A reagent storage device for textile testing
By designing anti-sway and anti-sedimentation modules, the problems of sliding and tipping of the storage cylinder and reagent sedimentation are solved, achieving the safety and stability of reagent storage, ensuring continuous and controllable use of reagents and stable performance, and reducing the risk of damage and contamination.
Patent Information
- Application Number
- CN202511133717.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-14
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2045-08-14
AI Technical Summary
Existing reagent storage devices for textile testing are drawer-type designs, which make the storage cylinder prone to sliding or tilting, leading to damage and reagent leakage. Furthermore, it is difficult to prevent reagent sedimentation and condensation from entering, affecting reagent performance and safety.
It adopts anti-shaking and anti-sedimentation modules, including stop plates, elastic telescopic blocks, rotating shafts and sponge blocks, etc. By slowly moving the push-pull frame, stirring the frame and wiping with the sponge block, it prevents the storage cylinder from shaking, reagent sedimentation and condensation contamination, and ensures sealing and reagent stability.
It effectively prevents storage cylinders from sliding and tipping over and reagent leakage, maintains consistent reagent concentration, extends reagent lifespan, reduces the risk of environmental pollution, ensures stable reagent performance, and improves storage efficiency and safety.
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Figure CN120621886B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of laboratory container technology, specifically to a reagent storage device for textile experimental testing. Background Technology
[0002] Textile testing reagent storage devices are storage equipment specifically designed for various reagents in textile testing laboratories. Their design must meet the requirements of reagent property preservation, safety protection, and convenient experimental operation. In addition, the reagent storage devices are usually placed in a cold storage room to maintain the experimental performance of the reagents.
[0003] Patent publication number CN210474025U relates to a reagent storage device for textile testing, comprising a tank. Both ends of the tank have internal and external threaded patterns. A first sealing cap and a second sealing cap are threadedly connected to both ends of the tank. A limiting head is installed at one end of each of the first and second sealing caps, and the limiting head is threadedly connected to the internal threaded patterns of the tank. A limiting groove is formed at the lower end of the first and second sealing caps. Both ends of the tank are threadedly connected to the upper limiting grooves of the first and second sealing caps. A first delivery pipe and a second delivery pipe are respectively installed through the first and second sealing caps. A booster pump is installed at one end of the second delivery pipe. This patent facilitates stable and uniform mixing of the internal reagents, effectively stores the reagents, provides good sealing, and is easy to disassemble for subsequent cleaning.
[0004] The aforementioned patents facilitate stable and uniform mixing of internal reagents, effectively store reagents, and provide good sealing. They are also easy to disassemble and clean. Most reagent storage devices use a drawer-type design, where the storage cylinder is placed on the drawer shelf and naturally adheres to the drawer by gravity, without any auxiliary fixing structures such as magnetic attraction or spring pressing. This makes it easy for the storage cylinder to slide or tilt when the drawer is pushed or pulled or the shelf is subjected to force. If the sliding range is large, it can cause the storage cylinder to slip off, resulting in damage to the storage cylinder and reagent leakage. Therefore, it is necessary to design a reagent storage device for textile laboratory testing that is highly practical and prevents excessive sliding of the storage cylinder from causing damage and reagent leakage. Summary of the Invention
[0005] The purpose of this invention is to provide a reagent storage device for experimental testing of textiles, so as to solve the problems mentioned in the background art.
[0006] To solve the above-mentioned technical problems, the present invention provides the following technical solution: a reagent storage device for textile experimental testing, comprising a storage rack and an anti-sway module. A push-pull frame is slidably mounted on the top of the storage rack, and a storage cylinder is provided on the top of the push-pull frame. The anti-sway module includes a stop plate, a stop groove, a push-pull plate, a hollow rod, a solid column, a mounting hole, an elastic telescopic block, a vent hole, and a mounting frame. The stop plate is fixedly installed on the bottom of the inner wall of the storage rack, the stop groove is formed on the top of the stop plate, the push-pull plate is fixedly installed on the front side of the push-pull frame, and the mounting frame is fixedly installed on... At the bottom of the inner wall of the storage rack, the hollow rod is fixedly installed on the front side of the mounting rack, the solid column is slidably installed on the inner wall of the hollow rod, the mounting hole is opened on the circumferential surface of the solid column, the elastic telescopic block is fixedly installed on the inner wall of the solid column, the vent is opened on the circumferential surface of the hollow rod, the storage cylinder is filled with reagents, and a rubber ring is provided between the hollow rod and the solid column. The rubber ring can increase the sealing between the hollow rod and the solid column. The push-pull bracket moves slowly forward so that the storage cylinder is smoothly detached from the inside of the refrigerator compartment, thereby preventing the storage cylinder from tipping over due to the push-pull bracket being pulled out too quickly.
