A sample-based storage system
By designing a storage system that includes a cabinet, support plate, receiving parts, and clamping parts, the problem of inconvenient sample storage was solved, and the stable, dry preservation and convenient management of samples were achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-03-05
- Publication Date
- 2026-04-03
AI Technical Summary
Existing sample storage methods are inconvenient for moving and drying, making the samples susceptible to moisture and difficult to manage.
A sample storage system was designed, including a cabinet, a support plate, a receiving component, and a clamping component. The system achieves stable storage of the samples through locking slots and clamping slots, and is equipped with a drying cabinet and a circulating pump system to maintain a dry environment.
This enabled convenient movement and centralized management of the samples, improved storage stability and dryness, reduced moisture intrusion, and protected the quality of the samples.
Smart Images

Figure CN117963361B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of ore and soil detection technology, and relates to a sample storage system. Background Technology
[0002] Ore and soil testing, as the name suggests, involves testing the composition of ores and soil. A common testing method is sampling testing, which involves taking a certain amount of ore and soil samples from the area to be tested, and after a series of processing steps, testing the content of various elements in the ore and soil.
[0003] Currently, the common forms of samples on the market include compressed sample sheets and fused sample sheets. Compressed sample sheets are made using the powder compression method. First, a sample ring is placed on a platform. Then, the sample (which has been ground to a particle size of less than 0.074 mm) is placed inside the sample ring. Finally, a large pressure is applied to the sample from top to bottom, so that the sample and the sample ring become a whole.
[0004] The fused sample section, on the other hand, is produced using the high-temperature fusion glass slide method. The sample is placed in a diluted flux and heated at high temperature, allowing the sample and flux to mix thoroughly. After cooling, a glass-like fused section is formed. This process directly results in diluted elemental concentrations, increased sample surface smoothness, and disruption of the mineral structure within the sample, creating a homogeneous structure. Consequently, it essentially eliminates grain size effects and the matrix's enhanced absorption effect. A good fused section should appear uniformly transparent with a smooth analytical surface. Summary of the Invention
[0005] The purpose of this invention is to provide a sample storage system that facilitates the movement of samples and the drying and preservation of samples.
[0006] To address the aforementioned technical problems, this invention provides a sample-based storage system, comprising:
[0007] The cabinet has several horizontally arranged support plates inside, and each support plate has a hinged single door at its outer end. The single door can form a sealed space between the cabinet and the support plate.
[0008] Each of the support plates has a plurality of receiving components. Each receiving component has a plurality of receiving grooves on its top and a plurality of arc-shaped locking grooves on its bottom. Each locking groove is used to lock a pressing sample or a melting sample.
[0009] The invention is further configured to include a C-shaped clamping member, the outer wall of which is interference-fitted with the inner wall of the engaging groove, a first clamping groove being formed in the middle of a portion of the clamping member, and a second clamping groove being formed in the middle of the remaining portion of the clamping member, the lower side of the pressing plate engaging in the first clamping groove, and the lower side of the molten sample engaging in the second clamping groove.
[0010] The present invention is further configured such that both ends of the clamping member are provided with C-shaped stabilizing portions, the openings of the stabilizing portions facing the outside of the clamping member, and the middle portions of the two stabilizing portions located on the same clamping member abut against the pressing plate or the melting plate.
[0011] The present invention is further configured such that the receiving member includes a plurality of first receiving parts and a plurality of second receiving parts, the number of first receiving parts and second receiving parts is equal, and the first receiving parts and second receiving parts are arranged in an alternating manner, adjacent first receiving parts and second receiving parts are movably connected, and the top of each first receiving part and second receiving part has a plurality of said engaging grooves and part of said receiving groove;
[0012] It also includes several first synchronization components and second synchronization components. Each first synchronization component is connected to the X end of two adjacent first receiving parts. All first synchronization components are used to drive all first receiving parts to move synchronously in the same direction. Each second synchronization component is connected to the -X end of two adjacent second receiving parts. All second synchronization components are used to drive all second receiving parts to move synchronously in the same direction.
