Portable diabetes detection test paper box
By linking the straightening lever with the ejection device, the problem of test strips getting stuck and damaged in the test strip box is solved, and the test strips are ejected smoothly and the test results are reliable. The structure is ingenious and the operation is simple.
Patent Information
- Application Number
- CN202522659086.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-16
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2035-12-16
AI Technical Summary
In existing test kits, the flexible test strips are prone to jamming, bending, and damage during use, affecting the accuracy of the test results.
The device employs a linkage design between a straightening lever and a pop-out device. The inclined structure guides the test strips to slide, the straightening lever tilts up and organizes the test strips when pressed, and the limiting groove of the pop-out device precisely pushes out the test strips, avoiding rigid scratching.
It achieves smooth ejection of the test strip, avoids jamming and damage, ensures the reliability of test results, and has a simple and convenient structure.
Smart Images

Figure CN223865361U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a test kit, specifically a portable diabetes test kit. Background Technology
[0002] Diabetes monitoring is a crucial aspect of managing this chronic disease, and urine glucose test strips have become a commonly used auxiliary tool due to their convenience and affordability. For ease of use and storage, test strips are typically placed in dedicated test strip boxes. Traditional test strip boxes often have a simple flip-top structure, which easily leads to finger contamination of remaining test strips and waste due to dispensing multiple strips at once. To improve this situation, Chinese patent CN208439718U discloses a convenient diabetes test strip box that utilizes a spring push plate and a bottom ejection mechanism to eject a single test strip, effectively reducing test strip contamination and waste, and providing a targeted solution for the storage and retrieval of urine glucose test strips.
[0003] However, the structure disclosed in this patent still has certain limitations in practical applications for urine glucose test strips. Because the test strip itself is soft and lacks rigidity, it is prone to bending, folding, or even plastic deformation under continuous spring pressure and roller action. This causes the test strip to fail to move smoothly during ejection, often getting stuck at the exit position and resulting in dispensing failure. Simultaneously, the rigid contact between the spring plate and the end of the test strip can easily scratch or squeeze the sensitive detection area of the test strip during the pushing process, damaging the detection layer structure and affecting the accuracy of subsequent test results. Therefore, there is an urgent need to improve the existing technology to solve the problem of jamming and damage to flexible test strips during automatic dispensing. Utility Model Content
[0004] The purpose of this invention is to overcome the shortcomings of the existing technology and provide a portable diabetes test kit, which solves the problems of test strip jamming, bending and damage that can easily occur during the use of existing test kits.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] A portable diabetes test kit includes a box body, a box lid, and a sleeve.
[0007] The lid is located at the upper end of the box body and has a test strip outlet;
[0008] The sleeve is provided with a sliding cavity. The sleeve is fitted onto the outer wall of the box. The box and the sleeve slide vertically along the sliding cavity. A return spring is provided between the sleeve and the box. The two ends of the return spring abut against the bottom of the box and the bottom of the sleeve, respectively.
[0009] The box body has a test strip receiving cavity, the bottom wall of the test strip receiving cavity is set as an inclined surface, the inclined surface slopes downward along the side facing the test strip outlet, and a slot is opened at the lowest point;
[0010] A pop-out device is fixedly provided at the bottom of the sleeve. The pop-out device is located in the slot and slides with the inner wall of the slot. The pop-out device has a limiting groove for receiving and taking out the test strip.
[0011] The outer side of the box body is provided with a protruding pressing part, and the upper part of the sleeve is provided with a sliding groove that matches the protruding pressing part. The two side walls of the sliding groove are provided with shaft holes.
[0012] It also includes a straightening lever, which includes a pressing end, a rotating shaft and an actuating end. The straightening lever is rotatably mounted in the shaft hole through the rotating shaft. The pressing end is located on the sliding trajectory of the protruding pressing part, and the actuating end is located in the test paper receiving cavity of the box.
[0013] When the box is pressed down relative to the sleeve, the protruding pressing part presses the pressing end of the straightening lever, causing the straightening lever to rotate around the pivot, so that the actuating end tilts upward to straighten the test paper inside the box; at the same time, the ejection device moves upward relative to the box, pushing the test paper in the limiting groove out from the test paper outlet.
[0014] Furthermore, an installation groove is provided on the outer side of the box body corresponding to the protruding pressing part, and the pressing end and the rotating shaft of the straightening pry bar pass through the installation groove and extend to directly below the protruding pressing part.
