabilizing auxiliary unit 4 can fix the finger to be tested and bind the finger, thereby reducing blood flow at the fingertip and improving the blood collection effect of the finger.
[0126] The portable infectious disease analysis device provided in Embodiment 1 and Embodiment 2 has been further optimized, specifically, as follows: Figures 12-13 As shown, the stabilizing auxiliary unit 4 includes a fixed ring 401, a first arc plate 402, a second arc plate 403, a movable push plate 404, a rack 405, a fifth motor 406, a third rotating rod 407, and a second gear 408. A fixed ring 401 is fixedly connected to the outlet position of the first reserved slot. A first arc plate 402 is fixedly connected to the bottom inner side of the first reserved slot. Second arc plates 403 are rotatably connected to both sides of the first arc plate 402. A movable push plate 404 is rotatably connected to the side of each of the two second arc plates 403 that is furthest away from the first arc plate 403. Two movable push plates 404... The bottom of each push plate 404 extends to the bottom of the first arc plate 402 and is symmetrically provided with a fourth sliding groove. The bottom of each of the two movable push plates 404 is symmetrically provided with a rack 405 fixedly connected to it. Both racks 405 are in sliding engagement with the fourth sliding groove at the bottom of the other movable push plate 404. The bottom of the second reserved groove is fixedly connected with a third rotating rod 407. The top output end of the third rotating rod 407 is fixedly connected with a second gear 408. The second gear 408 is meshed with the two racks 405.
[0127] The stabilizing auxiliary unit 4 also includes a first elastic band 409, a fourth spring 410, a second elastic band 411, and a moving link 412. A groove is provided on the inner side of the fixing ring 401, and the first elastic band 409 is provided at the top of the inner side of the groove. Multiple fourth springs 410 are fixedly connected to the top of the groove on the inner side of the fixing ring 401, and the other end of the multiple fourth springs 410 is fixedly connected to the first elastic band 409. The bottom of both sides of the first elastic band 409 is fixedly connected to the second elastic band 411, and the second elastic bands 411 on both sides are arranged in a cross pattern and extend to the bottom of the first arc plate 402. The bottom of both second elastic bands 411 is fixedly connected to the moving link 412, and the end of both moving links 412 away from the second elastic band 411 is fixedly connected to the end of the rack 405.
[0128] After the person being tested inserts their finger through the fixing ring 401 and places it on top of the first arc plate 402 inside the first reserved slot, the fifth motor 406 can be turned on to drive the third rotating rod 407 to rotate, which in turn drives the second gear 408 to rotate synchronously. Through the meshing of the second gear 408 with the two racks 405, the two racks 405 can move in opposite directions at the same time, thereby driving the two moving push plates 404 to move in opposite directions synchronously. The movement of the two moving push plates 404 can drive the two second arc plates 403 to rotate on both sides of the first arc plate 402, thus stabilizing the finger.
[0129] While the two racks 405 move, they will drive the moving link 412 to move synchronously. At this time, the end of the moving link 412 away from the rack 405 will drive the ends of the two second elastic bands 411 to move synchronously. Through the cross arrangement of the two second elastic bands 411, the first elastic band 409 at the top can be contracted, and a tightening effect will be produced on the fingers of the person being tested.
[0130] After blood collection, the second gear 408 can be rotated by rotating the third rotating rod 407, which will cause the two racks 405 to separate synchronously. This will allow the two second arc plates 403 to release their gripping effect on the fingers, and the two second elastic bands 411 will also release their pulling force on the first elastic band 409, thus releasing the first elastic band 409 from its tightening effect on the fingers. At the same time, through the setting of the fourth spring 410, when the first elastic band 409 loses its tension, it can be retracted to the inside of the fixing ring 401, thereby reducing the impact on the insertion and withdrawal of the fingers.
[0131] By setting up the stabilizing auxiliary unit 4, the blood flow at the fingertips of the person being tested can be reduced, making it easier for the disposable blood collection device 20 to collect blood from the fingertips, improving the efficiency of blood collection. At the same time, by providing more blood, the workload of blood collection can be reduced, and the accuracy of blood analysis and testing can be avoided due to insufficient blood collection.