[0007] According to the above technical solution, the bottom of the free end of the elastic telescopic block is set as an arc surface. By setting the bottom of the free end of the elastic telescopic block as an arc surface, the frictional force when the free end of the elastic telescopic block contacts the stop plate can be reduced. The free end of the elastic telescopic block abuts against the stop plate. The front side of the solid column is fixedly connected to the push-pull plate. The stop groove is used to prevent the storage cylinder from shaking when taking out the reagent. The push-pull plate cannot shake, so the push-pull frame cannot shake. The push-pull frame cannot shake, so the storage cylinder cannot shake when taking out the reagent.
[0008] According to the above technical solution, the storage cylinder has a liquid inlet on its circumferential surface, through which the storage cylinder can be connected to the liquid inlet pipe. The storage cylinder also has a liquid outlet on its circumferential surface, through which the storage cylinder can be connected to the liquid outlet pipe. The push-pull plate contacts the storage rack, and the vent is used to slowly discharge the gas inside the hollow rod.
[0009] According to the above technical solution, it also includes an anti-precipitation module and an anti-dilution module. The anti-precipitation module is used to prevent the formation of stratified precipitation during reagent storage, and the anti-dilution module is used to prevent condensate from mixing into the reagent and causing dilution. The anti-precipitation module includes a rotating shaft, a connecting gear, a connecting toothed plate, a support frame, a stirring frame, and a stirring ring. The stirring frame moves vertically back and forth to agitate the stratified reagents inside the storage cylinder, thereby preventing the reagents from precipitating. The rotating shaft rotates through the bottom of the storage cylinder. The connecting gear is fixedly installed on the circumferential surface of the rotating shaft. The connecting toothed plate is fixedly installed on the bottom of the inner wall of the storage frame. The support frame is fixedly installed on the circumferential surface of the rotating shaft. The stirring frame is slidably installed on the circumferential surface of the rotating shaft. The stirring ring is fixedly installed on the bottom of the stirring frame.
[0010] According to the above technical solution, the anti-sedimentation module further includes an arc-shaped frame and a load-bearing frame. The arc-shaped frame is fixedly installed at the bottom of the inner wall of the storage cylinder, and the load-bearing frame is fixedly installed on the inner wall of the storage cylinder.
[0011] According to the above technical solution, a sealing ring is provided between the rotating shaft and the storage cylinder, the side of the stirring frame near the inner wall of the storage cylinder is elastic, the connecting gear meshes with the connecting tooth plate, and a spring is provided between the support frame and the stirring frame. When the stirring frame moves upward, it pulls the spring. The spring deforms and stores force under the pull of the stirring frame. After the stirring ring continues to rotate and disengages from the arc frame, the spring can drive the stirring frame to reset. The stirring frame deforms under the reaction force of the compression support frame.
[0012] According to the above technical solution, the anti-dilution module includes a liquid collection frame, a sponge block, a liquid collection rack, a liquid collection spring, a liquid collection hole, and a drain hole. The sponge block rotates and continuously contacts the top of the inner wall of the storage cylinder to wipe and absorb the condensate on the top of the inner wall of the storage cylinder. The liquid collection frame is fixedly installed on the circumferential surface of the rotating shaft. The sponge block is disposed inside the liquid collection frame. The liquid collection rack slides through the bottom of the liquid collection frame. The liquid collection spring is disposed between the liquid collection frame and the liquid collection rack. The liquid collection rack moves upward to pull the liquid collection spring. The liquid collection spring deforms and stores force due to the pull of the liquid collection rack. After the liquid collection rack is separated from the stirring rack, the liquid collection spring can drive the liquid collection rack to return to its original position. The liquid collection hole is opened on the inner wall of the liquid collection frame, and the drain hole is opened on the circumferential surface of the rotating shaft.
