Insulation supporting structure convenient for formed foil feed trough simulation experiment
By designing flexible insulating mesh panels and limiting rods, the problems of non-adjustable insulating support dimensions and poor mobility in existing technologies are solved, thus achieving stability and safety during the experiment.
Patent Information
- Application Number
- CN202423043593.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-10
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2034-12-10
AI Technical Summary
In existing laboratory simulation foil feeding tanks, the annular insulating mesh support cannot be changed in size according to actual conditions, resulting in poor applicability. It is also prone to moving inside the tank, leading to experimental instability and a high risk of contact between the electrode plate and the tank.
A flexible insulating mesh plate that can be wound into a cylindrical shape is used. It is equipped with limiting holes and snap-fit joints. Through snap-fit, a detachable ring-shaped insulating support structure is formed. The limiting rod forms a limiting fit with the inner wall of the pot to ensure stability.
This allows for adjustment of the insulation support radius according to experimental requirements, improving experimental stability, preventing movement of the support within the pot, and reducing the risk of contact between the electrode plate and the pot.
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Figure CN223565614U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of formation foil process laboratory simulation device, especially the insulating support structure convenient for formation foil feeding tank simulation experiment. BACKGROUND
[0002] The existing laboratory simulates formation foil feeding, usually places electrode plate in the electrolyte pot body with high conductivity, the electrode plate does not contact the pot body, the electrode plate is connected with the positive pole of high voltage power supply, the pot body is connected with the negative pole of high voltage power supply, puts formation foil sample into the electrolyte close to the electrode plate and simulates experiment, usually uses annular insulating grid support in the process, the electrode plate is supported on the insulating support according to chord direction, and the insulating support has the following problems:
[0003] 1, the annular insulating grid support is usually integrally formed, cannot change its size according to actual conditions, and has poor applicability.
[0004] 2, during the experiment, the insulating support is easy to move in the pot body due to external factors, thereby leading to unstable experiment, and the risk of electrode plate contacting the pot body is increased. UTILITY MODEL CONTENTS
[0005] The utility model provides the insulating support structure convenient for formation foil feeding tank simulation experiment, aims at solving the problem that the annular insulating grid support is usually integrally formed in the above-mentioned feeding simulation experiment, cannot change its size according to actual conditions, has poor applicability, and the insulating support is easy to move in the pot body due to external factors, thereby leading to unstable experiment, and the risk of electrode plate contacting the pot body is increased.
[0006] To solve the above technical problem, the technical scheme adopted by the utility model is:
[0007] The insulating support structure convenient for formation foil feeding tank simulation experiment includes the flexible insulating net board that can surround the cylinder, the flexible insulating net board is evenly provided with a plurality of limiting holes, one end of the flexible insulating net board is provided with a plurality of first clamping joints, and when the flexible insulating net board surrounds the cylinder, the first clamping joint and the corresponding position limiting hole one-to-one, and the first clamping joint and the limiting hole form the detachable clamping cooperation, and the other spare limiting hole can be detachably provided with a limiting rod, and the grid of the flexible insulating net board cooperates to form the open limiting groove on the top of the flexible insulating net board.
[0008] As preferably, the first clamping joint is arranged on one end of the flexible insulating net board along the axial direction of the flexible insulating net board surrounding the cylinder, and the first clamping joint is located on the inner side when surrounding the cylinder.
[0009] As more preferably, the first clamping joint is at least three, respectively arranged on the top, middle position and bottom of one end of the flexible insulating net board.
[0010] As preferably, the limiting holes comprise a plurality of hole groups, the plurality of hole groups are equidistantly arranged around the shaft, each hole group comprises a plurality of limiting holes equidistantly arranged along the axial direction of the flexible insulating net plate wrapped into a cylindrical shape, and the limiting holes of each hole group correspond to the first clamping joints one by one.
[0011] As preferably, the limiting rods are at least three, the limiting rods are equidistantly distributed around the shaft of the flexible insulating net plate wrapped into a cylindrical shape, and the limiting rods are all arranged along the radial direction.
[0012] As more preferably, the limiting rod comprises a connecting rod, the two sides of the connecting rod are coaxially provided with second clamping joints, the second clamping joints are symmetrically arranged with respect to the connecting rod, the connecting rod is movably embedded in the limiting hole, and the two ends of the connecting rod form a limiting fit with the limiting hole through the second clamping joints; the end of one side of the second clamping joint is coaxially provided with a fixing rod away from the end of the connecting rod, and the end of the fixing rod forms a limiting fit with the wall of the pot.
[0013] Further, the second clamping joint and the first clamping joint are the same size.
[0014] Further, the first clamping joint and the second clamping joint are both tapered, and when the first clamping joint or the second clamping joint penetrates through the corresponding limiting hole by extrusion, the first clamping joint or the second clamping joint forms a limiting fit with the corresponding limiting hole.
