Pure iron detection equipment for new energy battery
By using protective devices, including components such as support plates, placement blocks, and rollers, the bending problem caused by the lack of support when the test box moves was solved in the pure iron testing equipment, thus achieving stable operation and rapid installation of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-08
- Publication Date
- 2026-04-14
AI Technical Summary
After the test box is moved outside the outer shell, the side of the test box away from the outer shell has no support, making it easy to bend under force, which can cause damage and affect the performance of the pure iron testing equipment.
The protective device, including a support plate, placement block, rollers, and locking block, is used to secure the test box to the side away from the outer shell via a fixing assembly, providing support and protection to prevent the test box from bending.
This effectively prevents the test box from bending downwards on the side away from the outer shell during movement, improving the performance of the pure iron testing equipment. Furthermore, the fixing components allow for quick installation and removal of the protective device.
Smart Images

Figure CN224122511U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of testing, and in particular to testing equipment for pure iron used in new energy batteries. Background Technology
[0002] Pure iron testing equipment is mainly used to detect and analyze the purity, composition, structure and other properties of iron materials. As an important industrial material, pure iron is often used to manufacture electrical equipment, magnetic materials, chemical equipment and so on.
[0003] When testing pure iron for new energy batteries, the iron is placed inside the testing chamber, which is then moved into the outer casing. The device is activated using a button on the side of the casing. The device excites the sample by emitting X-rays, causing specific fluorescence from elements within the sample. The device collects these fluorescence signals to determine the element type and concentration. The pure iron test results are then output on a display screen on the side of the casing. However, once the testing chamber is moved outside the casing, the side furthest from the casing lacks support, making it susceptible to bending and damage. This can negatively impact the effectiveness of the pure iron testing equipment. Utility Model Content
[0004] The technical problem this invention aims to solve is that after the detection box is moved outside the outer shell, the side of the detection box away from the outer shell is unsupported, making it prone to bending under stress on this side, which can lead to damage to the detection box and thus affect the performance of the pure iron detection equipment.
[0005] The technical solution adopted by this utility model to solve its technical problem is: a pure iron testing device for new energy batteries, including a shell, a display screen on one side of the shell, several buttons on the side of the shell near the display screen, a testing box on one side of the shell, and a protective device on the side of the shell near the testing box. The protective device supports and protects the testing box through a support plate and a placement block.
[0006] The effect achieved by the above components is as follows: When testing pure iron for new energy batteries, the iron can be placed inside the test box. At this time, the protective device supports and protects the side of the test box away from the outer shell. Then, the test box is moved into the outer shell, and the device is started by pressing a button on the side of the outer shell. The device then excites the sample by emitting X-rays, and the elements in the sample will produce specific fluorescence. The device collects these fluorescence signals to determine the type and concentration of the elements. The pure iron test results are then output on the display screen on the side of the outer shell.
[0007] Preferably, the detection box has a fixing component on the side away from the outer shell. The fixing component fixes the protective device to the side of the detection box away from the outer shell. The protective device includes a support plate, a placement block, rollers, and locking blocks. The support plate is located on the side of the detection box away from the outer shell, and one side of the support plate slides inside the placement block. The rollers are located on the side of the placement block away from the support plate via shafts. Several locking slots are opened on one side of the support plate. The locking blocks are inserted into the placement block and reach into the locking slots on one side of the support plate to fix the position of the support plate.
[0008] The effects achieved by the above components are as follows: When using the protective device, the fixing assembly secures the protective device to the side of the test box away from the outer shell. Then, the placement block is moved to slide on the surface of the support plate. Then, the rollers rotating on one side of the support plate contact the worktable. Then, the locking block passes through the placement block and reaches the slot on one side of the support plate to lock and fix the support plate. Then, the support plate, placement block, and rollers support and protect the test box. When the test box moves, the rollers rotate on the surface of the placement block through the internally fixed shaft. By using the protective device, the lower end of the test box can be supported and protected, preventing the test box from bending downwards on the side away from the outer shell and causing damage when subjected to force, thereby improving the performance of the pure iron testing equipment.
[0009] Preferably, the placement block has a magnet on the side near the card block, and the card block has an iron sheet on the side near the magnet.
[0010] The effect achieved by the above components is as follows: by placing a magnet fixed on the block, the iron sheet fixed on the card block is attracted, making it less likely for the card block to fall out of the slot on one side of the support plate, thereby improving the card block's performance.
[0011] Preferably, the rollers are provided with bearings on both sides near the placement block, and the bearings reduce the friction between the rollers and the placement block.