[0013] According to the above technical solution, the sponge block is in contact with the top of the inner wall of the storage cylinder, the sponge block is in contact with the top of the liquid collection rack, the liquid collection rack is in contact with the stirring rack, the sponge block is deformed by the pressure of the liquid collection rack, and the sponge block deforms and squeezes out the condensate it has absorbed.
[0014] Compared with the prior art, the beneficial effects achieved by the present invention are:
[0015] (1) This invention allows the storage cylinder to detach smoothly from the refrigerator compartment by slowly moving the push-pull bracket forward, thereby preventing the storage cylinder from sliding too much and tipping over due to excessively fast pull-pull bracket movement. This also prevents the storage cylinder from being damaged due to violent collisions and sliding. It can avoid leakage of flammable or toxic reagents, thereby reducing the risk of injury to experimental personnel and environmental pollution and ensuring the safety of storage. The push-pull plate is not allowed to shake, so the push-pull bracket is not allowed to shake. The push-pull bracket is not allowed to shake, so the storage cylinder is not allowed to shake when taking out reagents. The stable taking and putting environment can reduce the operation interruption caused by shaking, thereby ensuring the continuous and controllable process of taking out reagents and improving the storage efficiency of the storage cylinder.
[0016] (2) The invention uses a stirring rack to stir the reagents in the storage cylinder by moving vertically back and forth to prevent the reagents from precipitating. This avoids the reagents from becoming stratified or having particles precipitated due to standing. It can ensure that the concentration of the reagents used is consistent, thus providing uniform experimental samples for testing items such as color fastness of textiles. Furthermore, it eliminates the need to discard the entire cylinder of reagents due to precipitation, thereby extending the service life of the reagents and reducing the cost of consumables.
[0017] (3) In this invention, the stir rack is deformed by the reaction force of the compression support frame, and the deformation of the stir rack prevents the reagent from adhering to the bottom of the stir rack. By reducing the structural blockage or weight imbalance of the stir rack caused by the adhering of the sediment, the smoothness of its reciprocating vertical movement is ensured. At the same time, there is no need to frequently disassemble the stir rack to clean the sediment, reducing the time of experimental interruption.
[0018] (4) In this invention, the sponge block rotates and continuously contacts the top of the inner wall of the storage cylinder to wipe and absorb the condensate on the top of the inner wall of the storage cylinder. The sponge block can wipe and absorb the condensate on the top of the inner wall of the storage cylinder to avoid the condensate dripping and contaminating the reagent, thereby preventing changes in reagent concentration or mixing of components, and further ensuring the stability of reagent performance in textile testing.
[0019] (5) In this invention, the sponge block deforms and squeezes out the condensate it absorbs. The condensate squeezed out by the sponge block is discharged into the storage cylinder through the collection hole and the drain hole. The deformation of the sponge block can prevent the sponge from becoming saturated and unable to continue absorbing condensate, ensuring that it can effectively wipe the top of the inner wall of the storage cylinder for a long time. In addition, the discharged condensate no longer stays in the storage cylinder, which can prevent the humidity from rising and causing adverse effects on the reagents. Attached Figure Description
[0020] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used in conjunction with embodiments of the invention to explain the invention and do not constitute a limitation thereof. In the drawings:
[0021] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0022] Figure 2 This is a schematic diagram of a half-section of the storage cylinder structure of the present invention;
[0023] Figure 3 This is a schematic diagram of a half-section of the push-pull frame structure of the present invention;
[0024] Figure 4 This is the present invention. Figure 3 Enlarged schematic diagram of section A in the middle;
[0025] Figure 5 This is a schematic diagram of the hollow rod half-section structure in this invention;
[0026] Figure 6 This is a schematic diagram of the internal structure of the storage cylinder of the present invention;
[0027] Figure 7 This is a schematic diagram of a half-section of the liquid collection frame structure of the present invention.
