Detection device for magnetic functional material recovery
Through structural design including support feet, rubber pads, base plate, and crank handle, the problem of cumbersome disassembly and assembly of the magnetic material recycling and detection device shell has been solved, enabling rapid disassembly and assembly and enhancing seismic resistance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-30
- Publication Date
- 2026-03-31
AI Technical Summary
Existing magnetic material recycling and testing devices are cumbersome to operate during the disassembly and assembly of the casing, which is time-consuming and labor-intensive, resulting in low efficiency.
The structure is designed with support feet, rubber pads, base plate, crank handle, double-acting screw, bevel gear and limit plate. The crank handle controls the rotation of the bevel gear to drive the double-acting screw and limit plate, so as to realize the quick assembly and disassembly of the shell.
It improves the efficiency of disassembly and assembly of the casing, reduces operating steps, and enhances the shock resistance of the equipment during transportation.
Smart Images

Figure CN224066575U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of magnetic material recycling technology, and in particular to a detection device for recycling magnetic functionalized materials. Background Technology
[0002] The waste materials for magnetic functional materials mainly come from various equipment and products. During the collection process, the waste materials need to be initially classified. After classification, the waste materials need to undergo physical treatment, including crushing and grinding, in order to facilitate subsequent recycling. During the recycling process, the recycled materials need to be tested in many ways, including particle size testing.
[0003] For example, patent number CN219933410U discloses a magnetic material particle size detection device, applied in the field of magnetic material particle size detection equipment. It includes a dry laser particle size analyzer body, with symmetrically attached mounting brackets on both sides of the dry laser particle size analyzer body and located at the upper shell of the body. This invention utilizes a reset spring to engage the internal locking blocks of the mounting brackets with the mounting brackets, achieving the purpose of installing the upper and lower shells of the dry laser particle size analyzer body together, thus improving the speed of installation and disassembly. Through the use of support springs and dampers, when the equipment is transported, the amount of external vibration potential energy transmitted to the dry laser particle size analyzer body is reduced. When the equipment is performing magnetic material particle size detection, the amount of amplitude energy generated by the centrifugal pump transmitted to the external support platform is reduced, achieving vibration reduction and noise reduction, thereby ensuring that the working environment is not polluted by noise and that the equipment operates normally.
[0004] However, the existing magnetic material recycling and detection devices involve the alignment and synchronous snapping of multiple structures when disassembling and assembling the shell, which is cumbersome and inconvenient, resulting in a time-consuming and labor-intensive disassembly and assembly process with low efficiency. Utility Model Content
[0005] To overcome the problem that the disassembly and assembly of the magnetic material recycling and detection device involves the alignment and synchronous snapping of multiple structures, which is cumbersome and inconvenient, resulting in a time-consuming, labor-intensive, and inefficient disassembly and assembly process.
[0006] The technical solution of this utility model is as follows: a detection device for recycling magnetic functionalized materials, including a dry laser particle size analyzer, and further including a base plate, a support seat, support feet, rubber pads, a crank handle, a bidirectional lead screw, a first bevel gear, a second bevel gear, a limiting plate, and a limiting groove; the lower end of the dry laser particle size analyzer is provided with a base plate, the lower end of the base plate is provided with a support seat, the side of the support seat is provided with support feet, the lower end of the support feet is provided with rubber pads, the front side of the support seat is provided with a crank handle, the inner side of the support seat is provided with a bidirectional lead screw, the front side of the bidirectional lead screw is provided with a first bevel gear, the outer side of the bidirectional lead screw is fixedly installed with a second bevel gear, the left and right sides of the support seat are provided with limiting plates, and the left and right sides of the dry laser particle size analyzer are provided with limiting grooves.
[0007] Preferably, by setting support feet and rubber pads, the dry laser particle size analyzer can be easily protected against shock. By setting a base plate, the corners of the dry laser particle size analyzer can be easily protected. By setting a limiting plate and a limiting groove, the housing and base plate of the dry laser particle size analyzer can be easily disassembled and assembled.
[0008] Preferably, the bottom plate is provided with a limiting guard plate on its side, the limiting guard plate and the lower side of the dry laser particle size analyzer are adapted to each other, and the lower end of the bottom plate and the upper end of the support base are engaged and connected.