[0012] The effect achieved by the above components is that by fixing the bearing on the shaft surface at the connection between the roller and the placement block, the bearing reduces the friction at the connection between the two, and then makes it easier for the roller to rotate inside the placement block.
[0013] Preferably, a connecting rope is provided on one side of the card block, and the connecting rope connects the card block to the placement block.
[0014] The effect achieved by the above components is to connect the card block to the placement block via the connecting rope, thereby preventing the card block from being lost and affecting its subsequent use.
[0015] Preferably, the fixing component includes a fixing block and a bolt. The fixing block is disposed on the side of the detection box away from the outer shell. The support plate has a threaded hole on the side away from the fixing block. The bolt is inserted into the fixing block and reaches into the threaded hole on the side of the support plate to fix the support plate.
[0016] The effect achieved by the above components is as follows: when fixing the protective device, the support plate can be moved so that the side of the support plate with the threaded hole is inserted into the fixing block fixed on the side of the detection box. Then, the bolt is rotated so that the bolt passes through the fixing block and is threadedly fixed to the threaded hole on the surface of the support plate. Then the support plate is fixed on the side of the detection box away from the outer shell. By using the fixing components, the protective device can be quickly fixed to the side of the detection box, which facilitates the subsequent use of the protective device.
[0017] Preferably, an operating block is provided on one side of the bolt, and the operating block increases the dimension of one side of the bolt.
[0018] The effect achieved by the above components is to increase the size of one side of the bolt by fixing the operating block on one side of the bolt, making it easier to rotate the bolt.
[0019] Preferably, the support plate has a trapezoidal block on the side away from the placement block, and the trapezoidal block reduces the size of one side of the support plate.
[0020] The effect achieved by the above components is to reduce the size of one side of the support plate by fixing the trapezoidal block away from the placement block, making it easier for the support plate to be inserted into the fixing block.
[0021] In summary, the beneficial effects of this utility model are as follows:
[0022] By using protective devices, the lower end of the test box can be supported and protected, preventing the test box from bending downwards on the side away from the outer shell when subjected to force, thus improving the performance of the pure iron testing equipment.
[0023] By using the fixing components, the protective device can be quickly fixed to one side of the detection box, which facilitates its subsequent use. Attached Figure Description
[0024] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0025] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0026] Figure 2 This is a three-dimensional structural diagram of the protective device of this utility model;
[0027] Figure 3 This utility model Figure 2Enlarged view of point A;
[0028] Figure 4 This is a partial three-dimensional structural diagram of the fixing component of this utility model.
[0029] Legend: 1. Outer shell; 2. Display screen; 3. Button; 4. Detection box; 5. Protective device; 51. Support plate; 52. Placement block; 53. Roller; 54. Locking block; 55. Locking slot; 56. Magnet; 57. Iron sheet; 58. Bearing; 59. Connecting rope; 6. Fixing component; 61. Fixing block; 62. Bolt; 63. Threaded hole; 64. Operating block; 65. Trapezoidal block. Detailed Implementation
[0030] The present invention will now be described in further detail with reference to the accompanying drawings. These drawings are simplified schematic diagrams, illustrating only the basic structure of the present invention, and therefore only show the components relevant to the present invention.
[0031] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "connected" or "linked" should be interpreted broadly. For example, it can refer to a fixed connection, a detachable connection, or an integral connection; it can refer to a mechanical connection or an electrical connection; it can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.
[0032] Figures 1 to 4 The pure iron testing device for new energy batteries shown includes a housing 1, a display screen 2 on one side of the housing 1, several buttons 3 on the side of the housing 1 near the display screen 2, a testing box 4 on one side of the housing 1, and a protective device 5 on the side of the housing 1 near the testing box 4. The protective device 5 supports and protects the testing box 4 through a support plate 51 and a placement block 52. When testing pure iron for new energy batteries, the iron can be placed inside the testing box 4. At this time, the protective device 5 supports and protects the side of the testing box 4 away from the housing 1. Then, the testing box 4 is moved into the housing 1, and the device is started by pressing the buttons 3 on the side of the housing 1. The device then excites the sample by emitting X-rays. The elements in the sample will produce specific fluorescence. The device collects these fluorescence signals to determine the type and concentration of the elements. The pure iron test results are then output through the display screen 2 on the side of the housing 1.
