Transfer device for high-precision electronic component processing

By setting up a partition component and an airbag inside the transport box, and adjusting the spacing of the clamping blocks using a knob and an air pump, the problem of low space utilization in existing transfer devices is solved, and efficient and safe transfer of electronic components is achieved.

CN224045854UActive Publication Date: 2026-03-27XIANGYANG XIANTAI ELECTRONIC CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-23
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

In existing high-precision electronic component processing transfer devices, the internal space of the holding box cannot be adjusted according to different electronic components, resulting in low space utilization.

Method used

Multiple sets of operating boxes are used, with internal partitioning components including clamping blocks and airbags. The spacing between the clamping blocks and the expansion of the airbags are controlled by a knob, which re-plans the placement space for electronic components. The stacking and separation of the operating boxes are achieved through positioning blocks and fixing components.

Benefits of technology

It improves space utilization during the transfer of electronic components, prevents component damage from shaking, and achieves safe and efficient transfer.

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Abstract

The utility model provides a transfer device for high-precision electronic component processing. The transfer device comprises a clamping block, a connecting groove is formed in a transfer box, a connecting block is arranged at one end of the clamping block, a moving block is arranged at one end of the connecting block, a sliding groove is formed in one side of the connecting groove, an extrusion plate is arranged in the sliding groove, a sliding rod is arranged at one end of the extrusion plate, a two-way lead screw is arranged at the other end of the extrusion plate, and a rotary knob is arranged at one end of the two-way lead screw. A rotary knob is rotated to drive a bidirectional lead screw to rotate, so that two extrusion plates are driven to be far away from each other, the extrusion plates are far away from a moving block, the moving block is not jointly extruded by the extrusion plates and the inner wall of a sliding groove, at the moment, a clamping block can be moved, and a connecting block slides on a connecting groove; and the rotary knob is reversely rotated until the distance between the adjacent clamping blocks is suitable for placing the electronic component, so that the extrusion plate extrudes the movable plate, the positions of the clamping blocks are fixed, the isolation plate is placed on the clamping blocks, and the space suitable for placing the electronic component is re-planned.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of EPP thermal insulation boxes, and particularly relates to a transfer device for high-precision electronic component processing. BACKGROUND

[0002] The transfer device for high-precision electronic component processing is mainly used for safe and efficient transportation and transfer of electronic components during high-precision electronic component processing and after processing is completed, so as to ensure that the electronic components are not damaged and maintain precision and performance during the transfer process.

[0003] The existing Chinese patent with the publication number CN216915943U discloses a transfer device for high-precision electronic component processing, which comprises a transfer trolley, a bearing table is arranged on the transfer trolley, and a buffer assembly is arranged on the bearing table; the buffer assembly comprises a movable part and a buffer spring, the movable part comprises a movable tube, a movable block and a connecting column, and a containing box is arranged at the top of the connecting column.

[0004] The existing technology has the problem that the internal space of the containing box for placing electronic components is large, and different compartments cannot be formed by changing the partition according to different electronic components, resulting in low space utilization. SUMMARY

[0005] The present application solves the technical problem of overcoming the defects in the prior art, and provides a transfer device for high-precision electronic component processing.

[0006] To solve the above technical problems, the technical scheme adopted by the present application is as follows: a transfer device for high-precision electronic component processing, comprising: a transfer box, the transfer box is provided in multiple groups, four universal wheels are installed at the bottom of the lower transfer box, a sealing cover is arranged at the top of the upper transfer box, a partition assembly is installed in the transfer box, the partition assembly comprises clamping blocks, the clamping blocks are provided in multiple groups, the clamping blocks are located in the transfer box, connection grooves are formed in the two sides of the inner wall of the transfer box, a connecting block is installed at one end of the clamping block, the connecting block and the connection groove are connected in sliding mode, a moving block is installed at one end of the connecting block, a sliding groove is arranged on one side of the two connection grooves, the moving block and the sliding groove are connected in sliding mode, an extrusion plate is slidably arranged in the two sliding grooves, the extrusion plate is located on the side of the moving block away from the connecting block, a sliding rod is slidably arranged at one end of the two extrusion plates, the sliding rod is installed on the transfer box, a two-way screw rod is threadedly arranged at the other end of the two extrusion plates, the two-way screw rod is rotatably installed on the transfer box, and a knob is installed at one end of the two-way screw rod.