[0009] Preferably, the support feet are arranged symmetrically in the front, back, left, and right directions, the support feet are fixedly connected to the support base, and the rubber pads are fixedly connected to the lower ends of the support feet.
[0010] Preferably, the rear end of the crank handle is rotatably connected to the support base, a rotating shaft is fixedly installed on the front side of the bevel gear, the front end of the rotating shaft is fixedly connected to the crank handle, and the rotating shaft is rotatably connected to the inner side of the support base.
[0011] Preferably, the left and right ends of the double-acting screw are rotatably connected to the inner side of the support, the second bevel gear is fixedly connected to the outer side of the double-acting screw, and the second bevel gear and the first bevel gear mesh with each other.
[0012] Preferably, the limiting plates are arranged symmetrically on the left and right, the lower end of the limiting plates is slidably connected to the inner side of the support base, and the bidirectional lead screw is threadedly connected to the limiting plates.
[0013] Preferably, the support base has through slots on both the left and right sides, and the limiting plate is slidably connected to the inside of the through slots. The upper end of the limiting plate extends through the through slots to the outside of the support base and engages with the limiting groove.
[0014] The beneficial effects of this utility model are:
[0015] This magnetic functionalized material recycling testing device uses rubber pads to provide shock absorption support for the dry laser particle size analyzer, and limit guards on the sides of the base plate to protect the corners of the analyzer from impact, improving its shock and impact resistance during transportation. Turning the crank controls the rotation of bevel gear one, which in turn drives bevel gear two to rotate the bidirectional lead screw, causing the upper ends of the two limit plates to disengage from the limit grooves. This facilitates the removal of the analyzer's outer casing for internal structure inspection and maintenance. Afterwards, the casing is reinstalled on the upper part of the base plate, and turning the crank in the opposite direction engages the limit plates with the limit grooves, enabling quick and easy fixation of the analyzer's casing. This convenient and efficient operation improves operational efficiency. Attached Figure Description
[0016] Figure 1 The diagram shown is a three-dimensional structural representation of the detection device for recycling magnetic functionalized materials according to this utility model. Figure 1 ;
[0017] Figure 2 The diagram shown is a three-dimensional structural representation of the detection device for recycling magnetic functionalized materials according to this utility model. Figure 2 ;
[0018] Figure 3 The diagram shown is a three-dimensional structural diagram of the base plate of this utility model;
[0019] Figure 4 The diagram shown is a three-dimensional structural schematic of the support base of this utility model;
[0020] Figure 5 The diagram shown is a three-dimensional cross-sectional view of the magnetic functional base plate and support seat of this utility model.
[0021] Explanation of reference numerals in the attached drawings: 1. Dry laser particle size analyzer; 2. Base plate; 21. Limiting guard plate; 3. Support base; 4. Support foot; 5. Rubber pad; 6. Handle; 7. Two-way lead screw; 8. Bevel gear one; 81. Rotating shaft; 9. Bevel gear two; 10. Limiting plate; 11. Limiting groove. Detailed Implementation
[0022] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0023] Please see Figures 1-5This utility model provides an embodiment of a detection device for recycling magnetic functionalized materials, including a dry laser particle size analyzer 1, a base plate 2, a support seat 3, support feet 4, rubber pads 5, a crank handle 6, a bidirectional lead screw 7, a first bevel gear 8, a second bevel gear 9, a limiting plate 10, and a limiting groove 11; the lower end of the dry laser particle size analyzer 1 is provided with the base plate 2, the lower end of the base plate 2 is provided with the support seat 3, the side of the support seat 3 is provided with the support feet 4, the lower end of the support feet 4 is provided with the rubber pads 5, the front side of the support seat 3 is provided with the crank handle 6, the inner side of the support seat 3 is provided with the bidirectional lead screw 7, the front side of the bidirectional lead screw 7 is provided with the first bevel gear 8, and the outer side of the bidirectional lead screw 7 is fixed. The dry laser particle size analyzer 1 is equipped with a bevel gear 9. Limiting plates 10 are provided on the left and right sides of the support base 3. Limiting grooves 11 are provided on the left and right sides of the dry laser particle size analyzer 1. The rubber pads 5 provide shock absorption support for the dry laser particle size analyzer 1. The limiting guard plates 21 on the side of the base plate 2 provide anti-collision protection for the corners of the dry laser particle size analyzer 1, which improves the shock and anti-collision performance of the dry laser particle size analyzer 1 during transportation. By turning the rocker handle 6, the bevel gear 8 is controlled to rotate, which causes the bevel gear 9 to drive the bidirectional lead screw 7 to rotate, thereby causing the upper ends of the two limiting plates 10 to disengage from the limiting grooves 11, making it convenient to remove the outer shell of the dry laser particle size analyzer 1 for internal structure inspection and maintenance.