[0013] The present invention is further configured such that a first groove is horizontally provided on both sides of the first receiving part, a connecting cylinder is provided in the first groove, a first anti-rotation hole, a rotation hole and a second anti-rotation hole are sequentially connected in the middle of the connecting cylinder, the longitudinal section of the first anti-rotation hole and the second anti-rotation hole are both square, the free ends of the first anti-rotation hole and the second anti-rotation hole respectively pass through the two ends of the connecting cylinder, the two ends of the connecting cylinder are at a set distance from the two ends of the first groove, the first anti-rotation hole is located between the rotation hole and the first synchronizing member, the first receiving part located below the first groove is an inclined first inclined part, and the two ends of the first synchronizing member are hinged to the first receiving part;
[0014] The second receiving part has horizontally opened second grooves on both sides. Between the two ends of the second grooves, there are sequentially connected first anti-rotation part, rotating column and second anti-rotation part. The outer wall of the rotating column is movably attached to the inner wall of the rotating hole. The longitudinal section of the first anti-rotation part and the second anti-rotation part are both square. The top of the second anti-rotation part is horizontal and the top of the first anti-rotation part is inclined. The top of the first anti-rotation part faces the second receiving part. The second receiving part located below the second groove is an inclined second inclined part. Both ends of the second synchronizing member are hinged to the second receiving part.
[0015] The receiving component includes a first state, a second state, and a third state;
[0016] When the receiving part is in the first state, the two ends, top and bottom of the first receiving part and the second receiving part are flush, the second anti-rotation part is engaged in the second anti-rotation hole, and the top of the first receiving part abuts against the top of the second receiving part.
[0017] When the receiving member is in the second state, the distance between the X end of the first receiving part and the X end of the second receiving part is S1, the first anti-rotation part is located outside the first anti-rotation hole, and the second anti-rotation part is located outside the second anti-rotation hole;
[0018] When the receiving member is in the third state, the receiving member is an arc shape with the opening facing downwards. The distance between the X end of the first receiving part and the X end of the second receiving part is S2, where S2 > S1. The first anti-rotation part is engaged in the first anti-rotation hole, the first inclined part abuts against the second inclined part, and the engaging groove on the first receiving part and the engaging groove on the second receiving part are distributed in a staggered manner.
[0019] The present invention is further configured such that the outer side of the first receiving portion located at the outer end and the outer side of the second receiving portion located at the outer end are both planar and are provided with an operating handle.
[0020] The present invention is further configured such that a first clearance groove for the first synchronizing member to be inserted is provided at the bottom of the second receiving part, and a second clearance groove for the second synchronizing member to be inserted is provided at the bottom of the first receiving part.
[0021] The present invention is further configured such that drying cabinets are provided on both sides of the cabinet body, a drying door is hinged to the opening end of the drying cabinet, a plurality of drying boards are horizontally arranged inside the drying cabinet, a plurality of drying bags are provided on each drying board, and the drying cabinet is connected to the cabinet body.
[0022] The present invention is further configured to include a circulation pump, wherein the circulation pump is connected to an exhaust pipe and a return pipe, the exhaust pipe being used to introduce gas from the drying cabinet into the circulation pump, and the return pipe being used to return the gas to the cabinet.
[0023] The cabinet is equipped with a humidity sensor and an alarm. The humidity sensor transmits the humidity signal inside the cabinet to the controller, and the controller controls the alarm to sound or not to sound based on the signal from the humidity sensor.
[0024] The present invention is further configured such that the drying door and the drying cabinet, as well as the individual door and the cabinet body, are sealed connections.