[0028] In the diagram: 1. Storage rack; 2. Push-pull rack; 3. Storage cylinder; 4. Stop plate; 5. Stop groove; 6. Push-pull plate; 7. Hollow rod; 8. Solid column; 9. Mounting hole; 10. Elastic telescopic block; 11. Vent hole; 12. Mounting rack; 131. Rotating shaft; 132. Connecting gear; 133. Connecting toothed plate; 134. Support frame; 135. Stirring rack; 136. Stirring ring; 137. Arc-shaped frame; 138. Load-bearing frame; 141. Liquid collection frame; 142. Sponge block; 143. Liquid collection rack; 144. Liquid collection spring; 145. Liquid collection hole; 146. Drain hole. Detailed Implementation
[0029] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention. Example 1
[0030] Please see Figure 1-7 This invention provides a technical solution: a reagent storage device for textile experimental testing, comprising a storage rack 1 and an anti-sway module. A push-pull frame 2 is slidably mounted on the top of the storage rack 1, and a storage cylinder 3 is provided on the top of the push-pull frame 2. The anti-sway module includes a stop plate 4, a stop groove 5, a push-pull plate 6, a hollow rod 7, a solid column 8, a mounting hole 9, an elastic telescopic block 10, a vent hole 11, and a mounting frame 12. The stop plate 4 is fixedly installed on the bottom of the inner wall of the storage rack 1, the stop groove 5 is formed on the top of the stop plate 4, the push-pull plate 6 is fixedly installed on the front side of the push-pull frame 2, and the mounting frame 12 is fixedly installed on the bottom of the inner wall of the storage rack 1. The hollow rod... 7 is fixedly installed on the front side of the mounting frame 12. The solid column 8 is slidably installed on the inner wall of the hollow rod 7. The mounting hole 9 is opened on the circumferential surface of the solid column 8. The elastic telescopic block 10 is fixedly installed on the inner wall of the solid column 8. The vent hole 11 is opened on the circumferential surface of the hollow rod 7. The storage cylinder 3 is filled with reagents. A rubber ring is set between the hollow rod 7 and the solid column 8. The rubber ring can increase the sealing between the hollow rod 7 and the solid column 8, prevent the storage cylinder 3 from being damaged due to violent collisions, sliding and tipping. It can avoid leakage of flammable or toxic reagents, thereby reducing the risk of injury to experimental personnel and environmental pollution, and ensuring the safety of storage in the storage cylinder 3.
[0031] The bottom of the free end of the elastic telescopic block 10 is set as an arc surface. By setting the bottom of the free end of the elastic telescopic block 10 as an arc surface, the friction force when the free end of the elastic telescopic block 10 contacts the stop plate 4 can be reduced. The free end of the elastic telescopic block 10 abuts against the stop plate 4. The front side of the solid column 8 is fixedly connected to the push-pull plate 6. The stop groove 5 is used to prevent the storage cylinder 3 from shaking when taking out the reagent. The push-pull plate 6 cannot shake, so the push-pull frame 2 cannot shake. The push-pull frame 2 cannot shake, so the storage cylinder 3 cannot shake when taking out the reagent. The stable taking and putting environment can reduce the operation interruption caused by shaking, thereby ensuring the continuous and controllable process of taking out the reagent and improving the storage efficiency of the storage cylinder 3.
[0032] The storage cylinder 3 has a liquid inlet on its circumferential surface, through which the storage cylinder 3 can be connected to the liquid inlet pipe. The storage cylinder 3 also has a liquid outlet on its circumferential surface, through which the storage cylinder 3 can be connected to the liquid outlet pipe. The push-pull plate 6 contacts the storage rack 1, and the vent 11 is used to slowly discharge the gas inside the hollow rod 7.
