Reagent kit sealing detection device for reagent kit processing

By designing a kit sealing detection device that is adapted to the fixing rack and the extrusion rack, combined with the air pump and the water pump, the accuracy and efficiency of the kit sealing detection in the prior art are solved, and efficient and accurate sealing detection is achieved.

CN119509837BActive Publication Date: 2025-08-19SUZHOU COMIN BIOTECH
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Patent Information

Application Number
CN202411881252.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-19
Publication Date
2025-08-19
Estimated Expiration
2044-12-19

AI Technical Summary

Technical Problem

In the prior art, the method of sealability detection of kits relies on manual operation, and there are problems such as poor detection accuracy, low efficiency and difficult to detect minor leakage, and the existing device cannot realize sealability detection in multiple steps.

Method used

A kit sealing detection device is designed, using a combination of adaptive fixing frame and extrusion frame, combining air pump and water pump, through mechanical extrusion and water pressure testing, simulates various pressure changes, and uses a tempered test frame to form the box structure in the box to ensure the accuracy and flexibility of the detection.

Benefits of technology

It realizes efficient and accurate kit sealing detection, adapts to different types of kits, and has reliable test results, avoids the subjectivity and inefficiency of manual testing, and can detect tiny leaks.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a test kit sealing detection device for test kit processing, which belongs to the technical field of test kit detection; the present invention comprises a test shell, a sealing interlayer is embedded in the middle of the test shell, a loading box is arranged on the top of the sealing interlayer, and a water inspection box is arranged on the bottom of the sealing interlayer; the present invention is through the design of an adaptive fixing frame and an adaptive extrusion frame, the former is connected with the inner guide groove through the corner frame, and can be quickly positioned in the mechanical jacket to improve the test efficiency; the extrusion beam can be adjusted according to the test kit model and adapt to different models of test kits. At the same time, the upper and lower splicing rings limit the protection of the test kit to ensure the accuracy of the test and the integrity of the test kit. When the test kit is subjected to water pressure treatment, a box-in-box structure is formed by using a tempered test frame, and air extraction and clean water injection are controlled by means of an air pump and a water pump, so that a variety of pressure changes can be simulated, the test environment can be accurately adjusted, and the test result is more reliable.
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Description

Technical Field

[0001] The present invention relates to the technical field of reagent kit detection, in particular to a reagent kit sealing detection device used for reagent kit processing. Background Art

[0002] In many fields such as scientific research experiments, test kits play an extremely critical role. Test kits usually contain various reagents, samples or biological materials. Their sealing directly affects the stability of the internal substances, shelf life and the accuracy of the test results. Traditional test kit sealing detection methods mostly rely on manual operation. For example, the operator may perform a simple visual inspection to observe whether there are obvious gaps or defects in the seal of the test kit; or manually squeeze the test kit and rely on experience to judge whether there is a gas leak. However, these manual detection methods have many disadvantages. Manual visual inspection is highly subjective and easily affected by factors such as visual fatigue, lighting conditions and personal judgment differences, making it difficult to ensure the accuracy and consistency of the test. Manual squeezing detection is not only inefficient, but also difficult to detect tiny leaks, and cannot meet the requirements of high-precision detection.

[0003] In conjunction with the above content, it should be noted that: Chinese patent announcement number CN2023114741342 discloses a biochemical detection kit sealing detection device. The above patent realizes low-loss continuous replacement of the test sample in a vacuum environment and internal humidity detection of the test sample in an immersed state through the cooperation of sliding control parts and mounting cavity parts. It is more about the loading and unloading of the test sample and the detection of the internal environment of the sample. There is a problem of putting the cart before the horse. There are still weaknesses in the multiple inspections of the internal sealing performance of the sample or the test kit, and it is impossible to perform continuous multi-step detection and processing on the sample or the test kit; at the same time, in the absence of active intervention from the external environment, it takes a long time to react to the intrusion and change of the internal environment of the sample in the sealed state. Accordingly, the above patent's sealing test of the sample or the test kit needs to be studied urgently. In response to the above technical defects, a solution is now proposed. Summary of the Invention

[0004] The object of the present invention is to provide a reagent kit sealing detection device for reagent kit processing to solve the problems raised.

