A chip inductor arrangement transfer device

Through the combined structure of support bars, support plates, pressure plates and end covers, and the cooperation of electromagnets and magnet blocks, the problem of chip inductors falling during the picking, placing and transferring process is solved, and stable transfer of workpieces and efficient production are achieved.

CN117735076BActive Publication Date: 2025-09-19QINGYUAN ZHENDONG ELECTRONIC TECH CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202311795132.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-12-25
Publication Date
2025-09-19
Estimated Expiration
2043-12-25

AI Technical Summary

Technical Problem

The existing chip inductor arrangement transfer device is prone to workpiece dropping during the pick-up, placement and transfer process, affecting production efficiency.

Method used

It adopts a combined structure of support bars, supporting plates, pressure plates and end covers. With the cooperation of electromagnets and magnet blocks, the supporting plates tilt and support the workpiece under the action of the electromagnets, the pressure plates block the top of the workpiece, and the springs reset the support bars to achieve stable transfer of the workpiece.

Benefits of technology

It effectively prevents the workpiece from detaching during the process of picking up and transferring, improves production efficiency, has a compact structure, and facilitates the picking up and subsequent processing of the workpiece.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN117735076B_ABST
    Figure CN117735076B_ABST
Patent Text Reader

Abstract

The present invention provides a patch inductor arrangement and transfer device, comprising a support bar, a support plate, a pressure plate, and an end cover; a plurality of clamping positions are provided on the top of the side wall of the support bar, a groove cavity is penetrated through the support bar, and the bottom of the clamping position is connected to the groove cavity; the support plate is arranged inside the groove cavity, and the support plate is rotatably mounted on the end cover near the side of the clamping position, and a first electromagnet is installed at the bottom of the groove cavity, and a first magnet block is correspondingly provided at the bottom of the support plate. After being energized, the first electromagnet causes the support plate to swing downward by magnetic attraction, forming a support position inclined inward at the bottom of the clamping position; the pressure plate and the support plate cooperate with each other, and when the support plate swings down, it drives the pressure plate to block the top of the clamping position; a spring for returning the pressure plate is installed on the support bar, so that it disengages from the top of the clamping position and drives the support plate to return to block the bottom of the clamping position; it is in an open state when taking and placing workpieces, which is convenient for taking and placing; during the intermediate transfer process, the bottom and top of the workpiece are limited, effectively preventing the workpiece from falling off.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the field of electronic component arrangement devices, and more particularly to a chip inductor arrangement transfer device. Background Art

[0002] During the production of chip inductors, the chip inductors need to be arranged in multiple processing steps such as winding, soldering, and dispensing. The entire row of arranged chip inductors needs to be transferred so that the arranged chip inductors can be rotated between different processing devices to achieve the required automated operation and improve overall processing efficiency.

[0003] However, the current arrangement and transfer structures mostly simply open a few slots on the support body to accommodate the placement of components, and most of the slots are simple flat structures. Although they can be convenient for taking and placing, they are too loose and may also fall during the transfer process, affecting subsequent processing links and thus affecting the overall production efficiency. This needs to be improved. Summary of the Invention

[0004] In order to overcome the defects of the prior art, the technical problem to be solved by the present invention is to propose a chip inductor arrangement transfer device, which has a novel structure and is in an open state when taking and placing workpieces, making it convenient to take and place; during the transfer process, the bottom and top of the workpiece are limited to effectively prevent the workpiece from falling off.