[0033] Figures 1 to 4The detection box 4 shown is provided with a fixing component 6 on the side away from the outer shell 1. The fixing component 6 fixes the protective device 5 to the side of the detection box 4 away from the outer shell 1. The protective device 5 includes a support plate 51, a placement block 52, a roller 53 and a locking block 54. The support plate 51 is located on the side of the detection box 4 away from the outer shell 1. One side of the support plate 51 slides inside the placement block 52. The roller 53 is located on the side of the placement block 52 away from the support plate 51 via a shaft. Several locking slots 55 are opened on one side of the support plate 51. The locking block 54 is inserted into the placement block 52 and reaches into the locking slots 55 on the side of the support plate 51 to fix the position of the support plate 51. When using the protective device 5, the fixing component 6 fixes the protective device 5 to the side of the test box 4 away from the outer shell 1. Then, the placement block 52 is moved so that it slides on the surface of the support plate 51. Then, the roller 53 rotating on one side of the support plate 51 contacts the worktable. Then, the locking block 54 passes through the placement block 52 and reaches the slot 55 on one side of the support plate 51 to lock and fix the support plate 51. Then, the support plate 51, the placement block 52, and the roller 53 support and protect the test box 4. When the test box 4 moves, the roller 53 rotates on the surface of the placement block 52 through the internally fixed shaft. By using the protective device 5, the lower end of the test box 4 can be supported and protected, preventing the test box 4 from bending downward on the side away from the outer shell 1 after being subjected to force, thus improving the performance of the pure iron testing equipment.
[0034] Figures 1 to 4 The placement block 52 shown has a magnet 56 on the side near the locking block 54, and the locking block 54 has an iron piece 57 on the side near the magnet 56. The magnet 56 fixed on the placement block 52 attracts the iron piece 57 fixed on the locking block 54, preventing the locking block 54 from easily detaching from the locking slot 55 on the support plate 51, thus improving the usability of the locking block 54. Bearings 58 are located on both sides of the roller 53 near the placement block 52, reducing the friction between the roller 53 and the placement block 52. The bearings 58 are fixed to the shaft surface at the connection point between the roller 53 and the placement block 52, further reducing friction and allowing the roller 53 to rotate more easily inside the placement block 52. A connecting rope 59 is located on one side of the locking block 54, connecting the locking block 54 to the placement block 52. The connecting rope 59 prevents the locking block 54 from being lost, thus avoiding any impact on its subsequent use.
[0035] Figures 1 to 4The fixing component 6 shown includes a fixing block 61 and a bolt 62. The fixing block 61 is located on the side of the detection box 4 away from the outer shell 1. The support plate 51 has a threaded hole 63 on the side away from the placement block 52. The bolt 62 is inserted into the fixing block 61 and reaches the threaded hole 63 on the side of the support plate 51 to fix the support plate 51. When fixing the protective device 5, the support plate 51 can be moved so that the side of the support plate 51 with the threaded hole 63 is inserted into the fixing block 61 fixed on the side of the detection box 4. Then, the bolt 62 is rotated so that the bolt 62 passes through the fixing block 61 and is threadedly fixed to the threaded hole 63 on the surface of the support plate 51. This completes the fixing of the support plate 51 on the side of the detection box 4 away from the outer shell 1. By using the fixing component 6, the protective device 5 can be quickly fixed to the side of the detection box 4, which facilitates the subsequent use of the protective device 5.
[0036] Figures 1 to 4 An operating block 64 is provided on one side of the bolt 62, which raises the dimension of one side of the bolt 62. By fixing the operating block 64 to one side of the bolt 62, the dimension of one side of the bolt 62 is raised, making it easier for the bolt 62 to rotate. A trapezoidal block 65 is provided on the side of the support plate 51 away from the placement block 52, which lowers the dimension of one side of the support plate 51. By fixing the trapezoidal block 65 to the side of the support plate 51 away from the placement block 52, the dimension of one side of the support plate 51 is lowered, making it easier for the support plate 51 to be inserted into the fixing block 61.
