Inductor framework assembling and processing equipment
By designing adjustment devices and auxiliary devices in the inductor skeleton assembly processing equipment, the deformation problem of connecting components caused by skeleton assembly deviation is solved, and copper wire is entangled, which improves work efficiency and handling efficiency.
Patent Information
- Application Number
- CN202421660690.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-15
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2034-07-15
AI Technical Summary
During the skeleton assembly process, the skeleton assembly deviation causes the connection components to be deformed, and the undetachable structure causes the deformed connection components to be unable to be used normally, affecting work efficiency.
A kind of inductor skeleton assembly and processing equipment is designed, using adjustment devices and auxiliary devices. The adjustment device can quickly replace the deformed connecting components through the coordination of the adjustment rod and the telescopic rod; the auxiliary device avoids the winding of copper wire on the skeleton through the design of the storage box and the fixing rod, and improves the handling efficiency.
It realizes the rapid replacement of deformed connection components when the frame assembly is deviated, which improves work efficiency; the copper wire is entangled through auxiliary devices, saving time for disassembly and reassembly.
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Figure CN222965927U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of skeleton assembly processing, in particular to an inductor skeleton assembly processing device. Background Art
[0002] Skeleton assembly processing is an operation process that can assemble scattered skeleton parts.
[0003] The utility model with the publication number of CN219435687U discloses an inductor skeleton assembly processing device, and the key points of its technical solution are as follows: including a processing base, a simple barb grinding mechanism is arranged on the top of the processing base: the barb grinding mechanism includes a motor, a transmission block is fixedly arranged at the bottom of the motor, an intermediate gear is fixedly arranged at the bottom of the transmission block, and a side gear is meshed on the surface of the intermediate gear. When the utility model is in use, a plurality of inductor skeletons are arranged on the top of the processing base, and the inductor skeletons are placed on the top of the processing base and at the bottom of the grinding cylinder. When the barbs of the inductor skeletons need to be processed and ground, the output shaft of the motor drives the transmission block, the transmission block drives the intermediate gear to rotate, and the intermediate gear drives the side gear to rotate through the meshing with the side gear, so that the grinding cylinder grinds the inductor skeletons at a high speed, and a connecting piece is arranged at the bottom of the inductor to be fixed on the top of the processing base to prevent the grinding cylinder from driving the inductor skeletons to rotate together.
[0004] Regarding the above relevant content, the inventor believes that there are the following technical defects: when using the connecting component to assemble the skeleton and the skeleton assembly deviates, the skeleton is prone to extrude the surface of the connecting component. When the deviation angle of the skeleton assembly is too large, the connecting component will be deformed after being extruded. Also, because the connecting component and the inductor skeleton assembly processing device are non-detachable structures, this also causes the deformed and non-detachable connecting component to be unable to be used normally, thus delaying the work efficiency.
[0005] Therefore, it is necessary to provide a new inductor skeleton assembly processing device to solve the above technical problems. Summary of the Utility Model
[0006] The purpose of the utility model is to solve the disadvantages in the prior art that when the skeleton assembly deviates, the skeleton is prone to extrude the surface of the connecting component. When the deviation angle of the skeleton assembly is too large, the connecting component will be deformed after being extruded. Also, because the connecting component and the inductor skeleton assembly processing device are non-detachable structures, this also causes the deformed and non-detachable connecting component to be unable to be used normally, thus delaying the work efficiency.
[0007] To solve the above technical problems, the utility model provides an inductor skeleton assembly and processing device, including: an assembly table, the upper surface of the assembly table is fixedly connected with a processing table, several connecting components are installed on one side of the processing table away from the assembly table, and an adjusting device is provided on one side of several connecting components close to the processing table. The adjusting device includes a fixed block, the fixed block is fixedly connected with the processing table, a connecting groove is opened on one side of the fixed block close to the connecting component, adjusting holes are opened at both ends of the side wall of the connecting groove, adjusting rods are slidably penetrated through both of the two adjusting holes, abutting blocks are fixedly connected to both ends of the arc surface of the adjusting rod, a connecting block is slidably connected in the connecting groove, the connecting block is fixedly connected with the connecting component, and telescopic rods are fixedly connected to both ends of the surface of the connecting block.
