A continuous monitoring kit for bovine superovulation hormone

By designing a bovine superovulation hormone continuous monitoring kit that integrates test strips and serum detection structures, the problems of low detection efficiency and large delays have been solved, enabling a flexible and accurate detection method, expanding the scope of application, reducing costs, and improving work efficiency.

CN122385901APending Publication Date: 2026-07-14阳信华胜清真肉类有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
阳信华胜清真肉类有限公司
Filing Date
2026-06-09
Publication Date
2026-07-14

AI Technical Summary

Technical Problem

Existing bovine superovulation hormone testing methods are inefficient, have significant delays, and are difficult to use for continuous monitoring, thus affecting the accuracy of test results and work efficiency.

Method used

A bovine superovulation hormone continuous monitoring kit was designed, comprising a test strip detection structure and a serum detection structure. It adopts a motor-driven and electric cylinder-driven structure, integrates a dropper and a red blood cell barrier filter membrane, supports test strip and serum detection, and monitors the detection results through a camera, enabling flexible selection of detection methods.

Benefits of technology

It has improved the flexibility and accuracy of testing, shortened testing time, expanded the scope of application, reduced production costs, enabled continuous monitoring, and improved work efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The disclosure provides a kind of bovine superovulation hormone continuous monitoring kit, comprising: box, the box is slidably fitted with box cover, box cover is equipped with rotary drive structure and press-down drive structure, rotary drive structure includes motor, press-down drive structure includes second electric cylinder;Test paper detection structure, the test paper detection structure includes multiple test papers, the bottom of box is provided with multiple test paper grooves, test paper is clamped and fixed in test paper groove, rotary frame is rotatably fitted in box, and the output end of motor is clamped and fixed with rotary frame.In the bovine superovulation hormone continuous monitoring kit of the disclosure, test paper detection structure and serum detection structure are installed in the box, so that the device can not only be detected by test paper, but also be more accurately detected by detecting hormones in serum, so that the device is more flexible to use, and the more rapid or more accurate detection mode can be selectively used as needed.
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Description

Technical Field

[0001] This disclosure relates to the technical field of bovine superovulation hormone detection systems, and more particularly to a bovine superovulation hormone continuous monitoring kit. Background Technology

[0002] In the existing biomedical engineering industry, bovine embryo transfer and breeding transplantation are very popular research directions. In order to obtain more bovine eggs, superovulation hormone is usually given to cows to induce the cow's ovary to release multiple eggs at once. After the administration of superovulation hormone, the hormone levels in the cow's body need to be continuously monitored to determine the ovulation time and the optimal conception period. Most current tests use urine or blood samples to be sent to the laboratory for analysis, which is inefficient and has a certain delay, thus affecting the accuracy of the test results. Furthermore, it is inconvenient to conduct continuous monitoring, which affects the efficiency of the testing work. Summary of the Invention

[0003] This disclosure aims to at least partially address one of the technical problems in the related art.

[0004] Therefore, the purpose of this disclosure is to provide a bovine superovulation hormone continuous monitoring kit.

[0005] To achieve the above objectives, this disclosure provides a bovine superovulation hormone continuous monitoring kit, comprising: a box body, a lid slidably fitted onto the box body, the lid being equipped with a rotation drive structure and a pressing drive structure, the rotation drive structure including a motor, and the pressing drive structure including a second electric cylinder; a test strip detection structure, the test strip detection structure including multiple test strips, multiple test strip slots being opened at the bottom of the box body, the test strips being snapped and fixed in the test strip slots, a rotating frame being rotatably fitted inside the box body, the output end of the motor being snapped and fixed to the rotating frame, multiple drip nozzles being opened on the rotating frame, and a drip nozzle being equipped with a... The red blood cell barrier filter membrane has a rotating frame located on the upper side of the test strip; the serum detection structure includes multiple syringes installed inside the box, a support plate installed inside the box cover, syringes installed inside the support plate, a piston plate slidably fitted inside the syringe, a storage block fixed on the piston plate, the storage block communicating with the syringe, a sealing block slidably fitted inside the storage block, a limiting structure installed at the top of the syringe, the limiting structure including a limiting block, a pusher slidably fitted inside the syringe, the pusher elastically connected to the sealing block, the pusher fixedly connected to the piston plate, and the output end of the second electric cylinder adsorbed and fixed to the pusher.

[0006] Optionally, a first electric cylinder is fixed on one side of the box body, and the output end of the first electric cylinder is fixedly connected to the box cover. A telescopic rod is installed on the other side of the box body, and the two ends of the telescopic rod are fixedly connected to the box body and the box cover respectively. The box cover has a disassembly port, which is connected to the box body, and a plug is fixedly engaged in the disassembly port.