[0007] Rotating the knob drives the bidirectional screw rod to rotate, thereby driving the two extrusion plates to move away from each other, so that the extrusion plates move away from the moving block, and the moving block is no longer subjected to the common extrusion of the extrusion plates and the inner wall of the sliding groove. At this time, the clamping block can be moved, the connecting block is slid on the connecting groove, until the distance between the adjacent clamping blocks is suitable for placing the electronic components, and the knob is reversely rotated, thereby extruding the moving plate by the extrusion plate, so as to fix the position of the clamping block. The spacer plate is placed on the clamping block, so as to re-plan the space suitable for placing the electronic components.

[0008] Preferably, the inside of the operation box is provided with a plurality of air bags, and the two sides of the outside of the operation box are provided with air pumps. The upper end of the air pump is provided with a gas collecting pipe, and the upper end of the gas collecting pipe is provided with a gas outlet pipe group. The gas outlet pipe group is installed through the operation box. One side of the air bag is provided with a connecting pipe, and the connecting pipe is connected with the gas outlet pipe group. The connecting pipe is located on the upper side of the clamping block.

[0009] Start the air pump, the gas generated by the air pump enters the air bag along the gas outlet pipe group, and the air bag expands to fill between the adjacent two clamping blocks, preventing the electronic components from shaking in the operation box and causing damage.

[0010] Preferably, the four corners of the lower side of the operation box are provided with positioning blocks, and the middle part of the four positioning blocks is provided with a notch. The four corners of the upper side of the operation box are provided with positioning grooves, and the four positioning blocks and the four positioning grooves are matched. The two ends of the operation box are provided with a fixing assembly, and the fixing assembly comprises a moving block. The operation box is provided with two moving blocks, and the two sides of the operation box are provided with two moving grooves. The two moving blocks are slidably connected with the moving grooves. The two moving blocks are slidably connected with the limiting rod. The limiting rod is fixedly installed on the operation box. The outer side of the two ends of the limiting rod is sleeved with a spring. One end of the spring is fixedly connected with the moving block, and the other end of the spring is fixedly connected with the limiting rod. The end of the two moving blocks away from the limiting rod is provided with an insertion block. The two insertion blocks are provided in the shape of a right triangular prism. The two insertion blocks are located in the positioning grooves.

[0011] Stack the two operation boxes, insert the positioning blocks into the positioning grooves, and at the same time, extrude the insertion block downward, so that the insertion block moves to one side of the limiting rod. The moving block extrudes the spring until the free end of the insertion block is located on one side of the notch. The spring reversely pushes the moving block to move, thereby moving the insertion block into the notch. The insertion block prevents the positioning block from moving, thereby fixing the position of the positioning block, so as to complete the stacking of the plurality of operation boxes.

[0012] Preferably, a pushing groove is formed in the operation box, and the pushing groove is located on one side of the moving groove. One side of the moving block is provided with a pushing block, and the pushing block is slidably connected with the pushing groove.

[0013] Move the pushing block to drive the moving block to move to one side of the limiting rod, so that the free end of the insertion block is away from the notch, thereby releasing the position fixing of the positioning block, and thereby the stacked operation boxes can be separated.

[0014] Preferably, four positioning blocks are also arranged on the lower side of the sealing cover, and the middle portions of the four positioning blocks are also provided with notches.

[0015] The sealing cover can be fixed on the uppermost transfer box.

[0016] Preferably, two fixing blocks are arranged on one side of the lower transfer box, a rotating shaft is rotatably arranged between the two fixing blocks, torsional springs are arranged outside the two ends of the rotating shaft, one end of each torsional spring is fixedly connected with the fixing block, the other end of each torsional spring is fixedly connected with the rotating shaft, a connecting ring is fixedly arranged outside the rotating shaft, and a pull plate is arranged on the upper side of the connecting ring.