[0132] The above description of the embodiments is provided to enable those skilled in the art to understand and use the invention. It will be apparent to those skilled in the art that various modifications can be made to these embodiments, and the general principles described herein can be applied to other embodiments without inventive effort. Therefore, the present invention is not limited to the above embodiments, and any improvements and modifications made by those skilled in the art based on the disclosure of the present invention without departing from the scope of the invention should be within the protection scope of the present invention.
Claims
1. A portable infectious disease analysis device, comprising a portable analysis box (1), characterized in that, The portable analysis box (1) has a display screen (2) fixedly connected to one side of its top; The portable analysis box (1) has a first reserved slot at the bottom of the side of the inner side near the display screen (2), and a blood analysis unit (3) is installed at the top of the first reserved slot; The portable analysis box (1) has a second reserved slot on the inner side near the display screen (2). The second reserved slot is located at the top of the first reserved slot and is connected to it. The second reserved slot has a first circular slot on the side near the display screen (2). The portable analysis box (1) has a third reserved slot and a fourth reserved slot on the inner side away from the display screen (2). The third reserved slot is located at the top of the fourth reserved slot and is connected to it. The blood analysis unit (3) includes a blood collection device storage module (31), a mobile clamping module (32), a blood collection device storage module (33), a blood detection and analysis module (34), a collection box (35), and a guide groove (36); the blood collection device storage module (31) is installed inside the first circular groove, the mobile clamping module (32) is installed inside the second reserved groove, and the blood collection device storage module (33) is installed at the top of the second reserved groove; the blood detection and analysis module (34) is fixedly connected inside the third reserved groove, and the blood detection and analysis module (34) is connected to the display screen (2); the collection box (35) is inserted into the fourth reserved groove; the first reserved groove and the fourth reserved groove are connected, and the guide groove (36) is fixedly connected at the connection position; A stabilizing auxiliary unit (4) is also installed inside the first reserved slot.
2. The portable infectious disease analysis device according to claim 1, characterized in that, The blood collection device storage module (31) includes a stop (3101), a threaded rod (3102), a guide rod (3103), a first motor (3104), a first rotating rod (3105), a bevel gear set (3106), a sliding block (3107), and a rotating ring (3108); A stop (3101) is rotatably connected to the outer side of the first circular groove via a hinge; The first circular groove has a first sliding groove and a second sliding groove at its top and bottom, respectively. A threaded rod (3102) is rotatably connected to the inside of the first sliding groove, and a guide rod (3103) is fixedly connected to the inside of the second sliding groove. The top of the first sliding groove is provided with a vertical groove, and a first motor (3104) is fixedly connected to the top of the inner side of the vertical groove. The output end of the first motor (3104) is fixedly connected to a first rotating rod (3105). A bevel gear set (3106) is provided at the bottom of the first rotating rod (3105), and the bottom of the first rotating rod (3105) is rotatably connected to the threaded rod (3102) through the bevel gear set (3106). Sliding blocks (3107) are slidably connected to the inner sides of the first sliding groove and the second sliding groove. One sliding block (3107) is threadedly connected to the threaded rod (3102), and the other sliding block (3107) is slidably connected to the guide rod (3103). A rotating ring (3108) is provided between the two sliding blocks (3107), and the top and bottom of the rotating ring (3108) are rotatably connected to the two sliding blocks (3107).