[0007] Optionally, a rotating groove is provided at the bottom of the box body, the bottom of the rotating frame is located in the rotating groove, the motor is fixed to the box cover, the output end of the motor is fixed to a rotating shaft, a connecting plate is fixed on the rotating shaft, and multiple inserts are fixed on the connecting plate; wherein, a support frame is fixed on the rotating frame, the support plate is located between the support frame and the connecting plate, the support frame is provided with multiple slots, the support plate is provided with multiple through slots, and one end of the insert is inserted through the through slot and locked in the slot.

[0008] Optionally, the rotating frame has multiple first openings, and the bottom of the box has multiple second openings. The first openings and second openings are of equal size, and when the rotating frame rotates so that the first opening is above the second opening, the first opening and the second opening are connected. The test strip slot and the second opening are offset. The test strip includes a shell and a test strip body. The shell has a slot, and an elastic block is fixed in the test strip slot. The elastic block is locked in the slot, and the test strip body is fixed in the shell. The multiple test strips are follicle-stimulating hormone (FSH) test strips, luteinizing hormone (LH) test strips, estradiol (E2) test strips, progesterone (P4) test strips, etc.

[0009] Optionally, the support plate has a fixing groove, the syringe is equipped with a fixing frame, the outer periphery of the fixing frame is fixed with an elastic ring, the elastic ring is snapped and fixed in the fixing groove, the fixing frame has a first sliding groove, the syringe is fixed with a sliding frame, and the sliding frame is located in the first sliding groove; wherein, a plurality of first springs are fixed between the syringe and the fixing frame, a first electromagnet is fixed in the fixing frame, the first electromagnet is attracted and fixed to the sliding frame, and a battery and a microcontroller are fixed in the fixing frame.

[0010] Optionally, the bottom of the syringe is equipped with a needle, and a connector is fixed between the syringe and the needle. The syringe, the needle and their internal structure are all disposable structures, and the storage block is located inside the connector. The push frame and the piston plate are provided with a second sliding groove, and a sliding rod is slidably fitted in the second sliding groove. The sliding rod is fixedly connected to the sealing block, and a limit plate is fixed to the end of the sliding rod. Multiple second springs are fixed between the limit plate and the push frame.

[0011] Optionally, the storage block is a hollow structure with a discharge port at the bottom and a sealing block located inside the discharge port; wherein, when the piston plate slides upward until the limiting plate contacts the limiting block, the limiting block presses the limiting plate downward, and the limiting plate presses the sealing block through the sliding rod, and the discharge port is connected to the syringe.

[0012] Optionally, one end of the pusher is located at the top of the syringe, and a third sliding groove is provided on the syringe. The pusher slides in the third sliding groove. A lower pressure plate is fixed at the output end of the second electric cylinder, and a second electromagnet is fixed inside the lower pressure plate. The second electromagnet is attracted and fixed to the pusher.

[0013] Optionally, multiple light-shielding partitions are fixed on the rotating frame, and the light-shielding partitions are in contact with the support plate. Multiple first grooves are opened inside the box, and photoelectric sensors are fixed in the first grooves. The photoelectric sensors are located on one side of the syringe.

[0014] Optionally, a second groove is provided at the top of the test strip slot, and a camera and a supplementary light are fixed in the second groove. The camera detects the detection structure of the test strip, and the concentration of bovine superovulation hormone is determined based on the color change of the test strip.

[0015] The technical solution provided in this disclosure may include the following beneficial effects: 1. The device incorporates both test strip and serum detection structures within the casing, enabling it to perform tests not only via test strips but also by more accurately detecting hormones in serum. This makes the device more flexible and allows for the selective use of faster or more precise detection methods, expanding its applicability. It provides rapid results even without test strips, improving efficiency. The flexible and convenient casing allows for use in complex environments, facilitating monitoring of bovine superovulation hormones, or direct blood collection using the included needle, reducing latency and increasing overall efficiency.

[0016] 2. A dropper is installed on the rotating frame, and a red blood cell barrier filter membrane is installed inside the dropper. Blood can be directly dripped onto the test strip for monitoring, reducing the complexity of the monitoring steps, improving work efficiency, and allowing the test results to be monitored via a camera. By rotating the frame, different test strips can be used for monitoring, thus detecting different hormones and different blood types, achieving continuous monitoring and improving the overall working efficiency of the device.