[0005] To achieve this object, the present invention adopts the following technical solutions:

[0006] The present invention provides a patch inductor arrangement transfer device, comprising a support bar, a support plate, a pressing plate, and an end cover; a plurality of clamping positions are provided on the top of one side wall of the support bar, a groove cavity penetrating both ends is provided on the support bar, and the bottom of the clamping position is connected to the groove cavity; the end cover is installed on the support bar, and the end cover blocks the two ends of the groove cavity; the support plate is arranged inside the groove cavity, and the support plate is rotatably mounted on the end cover near one side of the clamping position, and a first electromagnet is installed at the bottom of the groove cavity, and a first magnet block is correspondingly provided at the bottom of the support plate. The first electromagnet has a magnetic force opposite to that of the first magnet block after being energized, and the support plate is swung downward by magnetic attraction, and the support plate is separated from the clamping position, forming a supporting part inclined inwardly at the bottom of the clamping position; the pressing plate is installed on the top of the support bar, and the pressing plate and the support plate are linked to each other. When the support plate swings down, it will drive the pressing plate to move toward one side of the clamping position to block the top of the clamping position; a spring is installed on the support bar, and the spring is used to reset the pressing plate, so that the pressing plate is separated from the top of the clamping position and drives the support plate to move upward to block the bottom of the clamping position.

[0007] In a preferred technical solution of the present invention, the rotation and swing angle of the support plate is 10° to 15°, and the distance between the top surface of the support plate rotated and swung to the bottom and the bottom of the clamping position is less than 2 / 3 of the height of the workpiece.

[0008] In a preferred technical solution of the present invention, the cross-section of the groove cavity is a fan-shaped structure, one side of the center of the groove cavity is close to the bottom of the clamping position, and the cavity wall on one side of the center of the groove cavity is an arc-shaped structure; one side of the support plate is a corresponding arc-shaped structure, and one side of the support plate rotates close to the cavity wall of the groove cavity; the end face of the support plate is provided with a socket at the center of rotation; the two ends of the end cover are correspondingly installed with rotating shaft parts, and the rotating shaft parts are correspondingly provided with plug posts, the shape of the plug posts is adapted to the shape of the plug posts, and the support plate is rotatably mounted between the two rotating shaft parts.

[0009] In a preferred technical solution of the present invention, the side of the support plate away from the locking position is an outward convex arc structure, and the side wall of the support plate slides against the other wall of the slot cavity; the first electromagnet is embedded in the bottom wall of the slot cavity, and the first electromagnet is arranged on the side close to the center toward the locking position; the bottom surface of the support plate is correspondingly embedded with a first magnet block.

[0010] In a preferred technical solution of the present invention, a plurality of slide grooves are provided on the top of the support bar, and the end of the slide groove is open away from the locking position; a plurality of sliders are correspondingly provided at the bottom of the pressure plate, the sliders are adapted to the shape of the slide grooves, and the sliders are slidably locked in the slide grooves; a guide rod is fixed to the end face of the slide groove in the middle, and a spring is sleeved on the guide rod; a guide hole is provided on the corresponding slider, and the guide hole is adapted to the shape of the guide rod, and the spring is arranged between the slider and the end face of the slide groove; a second magnet block is embedded on the wall surface of the slider at both ends away from the locking position, and a second electromagnet is correspondingly embedded on the end cover. After the second electromagnet is powered on, it has the same magnetic attraction as the second magnet block, providing a thrust of the compression spring to the slide.

[0011] In a preferred technical solution of the present invention, the support plate and the pressure plate are connected by a pulling rope; when the support plate swings downward, the pressure plate is dragged to the side of the locking position; when the spring pushes the pressure plate to reset, the support plate is driven to swing upward.

[0012] In a preferred technical solution of the present invention, a first guide ring is fixedly provided at both ends of the bottom surface of the pressure plate, the first guide ring corresponds to the position of the slider at both ends, and the first guide ring is located on the side of the center of the pressure plate close to the locking position; a second guide ring is fixedly provided on the end surface of the slide groove at both ends, and the position of the second guide ring corresponds to the position of the first guide ring; one end of the pulling rope is fixed on the slider, and the pulling rope passes through the first guide ring and the second guide ring in turn, and the other end of the pulling rope is fixed to the top of the support plate away from the locking position; when the support plate swings downward, the pulling rope is dragged to provide a pulling force for the pressure plate to move toward the locking position.