[0033] During operation, when the reagent inside the storage cylinder 3 needs to be removed, the push-pull plate 6 is pulled forward. The forward movement of the push-pull plate 6 moves the push-pull frame 2 forward, which in turn moves the storage cylinder 3 forward, disengaging it from the refrigerator compartment. Simultaneously, the forward movement of the push-pull plate 6 moves the solid column 8 forward, which in turn moves the elastic telescopic block 10 forward. This forward movement causes the free end of the elastic telescopic block 10 to contact and press against the stop plate 4. The free end of the elastic telescopic block 10, subjected to the reaction force of the stop plate 4, moves upward, retracting and storing energy. As the solid column 8 continues to move forward, it drives the elastic telescopic block 10 to continue moving forward. The elastic telescopic block 10 continues to move forward until its free end aligns with the stop groove 5. After the free end of the elastic telescopic block 10 aligns with the stop groove 5, the free end of the elastic telescopic block 10 moves downward and resets under its own elastic force. The free end of the elastic telescopic block 10 moves downward and resets, contacts the stop groove 5, and limits the solid column 8. The solid column 8 cannot shake because it is limited by the free end of the elastic telescopic block 10. The inability of the solid column 8 to shake prevents the push-pull plate 6 from shaking. The inability of the push-pull plate 6 to shake prevents the push-pull frame 2 from shaking. The inability of the push-pull frame 2 to shake prevents the storage cylinder 3 from shaking when taking out reagents. Example 2
[0034] Please see Figure 1-7Based on Embodiment 1, this embodiment further includes an anti-precipitation module and an anti-dilution module. The anti-precipitation module is used to prevent the formation of stratified precipitation during reagent storage, and the anti-dilution module is used to prevent condensate from mixing into the reagent and causing dilution. The anti-precipitation module includes a rotating shaft 131, a connecting gear 132, a connecting toothed plate 133, a support frame 134, a stirring frame 135, and a stirring ring 136. The rotating shaft 131 rotates through the bottom of the storage cylinder 3. The connecting gear 132 is fixedly installed on the circumferential surface of the rotating shaft 131. The connecting toothed plate 133 is fixedly installed on the bottom of the inner wall of the storage frame 1. The support frame 134 is fixedly installed on the circumferential surface of the rotating shaft 131. The stirring frame 135 is slidably installed on the circumferential surface of the rotating shaft 131. The stirring ring 136 is fixedly installed at the bottom of the stirring frame 135. This prevents the reagent from forming stratified components or precipitating particles due to standing, ensuring that the concentration of the reagent used is consistent, thereby providing uniform experimental samples for testing items such as color fastness of textiles.
[0035] The anti-precipitation module also includes an arc-shaped frame 137 and a load-bearing frame 138. The arc-shaped frame 137 is fixedly installed at the bottom of the inner wall of the storage cylinder 3, and the load-bearing frame 138 is fixedly installed on the inner wall of the storage cylinder 3. This eliminates the need to discard the entire cylinder of reagents due to precipitation, thereby extending the service life of the reagents and reducing consumable costs.
[0036] A sealing ring is provided between the rotating shaft 131 and the storage cylinder 3. The side of the stirring frame 135 near the inner wall of the storage cylinder 3 is elastic. The connecting gear 132 meshes with the connecting tooth plate 133. A spring is provided between the support frame 134 and the stirring frame 135. When the stirring frame 135 moves upward, it pulls the spring. The spring deforms and stores force under the pull of the stirring frame 135. After the stirring ring 136 continues to rotate and disengages from the arc frame 137, the spring can drive the stirring frame 135 to reset. By reducing the structural blockage or weight imbalance of the stirring frame 135 caused by sediment adhesion, the smoothness of its reciprocating vertical movement is ensured. At the same time, it is not necessary to frequently disassemble the stirring frame 135 to clean the sediment, reducing the experimental interruption time.
[0037] The anti-dilution module includes a collection frame 141, a sponge block 142, a collection rack 143, a collection spring 144, a collection hole 145, and a drain hole 146. The collection frame 141 is fixedly installed on the circumferential surface of the rotating shaft 131. The sponge block 142 is located inside the collection frame 141. The collection rack 143 slides through the bottom of the collection frame 141. The collection spring 144 is located between the collection frame 141 and the collection rack 143. The collection hole 145 is opened on the inner wall of the collection frame 141, and the drain hole 146 is opened on the circumferential surface of the rotating shaft 131. The sponge block 142 wipes and absorbs the condensate on the top of the inner wall of the storage cylinder 3, which can prevent the condensate from dripping and contaminating the reagent, thereby preventing changes in reagent concentration or mixing of components, and further ensuring the stability of reagent performance in textile testing.