[0005] To achieve the above-mentioned objectives, the present invention provides the following technical solutions: a test kit sealing detection device for test kit processing, comprising a test shell, a sealing interlayer embedded in the middle of the test shell, a loading box provided on the top of the sealing interlayer, and a water inspection box provided on the bottom of the sealing interlayer, a telescopic cylinder arm extending to the interior of the loading box provided on the top inner wall of the test shell, a mechanical jacket provided at the bottom of the telescopic cylinder arm, an adapter fixing frame and an adapter extrusion frame provided inside the mechanical jacket; a water storage tank provided at the bottom of the water inspection box, and tempered test frames provided on the inner walls on both sides of the water inspection box.

[0006] Furthermore, a water pump connected to the water tank pipeline is provided in the bottom inner wall of one side of the test shell, an air pump connected to the telescopic cylinder arm is embedded in the inner wall of the other side of the test shell, a controller is embedded on one side of the top of the test shell, and a storage box is provided on the other side of the top of the test shell.

[0007] Furthermore, propulsion cylinders are embedded at both ends of the top of the sealing interlayer, a ring opening is provided through the center of the top of the sealing interlayer, sealing discs are slidably sleeved in the inner walls on both sides of the ring opening, and a semi-arc rubber sleeve in contact with the telescopic cylinder arm is provided in the middle of the sealing disc.

[0008] Furthermore, tempered transparent glass covers are hinged at both ends of the loading box, a connecting sleeve connected to the telescopic cylinder arm is provided on the top of the mechanical jacket, multiple groups of extrusion cylinders are symmetrically provided on the top and bottom outer walls of the mechanical jacket, a slider extending to the inner wall of the mechanical jacket is provided at the bottom of the extrusion cylinder, and internal guide grooves are symmetrically provided on the four corners of the inner wall of the mechanical jacket.

[0009] Furthermore, the end face of the adapter extrusion frame is provided with a balance beam facing the mechanical jacket, and the balance beam is clamped with the slider, an adjustment groove is provided through the middle of the end face of the adapter extrusion frame, and the end of the adapter extrusion frame facing the mechanical jacket is provided with an extrusion beam clamped with the adjustment groove, the extrusion beam is not limited to that shown in this figure, and is adjusted and replaced according to the test kit.

[0010] Furthermore, the four corners of the outer wall of the adapter fixing frame are symmetrically provided with corner frames that are slidably connected to the inner guide groove. An upper splicing ring is provided through the top frame of the adapter fixing frame, and a lower splicing ring is provided in a recessed manner on the bottom frame of the adapter fixing frame. The adapter fixing frame is not limited to that shown in the drawings and is replaced according to the test kit.

[0011] Furthermore, tempered transparent covers are symmetrically provided at both ends of the water inspection box, a drain valve connected to the water tank is embedded in the center of the bottom box of the water inspection box, and a balancing cylinder frame is provided on the inner walls on both sides of the water inspection box and is sleeved with the tempered test frame.

[0012] Furthermore, a water exchange valve is embedded in the bottom of the inner wall of the tempered test frame, and multiple groups of ventilation valves are symmetrically arranged on the top of the inner wall of the tempered test frame. The top of the tempered test frame is recessed with a seal that is sleeved with the telescopic cylinder arm, and a semi-arc rubber sleeve is sleeved on the inner wall of the seal. A telescopic water hose connected to the water pump is provided on the outer wall of the water exchange valve, and a telescopic air hose connected to the air pump is provided on the outer wall of the ventilation valve.

[0013] The beneficial effects of the present invention are:

[0014] 1. The present invention can accurately perform mechanical extrusion testing on the test kit through the design of the adapter fixing frame and the adapter extrusion frame. At the same time, the upper splicing ring and the lower splicing ring are used to limit and protect the test kit, thereby preventing the inlet part of the test kit from being abnormally damaged during the test, ensuring the accuracy of the test and the integrity of the test kit. The adapter fixing frame can be easily and quickly installed and positioned in the mechanical jacket and positioned to the center position through the docking of the corner frame and the inner guide groove, thereby improving the test efficiency. The extrusion beam on the adapter extrusion frame can be adjusted according to the model of the test kit, so that the device can be applied to test kits of different models, thereby improving the flexibility and adaptability of the device.

