A new energy magnetic steel manual clamping jig

CN224604112UActive Publication Date: 2026-08-07LIHEXING INTELLIGENT EQUIP (SUZHOU) CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
LIHEXING INTELLIGENT EQUIP (SUZHOU) CO LTD
Filing Date
2025-10-14
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

[0002]现有在对新能源磁钢进行搬运时,通常是多个为一组一起搬运,现有的搬运方式主要人工手持抓取治具,夹持磁钢组后,在搬运过程中人工要一直控制夹爪夹持磁钢不能松开,由于抓取治具重量较大,多次取放人手臂易疲劳,并且在搬运过程中如果人工夹持力控制不佳容易出现漏料或者产生剐蹭磁钢片的情况,该治具不能满足人们长久加工使用的需求;

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Abstract

The utility model discloses a new energy magnetic steel is with manual clamping fixture, including magnetic steel TRAY disc, be equipped with multiple groups magnetic steel placing groove on the magnetic steel TRAY disc, and clamping fixture includes the main part member of hollow shape, the horizontal seal plate of setting in the left and right sides of main part member, the upper seal plate of setting in the upper of main part member, the holding handle of setting in the upper one side of main part member, the elastic component of setting in the left and right sides in main part member, the lower pressure shaping mechanism of setting in the upper of main part member and located between the elastic component of both sides, the snatch positioning block of setting on both sides elastic component, beneficial effect is, utilize snatch and bury in, and the material shaping pressure block and snatch positioning block act in proper order in succession, realize snatch and bury in's stability and accuracy, realize single drive, double action, alleviate snatch fixture weight, reduce artificial handling load, manual hand tightly and finger drive, fully consider artificial science, convenient and simple, and the operability is strong.
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Description

Technical Field

[0001] This utility model relates to the field of new energy magnetic steel handling technology, and in particular to a manual clamping fixture for new energy magnetic steel. Background Technology

[0002] Currently, when handling new energy magnets, they are usually transported in groups of several. The existing handling method mainly involves manual hand gripping jigs. After clamping the magnet group, the manual person must constantly control the grippers to keep the magnets from being released during the handling process. Because the gripping jigs are heavy, the manual person's arm is easily fatigued after repeated handling. Furthermore, if the manual person does not control the clamping force well during the handling process, material leakage or scraping of the magnet sheets can easily occur. This jig cannot meet the needs of people for long-term processing and use. In view of the above, it is necessary to improve the existing new energy magnetic steel handling and clamping fixtures so that they can meet the current needs of handling and clamping new energy magnetic steels. Utility Model Content

[0003] The purpose of this invention is to solve the above problems by designing a manual clamping fixture for new energy magnets.

[0004] To achieve the above objectives, the technical solution of this utility model is a manual clamping fixture for new energy magnets, including a magnet TRAY disc. The magnet TRAY disc is provided with multiple sets of magnet placement slots. The clamping fixture includes a hollow main body component, horizontal sealing plates on the left and right sides of the main body component, an upper sealing plate on the top of the main body component, a gripping handle on one side of the top of the main body component, elastic components symmetrically arranged on the left and right sides inside the main body component, a pressing and shaping mechanism on the main body component and located between the elastic components on both sides, and a gripping positioning block on the elastic components on both sides. The upper end of the pressing and shaping mechanism is slidably installed in the upper sealing plate. An opening is provided at the bottom of the main body component for the gripping positioning block to move.

[0005] As a further addition to this technical solution, the grip handle is fixedly installed on the main body component by screws.

[0006] As a further supplement to this technical solution, the pressing and shaping mechanism includes a button, a wedge block connected to the button, and a stripping and shaping pressure block disposed below the wedge block. The button passes through the upper sealing plate and is slidably connected to it. The left and right ends of the wedge block abut against the main body component and are in slidable contact with it. The lower end of the wedge block is inclined inward. The upper end of the stripping and shaping pressure block is fixedly connected to the lower end of the wedge block, and the lower surface of the stripping and shaping pressure block is a plane. The stripping and shaping pressure block is disposed between the gripping and positioning blocks on both sides.

[0007] As a further supplement to this technical solution, an elastic block is provided inside the main component and below the upper sealing plate, the lower end of the button passes through the elastic block and is connected to it, and the elastic block is located above the wedge block.

[0008] As a further supplement to this technical solution, the elastic component includes a push pin and a return spring disposed on one side of the push pin. The gripping positioning block is fixedly installed on the push pin and its upper end is slidably installed on the main body component. One end of the return spring is fixedly connected to the horizontal sealing plate, and the other end of the return spring is fixedly connected to the push pin and disposed on one side of the gripping positioning block. The push pin is disposed on one side of the wedge block.