[0015] Preferably, the pressing end, rotating shaft, and actuating end of the straightening lever are integrally formed. The actuating end includes a curved portion and a crossbar connected to the end of the curved portion. The axial direction of the crossbar is parallel to the axial direction of the test strip outlet.
[0016] Furthermore, the pop-out device also includes a connecting plate, the upper end of which is fixedly connected to the bottom of the limiting groove, and the lower end of which is fixedly connected to the bottom of the sleeve.
[0017] More specifically, the limiting groove has a U-shaped cross-section, and its groove width is 1.2 to 1.8 times the thickness of a single test paper.
[0018] Preferably, the bottom of the lid has a protrusion that is interference-fitted with the inner wall of the box, and the bottom surface of the protrusion is an inclined surface parallel to the inclined surface of the bottom wall of the test paper receiving cavity of the box.
[0019] Furthermore, the protrusion has a guide bevel on the side wall near the test strip outlet, and the guide bevel is flared.
[0020] More specifically, the sliding cavity of the sleeve includes a first cavity segment and a second cavity segment arranged vertically. The lateral dimension of the second cavity segment is larger than that of the first cavity segment, and a stepped surface is formed between the two cavity segments. A raised shoulder is provided on the outer periphery of the bottom of the box body. The outer peripheral wall of the box body is located in the first cavity segment and slides in cooperation with the first cavity segment. The raised shoulder is located in the second cavity segment and slides in cooperation with the second cavity segment. The raised shoulder and the stepped surface are vertically blocked to prevent the box body from sliding upward out of the sleeve.
[0021] This utility model discloses a portable diabetes test strip kit, the core of which lies in the linkage design of the straightening lever and the ejection device. This allows for the simultaneous straightening of the test strip stack and the precise ejection of a single test strip during the retrieval process. Compared to existing technologies, this utility model offers significant advantages: the inclined structure at the bottom of the test strip receiving cavity, combined with the upward tilting action of the straightening lever during pressing, effectively straightens test strips that have tilted or overlapped due to stacking or vibration, ensuring smooth ejection; the limiting groove of the ejection device precisely receives the end of the received test strip and smoothly pushes it out of the test strip outlet during the linkage process. This process avoids rigid scraping against the sensitive detection area of the test strip, reducing the risk of test strip damage. This solution effectively solves the problems of test strip jamming, damage, and inconvenience in retrieval. Its ingenious structure and simple, convenient operation make it highly practical. Attached Figure Description
[0022] Figure 1 A schematic diagram of the overall structure of the portable diabetes test kit provided by this utility model.
[0023] Figure 2 This is an exploded view of the test paper box provided by this utility model.
[0024] Figure 3 A schematic diagram of the cross-sectional structure of the test paper box provided in an embodiment of this utility model.
[0025] Figure 4 for Figure 3 A magnified schematic diagram of a portion of region A in the middle.
[0026] Figure 5 This is a partial cross-sectional structural diagram provided for an embodiment of the present utility model.
[0027] Figure 6 A schematic diagram of the straightening pry bar structure provided in an embodiment of this utility model.
[0028] Figure 7 This is a schematic diagram of the box lid structure provided for an embodiment of the present utility model.
[0029] Figure 8 This is a schematic diagram of the pop-up device structure provided in an embodiment of the present utility model.
[0030] The labels in the attached diagram are as follows:
[0031] 10. Box body; 11. Test strip receiving cavity; 12. Sloping surface; 13. Groove; 14. Raised pressing part; 15. Mounting groove; 16. Raised shoulder; 20. Sleeve; 21. Sliding cavity; 211. First cavity section; 212. Second cavity section; 213. Stepped surface; 22. Slide groove; 23. Shaft hole; 30. Box cover; 31. Test strip outlet; 32. Raised part; 33. Guide sloping opening; 40. Return spring; 50. Straightening lever; 51. Pressing end; 52. Rotating shaft; 53. Actuating end; 531. Bending part; 532. Horizontal stop part; 60. Pop-out device; 61. Limiting groove; 62. Connecting plate. Detailed Implementation
[0032] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the scope of protection of the present utility model.