[0017] 3. It can directly draw blood or serum through syringes and needles, and can draw blood and add test reagents according to the sliding position of the piston plate, thereby expanding the applicability of the device. The syringes can be replaced individually or all syringes can be replaced at once, so that the box can be reused, reducing production costs. Furthermore, it can perform continuous monitoring through multiple syringes, improving overall work efficiency.

[0018] Additional aspects and advantages of this disclosure will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of this disclosure. Attached Figure Description

[0019] The above and / or additional aspects and advantages of this disclosure will become apparent and readily understood from the following description of the embodiments taken in conjunction with the accompanying drawings, in which: Figure 1 This is a schematic diagram of the overall assembly three-dimensional structure of the bovine superovulation hormone continuous monitoring kit proposed in one embodiment of the present disclosure; Figure 2 This is a schematic diagram of the overall assembly cross-sectional structure of the bovine superovulation hormone continuous monitoring kit proposed in one embodiment of this disclosure; Figure 3 yes Figure 2 A schematic diagram at point A in the middle; Figure 4 This is a schematic diagram of the assembly structure of the box body and box lid in a bovine superovulation hormone continuous monitoring kit according to an embodiment of this disclosure; Figure 5 This is a schematic diagram of the assembly structure of the box and test strip slot in a bovine superovulation hormone continuous monitoring kit according to an embodiment of this disclosure; Figure 6 This is an exploded diagram of a bovine superovulation hormone continuous monitoring kit according to an embodiment of this disclosure; Figure 7 This is a schematic diagram of the three-dimensional assembly structure of the rotating frame in a bovine superovulation hormone continuous monitoring kit according to an embodiment of this disclosure; Figure 8 This is a schematic diagram of the assembled three-dimensional structure of the syringe in a bovine superovulation hormone continuous monitoring kit according to an embodiment of the present disclosure; Figure 9 This is a schematic diagram of the assembled three-dimensional structure of the box in a bovine superovulation hormone continuous monitoring kit according to an embodiment of the present disclosure; Figure 10 This is a schematic diagram of the assembly cross-sectional structure of the box in a bovine superovulation hormone continuous monitoring kit according to an embodiment of the present disclosure; Figure 11 This is a schematic diagram of the assembled cross-sectional structure of the syringe in a bovine superovulation hormone continuous monitoring kit according to an embodiment of this disclosure; Figure 12 This is a schematic diagram of the lid and support plate of a bovine superovulation hormone continuous monitoring kit according to an embodiment of the present disclosure; As shown in the figure: 101, box body; 102, first electric cylinder; 103, telescopic rod; 104, box cover; 105, disassembly port; 106, plug; 201. Rotating frame; 202. Rotating groove; 203. Motor; 204. Rotating shaft; 205. Support frame; 206. Connecting plate; 207. Slot; 208. Insert block; 209. Light-shielding partition; 301. Support plate; 302. Through groove; 303. Test paper tray; 304. First through port; 305. Second through port; 306. Drip nozzle; 307. Elastic locking block; 401. Fixed groove; 402. Fixed frame; 403. First sliding groove; 404. Sliding frame; 405. Syringe; 406. Needle; 407. Connector; 408. Piston plate; 409. Push frame; 410. Second electric cylinder; 411. Second sliding groove; 412. Sliding rod; 413. Sealing block; 414. Discharge port; 415. Storage block; 416. First spring; 417. Second spring; 418. Limiting plate; 419. Limiting block; 420. Elastic ring; 421. First electromagnet; 422. Battery; 501. Third sliding groove; 502. Second electromagnet; 503. Lower pressure plate; 601, First groove; 602, Photoelectric sensor; 701, Second recess; 702, Camera; 703, Fill light. Detailed Implementation

[0020] Embodiments of this disclosure are described in detail below, examples of which are illustrated in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are used only to explain this disclosure, and should not be construed as limiting this disclosure. Rather, embodiments of this disclosure include all variations, modifications, and equivalents falling within the spirit and scope of the appended claims.

