Material lifting device
By designing a material lifting device including a base plate, a lifting component and a sliding component, the problem of magnet picking due to the height of the guardrail net affecting magnet picking, and the magnet picking and efficient processing are achieved.
Patent Information
- Application Number
- CN202422655589.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-31
- Publication Date
- 2025-08-19
- Estimated Expiration
- 2034-10-31
AI Technical Summary
The existing lifting device has a higher guardrail net to place more magnets, making it difficult for operators to easily get the magnets stacked on the bottom, affecting the subsequent processing efficiency of the magnets and increasing the difficulty of work.
A material lifting device is designed, including a base plate, a lifting assembly, a support plate, a mounting plate, a material bearing member and a sliding assembly. The sliding assembly drives the fence frame to slide in the vertical direction, and moves with the lifting assembly to facilitate the acquisition of the magnet stacked on the bottom.
It improves the subsequent processing efficiency of magnets, reduces the difficulty of the operators, and makes the magnets more convenient and efficient.
Smart Images

Figure CN223239665U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of magnetic mounting parts, in particular to a material lifting device. Background Art
[0002] Materials that can respond to magnetic fields in some way are called magnetic materials. Permanent magnetic materials are widely used in motors to provide a continuous magnetic field. Soft magnetic materials are used to manufacture the cores of relays and motors to improve the response speed and efficiency of the equipment. Hard magnetic materials are used to manufacture permanent magnets to maintain a constant magnetic field.
[0003] During manufacturing, annular magnets made of magnetic materials need to undergo a magnetization process. Typically, these magnets are stacked in layers on a lifting mechanism, which adjusts their height to facilitate access for subsequent processing.
[0004] Existing lifting mechanisms are often equipped with a guardrail to prevent multiple magnets from falling when they are stacked together. To accommodate more magnets, the guardrail is usually set relatively high. When operators remove magnets from the center of the guardrail, the magnets stacked at the bottom are blocked by the guardrail, making it difficult for them to remove them. This affects the efficiency of subsequent processing and increases the operator's workload. Utility Model Content
[0005] The purpose of the present utility model is to address the deficiencies of the existing technology and propose a material lifting device for solving the technical problem mentioned in the background technology that some existing lifting devices are equipped with higher guardrail nets in order to place more magnets. When operators pick up the magnets, it is inconvenient to pick up the magnets stacked at the bottom due to the obstruction of the guardrail net, which not only makes it inconvenient for operators to pick up the magnets, but also affects the subsequent processing efficiency of the magnets and increases the difficulty of the operator's work.
[0006] In order to achieve the above purpose, the utility model adopts the following technical solutions:
[0007] A material lifting device includes a base plate, a lifting assembly is provided on the base plate, a supporting plate horizontal to the base plate is fixed on the lifting assembly, two vertically parallel and opposite mounting plates are fixed on the supporting plate, three material-bearing members are provided between the two mounting plates, each of the material-bearing members is provided with a placing frame with a square structure and an open top, a surrounding frame is provided on the sliding sleeve of the outer wall of the placing frame, a sliding assembly is provided on the material-bearing member, and the sliding assembly drives the surrounding frame to slide in the vertical direction.
[0008] Working principle:
[0009] First, the operator uses the lifting assembly to raise the support plate, which then raises the material receiving piece, placement frame, enclosure frame, and magnets. The operator then removes the magnets from the placement frame. As the number of magnets in the placement frame decreases, the operator uses the sliding assembly to slide the enclosure frame down on the placement frame, removing the magnets stacked at the bottom of the placement frame.
[0010] The beneficial effects of the utility model are:
[0011] During the use of the utility model, the operator encloses and places the magnets using the placement frame and the enclosure frame, and then cooperates with the vertical movement of the lifting assembly to lift the magnets for subsequent processing. The enclosure frame is also moved vertically downward to facilitate the removal of magnets stacked at the bottom of the placement frame, thereby improving the efficiency of subsequent magnet processing and reducing the operator's work difficulty. BRIEF DESCRIPTION OF THE DRAWINGS
[0012] Figure 1 It is a schematic diagram of the cross-section structure of an embodiment of the present utility model.