[0033] In the description of this utility model, it should be noted that the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0034] To address the problems in related technologies, embodiments of this application provide a portable diabetes test kit, such as... Figure 1-3The box includes a body 10, a lid 30, and a sleeve 20. The lid 30 is located on the upper part of the body 10 and has a test strip outlet 31. The sleeve 20 has a sliding cavity 21 and is fitted onto the outer wall of the body 10. The body 10 and the sleeve 20 slide vertically along the sliding cavity 21. A return spring 40 is provided between the sleeve 20 and the body 10, with its two ends abutting against the bottom of the body 10 and the bottom of the sleeve 20, respectively. The body 10 has a test strip receiving cavity 11, the bottom wall of which is set as an inclined surface 12. The inclined surface 12 slopes downward along the side facing the test strip outlet 31 and has a slot 13 at its lowest point. A pop-out device 60 is fixedly installed at the bottom of the sleeve 20. The pop-out device 60 is located in the slot 13 and slides with the inner wall of the slot 13. The pop-out device 60 has a limiting groove 6 for receiving and taking out diabetes test strips. 1. The outer side of the box body 10 is provided with a raised pressing part 14, and the upper part of the sleeve 20 is provided with a sliding groove 22 that matches the raised pressing part 14. The two side walls of the sliding groove 22 are provided with shaft holes 23. It also includes a straightening pry bar 50, which includes a pressing end 51, a rotating shaft 52 and an actuating end 53. The straightening pry bar 50 is rotatably installed in the shaft hole 23 through the rotating shaft 52. The pressing end 51 is located on the sliding track of the raised pressing part 14. The actuating end 53 is located inside the test strip receiving cavity 11 of the box body 10; when the box body 10 is pressed down relative to the sleeve 20, the protruding pressing part 14 presses the pressing end 51 of the straightening lever 50, driving the straightening lever 50 to rotate around the rotating shaft 52, so that the actuating end 53 tilts upward to straighten the diabetes test strip in the box; at the same time, the ejecting device 60 moves upward relative to the box body 10, pushing the diabetes test strip in the limiting groove 61 out from the test strip outlet 31.
[0035] Specifically, when the user presses the housing 10, the housing 10 moves downward along the sliding cavity 21, the protruding pressing part 14 moves along the sliding groove 22 and presses the pressing end 51, causing the straightening lever 50 to rotate around the pivot 52, and the actuating end 53 to tilt upward to organize the stack of diabetes test strips, preventing the test strips from tilting or overlapping; at the same time, since the ejection device 60 is fixed to the bottom of the sleeve 20, the downward movement of the housing 10 causes the ejection device 60 to move upward relative to it, and the diabetes test strip supported by the limiting groove 61 is pushed out of the test strip outlet 31. The reset spring 40 resets the housing 10 after releasing the pressure. This solution achieves automatic straightening and accurate ejection of diabetes test strips through a linkage design, solving the problems of jamming and damage. The inclined surface 12 guides the slide of the test strips, the limiting groove 61 ensures single-sheet use, and the straightening action prevents the diabetes test strips from bending. The overall structure improves the reliability of diabetes testing.
[0036] Alternatively, in some embodiments, please refer to Figure 5 The outer side of the box body 10 is provided with a mounting groove 15 corresponding to the protruding pressing part 14. The pressing end 51 and the rotating shaft 52 of the straightening pry bar 50 pass through the mounting groove 15 and extend to the bottom of the protruding pressing part 14.
[0037] The mounting slot 15 allows the straightening lever 50 to pass through the side wall of the box 10, placing its actuating end 53 inside the test strip receiving cavity 11, thereby achieving the straightening effect on the test strips inside the box. The mounting slot 15 is a rectangular or circular opening, the size of which allows the pressing end 51 and the rotating shaft 52 to pass freely, while limiting excessive displacement; when the protruding pressing part 14 moves down, it directly contacts the pressing end 51, transmitting pressure to rotate the straightening lever 50. Through this design, the straightening lever 50 can both receive pressure from the protruding pressing part 14 and transmit the straightening action to the inside of the test strip receiving cavity, achieving effective linkage between the internal and external structures.
[0038] Optionally, in some embodiments, the pressing end 51, the rotating shaft 52 and the actuating end 53 of the straightening lever 50 are integrally formed. The actuating end 53 includes a bent portion 531 and a crossbar portion 532 connected to the end of the bent portion 531. The axial direction of the crossbar portion 532 is parallel to the axial direction of the test paper outlet 31.
[0039] It is understandable that the design of the crossbar 532 being parallel to the axis of the test strip outlet 31 ensures that the straightening force is evenly distributed across the entire width of the test strip stack, effectively preventing the test strip from tilting during the straightening process. The straightening lever 50 is integrally formed and can be achieved by metal stamping or plastic injection molding. The curved part 531 is an arc-shaped or right-angled structure used to connect the rotating shaft 52 and the crossbar 532. The crossbar 532 is a long strip-shaped plate whose length is adapted to the width of the test strip receiving cavity 11. When the actuating end 53 is raised, the crossbar 532 is parallel to the axis of the test strip outlet 31 to evenly straighten the side of the diabetes test strip.