[0021] like Figures 1 to 12As shown in the present invention, an embodiment of a bovine superovulation hormone continuous monitoring kit is provided, comprising: a box body 101, a box cover 104 slidably fitted on the box body 101, the box cover 104 being equipped with a rotation drive structure and a pressing drive structure, the rotation drive structure including a motor 203, and the pressing drive structure including a second electric cylinder 410; a test strip detection structure, the test strip detection structure including multiple test strips, multiple test strip slots 303 being opened at the bottom of the box body 101, the test strips being snapped and fixed in the test strip slots 303, a rotating frame 201 being rotatably fitted inside the box body 101, the output end of the motor 203 being snapped and fixed to the rotating frame 201, multiple drip ports 306 being opened on the rotating frame 201, the drip ports 306 being equipped with red blood cell barrier filters, the rotating frame 201... Located on the upper side of the test strip; serum detection structure, the serum detection structure includes multiple syringes 405 installed in the box body 101, a support plate 301 installed in the box cover 104, syringes 405 installed in the support plate 301, a piston plate 408 slidably fitted in the syringes 405, a storage block 415 fixed on the piston plate 408, the storage block 415 communicating with the syringes 405, a sealing block 413 slidably fitted in the storage block 415, a limiting structure installed at the top of the syringes 405, the limiting structure including a limiting block 419, a pusher 409 slidably fitted in the syringes 405, the pusher 409 elastically connected to the sealing block 413, the pusher 409 fixedly connected to the piston plate 408, and the output end of the second electric cylinder 410 adsorbed and fixed to the pusher 409.

[0022] Specifically, in the biomedical engineering industry, superovulation hormone is used on cows, and hormone levels are monitored. Blood can be drawn directly from the cow using a syringe 405 and needle 406, and then the blood is dripped onto a test strip for hormone detection. Alternatively, blood can be drawn from the cow using a blood collection device, centrifuged in a laboratory, and then the centrifuged serum is extracted using a syringe 405 and needle 406. The serum is then dripped onto a test strip for detection. Alternatively, the sealing block 413 can be pushed to mix the serum with the test reagent, thus achieving better detection results. A controller is installed on one side of the cover 104 to control the device's operation. The cover 106 can be opened, and individual syringes 405 can be disassembled and replaced through the disassembly port 105. Alternatively, the cover 104 can be pushed upwards to remove the support plate 301, allowing for the disassembly and replacement of all syringes 405. This enables continuous monitoring, making the device more flexible and expanding its application.

[0023] In this embodiment, a first electric cylinder 102 is fixed on one side of the box body 101, and the output end of the first electric cylinder 102 is fixedly connected to the box cover 104. A telescopic rod 103 is installed on the other side of the box body 101, and the two ends of the telescopic rod 103 are fixedly connected to the box body 101 and the box cover 104 respectively. The box cover 104 has a disassembly port 105, which is connected to the box body 101. A plug 106 is fixedly engaged in the disassembly port 105.

[0024] Specifically, when it is necessary to open the cover 104, the first electric cylinder 102 is activated, which pushes the cover 104 upward, causing it to slide upward and separate from the box body 101. This allows the cover 104 to be opened, enabling the disassembly of structures such as the syringe 405 inside the box body 101. When only one syringe 405 needs to be disassembled, the plug 106 can be pulled upward to remove it individually, opening the disassembly port 105. This allows the syringe 405 to be removed and replaced individually. Other syringes 405 can be used for testing while the original syringe 405 is being disassembled and replaced, thereby improving the working efficiency of the device and achieving continuous monitoring.

[0025] A rotating groove 202 is provided at the bottom of the box body 101. The bottom of the rotating frame 201 is located in the rotating groove 202. The motor 203 is fixed to the box cover 104. The output end of the motor 203 is fixed to the rotating shaft 204. A connecting plate 206 is fixed on the rotating shaft 204. Multiple inserts 208 are fixed on the connecting plate 206. A support frame 205 is fixed on the rotating frame 201. A support plate 301 is located between the support frame 205 and the connecting plate 206. Multiple slots 207 are provided on the support frame 205. Multiple through slots 302 are provided on the support plate 301. One end of the insert 208 passes through the through slot 302 and is snapped into the slot 207.

[0026] Specifically, the support plate 301 is placed on the support frame 205. As the box cover 104 moves downward, the connecting plate 206 moves downward simultaneously. One end of the insert block 208 passes through the through groove 302 and is locked in the slot 207. At this time, the connecting plate 206 can connect the support plate 301 and the support frame 205 together. Starting the motor 203 will drive the rotating shaft 204 to rotate, thereby driving the connecting plate 206 to rotate. This allows the connecting plate 206 to drive the rotating frame 201 and the support frame 205 to rotate, thus adjusting the position of the syringe 405 and performing different operations on the syringe 405. This prevents restrictions on the movement of the syringe 405, ensuring the success of the test and making the device more flexible to use. The support plate 301 can also provide auxiliary light shielding, ensuring the accuracy of the test results. In use, the box 101 is more flexible, allowing the device to be used in more complex environments and expanding its applicability.