3. The portable infectious disease analysis device according to claim 2, characterized in that, The blood collection device storage module (31) also includes a placement tray (3109), a disposable blood collector (3110), a fixed semi-arc plate (3111), a fixing block (3112), a second rotating rod (3113), a first gear (3114), a second motor (3115), a single-tooth paddle (3116), and a fixed tooth block (3117); The inner side of the rotating ring (3108) is rotatably connected to a placement tray (3109), and the inner side of the placement tray (3109) is arranged in a circular array and has multiple disposable blood collection devices (3110) inserted into it; One end of the rotating ring (3108) is fixedly connected to a fixed semi-arc plate (3111), and the fixed semi-arc plate (3111) has multiple toothed grooves at the end away from the rotating ring (3108). The fixed semi-arc plate (3111) is fixedly connected to a fixed block (3112) at one end near the rotating ring (3108). The fixed block (3112) is rotatably connected to a second rotating rod (3113) at one end near the rotating ring (3108). The second rotating rod (3113) is fixedly connected to the placement plate (3109). A first gear (3114) is also fixedly connected to the outside of the second rotating rod (3113). The bottom of the fixed block (3112) is connected to a second motor (3115), and the output end of the second motor (3115) is fixedly connected to a single-tooth paddle block (3116), which meshes with the first gear (3114). A fixed tooth block (3117) is connected to one side of the inner side of the first circular groove, and the fixed tooth block (3117) meshes with the tooth groove on the fixed semi-arc plate (3111).
4. The portable infectious disease analysis device according to claim 1, characterized in that, The movable clamping module (32) includes a drive block (321), a rotating wheel (322), a first clamping module (323), and a second clamping module (324); The second reserved groove is provided with a third sliding groove on both sides. A driving block (321) is provided inside the second reserved groove. Both ends of the driving block (321) are rotatably connected to a rotating wheel (322), and both rotating wheels (322) are slidably connected to the third sliding groove. A first clamping module (323) is installed at one end of the drive block (321), and a second clamping module (324) is installed at the top of the drive block (321).
5. A portable infectious disease analysis device according to claim 4, characterized in that, The first clamping module (323) includes a first telescopic rod (323.1), a circular recess (323.2), a clamping rod (323.3), a third motor (323.4), and a first rotating disk (323.5); The drive block (321) has a first telescopic rod (323.1) fixedly connected to the inner side of one end, and a circular recess (323.2) is fixedly connected to the end of the first telescopic rod (323.1) away from the drive block (321). The circular recess (323.2) has a first rotating groove on its inner side, and four clamping rods (323.3) are slidably connected to the inner side of the circular recess (323.2), with one end of each of the four clamping rods (323.3) extending into the inner side of the first rotating groove. A third motor (323.4) is fixedly connected to the inner side of the first rotating groove, and a first rotating disk (323.5) is fixedly connected to the output end of the third motor (323.4); The first rotating disk (323.5) is fixedly connected to a sliding groove at the end away from the third motor (323.4). The ends of the four clamping rods (323.3) are all slidably connected to the sliding groove, and the first rotating disk (323.5) drives the four clamping rods (323.3) to move together and separate through the sliding groove.
6. A portable infectious disease analysis device according to claim 4, characterized in that, The second clamping module (324) includes a second telescopic rod (324.1), a square base (324.2), a fourth motor (324.3), a second rotating disk (324.4), a rotating plate (324.5), a rotating seat (324.6), and a clamping plate (324.7); The top of the drive block (321) is fixedly connected to a second telescopic rod (324.1), the top of the second telescopic rod (324.1) is fixedly connected to a square base (324.2), and the inside of the square base (324.2) is fixedly connected to a fourth motor (324.3). The output end of the fourth motor (324.3) is rotatably connected to the second rotating disk (324.4). Rotating plates (324.5) are rotatably connected to the top of both sides of the second rotating disk (324.4). Rotating seats (324.6) are rotatably connected to the top of both sides of the rotating plates (324.5) away from the second rotating disk (324.4). Clamping plates (324.7) are fixedly connected to the top of both rotating seats (324.6), and both clamping plates (324.7) are located on the top of the square base (324.2).