[0038] The sponge block 142 contacts the top of the inner wall of the storage cylinder 3, the top of the liquid collection rack 143, and the stirring rack 135. The sponge block 142 is deformed by the pressure of the liquid collection rack 143. The deformation of the sponge block 142 squeezes out the condensate it has absorbed. The deformation of the sponge block 142 can prevent the sponge from becoming saturated and unable to continue absorbing condensate. The discharged condensate will no longer remain in the storage cylinder 3, which can prevent the humidity from rising and causing adverse effects on the reagents.
[0039] During operation, the storage cylinder 3 moves forward, causing the rotating shaft 131 to move forward. The forward movement of the rotating shaft 131 causes the connecting gear 132 to move forward. The connecting gear 132, moving forward, presses against the connecting toothed plate 133. The connecting gear 132, subjected to the reaction force of pressing against the connecting toothed plate 133, rotates. This rotation of the connecting gear 132 causes the rotating shaft 131 to rotate, which in turn causes the stirring frame 135 to rotate. The rotation of the stirring frame 135 causes the stirring ring 136 to rotate. The rotating stirring ring 136, rotating against the arc-shaped frame 137, presses against the arc-shaped frame 137. The stirring ring 136, subjected to the reaction force of pressing against the arc-shaped frame 137, moves upward. The upward movement of the stirring ring 136 causes the stirring rack 135 to move upward. When the stirring ring 136 continues to rotate and disengages from the arc-shaped frame 137, the stirring ring 136 disengages from the arc-shaped frame 137, causing the stirring rack 135 to move downward and reset under the elastic force of the spring. The reciprocating vertical movement of the stirring rack 135 agitates the reagents layered inside the storage cylinder 3, thereby preventing the reagents from precipitating. At the same time, the rotation of the stirring rack 135 will contact the support frame 138 and squeeze the support frame 138. The stirring rack 135 deforms due to the reaction force of the squeezed support frame 138, and the deformation of the stirring rack 135 prevents the reagents from precipitating and adhering to the bottom of the stirring rack 135.
[0040] The stirring rack 135 moves upward to contact the liquid collecting rack 143 and squeezes it. The liquid collecting rack 143 moves upward under the pressure of the stirring rack 135. When the stirring ring 136 disengages from the arc-shaped frame 137, the stirring rack 135 moves downward to reset under the elastic force of spring 1. During this downward reset, the stirring rack 135 disengages from the liquid collecting rack 143. After the liquid collecting rack 143 disengages from the stirring rack 135, it moves downward to reset under the elastic force of the liquid collecting spring 144. The reciprocating vertical movement of the liquid collecting rack 143 impacts the sponge block 14. 2. The sponge block 142 is deformed by the pressure of the liquid collection rack 143. The deformation of the sponge block 142 causes it to squeeze out the condensate it has absorbed. The condensate squeezed out by the sponge block 142 is discharged into the storage cylinder 3 through the liquid collection hole 145 and the liquid drain hole 146, thereby preventing the condensate from mixing into the reagent and causing reagent dilution. At the same time, the rotation of the rotating shaft 131 will drive the liquid collection frame 141 to rotate. The rotation of the liquid collection frame 141 will drive the sponge block 142 to rotate. The sponge block 142 rotates and continues to contact the top of the inner wall of the storage cylinder 3 to wipe and absorb the condensate on the top of the inner wall of the storage cylinder 3.