[0027] The rotating frame 201 has multiple first openings 304, and the bottom of the box 101 has multiple second openings 305. The first openings 304 and the second openings 305 are equal in size, and when the rotating frame 201 rotates so that the first opening 304 is above the second opening 305, the first opening 304 and the second opening 305 are connected. The test strip slot 303 is offset from the second opening 305. The test strip includes a shell and a test strip body. The shell has a slot, and the test strip slot 303 has an elastic block 307 fixed inside. The elastic block 307 is locked and fixed in the slot. The test strip body is fixed inside the shell. The multiple test strips are follicle-stimulating hormone (FSH) test strips, luteinizing hormone (LH) test strips, estradiol (E2) test strips, progesterone (P4) test strips, etc.

[0028] Specifically, when testing is required, the rotating frame 201 is rotated so that the first port 304 is positioned above the second port 305, connecting the two ports. The syringe 405 can then be extended through both ports to draw blood or serum. After drawing, the syringe 405 is rotated above the test strip tray 303, at which point the blood or serum in the syringe 405 is expelled. The blood drips into the dropper 306 and is filtered by a red blood cell barrier membrane, preventing red blood cells from interfering with the test and ensuring accuracy. The test strip displays the results, allowing for the detection of hormone concentration. This enables the determination of bovine superovulation hormone concentration to a certain extent, providing more accurate data for subsequent work. Multiple tests at different times allow for continuous testing of the same cow, facilitating subsequent biological experiments, improving the accuracy of test results, and increasing the efficiency of the device. Alternatively, a red blood cell barrier membrane can be directly installed on the outer shell, allowing for replacement of the membrane each time the test strip is changed, preventing contamination and improving detection accuracy.

[0029] A fixing groove 401 is provided on the support plate 301. A fixing frame 402 is installed around the syringe 405. An elastic ring 420 is fixed on the outer periphery of the fixing frame 402. The elastic ring 420 is snapped and fixed in the fixing groove 401. A first sliding groove 403 is provided in the fixing frame 402. A sliding frame 404 is fixed around the syringe 405 and is located in the first sliding groove 403. A plurality of first springs 416 are fixed between the syringe 405 and the fixing frame 402. The first springs 416 are fixedly connected to the fixing frame 402 by snapping or adhesive suspension. A first electromagnet 421 is fixed in the fixing frame 402. The first electromagnet 421 is attracted and fixed to the sliding frame 404. A battery 422 and a microcontroller are fixed in the fixing frame 402.

[0030] Specifically, when blood or serum needs to be drawn, the second electric cylinder 410 can move the syringe 405 downwards. The syringe 405 slides within the first sliding groove 403 via the sliding frame 404, thereby adjusting its position. At this time, the first spring 416 is compressed, thus changing the position of the syringe 405. When it is necessary to keep the position of the syringe 405 stationary, the microcontroller can control the first electromagnet 421 to attract and fix the syringe 405, thus ensuring the fixed position of the syringe 405. Furthermore, the syringe 405 has a detachable structure from the fixing frame 402. When pulled upwards, the elastic ring 420 separates from the fixing groove 401. At this time, by pulling the syringe 405, it can be disassembled again, thus enabling the reuse of the fixing frame 402, thereby reducing the production and use costs of the device, achieving continuous hormone administration of bovine superovulation hormone, and improving the working efficiency of the device.

[0031] The bottom of the syringe 405 is equipped with a needle 406, and a connector 407 is fixed between the syringe 405 and the needle 406. The syringe 405, the needle 406 and their internal structure are all disposable structures, and the storage block 415 is located inside the connector 407. The push frame 409 and the piston plate 408 are provided with a second sliding groove 411. A sliding rod 412 is slidably fitted in the second sliding groove 411. The sliding rod 412 is fixedly connected to the sealing block 413. A limit plate 418 is fixed to the end of the sliding rod 412. Multiple second springs 417 are fixed between the limit plate 418 and the push frame 409.

[0032] Specifically, when blood needs to be drawn, the syringe 405 is pushed downwards to insert the needle 406 into the cow's body. Then, the position of the syringe 405 is fixed, and the pusher 409 is pulled upwards, causing the piston plate 408 to move upwards. Negative pressure is generated inside the syringe 405, allowing blood to be drawn. Similarly, when serum needs to be drawn, the needle 406 is inserted into the centrifuged serum for extraction. This allows for the extraction of blood or serum, facilitating monitoring and improving work efficiency. Depending on the detection method, the position of the sliding piston plate 408 is controlled. When the limiting plate 418 slides to the top, it contacts the limiting block 419, compressing the second spring 417. This allows the test reagent inside the sealing block 413 to be delivered, enabling precise monitoring and ensuring accurate detection.