[0015] 2. The present invention utilizes a tempered test frame to form a box-in-box structure during the water pressure treatment stage, which can not only ensure that the test environment is accurately adjusted, but also avoid the safety hazards caused by the test pressure. The air pump and water pump are used to control the air extraction and water injection inside the tempered test frame respectively. The test kit can be tested under different pressure and liquid environments, simulating the pressure changes that may be encountered in various actual usage scenarios, making the test results more reliable and of reference value. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0017] Figure 1 It is a three-dimensional diagram of the overall structure of the present invention;

[0018] Figure 2 A schematic diagram of a partial bottom view of the test housing of the present invention;

[0019] Figure 3 Schematic diagram of the explosion of the mechanical jacket, the adapting fixing frame and the adapting extrusion frame of the present invention;

[0020] Figure 4 It is a structural schematic diagram of the mechanical jacket of the present invention;

[0021] Figure 5 This is a schematic structural diagram of the adaptive extrusion frame of the present invention;

[0022] Figure 6 This is a structural diagram of the adapter fixing frame of the present invention;

[0023] Figure 7 Schematic diagram of the structure of the sealing interlayer of the present invention;

[0024] Figure 8 This is a schematic diagram of the structure of the test housing and the water inspection box of the present invention;

[0025] Figure 9 This is a schematic diagram of the sliding process of the mechanical jacket of the present invention;

[0026] Figure 10 This is a schematic diagram of the process of adapting the extrusion rack and the water inspection box according to the present invention;

[0027] Figure 11 Schematic diagram of the internal structure of the test shell of the present invention.

[0028] Figure numerals: 1. Test shell; 101. Telescopic cylinder arm; 102. Water pump; 103. Air pump; 2. Loading box; 3. Water inspection box; 301. Balance cylinder frame; 302. Tempered test frame; 303. Drain valve; 304. Ventilation valve; 305. Water exchange valve; 4. Water storage tank; 5. Sealing interlayer; 501. Propulsion cylinder; 502. Sealing disc; 503. Ring mouth; 6. Mechanical jacket; 601. Connecting sleeve; 602. Extrusion cylinder; 603. Slider; 604. Inner guide groove; 7. Adaptive fixing frame; 701. Corner frame; 702. Upper splicing ring; 703. Lower splicing ring; 8. Adaptive extrusion frame; 801. Balance beam; 802. Extrusion beam. DETAILED DESCRIPTION

[0029] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0030] Example 1: Please refer to Figure 1 - Figure 11As shown, this embodiment is a reagent kit sealing detection device for reagent kit processing, including a test shell 1, a sealing interlayer 5 is embedded in the middle of the test shell 1, a loading box 2 is provided on the top of the sealing interlayer 5, and a water inspection box 3 is provided at the bottom of the sealing interlayer 5, a telescopic cylinder arm 101 extending to the inside of the loading box 2 is provided on the top inner wall of the test shell 1, a mechanical jacket 6 is provided at the bottom of the telescopic cylinder arm 101, and an adaptor fixing frame 7 and an adaptor extrusion frame 8 are provided inside the mechanical jacket 6.

[0031] The reagent kit to be tested is filled with pigment experimental water, and the filling amount of the pigment experimental water is the same as the actual filling amount of the medicine. The reagent kit filled with pigment experimental water is inserted into the adapted adapter fixing frame 7, and the upper and lower limits of the reagent kit are set by the upper splicing ring 702 and the lower splicing ring 703. Among them, one end of the reagent kit inlet is facing the upper splicing ring 702, and the upper splicing ring 702 is used to isolate the reagent kit inlet part separately to avoid the reagent kit inlet part being squeezed during the test and causing abnormal damage. In this way, it is ensured that the reagent kit only squeezes the reagent kit storage area during the sealing test, while reducing contact damage to the inlet area.

[0032] A water pump 102 connected to the water tank 4 pipeline is provided in the bottom inner wall of one side of the test shell 1, an air pump 103 connected to the telescopic cylinder arm 101 is embedded in the inner wall of the other side of the test shell 1, a controller is embedded on one side of the top of the test shell 1, and a storage box is provided on the other side of the top of the test shell 1.