[0037] Working principle: When testing pure iron for new energy batteries, the iron can be placed inside the test box 4. At this time, the protective device 5 supports and protects the test box 4 on the side away from the outer shell 1. Then, the test box 4 is moved into the outer shell 1. Then, the device is started by pressing the button 3 on the side of the outer shell 1. The device then excites the sample by emitting X-rays. The elements in the sample will produce specific fluorescence. The device collects these fluorescence signals to determine the type and concentration of the elements. Then, the pure iron test results are output through the display screen 2 on the side of the outer shell 1. When using the protective device 5, the fixing component 6 fixes the protective device 5 to the side of the test box 4 away from the outer shell 1. Then, the placement block 52 is moved so that it slides on the surface of the support plate 51. Then, the roller 53 rotating on one side of the support plate 51 contacts the worktable. Then, the locking block 54 passes through the placement block 52 and reaches the slot 55 on one side of the support plate 51 to lock and fix the support plate 51. Then, the support plate 51, the placement block 52, and the roller 53 support and protect the test box 4. When the test box 4 moves, the roller 53 rotates on the surface of the placement block 52 through the internally fixed shaft. By using the protective device 5, the lower end of the test box 4 can be supported and protected, preventing the test box 4 from bending downward on the side away from the outer shell 1 after being subjected to force, thus improving the performance of the pure iron testing equipment.
[0038] When fixing the protective device 5, the support plate 51 can be moved so that the side of the support plate 51 with the threaded hole 63 is inserted into the fixing block 61 fixed on the side of the detection box 4. Then, the bolt 62 is rotated so that the bolt 62 passes through the fixing block 61 and is threadedly fixed to the threaded hole 63 on the surface of the support plate 51. Then the fixing of the support plate 51 on the side of the detection box 4 away from the outer shell 1 is completed. By using the fixing component 6, the protective device 5 can be quickly fixed to the side of the detection box 4, which facilitates the subsequent use of the protective device 5.
[0039] The above are merely preferred embodiments of this utility model and are not intended to limit the utility model in any other way. Any person skilled in the art may use the disclosed technical content to make changes or modifications to create equivalent embodiments for application in other fields. However, any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of this utility model, without departing from the scope of the utility model's technical solution, still fall within the protection scope of this utility model's technical solution. In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation" and "connection" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. For those skilled in the art, the specific meaning of the above terms in this utility model can be understood through specific circumstances.
Claims
1. A pure iron testing device for new energy batteries, comprising a housing (1), characterized in that: The outer casing (1) has a display screen (2) on one side, and several buttons (3) are provided on the side of the outer casing (1) near the display screen (2). A detection box (4) is provided on one side of the outer casing (1), and a protective device (5) is provided on the side of the outer casing (1) near the detection box (4). The protective device (5) supports and protects the detection box (4) through a support plate (51) and a placement block (52).
2. The pure iron testing equipment for new energy batteries according to claim 1, characterized in that: The detection box (4) is provided with a fixing component (6) on the side away from the outer shell (1). The fixing component (6) fixes the protective device (5) to the side of the detection box (4) away from the outer shell (1). The protective device (5) includes a support plate (51), a placement block (52), a roller (53), and a locking block (54). The support plate (51) is located on the side of the detection box (4) away from the outer shell (1). The side of the support plate (51) slides inside the placement block (52). The roller (53) is located on the side of the placement block (52) away from the support plate (51) via a shaft. Several locking slots (55) are opened on the side of the support plate (51). The locking block (54) is inserted into the placement block (52) and reaches the inside of the locking slots (55) on the side of the support plate (51) to fix the position of the support plate (51).
3. The pure iron testing equipment for new energy batteries according to claim 2, characterized in that: The placement block (52) has a magnet (56) on the side near the card block (54), and the card block (54) has an iron sheet (57) on the side near the magnet (56).
4. The pure iron testing equipment for new energy batteries according to claim 3, characterized in that: The roller (53) is provided with bearings (58) on both sides near the placement block (52), and the bearings (58) reduce the friction between the roller (53) and the placement block (52).
5. The pure iron testing equipment for new energy batteries according to claim 4, characterized in that: A connecting rope (59) is provided on one side of the card block (54), and the connecting rope (59) connects the card block (54) to the placement block (52).
6. The pure iron testing equipment for new energy batteries according to claim 2, characterized in that: The fixing component (6) includes a fixing block (61) and a bolt (62). The fixing block (61) is located on the side of the detection box (4) away from the outer shell (1). The support plate (51) has a threaded hole (63) on the side away from the placement block (52). The bolt (62) is inserted into the fixing block (61) and reaches the threaded hole (63) on the side of the support plate (51) to fix the support plate (51).
7. The pure iron testing equipment for new energy batteries according to claim 6, characterized in that: An operating block (64) is provided on one side of the bolt (62), and the operating block (64) increases the size of one side of the bolt (62).
8. The pure iron testing equipment for new energy batteries according to claim 7, characterized in that: The support plate (51) has a trapezoidal block (65) on the side away from the placement block (52), and the trapezoidal block (65) reduces the size of one side of the support plate (51).