[0017] When the pull plate is pulled, the transfer box can be moved to transfer the electronic components, and after the hand is released, the torsional springs drive the rotating shaft to rotate, so that the pull plate is reset, and the space occupied by the pull plate in the transportation of the electronic components is reduced.

[0018] Compared with the prior art, the beneficial effects of the present application include: by rotating the knob, the bidirectional screw rod is driven to rotate, thereby driving the two extrusion plates to move away from each other, so that the moving block is no longer subjected to the combined extrusion of the extrusion plates and the inner wall of the sliding groove, at this time, the clamping block can be moved, the connecting block is slid on the connecting groove until the distance between the adjacent clamping blocks is suitable for placing the electronic components, the knob is reversely rotated, thereby the extrusion plates extrude the moving plate, so that the position of the clamping block is fixed, and the isolation plate is placed on the clamping block, so as to re-plan the space suitable for placing the electronic components. BRIEF DESCRIPTION OF DRAWINGS

[0019] The disclosure of the present application will be described with reference to the accompanying drawings. It should be understood that the drawings are only for illustrative purposes, and are not intended to limit the scope of protection of the present application. In the drawings, the same reference numerals are used to refer to the same parts. Among them:

[0020] Figure 1 The overall schematic view of the transfer device for high-precision electronic component processing according to one embodiment of the present application is schematically shown.

[0021] Figure 2 The exploded view of the transfer box of the transfer device for high-precision electronic component processing according to one embodiment of the present application is schematically shown.

[0022] Figure 3 The internal schematic view of the transfer box of the transfer device for high-precision electronic component processing according to one embodiment of the present application is schematically shown.

[0023] Figure 4 The structure schematic view of the air pump of the transfer device for high-precision electronic component processing according to one embodiment of the present application is schematically shown.

[0024] Figure 5 Fig. 2 is a schematic view of a top side cross-section of a transport box of a transfer device for high-precision electronic component processing according to an embodiment of the present application;

[0025] Figure 6 Fig. 3 is a schematic view of a side cross-section of a transport box of a transfer device for high-precision electronic component processing according to an embodiment of the present application;

[0026] Figure 7 Fig. 4 is a schematic view of a partition assembly structure of a transfer device for high-precision electronic component processing according to an embodiment of the present application;

[0027] Figure 8 Fig. 5 is a schematic view of a fixing assembly structure of a transfer device for high-precision electronic component processing according to an embodiment of the present application;

[0028] Figure 9 Fig. 6 is a schematic view of a pull plate structure of a transfer device for high-precision electronic component processing according to an embodiment of the present application;

[0029] Fig. 1 is a schematic view of a transport box of a transfer device for high-precision electronic component processing according to an embodiment of the present application; Fig. 2 is a schematic view of a top side cross-section of a transport box of a transfer device for high-precision electronic component processing according to an embodiment of the present application; Fig. 3 is a schematic view of a side cross-section of a transport box of a transfer device for high-precision electronic component processing according to an embodiment of the present application; Fig. 4 is a schematic view of a partition assembly structure of a transfer device for high-precision electronic component processing according to an embodiment of the present application; Fig. 5 is a schematic view of a fixing assembly structure of a transfer device for high-precision electronic component processing according to an embodiment of the present application; Fig. 6 is a schematic view of a pull plate structure of a transfer device for high-precision electronic component processing according to an embodiment of the present application; 1, transport box; 11, connecting groove; 12, sliding groove; 13, positioning block; 131, notch; 14, positioning groove; 15, moving groove; 16, pushing groove; 17, fixing block; 171, rotating shaft; 172, torsional spring; 173, connecting ring; 174, pull plate; 2, universal wheel; 3, sealing cover; 4, partition assembly; 41, clamping block; 42, connecting block; 43, moving block; 44, extrusion plate; 45, sliding rod; 46, bidirectional screw rod; 461, knob; 5, air bag; 51, air pump; 52, gas collecting pipe; 53, air outlet pipe set; 54, connecting pipe; 6, fixing assembly; 61, moving block; 611, pushing block; 62, limiting rod; 621, spring; 63, insertion block. DETAILED DESCRIPTION

[0030] It is easy to understand that, according to the technical solution of the present application, a person skilled in the art can propose a plurality of structures and implementation modes that can be replaced with each other without changing the essential spirit of the present application. Therefore, the following specific embodiments and drawings are only exemplary descriptions of the technical solution of the present application, and should not be regarded as the whole or as a limitation or restriction on the technical solution of the present application.