[0025] Compared with existing technologies, this invention provides a sample storage system. When storing pressed or fused samples, the first step is to insert the sample into a locking groove. Since each receiving component has several receiving grooves on its top, and each receiving groove has several locking grooves, multiple pressed or fused samples can be inserted into each receiving component. This not only facilitates the simultaneous transfer of multiple samples (i.e., pressed and fused samples) and provides better protection for the samples, but also allows multiple receiving components to be placed on a support plate inside the cabinet. This enables centralized management of all samples, facilitating subsequent retrieval, saving storage space, and improving the stability of sample storage. Individual doors control the independent opening and closing of the cabinet. During use, the corresponding individual door can be opened according to the sample being retrieved, reducing the operational effort and ensuring dryness inside the cabinet, minimizing moisture ingress and providing better protection for the samples. Attached Figure Description
[0026] Figure 1 This is a schematic diagram of an embodiment of a sample-based storage system according to the present invention. Figure 1 ;
[0027] Figure 2 yes Figure 1 Enlarged view of section A;
[0028] Figure 3 This is a schematic diagram of an embodiment of a sample-based storage system according to the present invention. Figure 2 ;
[0029] Figure 4 This is a schematic diagram of the structure of a receiving component in a sample-based storage system according to the present invention. Figure 1 ;
[0030] Figure 5 yes Figure 4 Enlarged view of section B;
[0031] Figure 6 yes Figure 4 Enlarged view of section C;
[0032] Figure 7 This is a schematic diagram of an embodiment of a clamping component in a sample storage system according to the present invention;
[0033] Figure 8 This is a schematic diagram of the structure of a receiving component in a sample-based storage system according to the present invention. Figure 2 ;
[0034] Figure 9 yes Figure 8 Enlarged view of section D;
[0035] Figure 10 yes Figure 8 Enlarged view of section E in the middle;
[0036] Figure 11 This is a schematic diagram of the structure of a receiving component in a sample-based storage system according to the present invention. Figure 3 ;
[0037] Figure 12 This is a cross-sectional view of an embodiment of a receiving component in a sample-based storage system according to the present invention;
[0038] Figure 13 yes Figure 12 Enlarged view of section F in the middle;
[0039] Figure 14 This is a schematic diagram of an embodiment of the first receiving part in a sample-based storage system of the present invention. Figure 1 ;
[0040] Figure 15 This is a schematic diagram of an embodiment of the first receiving part in a sample-based storage system of the present invention. Figure 2 ;
[0041] Figure 16 This is a cross-sectional view of an embodiment of the first receiving part in a sample-based storage system of the present invention;
[0042] Figure 17 This is a schematic diagram of an embodiment of the second receiving part in a sample-based storage system of the present invention;
[0043] Figure 18 yes Figure 17 Enlarged view of section G in the middle;
[0044] Figure 19 yes Figure 17 Enlarged view of section H in the middle;
[0045] Figure 20This is a cross-sectional view of an embodiment of the second receiving part in a sample-based storage system of the present invention.
[0046] The components are as follows: 1. Cabinet body; 2. Support plate; 3. Individual door; 4. Receiving component; 4a. First receiving part; 4b. Second receiving part; 5. Receiving groove; 6. Engaging groove; 7. Clamping component; 8. First clamping groove; 9. Second clamping groove; 10. Stabilizing part; 11. First synchronizing component; 12. Second synchronizing component; 13. First groove bar; 14. Connecting cylinder; 15. First anti-rotation hole; 16. Rotation hole; 17. Second anti-rotation hole; 18. First inclined part; 19. Second groove bar; 20. First anti-rotation part; 21. Rotating column; 22. Second anti-rotation part; 23. Second inclined part; 24. Operating handle; 25. First clearance groove; 26. Second clearance groove; 27. Drying cabinet; 28. Drying door; 29. Drying plate; 30. Drying bag; 31. Circulation pump; 32. Exhaust pipe; 33. Return pipe. Detailed Implementation
[0047] The following detailed description, in conjunction with the accompanying drawings and specific embodiments, provides a further detailed explanation of the sample-based storage system proposed in this invention. The advantages and features of this invention will become clearer from the following description. It should be noted that the drawings are all in a very simplified form and use non-precise proportions, and are only used to facilitate and clarify the illustration of the embodiments of this invention. The same or similar reference numerals in the drawings represent the same or similar parts.