[0033] Both ends of the loading box 2 are hinged with tempered transparent glass covers, and a connecting sleeve 601 connected to the telescopic cylinder arm 101 is provided on the top of the mechanical jacket 6, and multiple groups of extrusion cylinders 602 are symmetrically provided on the top and bottom outer walls of the mechanical jacket 6. The bottom of the extrusion cylinder 602 is provided with a slider 603 extending to the inner wall of the mechanical jacket 6, and inner guide grooves 604 are symmetrically provided on the four corners of the inner wall of the mechanical jacket 6. Corner frames 701 that are slidably connected to the inner guide grooves 604 are symmetrically provided on the four corners of the outer wall of the adapter bracket 7. An upper splicing ring 702 is provided through the top frame of the adapter bracket 7, and a lower splicing ring 703 is recessed on the bottom frame of the adapter bracket 7. The adapter bracket 7 is not limited to what is shown in the drawings and is replaced according to the test kit.

[0034] Open the tempered transparent glass cover at one end of the loading box 2, install the assembled adapter bracket 7 in the mechanical jacket 6, use the corner bracket 701 to dock with the inner guide groove 604, push the four corners of the edge of the adapter bracket 7 with force, so that the adapter bracket 7 slides along the inner guide groove 604 through the corner bracket 701 until it is located in the center of the mechanical jacket 6. Raised micro-dots are symmetrically provided on both sides of the middle part of the inner wall of the inner guide groove 604, so that when the corner bracket 701 slides along the inside of the inner guide groove 604, it waits for the corner bracket 701 to approach the multiple groups of micro-dots area to increase resistance. After it passes the multiple groups of micro-dots at one end, it indicates that it is already in the central area inside the mechanical jacket 6.

[0035] The end face of the adapter extrusion frame 8 is provided with a balance beam 801 facing the mechanical jacket 6, and the balance beam 801 is clamped with the slider 603. An adjustment groove is provided through the middle of the end face of the adapter extrusion frame 8, and the end of the adapter extrusion frame 8 facing the mechanical jacket 6 is provided with an extrusion beam 802 clamped with the adjustment groove. The extrusion beam 802 is not limited to what is shown in this figure, and is adjusted and replaced according to the test kit.

[0036] Take the adapter extrusion rack 8 that is compatible with the test kit, open the tempered transparent glass covers at both ends of the loading box 2 in advance, install the adapter extrusion rack 8 at the other end on the slider 603 in advance, wait for the installation of the adapter fixing rack 7 to be completed, and then install the remaining set of adapter extrusion racks 8 on the slider 603 at one end of the mechanical jacket 6. This will help multiple sets of adapter extrusion racks 8 to perform opposite linkage extrusion test on the test kit limited on the adapter fixing rack 7. The extrusion beam 802 on the adapter extrusion rack 8 is adjusted in position according to the test kit model in advance, and the tightness of the bolts connecting the extrusion beam 802 and the adjustment slot on both sides are adjusted by external tools. When the bolts are loosened, manually adjust the extrusion beam 802 to move up and down along the adjustment slot, wait for it to move to the appropriate position, and then tighten the bolts again.

[0037] After waiting for the adjustment of the internal components of the loading box 2 to be completed, the tempered transparent glass cover is closed, and the device is started through the controller. The air pump 103 is connected to the telescopic cylinder arm 101 through a telescopic air hose to supply air. The telescopic cylinder arm 101 drives the mechanical jacket 6 to move up and down inside the loading box 2 through the connecting sleeve 601. The air pump 103 is connected to the balancing cylinder frame 301, the propulsion cylinder 501 and the extrusion cylinder 602 respectively through the telescopic air hose and the regulating valve. The specific pipeline arrangement is arranged according to actual needs, and the pipelines are connected by flanges. The mechanical jacket 6 first squeezes the test kit from the outside to the inside in the loading box 2. After completion, it drives the mechanical jacket 6 over the ring mouth 503 into the water inspection box 3. After waiting for the water inspection box 3 to complete the inspection of the test kit, it drives it to reset and slide up into the loading box 2, and the tester takes it out.