[0009] As a further addition to this technical solution, the ejector pin is configured as a hemisphere on the side near the wedge block.

[0010] As a further supplement to this technical solution, a clearance hole is provided at the end of the gripping positioning block where it contacts the magnet.

[0011] Its beneficial effects are that, during gripping and embedding, the material stripping and shaping block and the gripping and positioning block move in sequence, achieving stability and accuracy in gripping and embedding; it achieves single drive and dual action, reducing the weight of the gripping fixture and reducing the manual handling load; it is ergonomically designed with manual gripping and finger drive in mind, making it convenient, simple, and highly operable. Attached Figure Description

[0012] Figure 1 This is a schematic diagram of the structure of the clamping fixture for transporting magnets according to this utility model; Figure 2 This is a three-dimensional structural diagram of the clamping fixture of this utility model; Figure 3 This is a cross-sectional view of the clamping fixture of this utility model; In the diagram, 1. Magnet TRAY disc; 2. Magnet placement slot; 3. Main component; 4. Horizontal sealing plate; 5. Upper sealing plate; 6. Grip handle; 7. Elastic component; 71. Ejector pin; 72. Return spring; 8. Downward pressing and shaping mechanism; 81. Button; 82. Wedge block; 83. Material stripping and shaping pressure block; 84. Elastic block; 9. Gripping and positioning block; 10. Clearing hole. Detailed Implementation

[0013] To facilitate a clearer understanding of this technical solution for those skilled in the art, the following will be described in conjunction with the appendix. Figure 1-3 Explain the specific structure and principles of each of the above mechanisms: A manual clamping fixture for new energy magnets includes a magnet tray 1 with multiple magnet placement slots 2. The clamping fixture includes a hollow main body component 3, horizontal sealing plates 4 on the left and right sides of the main body component 3, an upper sealing plate 5 above the main body component 3, a grip handle 6 on one side above the main body component 3, elastic components 7 symmetrically arranged on the left and right sides inside the main body component 3, a pressing and shaping mechanism 8 on the main body component 3 and located between the elastic components 7 on both sides, and gripping and positioning blocks 9 on the elastic components 7 on both sides. The upper end of the pressing and shaping mechanism 8 is slidably mounted in the upper sealing plate 5. An opening is provided at the bottom of the main body component 3 for the gripping and positioning blocks 9 to move. During operation, one hand holds the grip handle 6 and one finger presses the pressing and shaping mechanism 8. When the pressing and shaping mechanism 8 contacts the elastic components 7... Continuing to press down will push the elastic components 7 on both sides outward, thereby causing the gripping positioning blocks 9 on both sides to open simultaneously, making it convenient to complete the gripping operation according to the number of magnet groups. After gripping the magnets, release the pressing and shaping mechanism 8. At this time, due to the structural design of the elastic component 7, the gripping positioning blocks 9 will firmly grip the magnets. Then move the device to the tooling position where the magnet group needs to be placed, move the device directly above the placement slot, and have the lower ends of the gripping positioning blocks 9 on both sides abut against the two ends in the placement slot. Then continue to press the pressing and shaping mechanism 8, and the gripping positioning blocks 9 will open. Since the size exceeds the width of the magnet group, the magnet group will fall into the placement slot. Then continue to press the pressing and shaping mechanism 8 to take out the device. The operation is convenient and the effect is good. There is also a working mode in which the magnet group is taken out of the magnet placement slot 2. The specific working principle is similar to the above, so it will not be described in detail here.

[0014] For ease of installation, the grip handle 6 is fixedly mounted to the main component 3 with screws.

[0015] The structure of the pressing and shaping mechanism 8 will be described in detail below. The pressing and shaping mechanism 8 includes a button 81, a wedge block 82 connected to the button 81, and a stripping and shaping pressure block 83 disposed below the wedge block 82. The button 81 passes through the upper sealing plate 5 and is slidably connected to it. The left and right ends of the wedge block 82 abut against the main body component 3 and are in slidable contact with it. The lower end of the wedge block 82 is inclined inward. The upper end of the stripping and shaping pressure block 83 is fixedly connected to the lower end of the wedge block 82 and the stripping and shaping pressure block is... The lower surface of 83 is flat, and the stripping and shaping pressure block 83 is set between the gripping and positioning blocks 9 on both sides. When working, the finger presses down the button 81, which drives the wedge block 82 and the stripping and shaping pressure block 83 to move downward. The downward movement of the wedge block 82 can drive the elastic components 7 on both sides to move outward, thereby opening the gripping and positioning blocks 9 to complete the gripping operation of the magnet assembly. The setting of the stripping and shaping pressure block 83 can shape the upper end of the magnet assembly, so that the height of the magnet pieces is as uniform as possible, making the operation convenient.