[0008] The effects achieved by the above components are as follows: The assembly table cooperates with the connecting components to assemble the inductor skeleton. When using the connecting components to assemble the skeleton, if there is a deviation in the skeleton assembly, the skeleton will be squeezed between the connecting components. When the deviation angle of the skeleton assembly is too large, the connecting components will deform. Also, because the connecting components and the processing table are non-separable structures, this also causes deformation. The non-removable connecting components cannot be used, affecting work efficiency. Press the first abutting block towards the connecting groove, and the movement of the first abutting block will drive the adjusting rod to move towards the second abutting block through the adjusting hole. The movement of the second abutting block will press the telescopic rod, thereby driving the telescopic rod to contract. At this time, the restriction on the connecting block is released, and the connecting block can be taken out of the connecting groove, so as to achieve the effect of replacing the deformed connecting components.
[0009] Preferably, convex blocks are fixedly connected to both ends of the two telescopic rods away from each other, and the cross-section of the convex blocks is arc-shaped.
[0010] The effects achieved by the above components are as follows: When pressing the telescopic rod to make the telescopic rod slide in the connecting groove, the guiding blocks installed on the telescopic rod can improve the sliding speed of the telescopic rod in the connecting groove and improve the adjustment efficiency of the telescopic rod in the connecting groove.
[0011] Preferably, an auxiliary block is fixedly connected to one side of the connecting block close to the connecting groove, and the auxiliary block is adapted to the size of the connecting block.
[0012] The effects achieved by the above components are as follows: When using the connecting block to dock with the connecting groove, the auxiliary block can reduce the angle when the connecting block docks with the connecting groove, so as to improve the docking speed of the connecting block and the connecting groove.
[0013] Preferably, the adjusting rod is a titanium alloy rod.
[0014] The effects achieved by the above components are as follows: The adjusting rod made of titanium alloy has a relatively hard rod surface, and after long-term use, the rod body of the adjusting rod made of titanium alloy is also difficult to deform, and has a long service life.
[0015] Preferably, an auxiliary device is provided on one side of the assembly table. The auxiliary device includes an assembly plate fixedly connected to the assembly table. A storage box is slidably connected to the surface of the assembly plate. A partition is fixedly connected to the inner wall of the storage box. Two fixing holes are opened on one side of the storage box close to the assembly table. Fixing rods slidably penetrate through the inner walls of the two fixing holes, and both fixing rods slidably penetrate through the assembly plate.
[0016] The effects achieved by the above components are as follows: After the processing table cooperates with the connection component to complete the assembly of the inductor skeleton, the processing table will synchronously wind the copper wire around the skeleton. When it comes to the next step of fixing the copper wire, the end of the copper wire has been in a bare state. Workers can carry the skeleton with the copper wire wound. However, during the handling process, in order to save time, workers will pick up and carry multiple skeletons by hand, which also causes the copper wires on the skeletons in contact to become entangled. As a result, after being transported to the designated position, the entangled copper wires still need to be disassembled, which is quite time-consuming. Place the skeleton with the copper wire wound inside the storage box that has been partitioned by the partition. After placing it, pull up the fixing rod. After pulling the fixing rod out of the fixing hole, the fixing effect on the storage box can be released, and the storage box can be removed from the assembly plate, and then the storage box can be used to carry the skeleton, which can effectively prevent the copper wires on the skeleton from becoming entangled.
[0017] Preferably, handles are slidably connected to both ends of the storage box. Two screw rods are threadedly penetrated through the inner walls of the handles, and both screw rods are threadedly connected to the storage box.
[0018] The effects achieved by the above components are as follows: When the storage box needs to be moved, the handles installed on both sides of the storage box can be used to move the storage box, and the handles can improve the efficiency of moving the storage box.
[0019] Preferably, the same force - adding block is fixedly connected to one ends of the two fixing rods close to the fixing holes, and the force - adding block is adapted to the sizes of the two fixing rods.
[0020] The effects achieved by the above components are as follows: When the two fixing rods need to be moved, the force - adding block installed on the two fixing rods can be used to move the fixing rods. The force - adding block can move the two fixing rods simultaneously, so as to improve the speed of moving the fixing rods.
[0021] Compared with the related art, an inductor skeleton assembly and processing device provided by the present utility model has the following beneficial effects:
[0022] The utility model provides an inductor skeleton assembly and processing device. By setting an adjusting device, when the connecting component assembles the inductor skeleton, if the skeleton assembly deviates, the connecting component will be deformed. When it is necessary to replace the deformed connecting component, the adjusting device can be used to quickly replace the deviated connecting component, and the adjusting device can improve the speed of replacing the connecting component.