[0038] When the detection device is initially started, it runs according to the set program, firstly the reagent box is externally mechanically squeezed, such as Figure 10 As shown in the upper part, the test kit is used to test the pressurized sealing performance of the internally stored reagents from the inside to the outside. The extrusion cylinder 602 drives the balance frame through the slider 603, and the balance frame drives the adaptation extrusion frame 8 and the extrusion beam 802 to slide synchronously toward the adaptation fixed frame 7. As the extrusion beam 802 continues to approach, the extrusion beam 802 contacts and squeezes the outside of the test kit step by step, causing the overall liquid storage area of the test kit to deform, causing the pigment experimental water stored in the test kit to be pushed and compressed, and the pressure change occurs accordingly to squeeze the inner wall of the test kit. The external tester records the deformation process of the test kit according to the recording equipment set in advance, and records whether there is any leakage of pigment experimental water in its opening area. If there is obvious leakage of pigment experimental water, it is directly judged that the group of test kits is unqualified. If there is no obvious leakage of pigment experimental water, the next step is carried out.

[0039] Propulsion cylinders 501 are embedded at both ends of the top of the sealing interlayer 5, and a ring opening 503 is provided through the center of the top of the sealing interlayer 5. Sealing discs 502 are slidably sleeved in the inner walls on both sides of the ring opening 503. A semi-arc rubber sleeve in contact with the telescopic cylinder arm 101 is provided in the middle of the sealing disc 502. The telescopic cylinder arm 101 mobilizes the mechanical jacket 6 to slide down. During this period, multiple groups of propulsion cylinders 501 of the sealing interlayer 5 are started, and the propulsion cylinder 501 drives the sealing disc 502 to slide to both sides until it is immersed in the interior of the sealing interlayer 5, prompting the ring opening 503 to be fully opened, and the telescopic cylinder arm 101 drives the mechanical jacket 6 through the ring opening 503 into the water inspection box 3 until the telescopic cylinder arm 101 is stretched and stabilized. Figure 9 As shown, the propulsion cylinder 501 drives the sealing disc 502 to slide close to the telescopic cylinder arm 101 until the semi-arc rubber sleeve on the sealing disc 502 contacts the outer periphery of the telescopic cylinder arm 101, thereby sealing the loading box 2 and the water inspection box 3 with the sealing interlayer 5.

[0040] Embodiment 2: This embodiment is a reagent kit sealing detection device for reagent kit processing, comprising a water inspection box 3 with a water storage tank 4 provided at the bottom, and tempered test frames 302 provided on the inner walls of both sides of the water inspection box 3.

[0041] Tempered transparent covers are symmetrically provided at both ends of the water inspection box 3. A drain valve 303 connected to the water storage tank 4 is embedded in the center of the bottom box of the water inspection box 3. Balance cylinder frames 301 connected to the tempered test frame 302 are provided on the inner walls of both sides of the water inspection box 3. The initial mechanical extrusion state of the test kit is still maintained, and some appropriate clean water is initially poured into the inside of the water inspection box 3. When the test kit is steadily immersed in the clean water in the extruded state, if a small amount of clean water is stained, it is judged that there is a slight sealing leakage during the mechanical extrusion of this group of test kits, and the external test personnel will record and mark it with a mechanical unqualified mark. If no clean water staining phenomenon occurs, it means that the group of test kits fully meets the standards under the mechanical extrusion state, and the external test personnel will record and mark it with a mechanical qualified mark.

[0042] The extrusion cylinder 602 is reset, prompting the reagent box to be reset and subjected to water pressure treatment. The balancing cylinder frame 301 drives the multiple sets of tempered test frames 302 to approach each other until the tempered test frames 302 cover the mechanical jacket 6 and the telescopic cylinder arm 101. The top of the tempered test frame 302 seals the outer periphery of the telescopic cylinder arm 101 through a semi-arc rubber sleeve, prompting the multiple sets of tempered test frames 302 to temporarily form a sealed environment. Combined with the water inspection box 3, a box-in-box structure is formed, which can not only ensure that the subsequent test environment is accurately adjusted, but also avoid safety hazards caused by test pressure.