[0013] Explanation of the accompanying drawings: base plate 1, supporting plate 2, mounting plate 3, placement frame 4, enclosure frame 5, wire mesh plate 6, connecting rod 7, insertion rod 8, bending plate 9, positioning rod 10, rotating rod 11, connecting block 12, limit block 13, mounting box 14, dust collection drawer 15, handle 16, slide 17, slider 18, positioning part 19, motor 20, limit rod 21, screw rod 22, sleeve 23, limit box 24, sliding part 25. DETAILED DESCRIPTION
[0014] The technical solution of the present invention is further described below with reference to the accompanying drawings and embodiments.
[0015] like Figure 1 As shown, a material lifting device comprises a base plate 1, a lifting assembly is provided on the base plate 1, a supporting plate 2 horizontal to the base plate 1 is fixed on the lifting assembly, two vertically parallel and opposite mounting plates 3 are fixed on the supporting plate 2, three material bearing members are provided between the two mounting plates 3, each of the material bearing members is provided with a placing frame 4 with a square structure and an open top, an enclosure frame 5 is provided on the sliding sleeve of the outer wall of the placing frame, a sliding assembly is provided on the material bearing member, and the sliding assembly drives the enclosure frame 5 to slide in the vertical direction
[0016] During use of the present invention, the operator encloses and places the magnets using the placement frame 4 and the enclosure frame 5, and then coordinates the vertical movement of the lifting assembly to lift the magnets for subsequent processing. Furthermore, by moving the enclosure frame 5 vertically downward, it is easier to pick up the magnets stacked at the bottom of the placement frame 4, thereby improving the efficiency of subsequent magnet processing and reducing the operator's work difficulty.
[0017] like Figure 1 As shown, each of the material receiving members includes two parallel wire mesh plates 6 facing each other, with multiple rigid connecting rods 7 fixed between the two wire mesh plates 6. The placement frame 4 and the sliding assembly on each material receiving member are fixed on the wire mesh plate 6 located above, and multiple rods for inserting and stacking multiple magnets are fixed on the wire mesh plate 6 located above. Figure 1 As shown, the sliding assembly includes a C-shaped bending plate 9 and a positioning rod 10, the bending plate 9 and the placement frame 4 are fixed on the same wire mesh plate 6, and a vertical rotating rod 11 is rotatably passed through the bending plate 9, and the rotating rod 11 is provided with a threaded structure on the rod section located in the bending mouth of the bending plate 9, and the rotating rod 11 is rotatably passed through the C-shaped opening of the bending plate 9, and the bottom end of the rotating rod 11 and the rod section that is rotatably passed through the bending plate 9 are both smooth round rod sections, and a connecting block 12 fixed to the enclosure frame 5 is threadedly sleeved on the rotating rod 11, and the positioning rod 10 and the placement frame 4 are fixed on the same wire mesh plate 6, and a limiting block 13 fixed to the enclosure frame 5 is slidably sleeved on the positioning rod 10, and the positioning rod 10 and the bending plate 9 are arranged on both sides of the placement frame 4 relative to each other. When the enclosure frame 5 needs to be lowered, the operator rotates the rotating rod 11, thereby driving the enclosure frame 5 and the limit block 13 to slide vertically through the connecting block 12. During this process, the limit block 13 slides on the positioning rod 10, and then the operator removes the magnets stacked at the bottom from the insertion rod 8. This design makes it easy for the operator to take the magnets stacked at the bottom of the placement frame 4, avoiding the high enclosure frame 5 affecting the operator's efficiency in taking the magnets. At the same time, the insertion rod 8 is used to plug and stack the magnets, which not only allows more magnets to be stacked to avoid tipping over, but also allows the magnets to be taken out intuitively and conveniently for processing, and the placement is beautiful.