[0048] A sample-based storage system, such as Figures 1 to 20 As shown, it includes:
[0049] Cabinet 1, with several support plates 2 horizontally arranged inside the cabinet 1, and each support plate 2 having a hinged single door 3 at its outer end, the single door 3 forming a sealed space with the cabinet 1 and the support plate 2.
[0050] The receiving component 4 is provided on each of the support plates 2. Each of the receiving components 4 has several receiving grooves 5 on its top and several arc-shaped locking grooves 6 on its bottom. Each locking groove 6 is used to lock a pressing sample or a melting sample.
[0051] It also includes a C-shaped clamping member 7, the outer wall of which is interference-fitted with the inner wall of the engaging groove 6. A first clamping groove 8 is formed in the middle of a portion of the clamping member 7, and a second clamping groove 9 is formed in the middle of the remaining portion of the clamping member 7. The lower side of the pressing plate is engaged in the first clamping groove 8, and the lower side of the molten sample is engaged in the second clamping groove 9.
[0052] Both ends of the clamping member 7 are provided with C-shaped stabilizing parts 10. The openings of the stabilizing parts 10 face the outside of the clamping member 7. The middle parts of the two stabilizing parts 10 located on the same clamping member 7 abut against the pressing plate or the melting plate.
[0053] The receiving component 4 includes a plurality of first receiving parts 4a and a plurality of second receiving parts 4b. The number of first receiving parts 4a and second receiving parts 4b is equal, and the first receiving parts 4a and second receiving parts 4b are arranged in an alternating manner. Adjacent first receiving parts 4a and second receiving parts 4b are movably connected. The top of each first receiving part 4a and second receiving part 4b has a plurality of the engagement grooves 6 and a portion of the receiving grooves 5.
[0054] It also includes a plurality of first synchronization elements 11 and second synchronization elements 12. Each first synchronization element 11 is connected to the X end of two adjacent first receiving parts 4a. All first synchronization elements 11 are used to drive all first receiving parts 4a to move synchronously in the same direction. Each second synchronization element 12 is connected to the -X end of two adjacent second receiving parts 4b. All second synchronization elements 12 are used to drive all second receiving parts 4b to move synchronously in the same direction.
[0055] The first receiving part 4a has horizontally opened first grooves 13 on both sides. A connecting cylinder 14 is provided in the first groove 13. The middle part of the connecting cylinder 14 is sequentially connected to a first anti-rotation hole 15, a rotation hole 16, and a second anti-rotation hole 17. The longitudinal section of the first anti-rotation hole 15 and the second anti-rotation hole 17 is square. The free ends of the first anti-rotation hole 15 and the second anti-rotation hole 17 respectively pass through both ends of the connecting cylinder 14. Both ends of the connecting cylinder 14 are at a set distance from both ends of the first groove 13. The first anti-rotation hole 15 is located between the rotation hole 16 and the first synchronizing member 11. The first receiving part 4a located below the first groove 13 is an inclined first inclined part 18. Both ends of the first synchronizing member 11 are hinged to the first receiving part 4a.
[0056] The second receiving part 4b has horizontally opened second grooves 19 on both sides. The two ends of the second grooves 19 are provided with a first anti-rotation part 20, a rotating column 21 and a second anti-rotation part 22 connected in sequence. The outer wall of the rotating column 21 is movably attached to the inner wall of the rotating hole 16. The longitudinal section of the first anti-rotation part 20 and the second anti-rotation part 22 is square. The top of the second anti-rotation part 22 is horizontal and the top of the first anti-rotation part 20 is inclined. The top of the first anti-rotation part 20 faces the second receiving part 4b. The part of the second receiving part 4b located below the second grooves 19 is an inclined second inclined part 23. Both ends of the second synchronizing member 12 are hinged to the second receiving part 4b.