[0040] As an alternative embodiment, those skilled in the art can also design the crossbar 532 as an adjustable-angle hinge structure to accommodate diabetes test strips of different sizes. For example, in some specific embodiments, the curvature of the bending portion 531 can be optimized to 30-45 degrees to maximize the lifting height and straightening range. This solution eliminates assembly gaps and stress concentration at connection points through a one-piece molding design, improving the durability and operational accuracy of the straightening lever 50, ensuring reliable straightening of the diabetes test strips even after multiple presses; the crossbar 532 is parallel to the axis of the test strip outlet 31, so that the straightening force is evenly distributed on the stack of diabetes test strips, avoiding localized stress that could cause the test strips to curl or be damaged.
[0041] Alternatively, in some embodiments, please refer to Figure 3 and Figure 8 The pop-out device 60 also includes a connecting plate 62, the upper end of which is fixedly connected to the bottom of the limiting groove 61, and the lower end of which is fixedly connected to the bottom of the sleeve 20.
[0042] It is understood that the connecting plate 62, as a rigid connecting component, ensures the fixed connection between the ejector device 60 and the sleeve 20, allowing the ejector device 60 to move upward relative to the box body 10 when the box body 10 moves downward, thereby completing the ejection action of the test strip. The connecting plate 62 can be fixed to the bottom of the sleeve 20 by welding or bolting, and its length ensures that the limiting groove 61 can slide freely within the groove 13; the connection between the connecting plate 62 and the limiting groove 61 can be reinforced with ribs to distribute stress. As an alternative embodiment, those skilled in the art can also design the connecting plate 62 and the sleeve 20 to be detachable, for example, by means of a snap-fit connection, for easy maintenance and replacement. This solution uses the connecting plate 62 to firmly fix the ejector device 60 to the sleeve 20, ensuring that the ejector device 60 remains relatively stationary when the box body 10 moves downward, thus achieving the precise ejection action of the diabetes test strip.
[0043] Alternatively, in some embodiments, please refer to Figure 8 The limiting groove 61 has a U-shaped cross-section, and its groove width is 1.2 to 1.8 times the thickness of a single diabetes test strip.
[0044] It is understood that the U-shaped groove 61 can wrap around the end of the test strip from the bottom and sides, providing stable support. Simultaneously, the specific range of groove width design ensures that a single test strip can be reliably supported while preventing multiple test strips from entering simultaneously, effectively preventing the problem of multiple test strips popping out at once. For example, for a standard diabetes test strip with a thickness of 0.2mm, the groove width is set to 0.24-0.36mm to ensure that a single diabetes test strip is neither too tight nor too loose when inserted. As an alternative embodiment, those skilled in the art can also design the groove 61 as V-shaped or rectangular to accommodate diabetes test strips of different shapes. This solution, through the inclusiveness of the U-shaped cross-section, ensures that the end of the diabetes test strip is evenly supported, avoiding edge stress concentration.
[0045] Alternatively, in some embodiments, please refer to Figure 7 The bottom of the lid 30 has a protrusion 32 that is interference-fitted with the inner wall of the box body 10. The bottom surface of the protrusion 32 is an inclined surface parallel to the inclined surface 12 of the bottom wall of the test paper receiving cavity 11 of the box body 10.
[0046] It can be understood that the protrusion 32 is an integrally formed protrusion on the bottom of the lid 30, with an outer diameter slightly larger than the inner diameter of the box body 10, achieving an interference fit through pressing. The bottom surface of the protrusion 32 is parallel to the inclined surface 12, forming a sealed storage space for diabetes test strips with the test strip receiving cavity 11, facilitating test strip storage. This design creates a tight interface through the interference fit of the protrusion 32, allowing the lid 30 to be installed at the upper opening of the box body. In a specific implementation, the protrusion 32 can be made of an elastic material such as TPE, adapting to the inner wall of the box body 10 through deformation.
[0047] Optionally, in some embodiments, the protrusion 32 is provided with a guide bevel 33 on the side wall near the test strip outlet 31, and the guide bevel 33 is flared.