[0018] like Figure 1 As shown, the bottom of the wire mesh plate 6 located at the bottom of each material receiving member is fixedly provided with an installation box 14 with a top opening. The placement frame 4 is located above the installation box 14. One side of the installation box 14 is provided with an opening and a dust collection drawer 15 with a top opening is provided therein. The dust collection drawer 15 can be slid out of the installation box 14. A handle 16 is fixedly provided at the bottom of the installation box 14. Figure 1As shown, each mounting plate 3 is provided with three chutes 17 arranged in the same vertical direction from top to bottom. The chutes 17 are arranged horizontally and have openings at both ends of the chutes 17. The three chutes 17 on one mounting plate 3 are horizontally opposite to the three chutes 17 on another mounting plate 3. The three chutes 17 in each mounting plate 3 correspond to the three mounting boxes 14. The chutes 17 have an opening on the side adjacent to the mounting box 14 that is consistent with its length. Each chute 17 is provided with a slider 18. Each slider 18 is fixed with a locating member 19 that passes through the opening and is fixed to the corresponding mounting box 14. The locating member 19 is in the shape of a round rod. The magnets stacked in the placement frame 4 may contain dust. During this process, the dust falls through the two layers of wire mesh panels 6 into the dust collection drawer 15. When the collected dust needs to be cleaned, the operator pulls the dust collection drawer 15 out of the mounting box 14. When it is necessary to remove the magnets located at the rear of the placement frame 4, the operator pulls the installation box 14 using the handle 16, thereby moving the magnets on the wire mesh plate 6 forward. During this process, the installation box 14 drives the two sliders 18 to slide in the two corresponding slide grooves 17 through the two positioning members 19 on the installation box 14. This design makes it easy to collect and clean dust from the stacked magnets, preventing the operator from being affected by the dust in the processing environment, and makes it easier to remove the magnets located at the rear of the placement frame 4.
[0019] like Figure 1 As shown, the lifting assembly includes a motor 20 and a limit rod 21 fixed to the top of the base plate 1. The motor 20 is provided at the top of the base plate 1, and a vertically upward screw rod 22 is fixed to the output end of the motor 20. A shaft sleeve 23 is provided on the threaded sleeve of the screw rod 22. A limit box 24 with a top opening is fixed on the base plate 1. The motor 20 is placed in the limit box 24. The limit rod 21 is vertically opposite to the screw rod 22. A block-shaped sliding member 25 is provided on the sliding sleeve of the limit rod 21. The two sides of the support plate 2 are fixedly connected to the sliding member 25 and the shaft sleeve 23 respectively, and the two mounting plates 3 are located between the sliding member 25 and the shaft sleeve 23. When the magnet needs to be lifted for processing, the operator starts the motor 20. The output end of the motor 20 drives the screw 22 to rotate, which in turn causes the sleeve 23 to slide vertically. The sleeve 23 drives the slide 25 to slide vertically on the limit rod 21 through the support plate 2, thereby lifting the magnet thereon through the support plate 2. This design method is simple in structure and has good effects. It can lift and lower the magnet, making it easy for the operator to pick up the magnet for processing.
[0020] Working principle:
[0021] When the magnet needs to be lifted for processing, the operator starts the motor 20. The output end of the motor 20 drives the screw 22 to rotate, thereby causing the sleeve 23 to slide vertically. The sleeve 23 drives the sliding member 25 to slide vertically on the limit rod 21 through the support plate 2, and thereby drives the magnets in the three installation boxes 14 to be lifted through the support plate 2. When the installation box 14 at the top moves to a suitable material removal height, the motor 20 stops working.
[0022] In the topmost installation box 14, the operator removes the magnets from the insertion rods 8 in the placement frame 4. To remove the magnets at the bottom of the placement frame 4, the operator rotates the rotating rod 11, thereby driving the enclosure frame 5 and the limit block 13 downward vertically through the connecting block 12. During this process, the limit block 13 slides on the positioning rod 10, and the operator then removes the magnets stacked at the bottom of the placement frame 4 from the insertion rods 8.
[0023] When it is necessary to take the magnet at the rear of the placement frame 4, the operator slides and pulls the handle 16 on the corresponding installation box 14, so that the installation box 14 drives the placement frame 4 to slide forward, thereby taking the magnet at the rear of the placement frame 4. During the sliding process, the two sliders 18 on the installation box 14 slide correspondingly in the two slide grooves 17.
[0024] When the collected dust needs to be cleaned, the operator extracts the dust collecting drawer 15 from the installation box 14 .
[0025] The above steps can be repeated for the other two installation boxes 14 when taking out the magnets.