[0057] The receiving component 4 includes a first state, a second state, and a third state;
[0058] When the receiving part 4 is in the first state, the two ends, top and bottom of the first receiving part 4a and the second receiving part 4b are flush, the second anti-rotation part 22 is engaged in the second anti-rotation hole 17, and the top of the first receiving part 4a abuts against the top of the second receiving part 4b.
[0059] When the receiving member 4 is in the second state, the distance between the X end of the first receiving part 4a and the X end of the second receiving part 4b is S1, the first anti-rotation part 20 is located outside the first anti-rotation hole 15, and the second anti-rotation part 22 is located outside the second anti-rotation hole 17.
[0060] When the receiving member 4 is in the third state, the receiving member 4 is an arc shape with the opening facing downward. The distance between the X end of the first receiving part 4a and the X end of the second receiving part 4b is S2, where S2 > S1. The first anti-rotation part 20 is engaged in the first anti-rotation hole 15. The first inclined part 18 abuts against the second inclined part 23. The engaging groove 6 on the first receiving part 4a and the engaging groove 6 on the second receiving part 4b are distributed in a staggered manner.
[0061] The outer sides of the first receiving part 4a at the outer end and the outer sides of the second receiving part 4b at the outer end are both planar and are provided with operating handles 24.
[0062] The bottom of the second receiving part 4b is provided with a first clearance groove 25 for the first synchronizing member 11 to be inserted, and the bottom of the first receiving part 4a is provided with a second clearance groove 26 for the second synchronizing member 12 to be inserted.
[0063] Drying cabinets 27 are provided on both sides of the cabinet body 1. A drying door 28 is hinged to the open end of the drying cabinet 27. Several drying boards 29 are horizontally arranged inside the drying cabinet 27. Several drying bags 30 are provided on each drying board 29. The drying cabinet 27 is connected to the cabinet body 1.
[0064] It also includes a circulation pump 31, which is connected to an exhaust pipe 32 and a return pipe 33. The exhaust pipe 32 is used to introduce the gas in the drying cabinet 27 into the circulation pump 31, and the return pipe 33 is used to send the gas back to the cabinet 1.
[0065] The cabinet 1 is equipped with a humidity sensor and an alarm. The humidity sensor is used to transmit the humidity signal inside the cabinet 1 to the controller. The controller controls the alarm to sound or not to sound based on the signal from the humidity sensor.
[0066] The drying door 28 and the drying cabinet 27, as well as the individual door 3 and the cabinet body 1, are all sealed connections.
[0067] This invention provides a sample storage system. When storing pressed or fused samples, the first step is to insert the pressed or fused samples into the locking grooves 6. Since each receiving component 4 has several receiving grooves 5 on its top, and each receiving groove 5 has several locking grooves 6, multiple pressed or fused samples can be inserted into each receiving component 4. This not only facilitates the transfer of multiple samples (i.e., pressed and fused samples) at one time and provides good protection for the samples, but also allows multiple receiving components 4 to be placed on the support plate 2 inside the cabinet 1. This enables centralized management of all samples, facilitating subsequent retrieval, saving storage space, and improving the stability of sample storage. The individual door 3 can control the individual opening and closing of the cabinet 1. When in use, the corresponding individual door 3 can be opened according to the sample being retrieved, which reduces the operational range and ensures the dryness inside the cabinet 1, reducing the amount of moisture entering the cabinet 1 and providing good protection for the samples.