[0048] It can be understood that the guide bevel 33 is a trumpet-shaped opening, with its width gradually increasing downwards from the test strip outlet 31, and its entrance aligned with the test strip outlet 31. The flared design of the guide bevel 33 forms a guide channel that gradually widens downwards from the test strip outlet 31. This not only corrects the posture of the test strip during ejection, preventing it from tilting in the width direction, but also limits the number of test strips passing through simultaneously, ensuring the reliability of single-sheet dispensing. Through this structural design, the test strip can be smoothly guided and centered as it moves from the wider limiting groove 61 to the narrower test strip outlet 31, greatly reducing the risk of jamming.
[0049] Alternatively, in some embodiments, please refer to Figure 4 The sliding cavity 21 of the sleeve 20 includes a first cavity section 211 and a second cavity section 212 arranged vertically. The lateral dimension of the second cavity section 212 is larger than that of the first cavity section 211 and a stepped surface 213 is formed between the two cavity sections. The outer periphery of the bottom of the box body 10 is provided with a raised shoulder 16. The outer peripheral wall of the box body 10 is located in the first cavity section 211 and slides and engages with the first cavity section 211. The raised shoulder 16 is located in the second cavity section 212 and slides and engages with the second cavity section 212. The raised shoulder 16 and the stepped surface 213 are vertically stopped to prevent the box body 10 from sliding upward out of the sleeve 20.
[0050] It is understood that the first cavity 211 and the second cavity 212 are coaxial cylindrical sections, the stepped surface 213 is an annular shoulder, and the raised shoulder 16 is an annular flange at the bottom of the housing 10, with its outer diameter slightly smaller than the inner diameter of the second cavity 212, allowing sliding but restricting ejection. The segmented design of the sliding cavity 21 provides stable guidance and limiting functions, preventing the housing 10 from tilting or ejecting during movement, thus ensuring precise synchronization of the diabetes test strip's alignment and ejection actions. The blocking action of the raised shoulder 16 and the stepped surface 213 eliminates the risk of upward displacement, enhancing safety. In a specific implementation, the inner walls of the first cavity 211 and the second cavity 212 can be lined with a low-friction material, such as a PTFE coating, to reduce sliding wear. For example, under frequent pressing, the lining maintains smooth movement, extending the device's lifespan. Furthermore, this structure allows the housing 10 to remain aligned throughout the sliding process, improving overall stability and reliability through mechanical limiting.
[0051] The working principle of this diabetes test kit is as follows:
[0052] In the initial state, the box body 10 is in the upper position under the elastic force of the return spring 40, the straightening lever 50 is not under force, the pressing end 51 is flat, the actuating end 53 is not tilted up, and the top of the limiting groove 61 of the ejection device 60 is slightly lower than or flush with the bottom wall of the inclined surface 12 of the box body 10. At this time, the test strips naturally accumulate along the inclined surface 12 under the action of gravity, and the bottom end of the test strip falls into the limiting groove 61. When it is necessary to take out the test strips, the user presses the box body 10 or the box cover 30, and the box body 10 moves downward relative to the sleeve 20 against the elastic force of the return spring 40. During this process, the straightening lever 50 and the ejection device 60 perform the straightening action and the ejection action simultaneously.
[0053] Straightening Action: As the housing 10 moves downward, the raised pressing part 14 on its outer side descends along the slide groove 22 and presses the pressing end 51 of the straightening lever 50 located directly below it. After the pressing end 51 is subjected to force, it drives the straightening lever 50 to rotate around the pivot 52, and its actuating end 53 (especially the crossbar 532) located in the test strip receiving cavity 11 tilts upward. The tilted crossbar 532 pushes the stack of diabetes test strips, straightening and uprighting the tilted test strips, creating favorable conditions for the smooth ejection of a single diabetes test strip.
[0054] Pop-out action: Since the pop-out device 60 is fixed to the bottom of the sleeve 20 via the connecting plate 62, when the box body 10 moves downward relative to the sleeve 20, the pop-out device 60 moves upward relative to the box body 10. Therefore, the limiting groove 61, originally located in the slot 13, moves upward along with the diabetes test strip it supports, ultimately pushing the test strip smoothly out of the test strip outlet 31 of the box cover 30, allowing the user to easily remove it.
[0055] After the pressure is released, the housing 10 returns to its original position and moves upward under the action of the return spring 40. The protruding pressing part 14 moves away from the pressing end 51 of the straightening lever 50. The straightening lever 50 returns to its original position under the influence of gravity or the slight resistance of the diabetes test strip, and the actuating end 53 falls down. At the same time, the ejector device 60 returns to its original position as the sleeve 20 moves downward relative to the housing 10. The limiting groove 61 falls back into the slot 13. The next diabetes test strip slides into the limiting groove 61 along the inclined surface 12 under the action of gravity, preparing for the next use.
