High-grain anode preparation and detection device

By using methyl silicone oil and elastic cloth structure, the problem of uneven heating of materials in the high-grain anode preparation and detection device is solved, and more accurate test results and time efficiency are achieved.

CN223179893UActive Publication Date: 2025-08-01JIAOZUO HUAYU MAGNESIUM CO LTD
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Patent Information

Application Number
CN202422331725.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-24
Publication Date
2025-08-01
Estimated Expiration
2034-09-24

AI Technical Summary

Technical Problem

The existing high-grain anode preparation and detection device is unevenly heated on the surface of the material during the heating process, resulting in a deviation in the test results.

Method used

Methosilicon oil is used as the heat conduction medium, combined with elastic cloth and fixed structure, to ensure that the material is heated evenly in a sealed state, heat is transmitted through the air conduit, and the container is fixed using arc plates and chute structures to increase the heat transfer area and stability.

Benefits of technology

Achieve uniform heating of materials, provide more accurate test data, and reduce test time.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of material science and engineering, and particularly relates to a high-grain anode preparation detection device which comprises a workbench, and a supporting frame is fixedly connected to the top of the workbench. An air cylinder is fixedly connected to the top of the supporting frame; the end of the air cylinder is slidably connected with a push rod. The push rod is arranged on the supporting frame in a penetrating mode. The end part of the push rod is fixedly connected with a circular plate; a fixing ring is arranged at the bottom of the circular plate; elastic cloth is fixedly connected between the circular plate and the fixing ring; an air guide pipe is fixedly connected to the surface of the circular plate; the air guide pipe is arranged on the circular plate in a penetrating manner; a containing groove is formed in the middle of the workbench. The placing groove and the circular plate are correspondingly arranged; a container is arranged in the middle of the placing groove; the bottom of the fixing ring is fixedly connected with a pair of fixing blocks; a pair of clamping grooves is formed in the surface of the workbench; the fixing block and the clamping groove are correspondingly arranged and are in sliding fit; materials are placed in the elastic cloth so as to be in full contact with heat.
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Description

Technical Field

[0001] The utility model relates to the technical field of materials science and engineering, and specifically relates to a detection device for preparing high-grain anodes. Background Technique

[0002] High-grain anodes usually have a highly crystalline microstructure. This structure results in larger and more regular grain sizes within the material. The larger grain sizes can reduce the number of grain boundaries, thereby reducing the resistance and energy loss at the grain boundaries. At the same time, the regular grain arrangement helps to improve the conductivity and stability of the material.

[0003] The detection device for preparing high-grain anodes can precisely control the preparation conditions, facilitating the synthesis of high-quality anode materials. It can comprehensively detect the anode performance and strictly control the product quality. At the same time, this device plays an important role in promoting the development of related fields of high-grain anodes.

[0004] The detection device for preparing high-grain anodes usually directly conducts heating tests on the materials. During the detection and observation, it is found that such heating will cause temperature differences on the surface of the materials, and then make the surface heating of the materials uneven, which will cause deviations in the test results.

[0005] Therefore, in view of the above problems, a detection device for preparing high-grain anodes is proposed. Content of the Utility Model

[0006] In order to make up for the deficiencies of the prior art and solve at least one of the technical problems proposed in the background technique.

[0007] The technical solution adopted by the utility model to solve its technical problems is as follows: A detection device for preparing high-grain anodes according to the utility model includes a workbench, and a support frame is fixedly connected to the top of the workbench; a cylinder is fixedly connected to the top of the support frame; a push rod is slidably connected to the end of the cylinder; the push rod is arranged through the support frame; a circular plate is fixedly connected to the end of the push rod; a fixing ring is arranged at the bottom of the circular plate; an elastic cloth is fixedly connected between the circular plate and the fixing ring; a gas guide pipe is fixedly connected to the surface of the circular plate; the gas guide pipe is arranged through the circular plate; a placement groove is opened in the middle of the workbench; the placement groove corresponds to the circular plate; a container is arranged in the middle of the placement groove; a pair of fixing blocks are fixedly connected to the bottom of the fixing ring; a pair of card slots are opened on the surface of the workbench; the fixing blocks correspond to the card slots and are in sliding fit; by using the heat conductivity of methyl silicone oil to transfer heat to the container, heat can be provided to the water inside the container more evenly. Since the material is placed inside the elastic cloth and is in a sealed state at this time, the loss of the entering hot air can be reduced, so that the material can fully contact the heat inside the elastic cloth, thereby achieving the effect of uniform heating, providing more accurate data for testing the material, and reducing the test working time.