[0013] In a preferred technical solution of the present invention, the end cover comprises two cover plates which are arranged opposite to each other, and the two cover plates are fixedly connected by a frame bar, the length of the frame bar is adapted to the length of the support bar, the cover plates are respectively arranged at both ends of the support bar, and are fixed by bolts, and the cover plates block the two ends of the groove cavity; a third threaded hole is provided in the cover plate corresponding to the insertion hole, the rotating shaft is threadedly connected and installed at the third threaded hole, and the plug is extended into the insertion hole; the position of the frame bar corresponds to the position of the slide groove, the frame bar blocks the end of the slide groove, and the second electromagnet is correspondingly embedded on the wall surface of the frame bar close to the slide groove.

[0014] In a preferred technical solution of the present invention, a third electromagnet is embedded in the bottom surface of the slot cavity, and the third electromagnet is located on the side of the first electromagnet away from the locking position, and a third magnet block is correspondingly embedded in the bottom surface of the support plate; after the third electromagnet is energized, it has the same magnetism as the third magnet block, providing an upward swinging thrust to the support plate.

[0015] The beneficial effects of the present invention are:

[0016] The present invention provides a patch inductor arrangement and transfer device, comprising a support bar, a support plate, a pressure plate, and an end cover; a plurality of clamping positions are provided on the top of one side wall of the support bar, providing a plurality of locations for clamping workpieces; a groove cavity running through both ends is provided on the support bar, and the bottom of the clamping position is connected to the groove cavity; the end cover blocks and blocks the two ends of the groove cavity; the support plate is arranged inside the groove cavity, and the support plate is rotatably mounted on the end cover near the side of the clamping position, and a first electromagnet is installed at the bottom of the groove cavity, and a first magnet block is correspondingly provided at the bottom of the support plate. After the first electromagnet is energized, it has a magnetism opposite to that of the first magnet block, so that the support plate swings downward by magnetic attraction, and the support plate is disengaged from the clamping position, forming a support position inclined inwardly at the bottom of the clamping position; the support plate swings and tilts downward, so that a downwardly concave portion is formed at the bottom of the clamping position, and one side of the workpiece placed in the clamping position is clamped downward and will not slide out easily; the combination of the electromagnet and the magnet block can reduce space occupation and make the overall structure more compact;

[0017] The pressure plate is installed on the top of the support bar. The pressure plate and the support plate work in conjunction. When the support plate swings down, it will drive the pressure plate to move to the side of the card position to block the top of the card position to prevent the workpiece from flying out or popping out from the top.

[0018] A spring is installed on the support bar. The spring is used to reset the pressure plate, so that the pressure plate is separated from the top of the card position and drives the support plate to move upward to block the bottom of the card position, so that the card position area can be restored to a flat state and position and be in an open state, which can facilitate the removal and placement of workpieces and cooperate with other device components. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 It is a schematic diagram of the three-dimensional structure of a chip inductor arrangement transfer device provided in a specific embodiment of the present invention when picking up and placing a workpiece;

[0020] Figure 2 yes Figure 1 Cross-sectional view of the corresponding pulling rope part in the state;

[0021] Figure 3 yes Figure 1 Cross-sectional view of the corresponding spring part in the state;

[0022] Figure 4 1 is a schematic diagram of the three-dimensional structure of a chip inductor arrangement transfer device in a transfer state provided in a specific embodiment of the present invention;

[0023] Figure 5 yes Figure 4 Cross-sectional view of the corresponding pulling rope part in the state;

[0024] Figure 6 1 is a schematic diagram of a three-dimensional expanded structure of a chip inductor arrangement transfer device provided in a specific embodiment of the present invention;

[0025] Figure 7 is a schematic diagram of the three-dimensional structure of the support bar provided in a specific embodiment of the present invention from a first perspective;

[0026] Figure 8 is a schematic diagram of the three-dimensional structure of the support bar provided in a specific embodiment of the present invention from a second perspective;

[0027] Figure 9 is a schematic diagram of the three-dimensional structure of a support plate provided in a specific embodiment of the present invention;

[0028] Figure 10 is a schematic diagram of the three-dimensional structure of a pressing plate provided in a specific embodiment of the present invention;

[0029] Figure 11 It is a schematic diagram of the three-dimensional structure of the end cover provided in a specific embodiment of the present invention.