[0024] Please see Figures 1-4 In this embodiment, a limiting guard plate 21 is provided on the side of the base plate 2. The limiting guard plate 21 and the lower side of the dry laser particle size analyzer 1 are adapted to each other. The lower end of the base plate 2 and the upper end of the support base 3 are engaged and connected. The support feet 4 are symmetrically arranged in front, back, left and right. The support feet 4 and the support base 3 are fixedly connected. The rubber pad 5 is fixedly connected to the lower end of the support feet 4. The support feet 4 and the rubber pad 5 realize the shock absorption support of the dry laser particle size analyzer 1. The limiting guard plate 21 on the side of the base plate 2 protects the corners of the dry laser particle size analyzer 1 from collision, thereby improving the shock and collision resistance of the dry laser particle size analyzer 1 during transportation.
[0025] Please see Figures 2-5In this embodiment, the rear end of the crank handle 6 is rotatably connected to the support base 3. A rotating shaft 81 is fixedly installed on the front side of the first bevel gear 8. The front end of the rotating shaft 81 is fixedly connected to the crank handle 6. The rotating shaft 81 is rotatably connected to the inner side of the support base 3. The left and right ends of the bidirectional lead screw 7 are rotatably connected to the inner side of the support base 3. The second bevel gear 9 is fixedly connected to the outer side of the bidirectional lead screw 7. The second bevel gear 9 and the first bevel gear 8 mesh with each other. The limiting plate 10 is symmetrically arranged on the left and right sides. The lower end of the limiting plate 10 is slidably connected to the inner side of the support base 3. The bidirectional lead screw 7 is threadedly connected to the limiting plate 10. Through slots are opened on the left and right sides of the support base 3. The limiting plate 10 is slidably connected to the inner side of the through slots. The upper end extends through a slot to the outside of the support base 3 and engages with the limiting groove 11. By turning the rocker handle 6, the first bevel gear 8 is controlled to rotate, causing the second bevel gear 9 to drive the bidirectional lead screw 7 to rotate, thereby causing the two limiting plates 10 to slide inside the support base 3, so that their upper ends disengage from the limiting groove 11, releasing the fixation on the outer shell of the dry laser particle size analyzer 1. This facilitates the removal of the outer shell of the dry laser particle size analyzer 1 for internal structure inspection and maintenance. Subsequently, the outer shell is reinstalled on the upper end of the base plate 2, and the limiting guard plate 21 limits the outer shell of the dry laser particle size analyzer 1. Turning the rocker handle 6 in the opposite direction can control the limiting plates 10 to engage with the limiting groove 11, achieving rapid fixation of the outer shell of the dry laser particle size analyzer 1.
[0026] During operation, the support feet 4 and rubber pads 5 provide shock-absorbing support for the dry laser particle size analyzer 1. The limiting guard plates 21 on the side of the base plate 2 provide anti-collision protection for the corners of the dry laser particle size analyzer 1, improving its shock and impact resistance during transportation. When the dry laser particle size analyzer 1 needs to be inspected or maintained, the crank handle 6 is turned to control the rotation of the first bevel gear 8, which in turn drives the second bevel gear 9 to rotate the bidirectional lead screw 7. This causes the two limiting plates 10 to slide inside the support base 3, disengaging their upper ends from the limiting grooves 11 and releasing the fixing of the outer shell of the dry laser particle size analyzer 1. This facilitates the removal of the outer shell of the dry laser particle size analyzer 1 for inspection and maintenance of the internal structure. Afterward, the outer shell is reinstalled on the upper end of the base plate 2, where the limiting guard plates 21 limit the outer shell of the dry laser particle size analyzer 1. Turning the crank handle 6 in the opposite direction controls the limiting plates 10 to engage with the limiting grooves 11, achieving quick fixing of the outer shell of the dry laser particle size analyzer 1.