[0023] By setting an auxiliary device, when it is necessary to carry the assembled skeleton, the auxiliary device can be used to separate and store it, and centrally carry the skeletons that have been separated and stored, which can effectively prevent the skeletons from contacting each other during the handling process, and avoid the situation where the copper wires on the skeletons are intertwined with each other. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Figure 1 is a schematic structural diagram of an inductor skeleton assembly and processing device provided by the utility model;
[0025] Figure 2 is Figure 1 a schematic structural diagram of the adjusting device shown;
[0026] Figure 3 is Figure 1 a schematic exploded view of the adjusting device shown;
[0027] Figure 4 is Figure 3 an enlarged view of part A shown;
[0028] Figure 5 is Figure 1 a schematic structural diagram of the auxiliary device shown;
[0029] Figure 6 is Figure 1 a schematic exploded view of the auxiliary device shown.
[0030] Reference numerals in the figures: 1, assembly table; 2, adjusting device; 21, fixing block; 22, adjusting hole; 23, adjusting rod; 24, abutting block; 25, connecting block; 26, telescopic rod; 27, convex block; 28, auxiliary block; 29, connecting groove; 3, auxiliary device; 31, assembly plate; 32, storage box; 33, partition board; 34, fixing rod; 35, handle; 36, screw rod; 37, force - adding block; 38, fixing hole; 4, processing table; 5, connecting component. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0031] In order to make the objectives, technical solutions, and advantages of the present utility model more clearly understood, the following further details the present utility model in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present utility model and are not used to limit the present utility model.
[0032] The following describes in detail the specific implementation of the present utility model in conjunction with specific embodiments.
[0033] Please refer to Figures 1 to 6 , an inductor skeleton assembly and processing device provided by an embodiment of the present utility model includes: an assembly table 1, a processing table 4 fixedly connected to the upper surface of the assembly table 1, a plurality of connection components 5 installed on one side of the processing table 4 away from the assembly table 1, an adjustment device 2 provided on one side of each of the plurality of connection components 5 close to the processing table 4, and an auxiliary device 3 provided on one side of the assembly table 1.
[0034] In an embodiment of the present utility model, please refer to Figures 2 to 4, the adjusting device 2 includes a fixed block 21. The fixed block 21 is fixedly connected to the processing table 4. A connection groove 29 is formed on one side of the fixed block 21 close to the connection assembly 5. Adjusting holes 22 are formed at both ends of the side wall of the connection groove 29. Adjusting rods 23 are slidably penetrated through both of the two adjusting holes 22. Abutting blocks 24 are fixedly connected to both ends of the arc surface of the adjusting rod 23. A connection block 25 is slidably connected in the connection groove 29. The connection block 25 is fixedly connected to the connection assembly 5. Expansion rods 26 are fixedly connected to both ends of the surface of the connection block 25. The assembly table 1 cooperates with the connection assembly 5 to assemble the skeleton of the inductor. When using the connection assembly 5 to assemble the skeleton, if there is a deviation in the skeleton assembly, the skeleton will be squeezed between the connection assembly 5. When the deviation angle of the skeleton assembly is too large, the connection assembly 5 will be deformed. Also, because the connection assembly 5 and the processing table 4 are an inseparable structure, this also causes deformation. The non-detachable connection assembly 5 cannot be used, affecting work efficiency. Press the first abutting block 24 in the direction of the connection groove 29. The movement of the first abutting block 24 will drive the adjusting rod 23 to move in the direction of the second abutting block 24 through the adjusting hole 22. The movement of the second abutting block 24 will press the expansion rod 26, thereby driving the expansion rod 26 to contract. At this time, the restriction on the connection block 25 is released, and the connection block 25 can be taken out of the connection groove 29, so as to complete the effect of replacing the deformed connection assembly 5. Convex blocks 27 are fixedly connected to the ends of the two expansion rods 26 away from each other. The cross section of the convex block 27 is arc-shaped. When the expansion rod 26 is pressed to slide in the connection groove 29, the guide block installed on the expansion rod 26 can increase the sliding speed of the expansion rod 26 in the connection groove 29 and improve the adjustment efficiency of the expansion rod 26 in the connection groove 29. An auxiliary block 28 is fixedly connected to the side of the connection block 25 close to the connection groove 29. The auxiliary block 28 is adapted to the size of the connection block 25. When using the connection block 25 to dock with the connection groove 29, the auxiliary block 28 can reduce the angle when the connection block 25 docks with the connection groove 29, thereby improving the docking speed of the connection block 25 with the connection groove 29. The adjusting rod 23 is a titanium alloy rod. The surface of the rod body of the adjusting rod 23 made of titanium alloy is relatively hard, and after long-term use, the rod body of the adjusting rod 23 made of titanium alloy is also difficult to deform and has a long service life;