[0033] The storage block 415 is a hollow structure, and a discharge port 414 is opened at the bottom of the storage block 415. The sealing block 413 is located inside the discharge port 414. When the piston plate 408 slides upward until the limiting plate 418 contacts the limiting block 419, the limiting block 419 presses the limiting plate 418 downward. The limiting plate 418 presses the sealing block 413 through the sliding rod 412. The discharge port 414 is connected to the syringe 405.

[0034] Specifically, the sealed block 413 is filled with enzymes and markers. The enzymes and markers react with serum, causing the solution to glow. The intensity of the glow can be monitored by the photoelectric sensor 602, thus achieving relatively accurate detection. Alternatively, the photoelectric sensor 602 can be replaced with a laser sensor, which emits a laser of a fixed wavelength. The laser irradiates the reaction solution, and the fluorescence signal is received to calculate the hormone concentration, thereby improving the accuracy of the detection results. During monitoring, the pusher 409 slides upward until the limiting plate 418 contacts the limiting block 419, which pushes the sealed block 413 downward, connecting the discharge port 414 with the syringe 405. This allows the test reagent to mix with the serum and react, resulting in a better detection effect. After the reaction is complete, the test results can be obtained quickly, shortening the detection time and preventing long delays. After the test is completed, the syringe 405 can be removed for more precise analysis of the components, ensuring the accuracy of the test results.

[0035] One end of the pusher 409 is located at the top of the syringe 405. The syringe 405 has a third sliding groove 501. The pusher 409 slides in the third sliding groove 501. The output end of the second electric cylinder 410 is fixed with a lower pressure plate 503. A second electromagnet 502 is fixed in the lower pressure plate 503. The second electromagnet 502 is attracted and fixed to the pusher 409.

[0036] Specifically, when it is necessary to move or draw blood from the syringe 405, the second electric cylinder 410 is activated, which drives the lower pressure plate 503 to move up and down. When the push frame 409 is attracted and fixed to the second electromagnet 502, the lower pressure plate 503 can drive the push frame 409 to move up and down, thereby drawing blood or moving the syringe 405, thus achieving a better movement effect.

[0037] Multiple light-shielding partitions 209 are fixed on the rotating frame 201. The light-shielding partitions 209 are in contact with the support plate 301. Multiple first grooves 601 are opened in the box body 101. A photoelectric sensor 602 is fixed in the first groove 601. The photoelectric sensor 602 is located on one side of the syringe 405.

[0038] Specifically, during testing, the light-shielding partition 209 can provide a good light-shielding effect, preventing two adjacent syringes 405 from interfering with each other and ensuring the accuracy of the test. During testing, the solution emits light, and the intensity of the light emission is detected by the photoelectric sensor 602. The concentration of hormone varies depending on the intensity of the light emission, thus achieving better test results.

[0039] The top of the test strip slot 303 is provided with a second groove 701, and a camera 702 and a supplementary light 703 are fixed in the second groove 701. The camera 702 detects the detection structure of the test strip and judges the concentration of bovine superovulation hormone based on the color change of the test strip.

[0040] Specifically, when using test strips to detect hormone concentration, blood is dropped onto the test strip, illuminated by a supplemental light 703, and the changes in the test strip are continuously detected by a camera 702. This results in good detection results, and the concentration of superovulation hormone can be determined based on the degree of color change of the test strip, thus achieving a better detection effect. Multiple test strips can be used for separate testing, thereby achieving continuous hormone monitoring, expanding the applicability of the device, and improving the working efficiency of the device.