[0068] Since the diameter of the pressed sample is larger than that of the molten sample, but the thickness of the molten sample is larger than that of the pressed sample, when placing the corresponding pressed sample or molten sample in the receiving part 4, it is first necessary to place the corresponding clamping part 7 in the corresponding engaging groove 6. The clamping part 7 is divided into two types: one type is used to clamp the pressed sample, and the other type is used to clamp the molten sample. The first clamping groove 8 of the clamping part 7 used to clamp the pressed sample has a smaller width but a larger diameter, so as to clamp the pressed sample. The second clamping groove 9 of the clamping part 7 used to clamp the molten sample has a larger width but a smaller diameter, so as to clamp the molten sample. The clamping part 7 is made of elastic or flexible material, so it can be stably clamped in the engaging groove 6, and both the pressed sample and the molten sample are clamped and positioned. Moreover, the stabilizing parts 10 at both ends of the clamping part 7 can undergo elastic deformation and abut against the two ends of the pressed sample or the molten sample, so as to further improve the positional stability of the sample. Since different numbers and combinations of clamping parts 7 can be selected according to the actual situation, the receiving part 4 can be used to place the sample regardless of the number of pressing pieces and melting pieces, making it widely applicable.
[0069] When the sample is placed in cabinet 1, the receiving part 4 is in its first state, which is a flat surface. The receiving groove 5 is straight, and the locking grooves 6 are also flush. Furthermore, since the second anti-rotation part 22 is engaged in the second anti-rotation hole 17, and the top of the first receiving part 4a and the top of the second receiving part 4b are in contact with each other, the first receiving part 4a and the second receiving part 4b are kept in a taut state. Thus, the flat receiving part 4 can stably maintain its shape during handling and movement. Also, since the receiving part 4 is flat, it occupies less space when placed in cabinet 1, and the clamping stability of the sample is also higher (if the sample is tilted or crooked, it is easy for the sample to fall off or even be damaged). This state is the most conducive to the storage and handling of samples.
[0070] When inspecting the sample, first, both hands are placed on the operating handle 24 (the left end of the operating handle 24 on the first receiving part 4a is the X end, and the other end is the -X end). Then, keeping the position of the operating handle 24 on the second receiving part 4b still, the operating handle 24 on the first receiving part 4a is pulled inward, causing the connecting cylinder 14 and the rotating column 21 to move relative to each other until the second anti-rotation part 22 and the second anti-rotation hole 17 disengage. At this point, both operating handles 24 can be flipped upward, causing the connecting cylinder 14 and the rotating column 21 to move relative to each other. Rotate until the first inclined part 18 abuts against the second inclined part 23 (at this time, the first anti-rotation hole 15 is directly opposite the first anti-rotation part 20); then keep the position of the operating handle 24 on the second receiving part 4b still, pull the operating handle 24 on the first receiving part 4a inward, and make the first anti-rotation part 20 enter the first anti-rotation hole 15, and then release both operating handles 24. At this time, under the action of the first anti-rotation part 20 and the first anti-rotation hole 15, the position and angle of the first receiving part 4a and the second receiving part 4b remain stable.
[0071] Meanwhile, when the first receiving part 4a and the second receiving part 4b are moving relative to each other, the first synchronizing member 11 can drive all the first receiving parts 4a to move, and the second synchronizing member 12 can maintain the position of all the second receiving parts 4b. Since the first synchronizing member 11 and the first receiving part 4a are hinged, and the second synchronizing member 12 and the second receiving part 4b are hinged, adjacent first receiving parts 4a and second receiving parts 4b can rotate relative to each other, and finally make the receiving part 4 present an arc shape with the opening facing downward, and at this time the first receiving parts 4a and the second receiving parts 4b are in a misaligned state.
[0072] Because the sample pieces are relatively thin, the locking slots 6 are usually set to be relatively dense in order to place more sample pieces in the same receiving slot 5 (in actual operation, at least 48 sample pieces are usually placed on a receiving part 4). At the same time, the information on each sample piece is written directly on the sample with a pen. Such dense placement of sample pieces is not only inconvenient for observation, but also inconvenient for removal.
[0073] When the receiving part 4 is in the third state, it is not only arched upwards, but also the engaging grooves 6 on the first receiving part 4a and the second receiving part 4b are misaligned. This makes it easier to observe the information on the sample, and also makes it easier to take out and put back the sample, resulting in better operation. After all the samples have been tested, reversing the operation of the two operating handles 24 will allow the receiving part 4 to return to a flat state. At this point, its thickness is small and its shape is stable, making it most convenient for placement.