[0035] In an embodiment of the present invention, please refer to Figure 5 and Figure 6, the auxiliary device 3 includes an assembly board 31, the assembly board 31 is fixedly connected to the assembly table 1, a storage box 32 is slidably connected to the surface of the assembly board 31, a partition 33 is fixedly connected to the inner wall of the storage box 32, two fixing holes 38 are opened on one side of the storage box 32 close to the assembly table 1, fixing rods 34 slidably penetrate through the inner walls of the two fixing holes 38, both of the two fixing rods 34 slidably penetrate through the assembly board 31. After the processing table 4 cooperates with the connecting component 5 to complete the assembly of the inductor skeleton, the processing table 4 will synchronously wind the copper wire around the skeleton. When it comes to the next step of fixing the copper wire, the end of the copper wire has been in a bare state. Workers can carry the skeleton with the copper wire wound. However, during the handling process, in order to save time, workers will pick up and carry multiple skeletons by hand. This also causes the copper wires on the skeletons in contact to be wound around each other. As a result, after being transported to the designated position, the wound copper wires need to be disassembled, which is rather time-consuming. Place the skeleton with the copper wire wound inside the storage box 32 that has been separated by the partition 33. After placing it, pull up the fixing rod 34. After pulling the fixing rod 34 out of the fixing hole 38, the fixing effect on the storage box 32 can be released, and the storage box 32 can be removed from the assembly board 31. Then, the skeleton can be carried through the storage box 32, which can effectively prevent the copper wires on the skeleton from being wound around each other. Handles 35 are slidably connected to both ends of the storage box 32, and two screw rods 36 threadedly penetrate through the inner walls of the handles 35, and both of the two screw rods 36 are threadedly connected to the storage box 32. When it is necessary to move the storage box 32, the handles 35 installed on both sides of the storage box 32 can be used to move the storage box 32. The handles 35 can improve the efficiency of moving the storage box 32. The same force-applying block 37 is fixedly connected to one ends of the two fixing rods 34 close to the fixing holes 38, and the force-applying block 37 is adapted to the sizes of the two fixing rods 34. When it is necessary to move the two fixing rods 34, the force-applying block 37 installed on the two fixing rods 34 can be used to move the fixing rods 34. The force-applying block 37 can move the two fixing rods 34 simultaneously, so as to improve the speed of moving the fixing rods 34;
[0036] The working principle of an inductor skeleton assembly and processing device provided by the present utility model is as follows: The assembly table 1 is cooperatively connected with the connection component 5, and the skeleton of the inductor can be assembled. When using the connection component 5 to assemble the skeleton, if there is a deviation in the skeleton assembly, the skeleton will be squeezed between the connection component 5. When the deviation angle of the skeleton assembly is too large, the connection component 5 will be deformed. Also, because the connection component 5 and the processing table 4 are non-detachable structures, this also causes deformation, and the non-detachable connection component 5 cannot be used, affecting work efficiency. Press the first abutting block 24 in the direction of the connection groove 29. The movement of the first abutting block 24 will drive the adjusting rod 23 to move in the direction of the second abutting block 24 through the adjusting hole 22. The movement of the second abutting block 24 will press the telescopic rod 26, thereby driving the telescopic rod 26 to contract. At this time, the restriction on the connection block 25 is released, and the connection block 25 can be taken out from the connection groove 29, thus achieving the effect of replacing the deformed connection component 5. When the telescopic rod 26 is pressed to slide in the connection groove 29, the guiding block installed on the telescopic rod 26 can increase the sliding speed of the telescopic rod 26 in the connection groove 29 and improve the adjustment efficiency of the telescopic rod 26 in the connection groove 29. When the connection block 25 is docked with the connection groove 29, the auxiliary block 28 can reduce the angle when the connection block 25 is docked with the connection groove 29, thereby increasing the docking speed of the connection block 25 with the connection groove 29. The adjusting rod 23 made of titanium alloy has a relatively hard surface on its rod body, and after long-term use, its rod body is also difficult to deform and has a long service life.