[0041] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0042] Finally, it should be noted that the above are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A reagent storage device for experimental testing of textiles, comprising a storage rack (1), characterized in that: It also includes an anti-shaking module, an anti-sedimentation module and an anti-dilution module. A push-pull frame (2) is slidably installed on the top of the storage rack (1), and a storage cylinder (3) is provided on the top of the push-pull frame (2). The anti-sway module includes a stop plate (4), a stop groove (5), a push-pull plate (6), a hollow rod (7), a solid column (8), a mounting hole (9), an elastic telescopic block (10), a vent hole (11), and a mounting frame (12). The stop plate (4) is fixedly installed on the bottom of the inner wall of the storage rack (1). The stop groove (5) is opened on the top of the stop plate (4). The push-pull plate (6) is fixedly installed on the front side of the push-pull frame (2). The mounting frame (12) is fixedly installed on the storage rack (1). 1) At the bottom of the inner wall, the hollow rod (7) is fixedly installed on the front side of the mounting frame (12), the solid column (8) is slidably installed on the inner wall of the hollow rod (7), the mounting hole (9) is opened on the circumferential surface of the solid column (8), the elastic telescopic block (10) is fixedly installed on the inner wall of the solid column (8), the exhaust hole (11) is opened on the circumferential surface of the hollow rod (7), the storage cylinder (3) is filled with reagents, and a rubber ring is provided between the hollow rod (7) and the solid column (8); The anti-precipitation module is used to prevent the formation of stratified precipitation during reagent storage, and the anti-dilution module is used to prevent condensate from mixing into the reagent and causing reagent dilution. The anti-sedimentation module includes a rotating shaft (131), a connecting gear (132), a connecting toothed plate (133), a support frame (134), a stirring frame (135), and a stirring ring (136). The rotating shaft (131) rotates through the bottom of the storage cylinder (3). The connecting gear (132) is fixedly installed on the circumferential surface of the rotating shaft (131). The connecting toothed plate (133) is fixedly installed on the bottom of the inner wall of the storage rack (1). The support frame (134) is fixedly installed on the circumferential surface of the rotating shaft (131). The stirring frame (135) is slidably installed on the circumferential surface of the rotating shaft (131). The stirring ring (136) is fixedly installed on the bottom of the stirring frame (135). The anti-sedimentation module also includes an arc-shaped frame (137) and a load-bearing frame (138). The arc-shaped frame (137) is fixedly installed at the bottom of the inner wall of the storage cylinder (3), and the load-bearing frame (138) is fixedly installed on the inner wall of the storage cylinder (3). The bottom of the free end of the elastic telescopic block (10) is set as an arc surface. The free end of the elastic telescopic block (10) abuts against the stop plate (4). The front side of the solid column (8) is fixedly connected to the push-pull plate (6). The stop groove (5) is used to prevent the storage cylinder (3) from shaking when taking out the reagent.
2. The reagent storage device for textile experimental testing according to claim 1, characterized in that: The storage cylinder (3) has a liquid inlet on its circumferential surface and a liquid outlet on its circumferential surface. The push-pull plate (6) is in contact with the storage rack (1). The exhaust hole (11) is used to slowly discharge the gas inside the hollow rod (7).
3. The reagent storage device for textile experimental testing according to claim 2, characterized in that: A sealing ring is provided between the rotating shaft (131) and the storage cylinder (3). The stirring rack (135) is elastic on the side near the inner wall of the storage cylinder (3). The connecting gear (132) meshes with the connecting tooth plate (133). A spring is provided between the support frame (134) and the stirring rack (135).
4. The reagent storage device for textile experimental testing according to claim 3, characterized in that: The anti-dilution module includes a liquid collection frame (141), a sponge block (142), a liquid collection rack (143), a liquid collection spring (144), a liquid collection hole (145), and a liquid drain hole (146). The liquid collection frame (141) is fixedly installed on the circumferential surface of the rotating shaft (131). The sponge block (142) is disposed inside the liquid collection frame (141). The liquid collection rack (143) slides through the bottom of the liquid collection frame (141). The liquid collection spring (144) is disposed between the liquid collection frame (141) and the liquid collection rack (143). The liquid collection hole (145) is opened on the inner wall of the liquid collection frame (141), and the liquid drain hole (146) is opened on the circumferential surface of the rotating shaft (131).
5. A reagent storage device for experimental testing of textiles according to claim 4, characterized in that: The sponge block (142) is in contact with the top of the inner wall of the storage cylinder (3), the sponge block (142) is in contact with the top of the liquid collection rack (143), and the liquid collection rack (143) is in contact with the stirring rack (135).
Citation Information
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