[0043] A water exchange valve 305 is embedded in the bottom of the inner wall of the tempered test frame 302, and multiple groups of ventilation valves 304 are symmetrically arranged on the top of the inner wall of the tempered test frame 302. The top of the tempered test frame 302 is recessed with a seal that is sleeved with the telescopic cylinder arm 101, and a semi-arc rubber sleeve is sleeved on the inner wall of the seal. A telescopic water hose connected to the water pump 102 is provided on the outer wall of the water exchange valve 305, and a telescopic air hose connected to the air pump 103 is provided on the outer wall of the ventilation valve 304.

[0044] The water pump 102 is connected to the water exchange valve 305 through a telescopic water hose, and injects an appropriate amount of clean water into the tempered test frame 302 until the clean water overflows the mechanical jacket 6. During the continuous injection of clean water, the air pump 103 is connected to the air exchange valve 304 through the telescopic air hose, and continuously extracts air from the tempered test frame 302 to maintain the internal pressure of the tempered test frame 302 at a normal state. After the clean water is injected into place, the air pump 103 accelerates the extraction of air from the tempered test frame 302 through the air exchange valve 304 through the telescopic air hose, and vacuumizes the sealed environment formed by the tempered test frame 302.

[0045] During this period, if there are bubbles in the opening area of the test kit and the pigment test water leaks out, it means that the test kit has a sealing problem. The external test personnel will mark it and record that the vacuum water test is unqualified. If there are no bubbles or pigment test water leaks in the opening area of the test kit, it means that the test kit is sealed well. The external test personnel will mark it and record that the vacuum water test is qualified. Figure 10 As shown in the lower half, the upper half of the sealed environment formed by the tempered test frame 302 is filled with air, and the lower half is filled with clean water, which overflows the reagent kit and the mechanical jacket 6.

[0046] With the completion of the single vacuum water test, the air pump 103 inflates a small amount of air into the sealed environment inside the tempered test frame 302 through the telescopic air hose, and then cuts off the air injection therein. The water pump 102 is connected to the water exchange valve 305 through the telescopic water hose, and continuously injects clean water into the sealed environment inside the tempered test frame 302 until the clean water fills the sealed environment of the tempered test frame 302. A certain amount of clean water is continuously injected to cause the water pressure in the sealed environment to continuously increase to a certain intensity. After waiting for 30 seconds and being still, the balancing cylinder frame 301 suddenly drives the tempered test frames 302 away from each other, causing the sealed environment of the tempered test frame 302 to be instantly destroyed, so as to detect the sudden change from the high-pressure environment to the normal-pressure environment of the test kit, and the clean water in the sealed environment leaks into the water inspection box 3.

[0047] As the water pump 102 continuously injects clean water into the water inspection box 3 through the telescopic water hose and the water change valve 305, when the clean water contacts the opening area of the test kit, the external equipment and the test personnel record whether there is leakage of the pigment experiment water in the opening area of the test kit. If there is leakage of the pigment experiment water in the opening area of the test kit, it means that the test kit has a sealing problem. The external test personnel mark it and record that the pressure differential test fails. If there is no leakage of the pigment experiment water in the opening of the test kit, it means that the test kit is sealed intact. The external test personnel mark it and record that the pressure differential test passes.

[0048] Combining Example 1 and Example 2, the present invention has two key advantages: one is the design of the adaptive fixing frame 7 and the adaptive extrusion frame 8. The former is connected to the inner guide groove 604 through the corner frame 701, and can be quickly positioned in the mechanical jacket 6 to improve the test efficiency; the extrusion beam 802 can be adjusted according to the model of the test kit to adapt to different models of test kits. At the same time, the upper and lower splicing rings 703 limit the protection of the test kit to ensure the accuracy of the test and the integrity of the test kit.

[0049] Secondly, during water pressure treatment, a box-in-box structure is formed using the tempered test frame 302. With the help of the air pump 103 and the water pump 102, air extraction and water injection are controlled to simulate various pressure changes, accurately adjust the test environment, and make the test results more reliable.

[0050] The above content is merely an example and explanation of the structure of the present invention. Those skilled in the art may make various modifications or additions to the described specific embodiments or replace them in a similar manner. As long as they do not deviate from the structure of the invention or exceed the scope defined by the claims, they should all fall within the scope of protection of the present invention.