[0031] According to an embodiment of the present application Figures 1-3 , Figures 5-7The utility model discloses a high-precision electronic component processing transfer device, including: the operation box 1, the operation box 1 is provided with multiple groups, the bottom of lower operation box 1 is equipped with four universal wheel 2, the top of upper operation box 1 is provided with sealing cover 3, the inside installation of operation box 1 is separated into components 4, and the separated components 4 include clamping block 41, and the clamping block 41 is provided with multiple, multiple clamping block 41 all are located in operation box 1, and the both sides of operation box 1 inner wall are provided with connecting groove 11, and one end of clamping block 41 is installed with connecting block 42, and connecting block 42 and connecting groove 11 slidingly connect, and one end of connecting block 42 is installed with moving block 43, and one side of two connecting grooves 11 is provided with sliding slot 12, and moving block 43 and sliding slot 12 slidingly connect, and two sliding slots 12 are slidably provided with extrusion plate 44, and extrusion plate 44 is located on the side, away from connecting block 42, of moving block 43, and one end of two extrusion plates 44 is slidably penetrated with slide rod 45, and slide rod 45 is installed on operation box 1, and the other end of two extrusion plates 44 is threadedly penetrated with two-way screw rod 46, and two-way screw rod 46 is rotatably installed on operation box 1, and one end of two-way screw rod 46 is installed with knob 461, and rotating knob 461 drives two-way screw rod 46 to rotate, thereby making two extrusion plates 44 away from each other, so that extrusion plate 44 is away from moving block 43, and moving block 43 is no longer extruded by extrusion plate 44 and the inner wall of sliding slot 12, at this moment, clamping block 41 can be moved, and connecting block 42 is slid on connecting groove 11 until the distance between adjacent clamping blocks 41 is suitable for placing electronic components, and inversely rotating knob 461, and then making extrusion plate 44 extrude moving plate 43, thereby fixing the position of clamping block 41, and placing a spacer on clamping block 41, the spacer can be a rubber or plastic component, which can block the movement of electronic components, and has elasticity, and can prevent electronic components from being damaged due to collision, so as to re-plan the space suitable for placing electronic components.

[0032] According to an embodiment of the present application Figures 3-4 The utility model discloses a high-precision electronic component processing transfer device, including: the operation box 1, the operation box 1 is provided with multiple groups, the bottom of lower operation box 1 is equipped with four universal wheel 2, the top of upper operation box 1 is provided with sealing cover 3, the inside installation of operation box 1 is separated into components 4, and the separated components 4 include clamping block 41, and the clamping block 41 is provided with multiple, multiple clamping block 41 all are located in operation box 1, and the both sides of operation box 1 inner wall are provided with connecting groove 11, and one end of clamping block 41 is installed with connecting block 42, and connecting block 42 and connecting groove 11 slidingly connect, and one end of connecting block 42 is installed with moving block 43, and one side of two connecting grooves 11 is provided with sliding slot 12, and moving block 43 and sliding slot 12 slidingly connect, and two sliding slots 12 are slidably provided with extrusion plate 44, and extrusion plate 44 is located on the side, away from connecting block 42, of moving block 43, and one end of two extrusion plates 44 is slidably penetrated with slide rod 45, and slide rod 45 is installed on operation box 1, and the other end of two extrusion plates 44 is threadedly penetrated with two-way screw rod 46, and two-way screw rod 46 is rotatably installed on operation box 1, and one end of two-way screw rod 46 is installed with knob 461, and rotating knob 461 drives two-way screw rod 46 to rotate, thereby making two extrusion plates 44 away from each other, so that extrusion plate 44 is away from moving block 43, and moving block 43 is no longer extruded by extrusion plate 44 and the inner wall of sliding slot 12, at this moment, clamping block 41 can be moved, and connecting block 42 is slid on connecting groove 11 until the distance between adjacent clamping blocks 41 is suitable for placing electronic components, and inversely rotating knob 461, and then making extrusion plate 44 extrude moving plate 43, thereby fixing the position of clamping block 41, and placing a spacer on clamping block 41, the spacer can be a rubber or plastic component, which can block the movement of electronic components, and has elasticity, and can prevent electronic components from being damaged due to collision, so as to re-plan the space suitable for placing electronic components.