[0026] Finally, it should be noted that the above embodiments are only used to illustrate the technical solution of the utility model and are not limiting. Although the utility model is described in detail with reference to the preferred embodiments, ordinary technicians in this field should understand that the technical solution of the utility model can be modified or replaced by equivalents without departing from the purpose and scope of the technical solution of the utility model, which should be included in the scope of the claims of the utility model.
Claims
1. A material lifting device, comprising a bottom plate (1), characterized in that: A lifting assembly is provided on the base plate (1), a supporting plate (2) horizontal to the base plate (1) is fixed on the lifting assembly, two vertically parallel and opposite mounting plates (3) are fixed on the supporting plate (2), three material receiving members are provided between the two mounting plates (3), each of the material receiving members is provided with a placement frame (4) with a square structure and an open top, a retaining frame (5) is provided on the sliding sleeve of the outer wall of the placement frame, and a sliding assembly is provided on the material receiving member, and the sliding assembly drives the retaining frame (5) to slide in the vertical direction.
2. A material lifting device according to claim 1, characterized in that: Each of the material receiving members comprises two upper and lower opposite and parallel wire mesh plates (6), a plurality of hard connecting rods (7) are fixed between the two wire mesh plates (6), and the placement frame (4) and the sliding assembly on each material receiving member are fixed on the wire mesh plate (6) located above.
3. A material lifting device according to claim 2, characterized in that: The sliding assembly includes a C-shaped bending plate (9) and a positioning rod (10), the bending plate (9) and the placement frame (4) are fixed on the same piece of the wire mesh plate (6), a vertical rotating rod (11) is rotatably passed through the bending plate (9), the rotating rod (11) is provided with a threaded structure on the rod section located in the bending mouth of the bending plate (9), a connecting block (12) fixed to the enclosure frame (5) is threadedly sleeved on the rotating rod (11), the positioning rod (10) and the placement frame (4) are fixed on the same piece of the wire mesh plate (6), a limiting block (13) fixed to the enclosure frame (5) is slidably sleeved on the positioning rod (10), and the positioning rod (10) and the bending plate (9) are arranged on both sides of the placement frame (4) relative to each other.
4. A material lifting device according to claim 2, characterized in that: The bottom of the wire mesh plate (6) located below in each of the material-bearing members is fixedly provided with an installation box (14) with an open top. The placement frame (4) is located above the installation box (14). One side of the installation box (14) is provided with an opening and a dust collection drawer (15) with an open top is provided therein. The dust collection drawer (15) can be slidably pulled out of the installation box (14). A handle (16) is fixedly provided at the bottom of the installation box (14).
5. A material lifting device according to claim 4, characterized in that: Each of the mounting plates (3) is provided with three slide grooves (17) located in the same vertical direction from top to bottom, and the slide grooves (17) are arranged horizontally and there are openings at both ends of the slide grooves (17) at both ends of the mounting plate (3). The three slide grooves (17) on one mounting plate (3) are horizontally opposite to the three slide grooves (17) on another mounting plate (3). The three slide grooves (17) in each mounting plate (3) correspond to the three mounting boxes (14) respectively. The slide grooves (17) are provided with an opening in the same length direction on the side adjacent to the mounting box (14). A slider (18) is provided in each of the slide grooves (17). Each slider (18) is fixed with a positioning member (19) that passes through the opening and is fixed to the corresponding mounting box (14). The positioning member (19) is in the shape of a round rod.
6. A material lifting device according to claim 1, characterized in that: The lifting assembly includes a motor (20) and a limiting rod (21) fixed on the top of the base plate (1), the motor (20) is arranged on the top of the base plate (1), and the output end of the motor (20) is fixed with a vertically upward screw rod (22), the threaded sleeve on the screw rod (22) is provided with a shaft sleeve (23), the base plate (1) is fixed with a limiting box (24) with a top opening, the motor (20) is placed in the limiting box (24), the limiting rod (21) is vertically opposite to the screw rod (22), the sliding sleeve on the limiting rod (21) is provided with a block-shaped sliding member (25), the two sides of the support plate (2) are fixedly connected to the sliding member (25) and the shaft sleeve (23) respectively, and the two mounting plates (3) are located between the sliding member (25) and the shaft sleeve (23).