[0016] When button 81 is released, wedge block 82, button 81, and stripping and shaping block 83 will move upward. In order to prevent them from moving excessively and damaging the upper sealing plate 5, we provide an elastic block 84 inside the main component 3 and below the upper sealing plate 5. The lower end of button 81 passes through and is connected to the elastic block 84. The elastic block 84 is located above wedge block 82.

[0017] The elastic component 7 includes a push pin 71 and a return spring 72 disposed on one side of the push pin 71. The gripping positioning block 9 is fixedly installed on the push pin 71 and its upper end is slidably installed on the main body component 3. One end of the return spring 72 is fixedly connected to the horizontal sealing plate 4, and the other end of the return spring 72 is fixedly connected to the push pin 71 and disposed on one side of the gripping positioning block 9. The push pin 71 is disposed on one side of the wedge block 82. During operation, the wedge block 82, due to its inclined lower end, will gradually push the push pins 71 on both sides to move outward when it moves, thus protecting the push pins 71 from movement. It can also slowly open the gripping positioning block 9, making it easier to grip magnets of various widths. When the button 81 is released, the return spring 72 enables the push pin 71 and the pressing and shaping mechanism 8 to return to their original positions, and can effectively clamp the magnets.

[0018] In order to better enable the wedge block 82 to control the movement of the ejector pin 71 and to protect the ejector pin 71, the ejector pin 71 is shaped into a hemisphere on the side near the wedge block 82.

[0019] The gripping positioning block 9 has a clearance hole 10 at the end where it contacts the magnet, which can provide some protection for the magnet at the end.

[0020] The above technical solution only embodies the preferred technical solution of this utility model. Any changes that may be made by those skilled in the art to certain parts of it embody the principle of this utility model and fall within the protection scope of this utility model.

Claims

1. A manual clamping fixture for new energy magnets, comprising a magnet tray (1), wherein the magnet tray (1) is provided with multiple sets of magnet placement slots (2), characterized in that, The clamping fixture includes a hollow main body component (3), horizontal sealing plates (4) disposed on the left and right sides of the main body component (3), an upper sealing plate (5) disposed above the main body component (3), a gripping handle (6) disposed on one side above the main body component (3), elastic components (7) symmetrically disposed on the left and right sides inside the main body component (3), a pressing and shaping mechanism (8) disposed on the main body component (3) and located between the elastic components (7) on both sides, and a gripping positioning block (9) disposed on the elastic components (7) on both sides. The upper end of the pressing and shaping mechanism (8) is slidably installed in the upper sealing plate (5), and an opening is provided at the bottom of the main body component (3) for the gripping positioning block (9) to move.

2. The manual clamping fixture for new energy magnets according to claim 1, characterized in that, The grip handle (6) is fixedly mounted on the main body component (3) by screws.

3. The manual clamping fixture for new energy magnets according to claim 2, characterized in that, The pressing and shaping mechanism (8) includes a button (81), a wedge block (82) connected to the button (81), and a stripping and shaping pressure block (83) disposed below the wedge block (82). The button (81) passes through the upper sealing plate (5) and is slidably connected to it. The left and right ends of the wedge block (82) abut against the main body component (3) and are in slidable contact with it. The lower end of the wedge block (82) is inclined inward. The upper end of the stripping and shaping pressure block (83) is fixedly connected to the lower end of the wedge block (82), and the lower surface of the stripping and shaping pressure block (83) is a plane. The stripping and shaping pressure block (83) is disposed between the gripping and positioning blocks (9) on both sides.

4. The manual clamping fixture for new energy magnets according to claim 3, characterized in that, An elastic block (84) is provided inside the main component (3) and below the upper sealing plate (5). The lower end of the button (81) passes through the elastic block (84) and is connected to it. The elastic block (84) is located above the wedge block (82).

5. The manual clamping fixture for new energy magnets according to claim 3, characterized in that, The elastic component (7) includes a push pin (71) and a return spring (72) disposed on one side of the push pin (71). The gripping positioning block (9) is fixedly installed on the push pin (71) and its upper end is slidably installed on the main body component (3). One end of the return spring (72) is fixedly connected to the horizontal sealing plate (4), and the other end of the return spring (72) is fixedly connected to the push pin (71) and disposed on one side of the gripping positioning block (9). The push pin (71) is disposed on one side of the wedge block (82).

6. The manual clamping fixture for new energy magnets according to claim 5, characterized in that, The ejector pin (71) is set in a hemispherical shape on the side near the wedge block (82).

7. The manual clamping fixture for new energy magnets according to claim 1, characterized in that, The gripping positioning block (9) has a clearance hole (10) at the end of the contact position with the magnet.