[0033] According to an embodiment of the present application Figures 2-3 、 Figure 8The four corners of the lower side of the operation box 1 are provided with positioning blocks 13, the middle part of the four positioning blocks 13 is provided with a gap 131, the four corners of the upper side of the operation box 1 are provided with positioning grooves 14, the four positioning blocks 13 and the four positioning grooves 14 are matched, the two ends of the operation box 1 are provided with fixing assemblies 6, the fixing assembly 6 comprises a moving block 61, the operation box 1 is provided with two moving blocks 61, the two sides of the operation box 1 are provided with two moving grooves 15, the two moving blocks 61 are slidably connected with the moving grooves 15, the two moving blocks 61 are slidably connected with the limiting rods 62, the limiting rods 62 are fixedly installed on the operation box 1, the outer side of the two ends of the limiting rods 62 is provided with springs 621, one end of the spring 621 is fixedly connected with the moving block 61, the other end of the spring 621 is fixedly connected with the limiting rod 62, the end of the two moving blocks 61 away from the limiting rod 62 is provided with an insertion block 63, the two insertion blocks 63 are provided in a straight triangular prism shape, the two insertion blocks 63 are located in the positioning groove 14, the two operation boxes 1 are stacked, the positioning block 13 is inserted into the positioning groove 14, at the same time, the positioning block 13 extrudes the insertion block 63 downwards, so that the insertion block 63 moves to one side of the limiting rod 62, the moving block 61 extrudes the spring 621, until the free end of the insertion block 63 is located at one side of the gap 131, the spring 621 reversely pushes the moving block 61 to move, so that the insertion block 63 moves into the gap 131, the insertion block 63 prevents the positioning block 13 from moving, so that the position of the positioning block 13 is fixed, so that the plurality of operation boxes 1 are stacked together, the operation box 1 is provided with a pushing groove 16, the pushing groove 16 is located at one side of the moving groove 15, one side of the moving block 61 is provided with a pushing block 611, the pushing block 611 is slidably connected with the pushing groove 16, the pushing block 611 is moved, so that the moving block 61 moves to one side of the limiting rod 62, so that the free end of the insertion block 63 is away from the gap 131, so that the position of the positioning block 13 is released, so that the stacked operation boxes 1 can be separated.

[0034] According to an embodiment of the present application Figures 1-2 、 Figure 9 The four corners of the lower side of the sealing cover 3 are also provided with positioning blocks 13, the middle part of the four positioning blocks 13 is also provided with a gap 131, the sealing cover 3 can be fixed on the uppermost operation box 1, one side of the lower operation box 1 is provided with two fixed blocks 17, the two fixed blocks 17 are rotatably connected with a rotating shaft 171, the outer side of the two ends of the rotating shaft 171 is provided with a torsional spring 172, one end of the torsional spring 172 is fixedly connected with the fixed block 17, the other end of the torsional spring 172 is fixedly connected with the rotating shaft 171, the outer side of the rotating shaft 171 is fixedly provided with a connecting ring 173, the upper side of the connecting ring 173 is provided with a pulling plate 174, the pulling plate 174 is pulled, so that the operation box 1 is moved, the electronic components are transferred, after the hand is released, the torsional spring 172 drives the rotating shaft 171 to rotate, so that the pulling plate 174 is reset, the space occupied by the pulling plate 174 in the electronic component transportation is reduced.

[0035] In the embodiment, the knob 461 is rotated to drive the bidirectional screw rod 46 to rotate, thereby driving the two extrusion plates 44 to move away from each other, so that the extrusion plates 44 move away from the moving block 43, and the moving block 43 is no longer extruded by the extrusion plates 44 and the inner wall of the sliding groove 12. At this time, the clamping block 41 can be moved, and the connecting block 42 is slid on the connecting groove 11 until the distance between the adjacent clamping blocks 41 is suitable for placing the electronic components. The knob 461 is reversely rotated, and then the extrusion plates 44 extrude the moving block 43, so as to fix the position of the clamping block 41. The spacer plate is placed on the clamping block 41, so as to re-plan the space suitable for placing the electronic components.