[0008] Preferably, a plurality of sliding grooves are formed in the side wall of the placement groove; a spring is fixedly connected to the middle of the sliding groove; a slider is fixedly connected to the end of the spring; the slider and the sliding groove are in sliding fit; an arc-shaped plate is fixedly connected to the end of the slider; by using the arc-shaped plate to squeeze and fix the container, the container can be fixed inside the methyl silicone oil, so as to increase the contact area with the methyl silicone oil and transfer more heat to assist in the test. At the same time, the elasticity of the sliding groove will make the arc-shaped plate stick to the surface of the container, increasing the fixing stability, thereby reducing the floating of the container in the methyl silicone oil.

[0009] Preferably, a heat insulation pad is fixedly connected to the middle of the slider; the heat insulation pad and the sliding groove are in sliding connection; by using the heat insulation pad to protect the components inside the sliding groove, the influence of heat on the sliding groove can be reduced, thereby increasing the stability of fixing the container. At the same time, when the spring pushes the slider out of the inside of the sliding groove, the heat insulation pad will push the methyl silicone oil entering the sliding groove out of the inside of the sliding groove, thereby providing a sealing protection for the sliding groove and preventing the methyl silicone oil from entering the inside of the sliding groove.

[0010] Preferably, a clamping block is fixedly connected to the side wall of the sliding groove; the clamping blocks are symmetrically arranged on the sliding groove; the clamping blocks and the slider are correspondingly arranged; by providing a limit for the slider, the slider can be prevented from falling off the inside of the sliding groove under the thrust of the spring. Since there are convex blocks on the side wall of the slider that can be blocked by the clamping blocks and the clamping blocks are symmetrically arranged, the slider can be limited simultaneously from above and below, thereby increasing the stability of the slider when being blocked.

[0011] Preferably, a semi-circular block is connected to the end of the air duct; a plurality of air holes are formed on the surface of the semi-circular block; by using the air holes to diffuse the air flow of the hot air machine entering the elastic cloth, the air flow speed entering the elastic cloth can be increased, thereby expanding the contact area between the hot air and the inside of the elastic cloth after passing through, and thus accelerating the temperature rise inside the elastic cloth.

[0012] Preferably, a plurality of rubber pads are fixedly connected to the bottom of the fixing block; the rubber pads and the clamping groove are in sliding fit; by installing rubber pads to buffer the fixing block, the shaking of the elastic cloth caused by the impact force can be reduced when the fixing block contacts the clamping groove, improving the protection and stability of the elastic cloth.

[0013] The beneficial effects of the present utility model are as follows:

[0014] 1. For the high-grain anode preparation detection device of the present utility model, by using the heat conductivity of methyl silicone oil to transfer heat to the container, the heat can be provided to the water inside the container more uniformly. Since the material is placed inside the elastic cloth and is in a sealed state at this time, the loss of the entering hot air can be reduced, so that the material can fully contact the heat inside the elastic cloth, thereby achieving the effect of uniform heating, providing relatively accurate data for testing the material, and reducing the test working time.

[0015] 2. The detection device for preparing a high-grain anode according to the present utility model can fix the container inside the methyl silicone oil by using an arc-shaped plate to extrude and fix the container, thereby increasing the contact area with the methyl silicone oil to transfer more heat to assist in the test. At the same time, the elasticity of the chute will make the arc-shaped plate stick to the surface of the container, increasing the stability of the fixation, thereby reducing the floating of the container in the methyl silicone oil. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.

[0017] Figure 1 It is a schematic diagram of the main body of the present utility model;

[0018] Figure 2 It is a schematic diagram of the structure of the elastic cloth in the present utility model;

[0019] Figure 3 It is a schematic diagram of the structure of the container in the present utility model;

[0020] Figure 4 It is a schematic diagram of the structure of the chute in the present utility model;

[0021] Figure 5 It is a schematic diagram of the structure of the slider in the present utility model.

[0022] In the figure: 1, workbench; 11, support frame; 12, cylinder; 13, push rod; 14, round plate; 15, elastic cloth; 16, air duct; 17, placement groove; 18, container; 19, fixing ring; 101, fixing block; 102, clamping groove; 2, chute; 21, spring; 22, slider; 23, arc-shaped plate; 3, heat insulation pad; 4, clamping block; 5, semi-circular block; 51, air hole; 6, rubber pad. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0023] The following will clearly and completely describe the technical solutions in the embodiments of the present utility model with reference to the drawings in the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, rather than all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present utility model.