7. A portable infectious disease analysis device according to claim 1, characterized in that, The blood collection device storage module (33) includes a storage box (3301), a first spring (3302), a squeezing push plate (3303), a blood collection soft bottle (3304), a rolling push shaft (3305), and a second spring (3306); The portable analysis box (1) has a storage box (3301) inserted at the end away from the display screen (2), and the storage box (3301) is located at the top of the second reserved slot; The storage box (3301) has a feeding groove at one end near the display screen (2), and the feeding groove is connected to the second reserved groove; A first spring (3302) is fixedly connected to one end of the inner side of the storage box (3301) away from the display screen (2), and a pressing push plate (3303) is connected to the other end of the first spring (3302), and the pressing push plate (3303) is slidably connected to the inner side of the storage box (3301). Multiple blood collection soft bottles (3304) are placed inside the storage box (3301); The feeding trough has a fourth sliding groove at one end, and a rolling push shaft (3305) is provided inside the fourth sliding groove. A second spring (3306) is fixedly connected to both sides of the rolling push shaft (3305), and the two second springs (3306) are fixedly connected to the fourth sliding groove.
8. A portable infectious disease analysis device according to claim 7, characterized in that, The blood collection device storage module (33) also includes a third spring (3307), a sliding support plate (330), a horizontal linkage rod (3309), a push block (3310), and a vertical linkage rod (3311); The second reserved slot is provided with a third sliding slot on both sides. Each third sliding slot is fixedly connected to a plurality of third springs (3307) on the inner side of the end closest to the display screen (2). The end of the plurality of third springs (3307) away from the display screen (2) is fixedly connected to a sliding support plate (3308). The top of the sliding support plate (3308) is sloped, and each sliding support plate (3308) is slidably connected to the third sliding groove; The storage box (3301) has a fifth reserved slot at the top, and both sides of the fifth reserved slot are connected to the third sliding slot; A horizontal linkage rod (3309) is slidably connected to the inner side of the fifth reserved slot. A push block (3310) is fixedly connected to the bottom center of the horizontal linkage rod (3309), and the push block (3310) is slidably fitted with the discharge port. The horizontal linkage rod (3309) is fixedly connected to vertical linkage rods (3311) on both sides of its bottom, and the bottom of both vertical linkage rods (3311) is in a squeezing and sliding fit with the sliding support plate (3308).
9. A portable infectious disease analysis device according to claim 1, characterized in that, The stabilizing auxiliary unit (4) includes a fixed ring (401), a first arc plate (402), a second arc plate (403), a movable push plate (404), a rack (405), a fifth motor (406), a third rotating rod (407), and a second gear (408); A fixing ring (401) is fixedly connected to the outlet position of the first reserved groove. A first arc plate (402) is fixedly connected to the bottom of the inner side of the first reserved groove. A second arc plate (403) is rotatably connected to both sides of the first arc plate (402). A movable push plate (404) is rotatably connected to the side of the two second arc plates (403) that is far away from each other. The bottom of the two movable push plates (404) extends to the bottom of the first arc plate (402) and is symmetrically provided with a fourth sliding groove. A rack (405) is symmetrically provided and fixedly connected to the bottom of the two movable push plates (404) on the adjacent side. The two racks (405) are in sliding fit with the fourth sliding groove at the bottom of the other movable push plate (404). The bottom of the second reserved slot is fixedly connected to a third rotating rod (407), and the top output end of the third rotating rod (407) is fixedly connected to a second gear (408). The second gear (408) is meshed with two racks (405).
10. A portable infectious disease analysis device according to claim 9, characterized in that, The stabilization auxiliary unit (4) also includes a first elastic band (409), a fourth spring (410), a second elastic band (411), and a moving link (412); The fixing ring (401) has a groove on its inner side, and a first elastic band (409) is provided on the top of the inner side of the groove; The top of the inner groove of the fixing ring (401) is fixedly connected to a plurality of fourth springs (410), and the other end of the plurality of fourth springs (410) is fixedly connected to the first elastic band (409); The bottom of both sides of the first elastic band (409) is fixedly connected to a second elastic band (411), and the second elastic bands (411) on both sides are arranged in a cross shape and extend to the bottom of the first arc plate (402). The bottom of both second elastic bands (411) is fixedly connected to a moving link (412), and the end of both moving links (412) away from the second elastic band (411) is fixedly connected to the end of the rack (405).
Citation Information
Patent Citations
Detection device for detecting infectious pathogen
CN107525931A