[0056] In summary, the core of this embodiment lies in the coordinated action of the straightening lever 50 and the ejection device 60, which automatically organizes the diabetes test strips inside the box and accurately ejects a single test strip when the test strip is retrieved, effectively solving the problems of easy jamming, damage, and inconvenience in retrieving diabetes test strips. This diabetes test strip box has an ingenious structure, is simple and convenient to operate, and has good practicality and promotional value.
[0057] The above description is merely a specific embodiment of this utility model, but the protection scope of this utility model is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this utility model should be included within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the protection scope of the claims.
Claims
1. A portable diabetes test kit, characterized in that: Includes the box body, box lid, and sleeve; The lid is located at the upper end of the box body and has a test strip outlet; The sleeve is provided with a sliding cavity. The sleeve is fitted onto the outer wall of the box. The box and the sleeve slide vertically along the sliding cavity. A return spring is provided between the sleeve and the box. The two ends of the return spring abut against the bottom of the box and the bottom of the sleeve, respectively. The box body has a test strip receiving cavity, the bottom wall of the test strip receiving cavity is set as an inclined surface, the inclined surface slopes downward along the side facing the test strip outlet, and a slot is opened at the lowest point; A pop-out device is fixedly provided at the bottom of the sleeve. The pop-out device is located in the slot and slides with the inner wall of the slot. The pop-out device has a limiting groove for receiving and taking out the test strip. The outer side of the box body is provided with a protruding pressing part, and the upper part of the sleeve is provided with a sliding groove that matches the protruding pressing part. The two side walls of the sliding groove are provided with shaft holes. It also includes a straightening lever, which includes a pressing end, a rotating shaft and an actuating end. The straightening lever is rotatably mounted in the shaft hole through the rotating shaft. The pressing end is located on the sliding trajectory of the protruding pressing part, and the actuating end is located in the test paper receiving cavity of the box. When the box is pressed down relative to the sleeve, the protruding pressing part presses the pressing end of the straightening lever, causing the straightening lever to rotate around the pivot, so that the actuating end tilts upward to straighten the test paper inside the box; at the same time, the ejection device moves upward relative to the box, pushing the test paper in the limiting groove out from the test paper outlet.
2. The portable diabetes test kit according to claim 1, characterized in that: The outer side of the box body has a mounting groove corresponding to the raised pressing part. The pressing end and the rotating shaft of the straightening pry bar pass through the mounting groove and extend to directly below the raised pressing part.
3. The portable diabetes test kit according to claim 2, characterized in that: The pressing end, rotating shaft, and actuating end of the straightening lever are integrally formed. The actuating end includes a curved part and a crossbar connected to the end of the curved part. The axial direction of the crossbar is parallel to the axial direction of the test strip outlet.
4. The portable diabetes test kit according to claim 1, characterized in that: The pop-out device also includes a connecting plate, the upper end of which is fixedly connected to the bottom of the limiting groove, and the lower end of which is fixedly connected to the bottom of the sleeve.
5. A portable diabetes test kit according to claim 4, characterized in that: The limiting groove has a U-shaped cross-section, and its groove width is 1.2 to 1.8 times the thickness of a single test paper.
6. A portable diabetes test kit according to claim 1, characterized in that: The bottom of the lid has a protrusion that is interference-fitted with the inner wall of the box, and the bottom surface of the protrusion is an inclined surface parallel to the inclined surface of the bottom wall of the test paper receiving cavity of the box.
7. A portable diabetes test kit according to claim 6, characterized in that: The protrusion has a guide bevel on the side wall near the test strip outlet, and the guide bevel is flared.
8. A portable diabetes test kit according to claim 1, characterized in that: The sliding cavity of the sleeve includes a first cavity segment and a second cavity segment arranged vertically. The lateral dimension of the second cavity segment is larger than that of the first cavity segment, and a stepped surface is formed between the two cavity segments. The bottom outer periphery of the box body is provided with a raised shoulder, the outer peripheral wall of the box body is located in the first cavity segment and slides in cooperation with the first cavity segment, the raised shoulder is located in the second cavity segment and slides in cooperation with the second cavity segment, and the raised shoulder is vertically blocked in cooperation with the step surface to prevent the box body from sliding upward out of the sleeve.
Citation Information
Patent Citations
Diabetes test paper box of convenient extraction
CN208439718U