[0015] The beneficial effects of the present application are as follows:
[0016] The flexible insulating net plate is wrapped into a cylindrical shape to form an annular insulating support, various annular insulating supports with different radii can be formed according to experimental requirements, and the first clamping joint and the limiting hole form a clamping fit to keep fixed, thereby ensuring stability during the experiment.
[0017] Secondly, the device forms a limiting fit with the inner wall of the pot body through the limiting rod, thereby further improving the stability of the insulating support in the pot body and avoiding movement caused by external factors. BRIEF DESCRIPTION OF DRAWINGS
[0018] Fig. 1 is a perspective view of the present application;
[0019] Fig. 2 is an installation schematic view of the first clamping joint of the present application;
[0020] Fig. 3 is an installation schematic view of the limiting rod of the present application;
[0021] Fig. 4 is a perspective view of the limiting rod of the present application;
[0022] In the diagram: 1. Flexible insulating mesh; 2. Limiting hole; 3. First clamping connector; 4. Limiting rod; 41. Connecting rod; 42. Fixing rod; 43. Second clamping connector; 5. Limiting groove. Detailed Implementation
[0023] The embodiments will be further described below with reference to the accompanying drawings.
[0024] like Figs. 1-4 As shown in the preferred embodiment 1, the insulating support structure for facilitating the simulation experiment of the foil feeding tank includes a flexible insulating mesh plate 1 that can be wound into a cylindrical shape. The mesh on the mesh plate 1 facilitates the inflow of electrolyte. The insulating material ensures that the electrode plate and the pot body do not form a direct connection that could cause a short circuit. The flexibility ensures that the mesh plate 1 can be bent and wound into a cylindrical shape. The flexible insulating mesh plate 1 is uniformly provided with a plurality of limiting holes 2. One end of the flexible insulating mesh plate 1 is provided with a plurality of first locking joints 3. When the flexible insulating mesh plate 1 is wound into a cylindrical shape, the first locking joints 3 and the corresponding limiting holes 2 are engaged. The holes 2 are one-to-one, and the first snap-fit connector 3 and the limiting hole 2 form a detachable snap-fit engagement. The device can be wound into an annular support with a suitable radius according to experimental requirements, and fixed by snap-fitting the limiting hole 2 at the corresponding position of the first snap-fit connector 3 to form an annular insulating support. The remaining limiting holes 2 are detachably provided with limiting rods 4, which extend radially outward to form a limiting engagement with the inner wall of the pot. The mesh of the flexible insulating mesh plate 1 forms an open limiting groove 5 at the top of the flexible insulating mesh plate 1 to receive the electrode plate.
[0025] The first snap-fit connector 3 is arranged at equal intervals along the axial direction of the flexible insulating mesh plate 1 that is wrapped in a cylindrical shape on one end of the flexible insulating mesh plate 1. When the flexible insulating mesh plate 1 is wrapped in a cylindrical shape, the first snap-fit connector 3 is located on the inner side, which makes it convenient for the first snap-fit connector 3 to engage with the corresponding limiting hole 2, and facilitates assembly.
[0026] There are at least three first clamp connectors 3, which are respectively arranged at the top, middle and bottom of one end of the flexible insulating mesh plate 1 to ensure the stability of the fixed position and prevent it from being stretched open during use.
[0027] The limiting hole 2 includes several hole groups, which are arranged at equal intervals around the axis to ensure that there are many radius options and strong applicability when forming a ring insulation support. Each hole group includes several limiting holes 2 arranged at equal intervals along the axial direction of the flexible insulating mesh plate 1 that surrounds the cylinder. The limiting holes 2 of each hole group correspond one-to-one with the first clamping connector 3 to ensure docking and installation.
[0028] There are at least three limiting rods 4, which are evenly distributed around the axis of the flexible insulating mesh plate 1 that is formed into a cylinder, and all the limiting rods 4 are arranged radially to ensure the limiting rods 4 are matched with the inner wall of the pot.
[0029] As a preferred embodiment 2, the limiting rod 4 comprises a connecting rod 41, the two sides of the connecting rod 41 are coaxially provided with second clamping joints 43, and the second clamping joints 43 are symmetrically arranged about the connecting rod 41, the connecting rod 41 is movably embedded in the limiting hole 2, and the two ends of the connecting rod 41 form a limiting fit with the limiting hole 2 through the second clamping joints 43, and the second clamping joint 43 away from the end of the connecting rod 41 is coaxially provided with a fixed rod 42, and the end of the fixed rod 42 forms a limiting fit with the wall of the pot. When installing, the second clamping joint 43 without the fixed rod 42 is pressed and penetrates the limiting hole 2, the connecting rod 41 is located in the limiting hole 2, the two ends of the connecting rod 41 form a limiting fit through the second clamping joints 43, the fixed rod 42 is located outside and forms a limiting fit with the inner wall of the pot body, and the limiting of the flexible insulating mesh plate 1 is completed.
[0030] The second clamping joint 43 and the first clamping joint 3 are of the same size, so that the limiting rod 4 can be installed by using other spare limiting holes 2.