[0051] In the description of this specification, the descriptions with reference to the terms "one embodiment", "example", "specific example", etc. mean that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in a suitable manner in any one or more embodiments or examples. Related accessories include couplings, screws, gears, gaskets and other commonly used mechanical connection components in this field, but are not limited to these. They are replaced and adapted according to actual use.

[0052] The preferred embodiments of the present invention disclosed above are intended only to help illustrate the present invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the present invention to specific embodiments. Obviously, many modifications and variations are possible based on the contents of this specification. These embodiments are selected and described in detail in this specification to better explain the principles and practical applications of the present invention, thereby enabling those skilled in the art to better understand and utilize the present invention. The present invention is limited only by the claims and their full scope and equivalents.

Claims

1. A reagent kit sealing detection device for reagent kit processing, comprising a test housing (1), characterized in that: A sealing interlayer (5) is embedded in the middle of the test shell (1), a loading box (2) is provided on the top of the sealing interlayer (5), and a water inspection box (3) is provided on the bottom of the sealing interlayer (5); a telescopic cylinder arm (101) extending into the interior of the loading box (2) is provided on the top inner wall of the test shell (1), a mechanical jacket (6) is provided on the bottom of the telescopic cylinder arm (101), and an adapting fixing frame (7) and an adapting extrusion frame (8) are provided inside the mechanical jacket (6); a water storage tank (4) is provided at the bottom of the water inspection box (3), and tempered test frames (302) are provided on the inner walls on both sides of the water inspection box (3); The end face of the adapting extrusion frame (8) is provided with a balance beam (801) facing the mechanical jacket (6), and the balance beam (801) is clamped with the slider (603); an adjustment groove is provided through the middle of the end face of the adapting extrusion frame (8), and an extrusion beam (802) clamped with the adjustment groove is provided at one end of the adapting extrusion frame (8) facing the mechanical jacket (6); The four corners of the outer wall of the adapting fixing frame (7) are symmetrically provided with side frames (701) that are slidably sleeved with the inner guide groove (604); an upper splicing ring (702) is provided through the top frame of the adapting fixing frame (7); and a lower splicing ring (703) is provided in a recessed manner on the bottom frame of the adapting fixing frame (7).

2. The reagent kit sealing detection device for reagent kit processing according to claim 1, characterized in that: A water pump (102) connected to a pipeline of a water tank (4) is provided in the bottom inner wall of one side of the test housing (1), and an air pump (103) connected to a telescopic cylinder arm (101) is embedded in the inner wall of the other side of the test housing (1).

3. The reagent kit sealing detection device for reagent kit processing according to claim 1, characterized in that: Propulsion cylinders (501) are embedded at both ends of the top of the sealing interlayer (5), a ring opening (503) is provided through the center of the top of the sealing interlayer (5), and sealing discs (502) are slidably sleeved in the inner walls on both sides of the ring opening (503).

4. The reagent kit sealing detection device for reagent kit processing according to claim 1, characterized in that: The loading box (2) is hinged with a tempered transparent glass cover at both ends, a connecting sleeve (601) connected to the telescopic cylinder arm (101) is provided on the top of the mechanical jacket (6), a plurality of groups of extrusion cylinders (602) are symmetrically provided on the top and bottom outer walls of the mechanical jacket (6), a slider (603) extending to the inner wall of the mechanical jacket (6) is provided at the bottom of the extrusion cylinder (602), and inner guide grooves (604) are symmetrically provided on the four corners of the inner wall of the mechanical jacket (6).

5. The reagent kit sealing detection device for reagent kit processing according to claim 1, characterized in that: The water inspection box (3) is symmetrically provided with a tempered transparent cover at both ends. A drain valve (303) connected to the water storage tank (4) is embedded in the center of the bottom box of the water inspection box (3). Balance cylinder frames (301) sleeved with the tempered test frame (302) are provided on the inner walls of both sides of the water inspection box (3).

6. The reagent kit sealing detection device for reagent kit processing according to claim 5, characterized in that: A water exchange valve (305) is embedded in the bottom of the inner wall of the tempered test frame (302), and multiple groups of air exchange valves (304) are symmetrically arranged on the top of the inner wall of the tempered test frame (302). A seal that is sleeved with the telescopic cylinder arm (101) is recessed in the top of the tempered test frame (302).

Citation Information

Patent Citations

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