[0074] When the receiving component 4 is placed on the support plate 2, the first synchronizing component 11 is located in the first clearance groove 25, and the second synchronizing component 12 is located in the second clearance groove 26. This improves the overall integrity of the receiving component 4, reduces the length of the protruding structure, facilitates movement, and reduces the overall weight of the receiving component 4. The outer sides of the first receiving portion 4a and the second receiving portion 4b at the outer end are both planar, which reduces processing difficulty and improves the aesthetics of the structure.
[0075] Cabinet 1 is equipped with a humidity sensor. If the humidity inside cabinet 1 exceeds the set value, the humidity sensor will transmit a signal to the PLC controller. The controller will then send a command to the alarm. After the alarm sounds, it will prompt the worker to take appropriate actions, such as dehumidifying the inside of cabinet 1.
[0076] In actual use, the cabinet 1 is connected to the drying cabinets 27 on both sides. This way, even if moisture enters the cabinet 1, the drying bags 30 inside the drying cabinets 27 (containing substances with strong hygroscopic properties, such as anhydrous copper sulfate, calcium oxide, and calcium chloride) can absorb the moisture, thus ensuring the dryness inside the cabinet 1. At the same time, during use, the circulation pump 31 is continuously or periodically started to draw the gas from the cabinet 1 into the drying cabinets 27 and act on the drying bags 30. Then, the relatively dry air flows into the circulation pump 31 through the exhaust pipe 32 and returns to the cabinet 1 through the return pipe 33, thus achieving the purpose of drying and dehumidification. The drying plate 29 and the support plate 2 are preferably porous structures, which can ensure the dryness of the entire cabinet 1.
[0077] Furthermore, the individual door 3 and the cabinet 1, as well as the drying door 28 and the drying cabinet 27, are equipped with sealing rings or sealing layers to improve the sealing performance inside the cabinet 1. At the same time, the individual door 3 and the cabinet 1, as well as the drying door 28, are preferably connected by magnetic attraction or by bolts to achieve a sealed connection.
[0078] The above description is merely a description of preferred embodiments of the present invention and is not intended to limit the scope of the present invention in any way. Any changes or modifications made by those skilled in the art based on the above disclosure shall fall within the protection scope of the claims.
Claims
1. A sample-based storage system, characterized in that, include: The cabinet has several horizontally arranged support plates inside, and each support plate has a hinged single door at its outer end. The single door can form a sealed space between the cabinet and the support plate. The receiving component, each of the support plates has a plurality of receiving components, each receiving component has a plurality of receiving grooves on its top, and each receiving groove has a plurality of arc-shaped locking grooves on its bottom, each locking groove being used to lock a pressing sample or a melting sample. The receiving component includes a plurality of first receiving parts and a plurality of second receiving parts. The number of first receiving parts and second receiving parts is equal, and the first receiving parts and second receiving parts are arranged in an alternating manner. Adjacent first receiving parts and second receiving parts are movably connected. The top of each first receiving part and second receiving part has a plurality of the engaging grooves and a portion of the receiving groove. It also includes several first synchronization components and second synchronization components. Each first synchronization component is connected to the X end of two adjacent first receiving parts. All first synchronization components are used to drive all first receiving parts to move synchronously in the same direction. Each second synchronization component is connected to the -X end of two adjacent second receiving parts. All second synchronization components are used to drive all second receiving parts to move synchronously in the same direction. The first receiving part has horizontally opened first grooves on both sides, and a connecting cylinder is provided in the first groove. The middle of the connecting cylinder has a first anti-rotation hole, a rotation hole and a second anti-rotation hole connected in sequence. The longitudinal section of the first anti-rotation hole and the second anti-rotation hole are both square. The free ends of the first anti-rotation hole and the second anti-rotation hole respectively pass through the two ends of the connecting cylinder. The two ends of the connecting cylinder are at a set distance from the two ends of the first groove. The first anti-rotation hole is located between the rotation hole and the first synchronizing member. The first receiving part located below the first groove is an inclined first part. The two ends of the first synchronizing member are hinged to the first receiving part. The second receiving part has horizontally opened second grooves on both sides. Between the two ends of the second grooves, there are sequentially connected first anti-rotation part, rotating column and second anti-rotation part. The outer wall of the rotating column is movably attached to the inner wall of the rotating hole. The longitudinal section of the first anti-rotation part and the second anti-rotation part are both square. The top of the second anti-rotation part is horizontal and the top of the first anti-rotation part is inclined. The top of the first anti-rotation part faces the second receiving part. The second receiving part located below the second groove is an inclined second inclined part. Both ends of the second synchronizing member are hinged to the second receiving part.