[0027] Through the above steps, by turning the rocker handle 6 to control the rotation of the first bevel gear 8, the second bevel gear 9 drives the bidirectional lead screw 7 to rotate, thereby causing the upper ends of the two limiting plates 10 to disengage from the limiting grooves 11. This facilitates the removal of the outer shell of the dry laser particle size analyzer 1 for internal structure inspection and maintenance. Subsequently, the outer shell is reinstalled on the upper end of the base plate 2, and by turning the rocker handle 6 in the opposite direction, the limiting plates 10 can be engaged with the limiting grooves 11, achieving rapid fixation of the outer shell of the dry laser particle size analyzer 1. This solves the problem that when disassembling and assembling the outer shell of the magnetic material recycling detection device, the alignment and synchronous engagement of multiple structures are involved, which is cumbersome and inconvenient, resulting in time-consuming, labor-intensive, and inefficient disassembly and assembly processes.
Claims
1. A detection device for recycling of magnetic functionalized materials, comprising a dry laser particle size analyzer (1), characterized in that: Also include the base plate (2), support seat (3), support feet (4), rubber pad (5), crank (6), two-way screw (7), bevel gear (8), bevel gear (9), limit card (10) and limit groove (11); dry method laser particle size analyzer (1) is provided with the base plate (2) at the lower end, the lower end of the base plate (2) is provided with the support seat (3), the side of the support seat (3) is provided with the support feet (4), the lower end of the support feet (4) is provided with the rubber pad (5), the front side of the support seat (3) is provided with the crank (6), the inner side of the support seat (3) is provided with the two-way screw (7), the front side of the two-way screw (7) is provided with the bevel gear (8), the outer side of the two-way screw (7) is fixedly installed with the bevel gear (9), the left and right sides of the support seat (3) are provided with the limit card (10), and the left and right sides of the dry method laser particle size analyzer (1) are provided with the limit groove (11).
2. The detection device for recovering a magnetic function material according to claim 1, characterized in that: The side of the base plate (2) is provided with a limit guard plate (21), the limit guard plate (21) and the side of the lower end of the dry method laser particle size analyzer (1) are matched with each other, and the lower end of the base plate (2) and the upper end of the support seat (3) are clamped and connected.
3. The detection device for recovering a magnetic function material according to claim 1, characterized in that: The support feet (4) are symmetrically arranged front and back and left and right, the support feet (4) and the support seat (3) are fixedly connected, and the rubber pad (5) and the lower end of the support feet (4) are fixedly connected.
4. The detection device for recovering a magnetic function material according to claim 1, wherein: The rear end of the crank (6) and the support seat (3) are rotatably connected, the front side of the bevel gear (8) is fixedly installed with a rotating shaft (81), the front end of the rotating shaft (81) and the crank (6) are fixedly connected, and the rotating shaft (81) and the inner side of the support seat (3) are rotatably connected.
5. The detection device for recovering a magnetic function material according to claim 1, wherein: The left and right ends of the two-way screw (7) and the inner side of the support seat (3) are rotatably connected, the bevel gear (9) and the outer side of the two-way screw (7) are fixedly connected, and the bevel gear (9) and the bevel gear (8) are engaged with each other.
6. The detection device for recovering a magnetic function material according to claim 1, wherein: The limit card (10) is symmetrically arranged left and right, the lower end of the limit card (10) and the inner side of the support seat (3) are slidably connected, and the two-way screw (7) and the limit card (10) are threadedly connected.
7. The detection device for recovering a magnetic function material according to claim 1, wherein: The left and right sides of the support seat (3) are provided with a through slot, the limit card (10) and the inner side of the through slot are slidably connected, and the upper end of the limit card (10) extends to the outer side of the support seat (3) through the through slot and is clamped with the limit groove (11).
Citation Information
Patent Citations
Detection equipment for granularity of magnetic material
CN219933410U