[0030] In the picture:

[0031] 100, support bar; 110, latch; 120, slot; 130, first electromagnet; 140, slide; 150, guide rod; 160, second guide ring; 170, third electromagnet;

[0032] 200, support plate; 210, first magnet block; 220, jack; 230, third magnet block;

[0033] 300, pressing plate; 310, slider; 311, guide hole; 320, second magnet block; 330, first guide ring;

[0034] 400, end cover; 410, cover plate; 420, frame bar; 430, second electromagnet;

[0035] 500, spring; 600, rotating shaft; 700, pulling rope. DETAILED DESCRIPTION

[0036] The technical solution of the present invention will be further described below with reference to the accompanying drawings and through specific implementation methods.

[0037] like Figures 1 to 5 As shown, a specific embodiment of the present invention discloses a patch inductor arrangement transfer device, including a support bar 100, a support plate 200, a pressure plate 300, and an end cover 400; a plurality of clamping positions 110 are provided on the top of one side wall of the support bar 100, and a groove cavity 120 passing through both ends is provided on the support bar 100, and the bottom of the clamping position 110 is connected to the groove cavity 120; the end cover 400 is installed on the support bar 100, and the end cover 400 blocks and blocks the two ports of the groove cavity 120; the support plate 200 is arranged inside the groove cavity 120, and the support plate 200 is rotatably mounted on the end cover 400 near the side of the clamping position 110, and a first electromagnet 130 is installed at the bottom of the groove cavity 120. A first magnet block 210 is provided at the bottom. After the first electromagnet is energized, it has a magnetism opposite to that of the first magnet block. The support plate is swung downward by magnetic attraction, and the support plate is separated from the locking position, forming a support part inclined inward at the bottom of the locking position; the pressure plate 300 is installed on the top of the support bar 100, and the pressure plate 300 cooperates with the support plate 200. When the support plate 200 swings down, it will drive the pressure plate 300 to move to the side of the locking position 110 to block the top of the locking position 110; a spring 500 is installed on the support bar 100, and the spring 500 is used to reset the pressure plate 300, so that the pressure plate 300 is separated from the top of the locking position 110, and drives the support plate 200 to move upward to block the bottom of the locking position 110.

[0038] The above-mentioned chip inductor arrangement transfer device includes a support bar, a support plate, a pressure plate, and an end cover; a plurality of clamping positions are provided on the top of one side wall of the support bar, providing a plurality of locations for clamping workpieces; a groove cavity running through both ends is provided on the support bar, and the bottom of the clamping position is connected to the groove cavity; the end cover blocks and blocks the two ends of the groove cavity; the support plate is arranged inside the groove cavity, and the support plate is rotatably mounted on the end cover near the side of the clamping position, and a first electromagnet is installed at the bottom of the groove cavity, and a first magnet block is correspondingly provided at the bottom of the support plate. After the first electromagnet is energized, it has a magnetism opposite to that of the first magnet block, and the support plate is swung downward by magnetic attraction, and the support plate is disengaged from the clamping position, forming a support position inclined inwardly at the bottom of the clamping position; the support plate swings downward and tilts, so that a downwardly concave portion is formed at the bottom of the clamping position, and one side of the workpiece placed in the clamping position is clamped downward and will not slide out easily; the combination of the electromagnet and the magnet block can reduce space occupancy and make the overall structure more compact;

[0039] The pressure plate is installed on the top of the support bar. The pressure plate and the support plate work in conjunction. When the support plate swings down, it will drive the pressure plate to move to the side of the card position to block the top of the card position to prevent the workpiece from flying out or popping out from the top.