[0041] Workflow: When it is necessary to open the box cover 104, the first electric cylinder 102 is activated. The first electric cylinder 102 pushes the box cover 104 upward, causing the box cover 104 to slide upward and separate from the box body 101. This allows the box cover 104 to be opened, enabling the disassembly of structures such as the syringe 405 inside the box body 101. When only one syringe 405 needs to be disassembled, the plug 106 can be pulled upward to remove it individually, opening the disassembly port 105. This allows the syringe 405 to be disassembled and replaced individually. Other syringes 405 can be used for testing while the single syringe 405 is disassembled and replaced, thereby improving the efficiency of the device. To improve efficiency and achieve continuous monitoring, the support plate 301 is placed on the support frame 205. As the cover 104 moves downward, the connecting plate 206 moves downward simultaneously. One end of the insert 208 passes through the through slot 302 and is locked in place within the slot 207. At this point, the connecting plate 206 connects the support plate 301 and the support frame 205 together. Starting the motor 203 drives the rotating shaft 204 to rotate, which in turn drives the connecting plate 206 to rotate the rotating frame 201 and the support frame 205. This allows for adjustment of the position of the syringe 405, enabling different operations on the syringe 405 and preventing any restriction on its movement, thus ensuring successful testing. When testing is required... Rotating the rotating frame 201 adjusts the first port 304 above the second port 305, connecting them. This allows the syringe 405 to be pushed out from both ports to draw blood or serum. The second electric cylinder 410 can then move the syringe 405 downwards. The syringe 405 slides within the first sliding groove 403 via the sliding frame 404, allowing its position to be adjusted. The first spring 416 is compressed, thus changing the position of the syringe 405. To maintain the syringe 405's position, the microcontroller controls the first electromagnet 421 to attract and fix it, ensuring the syringe 405 remains stationary. After fixing the position at 05 and drawing blood, rotate the syringe 405 above the test strip slot 303. At this time, the blood or serum in the syringe 405 can be pushed out. The blood drips into the dropper 306 and can be filtered by the red blood cell barrier membrane to prevent the red blood cells in the blood from affecting the test, thus ensuring the accuracy of the test. The test results are displayed on the test strip, and the concentration of hormones can be detected according to the concentration. This can detect the concentration of superovulation hormone to a certain extent. Then, the supplemental light 703 is used for illumination, and the camera 702 continuously detects the changes in the test strip, which can achieve better test results. The concentration of superovulation hormone can be judged based on the degree of color change of the test strip.During monitoring, the pusher 409 slides upward until the limiting plate 418 contacts the limiting block 419, thereby pushing the sealing block 413 downward, connecting the discharge port 414 with the syringe 405. This allows the test reagent to mix with the serum and react, producing a luminescent solution. The intensity of the luminescence is detected by the photoelectric sensor 602. Different luminescence intensities correspond to different hormone concentrations, resulting in better detection results.

[0042] In the description of this disclosure, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance. Furthermore, in the description of this disclosure, unless otherwise stated, "a plurality of" means two or more.

[0043] Any process or method description in the flowchart or otherwise herein can be understood as representing a module, segment, or portion of code comprising one or more executable instructions for implementing a particular logical function or process, and the scope of preferred embodiments of this disclosure includes additional implementations in which functions may be performed not in the order shown or discussed, including substantially simultaneously or in reverse order depending on the function involved, as will be understood by those skilled in the art to which embodiments of this disclosure pertain.

[0044] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this disclosure. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0045] Although embodiments of the present disclosure have been shown and described above, it is to be understood that the above embodiments are exemplary and should not be construed as limiting the present disclosure. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of the present disclosure.

Claims

1. A bovine superovulation hormone continuous monitoring kit, characterized in that, include: The box body (101) is slidably fitted with a box cover (104). The box cover (104) is equipped with a rotation drive structure and a pressing drive structure. The rotation drive structure includes a motor (203), and the pressing drive structure includes a second electric cylinder (410). The test strip detection structure includes multiple test strips. The bottom of the box body (101) is provided with multiple test strip slots (303). The test strips are snapped and fixed in the test strip slots (303). A rotating frame (201) is rotatably fitted inside the box body (101). The output end of the motor (203) is snapped and fixed to the rotating frame (201). Multiple drop ports (306) are provided on the rotating frame (201). Red blood cell blocking filter membranes are installed in the drop ports (306). The rotating frame (201) is located on the upper side of the test strips. The serum detection structure includes multiple syringes (405) installed in a box body (101), a support plate (301) installed in the box cover (104), syringes (405) installed in the support plate (301), a piston plate (408) slidably fitted inside the syringe (405), a storage block (415) fixed on the piston plate (408), the storage block (415) communicating with the syringe (405), a sealing block (413) slidably fitted inside the storage block (415), a limiting structure installed at the top inside the syringe (405), the limiting structure including a limiting block (419), a pusher (409) slidably fitted inside the syringe (405), the pusher (409) elastically connected to the sealing block (413), the pusher (409) fixedly connected to the piston plate (408), and the output end of the second electric cylinder (410) adsorbed and fixed to the pusher (409).

2. The bovine superovulation hormone continuous monitoring kit according to claim 1, characterized in that, include: A first electric cylinder (102) is fixed on one side of the box body (101), and the output end of the first electric cylinder (102) is fixedly connected to the box cover (104). A telescopic rod (103) is installed on the other side of the box body (101), and the two ends of the telescopic rod (103) are fixedly connected to the box body (101) and the box cover (104) respectively. The box cover (104) has a disassembly port (105) which is connected to the box body (101). A plug (106) is fixedly engaged in the disassembly port (105).