[0031] As a preferred embodiment 3, the first clamping joint 3 and the second clamping joint 43 are both tapered, and when the first clamping joint 3 or the second clamping joint 43 penetrates the corresponding limiting hole 2 by extrusion, the first clamping joint 3 or the second clamping joint 43 forms a limiting fit with the corresponding limiting hole 2. The stability of the clamping is ensured.
[0032] As a preferred embodiment, the bottom of the first clamping joint 3 is connected with the flexible insulating mesh plate 1 through coaxially arranged rod portions, and the first clamping joint 3 is perpendicular to the flexible insulating mesh plate 1 through the rod portions.
[0033] The bottom of the second clamping joint 43 is coaxially connected with the connecting rod 41.
[0034] As a preferred embodiment, the first clamping joint 3 is integrally formed with the flexible insulating mesh plate 1, and the second clamping joint 43, the connecting rod 41 and the fixed rod 42 are integrally formed.
[0035] Working principle of the utility model:
[0036] The utility model discloses a flexible insulating mesh plate 1 is formed into a cylindrical shape and thus forms an annular insulating support, and various annular insulating supports with different radii can be formed according to experimental requirements, and the first clamping joint 3 and the limiting hole 2 form a clamping fit to keep the shape of the support fixed, so that the stability in the experimental process is ensured.
[0037] Secondly, the device forms a limiting fit with the inner wall of the pot body through the limiting rod 4, so that the stability of the insulating support in the pot body is further improved, and movement caused by external factors is avoided.
Claims
1. An insulating support structure for facilitating simulation experiments of the foil-fed cell, characterized in that, The device includes a flexible insulating mesh plate (1) that can be wound into a cylindrical shape. The flexible insulating mesh plate (1) is uniformly provided with a plurality of limiting holes (2). One end of the flexible insulating mesh plate (1) is provided with a plurality of first snap-fit joints (3). When the flexible insulating mesh plate (1) is wound into a cylindrical shape, the first snap-fit joints (3) correspond one-to-one with the corresponding limiting holes (2). The first snap-fit joints (3) and the limiting holes (2) form a detachable snap-fit engagement. Limiting rods (4) are detachably provided in the other empty limiting holes (2). The mesh of the flexible insulating mesh plate (1) forms an open limiting groove (5) at the top of the flexible insulating mesh plate (1).
2. The insulating support structure for facilitating the simulation experiment of the foil-feed cell as described in claim 1, characterized in that, The first clamping connector (3) is arranged at equal intervals along the axial direction of the flexible insulating mesh plate (1) that is wrapped in a cylindrical shape on one end of the flexible insulating mesh plate (1). When wrapped in a cylindrical shape, the first clamping connector (3) is located on the inner side.
3. The insulating support structure for facilitating the simulation experiment of the foil-feed cell as described in claim 2, characterized in that, The first card connector (3) is at least three, and is respectively arranged at the top, middle and bottom of one end of the flexible insulating mesh plate (1).
4. The insulating support structure for facilitating the simulation experiment of the foil feed cell according to claim 1, characterized in that, The limiting hole (2) includes several hole groups, which are arranged at equal intervals around the axis. Each hole group includes several limiting holes (2) arranged at equal intervals along the axial direction of the flexible insulating mesh plate (1) that is surrounded into a cylindrical shape. The limiting holes (2) of each hole group correspond one-to-one with the first snap connector (3).
5. The insulating support structure for facilitating the simulation experiment of the foil feed cell according to claim 1, characterized in that, There are at least three limiting rods (4). The limiting rods (4) are evenly distributed around the axis of the flexible insulating mesh plate (1) that is wrapped in a cylindrical shape, and all the limiting rods (4) are arranged radially.
6. The insulating support structure for facilitating the simulation experiment of the foil-feed cell as described in claim 5, characterized in that, The limiting rod (4) includes a connecting rod (41). The two sides of the connecting rod (41) are coaxially provided with second snap joints (43), and the second snap joints (43) are symmetrically arranged about the connecting rod (41). The connecting rod (41) is movably embedded in the limiting hole (2), and the two ends of the connecting rod (41) form a limiting fit with the limiting hole (2) through the second snap joints (43). The end of the second snap joint (43) on one side away from the connecting rod (41) is coaxially provided with a fixing rod (42), and the end of the fixing rod (42) forms a limiting fit with the pot wall.
7. The insulating support structure for facilitating the simulation experiment of the foil-feed cell as described in claim 6, characterized in that, The second card connector (43) and the first card connector (3) are the same size.
8. The insulating support structure for facilitating the simulation experiment of the foil-feed cell as described in claim 7, characterized in that, The first snap-fit connector (3) and the second snap-fit connector (43) are both conical. When the first snap-fit connector (3) or the second snap-fit connector (43) passes through the corresponding limiting hole (2) by extrusion, the first snap-fit connector (3) or the second snap-fit connector (43) forms a limiting fit with the corresponding limiting hole (2).