[0036] The technical scope of the present application is not limited to the above description, and those skilled in the art can make various modifications and changes to the above embodiments without departing from the technical idea of the present application, and these modifications and changes shall belong to the protection scope of the present application.

Claims

1. A transfer device for high-precision electronic component processing, characterized in that, Include: The operation box is provided with multiple groups, the bottom of the operation box is provided with four universal wheels, the top of the operation box is provided with a sealing cover, the inside of the operation box is provided with a separation assembly, the separation assembly includes clamping blocks, the clamping blocks are provided with multiple groups, the clamping blocks are located in the operation box, the two sides of the inner wall of the operation box are provided with connecting grooves, one end of the clamping block is provided with a connecting block, the connecting block and the connecting groove are slidably connected, one end of the connecting block is provided with a moving block, one side of the two connecting grooves is provided with a sliding groove, the moving block and the sliding groove are slidably connected, two sliding grooves are slidably provided with extrusion plates, the extrusion plates are located on the side of the moving block away from the connecting block, one end of the two extrusion plates slidably penetrates a sliding rod, the sliding rod is installed on the operation box, the other end of the two extrusion plates is threaded and penetrates a bidirectional screw rod, the bidirectional screw rod is rotatably installed on the operation box, one end of the bidirectional screw rod is provided with a knob.

2. The transfer device for high-precision electronic component processing according to claim 1, wherein The inside of the operation box is provided with multiple air bags, the two sides of the outside of the operation box are provided with air pumps, the upper end of the air pump is provided with a gas collecting pipe, the upper end of the gas collecting pipe is provided with an air outlet pipe group, the air outlet pipe group penetrates and is installed on the operation box, one side of the air bag is provided with a connecting pipe, the connecting pipe and the air outlet pipe group are connected, and the connecting pipe is located on the upper side of the clamping block.

3. The transfer device for high-precision electronic component processing according to claim 1, wherein The four corners of the lower side of the operation box are provided with positioning blocks, the middle part of the four positioning blocks is provided with a notch, the four corners of the upper side of the operation box are provided with positioning grooves, the four positioning blocks and the four positioning grooves are matched, the two ends of the operation box are provided with a fixing assembly, the fixing assembly includes moving blocks, the moving blocks are provided with two, the two sides of the operation box are provided with two moving grooves, the two moving blocks are slidably connected with the moving grooves, a limiting rod slidably penetrates between the two moving blocks, the limiting rod is fixedly installed on the operation box, springs are sleeved on the outer sides of the two ends of the limiting rod, one end of the spring is fixedly connected with the moving block, the other end of the spring is fixedly connected with the limiting rod, the ends of the two moving blocks away from the limiting rod are provided with insertion blocks, the two insertion blocks are provided in the shape of a right triangular prism, and the two insertion blocks are located in the positioning grooves.

4. The transfer device for high-precision electronic component processing according to claim 3, wherein A pushing groove is formed in the operation box, the pushing groove is located on one side of the moving groove, a pushing block is installed on one side of the moving block, and the pushing block and the pushing groove are slidably connected.

5. The transfer device for high-precision electronic component processing according to claim 3, wherein The four corners of the lower side of the operation box are provided with positioning blocks, the middle part of the four positioning blocks is provided with a notch.

6. The transfer device for high-precision electronic component processing according to claim 1, wherein Two fixed blocks are installed on one side of the lower operation box, a rotating shaft is rotatably installed between the two fixed blocks, torsional springs are sleeved on the outer sides of the two ends of the rotating shaft, one end of the torsional spring is fixedly connected with the fixed block, the other end of the torsional spring is fixedly connected with the rotating shaft, a connecting ring is fixedly sleeved on the outer side of the rotating shaft, and a pull plate is installed on the upper side of the connecting ring.

Citation Information

Patent Citations

  • Transfer device for high-precision electronic component processing

    CN216915943U