[0037] After the processing table 4 cooperates with the connection component 5 to complete the assembly of the inductor skeleton, the processing table 4 will simultaneously wind the copper wire around the skeleton. When proceeding to the next step of fixing the copper wire, the end of the copper wire has been in a bare state. Workers can carry the skeleton with the copper wire wound. However, during the handling process, in order to save time, workers will pick up and carry multiple skeletons by hand. This also causes the copper wires on the skeletons in contact to become entangled. As a result, after being transported to the designated position, the entangled copper wires need to be disassembled, which is rather time-consuming. Place the skeleton with the copper wire wound inside the storage box 32 that has been partitioned by the partition 33. After placing it, pull up the fixing rod 34. After pulling the fixing rod 34 out of the fixing hole 38, the fixing effect on the storage box 32 can be released, and the storage box 32 can be removed from the assembly board 31. Then, the skeleton can be carried through the storage box 32, which can effectively prevent the copper wires on the skeleton from becoming entangled. When the storage box 32 needs to be moved, the handles 35 installed on both sides of the storage box 32 can be used to move the storage box 32. The handles 35 can improve the efficiency of moving the storage box 32. When the two fixing rods 34 need to be moved, the force-increasing blocks 37 installed on the two fixing rods 34 can be used to move the fixing rods 34. The force-increasing blocks 37 can move the two fixing rods 34 simultaneously, thereby improving the speed of moving the fixing rods 34.
[0038] The circuits and controls involved in the present utility model are all prior arts and will not be elaborated here.
[0039] The above are only the embodiments of the present utility model, and thus do not limit the patent scope of the present utility model. Any equivalent structure or equivalent process transformation made by using the content of the specification and drawings of the present utility model, or directly or indirectly applied in other related technical fields, shall be equally included in the patent protection scope of the present utility model.
Claims
1. An inductor frame assembly and processing equipment, characterized in that: include: An assembly table (1), wherein the upper surface of the assembly table (1) is fixedly connected to a processing table (4), a plurality of connection components (5) are installed on a side of the processing table (4) away from the assembly table (1), and an adjustment device (2) is provided on a side of the plurality of connection components (5) close to the processing table (4), wherein the adjustment device (2) comprises a fixed block (21), wherein the fixed block (21) is fixedly connected to the processing table (4), a connection groove (29) is provided on a side of the fixed block (21) close to the connection component (5), and adjustment holes (22) are provided at both ends of the side wall of the connection groove (29), and adjustment rods (23) are slidably penetrated in the two adjustment holes (22), and abutment blocks (24) are fixedly connected at both ends of the circular arc surface of the adjustment rod (23), and a connection block (25) is slidably connected in the connection groove (29), wherein the connection block (25) is fixedly connected to the connection component (5), and telescopic rods (26) are fixedly connected at both ends of the surface of the connection block (25).
2. The inductor frame assembly and processing equipment according to claim 1, characterized in that: The ends of the two telescopic rods (26) that are away from each other are both fixedly connected with a protrusion (27), and the cross section of the protrusion (27) is arc-shaped.
3. The inductor skeleton assembly and processing equipment according to claim 1, characterized in that: An auxiliary block (28) is fixedly connected to one side of the connection block (25) close to the connection groove (29), and the size of the auxiliary block (28) is adapted to that of the connection block (25).
4. The inductor skeleton assembly and processing equipment according to claim 1, characterized in that: The adjusting rod (23) is a titanium alloy rod.
5. The inductor frame assembly and processing equipment according to claim 1, characterized in that: An auxiliary device (3) is provided on one side of the assembly table (1), and the auxiliary device (3) includes an assembly plate (31), the assembly plate (31) is fixedly connected to the assembly table (1), the surface of the assembly plate (31) is slidably connected to a storage box (32), the inner wall of the storage box (32) is fixedly connected to a partition (33), and two fixing holes (38) are provided on a side of the storage box (32) close to the assembly table (1), and the inner walls of the two fixing holes (38) are slidably penetrated by fixing rods (34), and the two fixing rods (34) are slidably penetrated by the assembly plate (31).
6. The inductor frame assembly and processing equipment according to claim 5, characterized in that: Both ends of the storage box (32) are slidably connected with handles (35), and the inner wall of the handle (35) is threadedly penetrated by two screw rods (36), and the two screw rods (36) are threadedly connected to the storage box (32).
7. The inductor frame assembly and processing equipment according to claim 5, characterized in that: One end of the two fixing rods (34) close to the fixing hole (38) is fixedly connected to a same force block (37), and the force block (37) is adapted to the size of the two fixing rods (34).
Citation Information
Patent Citations
Inductor framework assembling and processing equipment
CN219435687U