[0024] The following gives specific embodiments.

[0025] As Figures 1 to 5As shown in the figure, a detection device for preparing a high-grain anode according to an embodiment of the present utility model includes a workbench 1, and a support frame 11 is fixedly connected to the top of the workbench 1; a cylinder 12 is fixedly connected to the top of the support frame 11; a push rod 13 is slidably connected to the end of the cylinder 12; the push rod 13 is arranged to penetrate through the support frame 11; a circular plate 14 is fixedly connected to the end of the push rod 13; a fixing ring 19 is arranged at the bottom of the circular plate 14; an elastic cloth 15 is fixedly connected between the circular plate 14 and the fixing ring 19; a gas guide pipe 16 is fixedly connected to the surface of the circular plate 14; the gas guide pipe 16 is arranged to penetrate through the circular plate 14; a placement groove 17 is formed in the middle of the workbench 1; the placement groove 17 corresponds to the circular plate 14; a container 18 is arranged in the middle of the placement groove 17; a pair of fixing blocks 101 are fixedly connected to the bottom of the fixing ring 19; a pair of clamping grooves 102 are formed on the surface of the workbench 1; the fixing blocks 101 correspond to the clamping grooves 102 and are in sliding fit; during work, first pour methyl silicone oil into the placement groove 17, and at the same time place the material and water in the container 18, then start the cylinder 12 to lower the push rod 13. When the push rod 13 is lowered, it will push the circular plate 14 to lower synchronously until the fixing blocks 101 enter the deep part of the clamping grooves 102 and then stop lowering. At this time, the material is in a sealed space. Then start the air pump of the workbench 1 to transmit hot air through the gas guide pipe 16 into the elastic cloth 15. When the hot air enters the elastic cloth 15 through the gas guide pipe 16, it will heat the methyl silicone oil in the placement groove 17. At the same time, it will also directly contact the material and water in the container 18. When heating the methyl silicone oil, the heat generated by the methyl silicone oil will be transmitted to the water inside through the container 18 and then contact the material to conduct a high-temperature resistance test on it. When the test is over, use the detection device to detect and extract the test data; by using the heat conductivity of methyl silicone oil to transfer heat to the container 18, the heat can be provided to the water inside the container 18 more evenly. Since the material is placed inside the elastic cloth 15 and is in a sealed state at this time, the loss of the entering hot air can be reduced, so that the material can fully contact the heat inside the elastic cloth 15, thereby achieving the effect of uniform heating and providing more accurate data for testing the material, and reducing the test working time.

[0026] As Figures 3 to 5As shown in the figure, a plurality of sliding grooves 2 are formed in the side wall of the placing groove 17; a spring 21 is fixedly connected to the middle of the sliding groove 2; the end of the spring 21 is fixedly connected with a slider 22; the slider 22 and the sliding groove 2 are slidably connected; the end of the slider 22 is fixedly connected with an arc-shaped plate 23; during operation, when the container 18 is placed inside the placing groove 17, it will float on the methyl silicone oil. At this time, when the container 18 is continuously lowered, the side wall will contact the arc-shaped plate 23 and move along the surface of the arc-shaped plate 23. When the arc-shaped plate 23 moves, a force will be applied to the slider 22 to move it closer to the sliding groove 2. At this time, the side wall of the slider 22 will slide along the inner wall of the sliding groove 2. When the slider 22 slides, the sliding groove 2 will deform. When the container 18 stops moving, the sliding groove 2 will push the slider 22 out of the inside of the sliding groove 2, so that the arc-shaped plate 23 is attached to the side wall of the container 18 to squeeze and fix the container 18; by using the arc-shaped plate 23 to squeeze and fix the container 18, the container 18 can be fixed inside the methyl silicone oil, so as to increase the contact area with the methyl silicone oil and transfer more heat to help with the test. At the same time, the elasticity of the sliding groove 2 will attach the arc-shaped plate 23 to the surface of the container 18, increasing the stability of the fixation, thereby reducing the floating of the container 18 in the methyl silicone oil.