3. The bovine superovulation hormone continuous monitoring kit according to claim 1, characterized in that, include: The bottom of the box (101) is provided with a rotating groove (202), the bottom of the rotating frame (201) is located in the rotating groove (202), the motor (203) is fixed on the box cover (104), the output end of the motor (203) is fixed with a rotating shaft (204), a connecting plate (206) is fixed on the rotating shaft (204), and multiple inserts (208) are fixed on the connecting plate (206). The rotating frame (201) is fixed with a support frame (205), and the support plate (301) is located between the support frame (205) and the connecting plate (206). The support frame (205) has multiple slots (207), and the support plate (301) has multiple through slots (302). One end of the insert (208) passes through the through slot (302) and is fixed in the slot (207).

4. The bovine superovulation hormone continuous monitoring kit according to claim 1, characterized in that, include: The rotating frame (201) has multiple first openings (304), and the bottom of the box body (101) has multiple second openings (305). The first openings (304) and the second openings (305) are equal in size, and when the rotating frame (201) rotates so that the first opening (304) is above the second opening (305), the first opening (304) and the second opening (305) are connected. The test strip slot (303) and the second opening (305) are offset. The test strip includes an outer shell and a test strip body. A slot is provided on the outer shell. An elastic block (307) is fixed in the test strip slot (303). The elastic block (307) is locked and fixed in the slot. The test strip body is fixed in the outer shell. The multiple test strips are follicle-stimulating hormone (FSH) test strip, luteinizing hormone (LH) test strip, estradiol (E2) test strip, progesterone (P4) test strip, etc.

5. The bovine superovulation hormone continuous monitoring kit according to claim 1, characterized in that, include: The support plate (301) is provided with a fixing groove (401), and a fixing frame (402) is installed around the syringe (405). An elastic ring (420) is fixed on the outer periphery of the fixing frame (402). The elastic ring (420) is snapped and fixed in the fixing groove (401). A first sliding groove (403) is provided in the fixing frame (402). A sliding frame (404) is fixed on the periphery of the syringe (405). The sliding frame (404) is located in the first sliding groove (403). Among them, a plurality of first springs (416) are fixed between the syringe (405) and the fixed frame (402), a first electromagnet (421) is fixed inside the fixed frame (402), the first electromagnet (421) is attracted and fixed to the sliding frame (404), and a battery (422) and a microcontroller are fixed inside the fixed frame (402).

6. The bovine superovulation hormone continuous monitoring kit according to claim 1, characterized in that, include: The bottom of the syringe (405) is equipped with a needle (406), and a connector (407) is fixed between the syringe (405) and the needle (406). The syringe (405), the needle (406) and their internal structure are all disposable structures, and the storage block (415) is located inside the connector (407). The push frame (409) and piston plate (408) are provided with a second sliding groove (411), and a sliding rod (412) is slidably fitted in the second sliding groove (411). The sliding rod (412) is fixedly connected to the sealing block (413). A limit plate (418) is fixed at the end of the sliding rod (412), and multiple second springs (417) are fixed between the limit plate (418) and the push frame (409).

7. The bovine superovulation hormone continuous monitoring kit according to claim 6, characterized in that, include: The storage block (415) is a hollow structure, and a discharge port (414) is opened at the bottom of the storage block (415). The sealing block (413) is located inside the discharge port (414). When the piston plate (408) slides upward until the limiting plate (418) contacts the limiting block (419), the limiting block (419) presses the limiting plate (418) downward, the limiting plate (418) presses the sealing block (413) through the sliding rod (412), and the discharge port (414) is connected to the syringe (405).

8. The bovine superovulation hormone continuous monitoring kit according to claim 1, characterized in that, include: One end of the pusher (409) is located at the top of the syringe (405). A third sliding groove (501) is provided on the syringe (405). The pusher (409) slides in the third sliding groove (501). A lower pressure plate (503) is fixed at the output end of the second electric cylinder (410). A second electromagnet (502) is fixed in the lower pressure plate (503). The second electromagnet (502) is attracted and fixed to the pusher (409).

9. The bovine superovulation hormone continuous monitoring kit according to claim 1, characterized in that, include: Multiple light-shielding partitions (209) are fixed on the rotating frame (201). The light-shielding partitions (209) are in contact with the support plate (301). Multiple first grooves (601) are opened in the box body (101). A photoelectric sensor (602) is fixed in the first groove (601). The photoelectric sensor (602) is located on one side of the syringe (405).

10. The bovine superovulation hormone continuous monitoring kit according to claim 1, characterized in that, include: The top of the test strip slot (303) is provided with a second groove (701), and a camera (702) and a supplementary light (703) are fixed in the second groove (701). The camera (702) detects the detection structure of the test strip and judges the concentration of bovine superovulation hormone based on the color change of the test strip.