2. The sample-based storage system according to claim 1, characterized in that, It also includes a C-shaped clamping member, the outer wall of which is interference-fitted with the inner wall of the engaging groove. A first clamping groove is formed in the middle of a portion of the clamping member, and a second clamping groove is formed in the middle of the remaining portion of the clamping member. The lower side of the pressing plate is engaged in the first clamping groove, and the lower side of the molten sample is engaged in the second clamping groove.
3. The sample-based storage system according to claim 2, characterized in that, Both ends of the clamping member are provided with C-shaped stabilizing parts, the openings of the stabilizing parts facing the outside of the clamping member, and the middle parts of the two stabilizing parts located on the same clamping member abut against the pressure plate or the melting plate.
4. The sample-based storage system according to claim 1, characterized in that, The receiving component includes a first state, a second state, and a third state; When the receiving part is in the first state, the two ends, top and bottom of the first receiving part and the second receiving part are flush, the second anti-rotation part is engaged in the second anti-rotation hole, and the top of the first receiving part abuts against the top of the second receiving part. When the receiving member is in the second state, the distance between the X end of the first receiving part and the X end of the second receiving part is S1, the first anti-rotation part is located outside the first anti-rotation hole, and the second anti-rotation part is located outside the second anti-rotation hole; When the receiving member is in the third state, the receiving member is an arc shape with the opening facing downwards. The distance between the X end of the first receiving part and the X end of the second receiving part is S2, where S2 > S1. The first anti-rotation part is engaged in the first anti-rotation hole, the first inclined part abuts against the second inclined part, and the engaging groove on the first receiving part and the engaging groove on the second receiving part are distributed in a staggered manner.
5. A sample-based storage system according to claim 4, characterized in that, Both the outer side of the first receiving part at the outer end and the outer side of the second receiving part at the outer end are planar and are provided with operating handles.
6. A sample-based storage system according to claim 4, characterized in that, The bottom of the second receiving part is provided with a first clearance groove for the first synchronizing member to be inserted, and the bottom of the first receiving part is provided with a second clearance groove for the second synchronizing member to be inserted.
7. A sample-based storage system according to claim 1, characterized in that, Drying cabinets are provided on both sides of the cabinet body. A drying door is hinged to the open end of the drying cabinet. Several drying boards are horizontally arranged inside the drying cabinet. Several drying bags are provided on each drying board. The drying cabinet is connected to the cabinet body.
8. A sample-based storage system according to claim 7, characterized in that, It also includes a circulation pump, which is connected to an exhaust pipe and a return pipe. The exhaust pipe is used to introduce the gas in the drying cabinet into the circulation pump, and the return pipe is used to send the gas back to the cabinet. The cabinet is equipped with a humidity sensor and an alarm. The humidity sensor transmits the humidity signal inside the cabinet to the controller, and the controller controls the alarm to sound or not to sound based on the signal from the humidity sensor.
9. A sample-based storage system according to claim 7, characterized in that, The drying door and the drying cabinet, as well as the individual door and the cabinet body, are all sealed connections.
Citation Information
Patent Citations
Novel protective device for green printed matter
CN209956603U
Constant-temperature storage device for occupational health samples
CN211568666U
Molten sample storage box
CN211944284U