[0027] As Figures 4 to 5 shown, a heat insulation pad 3 is fixedly connected to the middle of the slider 22; the heat insulation pad 3 and the sliding groove 2 are slidably connected; during operation, when the arc-shaped plate 23 fixes the inner wall of the container 18, part of the heat will be transmitted into the sliding groove 2. When it enters the sliding groove 2, it will be blocked by the heat insulation pad 3 so that it cannot enter the inside of the sliding groove 2, which does not affect the working state of the sliding groove 2. At the same time, the heat insulation pad 3 can also prevent the methyl silicone oil from entering the deep part of the sliding groove 2; by using the heat insulation pad 3 to protect the components inside the sliding groove 2, the influence of heat on the sliding groove 2 can be reduced, thereby increasing the stability of fixing the container 18. At the same time, when the spring 21 pushes the slider 22 out of the inside of the sliding groove 2, the heat insulation pad 3 will push the entering methyl silicone oil out of the inside of the sliding groove 2, thereby providing a sealing protection for the sliding groove 2 and preventing the methyl silicone oil from entering the inside of the sliding groove 2.

[0028] As Figure 4 shown, a clamping block 4 is fixedly connected to the side wall of the sliding groove 2; the clamping blocks 4 are symmetrically arranged on the sliding groove 2; the clamping blocks 4 and the slider 22 are correspondingly arranged; during operation, when the container 18 needs to be taken out from the inside of the placing groove 17, since the spring 21 is always in a compressed state, when the container 18 leaves, the spring 21 will immediately push the slider 22 out of the inside of the sliding groove 2. At this time, the side wall of the sliding groove 2 will be blocked by the clamping block 4 so that it will not completely leave the inside of the sliding groove 2, providing a limiting function for the slider 22; by providing a limit for the slider 22, the slider 22 can be prevented from falling off the inside of the sliding groove 2 under the thrust of the spring 21. Since the side wall of the slider 22 has a convex block that can be blocked by the clamping block 4 and the clamping blocks 4 are symmetrically arranged, the slider 22 can be limited simultaneously from above and below, thereby increasing the stability of the slider 22 when being blocked.

[0029] As Figure 2 shown, a semi-circular block 5 is connected to the end of the air duct 16; a plurality of air holes 51 are formed on the surface of the semi-circular block 5; during operation, when the hot air is transmitted through the elastic cloth 15, it will first be transmitted into the semi-circular block 5, and then ejected from the air holes 51 to diffuse the incoming hot air to increase the incoming air flow rate; by using the air holes 51 to diffuse the air flow of the hot air machine entering the elastic cloth 15, the air flow rate entering the elastic cloth 15 can be increased, thereby expanding the contact area between the hot air and the inside of the elastic cloth 15 after passing through, and thus accelerating the temperature rise inside the elastic cloth 15.

[0030] As Figures 1 to 2 shown, a plurality of rubber pads 6 are fixedly connected to the bottom of the fixed block 101; the rubber pads 6 are in sliding fit with the clamping grooves 102; during operation, when the fixed block 101 enters the inside of the clamping groove 102 through the push of the push rod 13 and contacts the bottom, an impact force will be generated, and the rubber pads 6 are used to buffer and relieve the impact force, so that the elastic cloth 15 reduces shaking; by installing the rubber pads 6 to buffer the fixed block 101, the shaking of the elastic cloth 15 caused by the impact force can be reduced when the fixed block 101 contacts the clamping groove 102, and the protection and stability of the elastic cloth 15 can be improved.

[0031] Working principle: First, pour methyl silicone oil into the interior of the placement groove 17, and at the same time place the material and water inside the container 18. Then, start the cylinder 12 to lower the push rod 13. When the push rod 13 is lowered, it will push the circular plate 14 to be lowered synchronously until the fixed block 101 enters deep into the card slot 102 and then stops lowering. At this time, the material is in a sealed space. Then, start the air pump of the workbench 1 to transmit hot air through the air duct 16 into the elastic cloth 15. When the hot air enters the elastic cloth 15 through the air duct 16, it will heat the methyl silicone oil in the placement groove 17. At the same time, it will also directly contact the material and water inside the container 18. When heating the methyl silicone oil, the heat generated by the methyl silicone oil will be transmitted through the container 18 to the water inside, thereby contacting the material to conduct a high-temperature resistance test on it. When the test is completed, then use the detection device to detect and extract the test data; when the container 18 is placed inside the placement groove 17, it will float on the methyl silicone oil. At this time, continue to lower the container 18, and the side wall will contact the arc plate 23 and move along the surface of the arc plate 23. When the arc plate 23 moves, it will exert a force on the slider 22 to move it closer to the chute 2. At this time, the side wall of the slider 22 will slide along the inner wall of the chute 2. When the slider 22 slides, the chute 2 will deform. When the container 18 stops moving, the chute 2 will push the slider 22 out of the chute 2, so that the arc plate 23 adheres to the side wall of the container 18 to squeeze and fix the container 18; when the arc plate 23 fixes the inner wall of the container 18, part of the heat will enter the chute 2. When it enters the chute 2, it will be blocked by the heat insulation pad 3 so that it cannot penetrate deep into the chute 2 and does not affect the working state of the chute 2. At the same time, the heat insulation pad 3 can also prevent the methyl silicone oil from entering the deep part of the chute 2; when it is necessary to take out the container 18 from the interior of the placement groove 17, because the spring 21 has been in a compressed state, when the container 18 leaves, the spring 21 will immediately push the slider 22 out of the chute 2. At this time, the side wall of the chute 2 will be blocked by the block 4 so that it will not completely leave the chute 2, providing a limiting function for the slider 22; when transmitting the hot air through the elastic cloth 15, it will first be transmitted into the semi-circular block 5 and then sprayed out from the air holes 51 to diffuse the incoming hot air and increase the incoming air flow rate; when the fixed block 101 enters the card slot 102 through the push of the push rod 13 and contacts the bottom, an impact force will be generated. Use the rubber pad 6 to buffer and unload this impact force so that the elastic cloth 15 reduces shaking.

[0032] The above shows and describes the basic principle, main features and advantages of the present invention. Those skilled in the art of this industry should understand that the present invention is not limited by the above embodiments. What is described in the above embodiments and the specification only illustrates the principle of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed.

Claims

1. A high-grain anode preparation detection device, comprising a workbench (1), characterized in that: A support frame (11) is fixedly connected to the top of the workbench (1); a cylinder (12) is fixedly connected to the top of the support frame (11); a push rod (13) is slidably connected to the end of the cylinder (12); the push rod (13) is arranged to penetrate through the support frame (11); a circular plate (14) is fixedly connected to the end of the push rod (13); a fixing ring (19) is arranged at the bottom of the circular plate (14); an elastic cloth (15) is fixedly connected between the circular plate (14) and the fixing ring (19); a gas guide pipe (16) is fixedly connected to the surface of the circular plate (14); the gas guide pipe (16) is arranged to penetrate through the circular plate (14); a placement groove (17) is formed in the middle of the workbench (1); the placement groove (17) and the circular plate (14) are arranged in correspondence; a container (18) is arranged in the middle of the placement groove (17); a pair of fixing blocks (101) are fixedly connected to the bottom of the fixing ring (19); a pair of clamping grooves (102) are formed in the surface of the workbench (1); the fixing blocks (101) and the clamping grooves (102) are arranged in correspondence and are in sliding fit.

2. The high-grain anode preparation detection device according to claim 1, wherein: A plurality of sliding grooves (2) are formed in the side wall of the placement groove (17); a spring (21) is fixedly connected to the middle of the sliding groove (2); a slider (22) is fixedly connected to the end of the spring (21); the slider (22) and the sliding groove (2) are in sliding fit; an arc-shaped plate (23) is fixedly connected to the end of the slider (22).

3. The high-grain anode preparation detection device according to claim 2, characterized in that: A heat insulation pad (3) is fixedly connected to the middle of the slider (22); the heat insulation pad (3) and the sliding groove (2) are in sliding connection.

4. A high-grain anode preparation detection device according to claim 3, characterized in that: A clamping block (4) is fixedly connected to the side wall of the sliding groove (2); the clamping blocks (4) are symmetrically arranged on the sliding groove (2); the clamping blocks (4) and the slider (22) are arranged in correspondence.

5. The detection device for preparing a high-grain anode according to claim 4, wherein: The end of the gas guide pipe (16) is communicated with a semi-circular block (5); a plurality of air holes (51) are formed in the surface of the semi-circular block (5).

6. The high-grain anode preparation detection device according to claim 5, characterized in that: A plurality of rubber pads (6) are fixedly connected to the bottom of the fixing block (101); the rubber pads (6) and the clamping grooves (102) are in sliding fit.