[0040] A spring is installed on the support bar. The spring is used to reset the pressure plate, so that the pressure plate is separated from the top of the clamping position and drives the support plate to move upward to block the bottom of the clamping position, so that the clamping area can be restored to a flat state and position and be in an open state, which can facilitate the removal and placement of workpieces and cooperate with other device components.

[0041] More specifically, in actual use, when taking or placing a workpiece, the first electromagnet is in a power-off state, and the spring pushes the pressing plate to maintain the position of the support plate blocking the bottom of the clamping position, so that the bottom of the clamping position is in a flat state to facilitate the workpiece taking or placing operation;

[0042] When intermediate transfer is required, the first electromagnet is energized and turned on, generating magnetic force to magnetically attract the first magnet block, driving the support plate to swing downward, and the bottom of the support plate is separated from the bottom of the card position, thereby forming a downward inclined position, and the workpiece is placed downward; and the support plate simultaneously drives the pressure plate to move toward the top of the card position, blocking the top of the card position, thereby limiting the bottom and top of the card position, and effectively preventing the workpiece from detaching.

[0043] Furthermore, the rotation and swing angle of the support plate is between 10° and 15°, and the distance between the top surface of the support plate when rotated and swung to the bottom and the bottom of the clamping position is less than 2 / 3 of the height of the workpiece. Limiting the downward swing angle of the support plate can prevent the hole formed at the bottom of the clamping position from being too large, and prevent the workpiece from entering the groove cavity from the bottom of the clamping position, ensuring that the workpiece is always inside the clamping position, and facilitating subsequent reset adjustment.

[0044] Furthermore, if Figure 2 、 Figure 5 As shown, the cross section of the groove cavity 120 is a fan-shaped structure, and one side of the center of the groove cavity 120 is close to the bottom of the clamping position 110, and the cavity wall on one side of the center of the groove cavity is an arc-shaped structure; one side of the support plate 200 is a corresponding arc-shaped structure, and one side of the support plate 200 rotates in close contact with the cavity wall of the groove cavity 120; it can be tightly fitted so that the bottom of the clamping position is flush with the flat top surface of the support plate, so that the placed workpiece is in a flat position; and one side of the support plate rotates in close contact with the cavity wall of the groove cavity, which can serve as a rotating support position, further limiting the swing of the support plate; as shown Figure 9 As shown, the end surface of the support plate 200 is provided with a socket 220 at the rotation center; Figure 11As shown, the two ends of the end cover 400 are correspondingly installed with a rotating shaft 600, and the rotating shaft is correspondingly provided with a column, the shape of the column is adapted to the shape of the socket, and the support plate 200 is rotatably mounted between the two rotating shafts 600; the rotation of the support plate is further limited by the detachable rotating shaft so that it swings according to the required rotation center to perform the required coordination, and it can also be easily disassembled, repaired and replaced.

[0045] Furthermore, the side of the support plate 200 away from the locking position 110 is an outward convex arc-shaped structure, and the side wall of the support plate 200 slides against the other groove wall of the groove cavity 120, which can further limit the movement of the support plate; Figure 5 As shown, the first electromagnet 130 is embedded in the bottom wall of the slot cavity 120, and the first electromagnet 130 is arranged on the side close to the center and biased towards the clamping position 110; the bottom surface of the support plate 200 is correspondingly embedded with the first magnet block 210, and can achieve a tight fit, and the overall structure is more compact, especially when the support plate is pushed and moved to a flat state, the top surface of the support plate is flush with the bottom of the clamping position, which makes it convenient for the workpiece to be in a square position and facilitates subsequent picking and placing.

[0046] Further, if Figure 3 , Figures 7 to 11 As shown, the top of the support bar 100 is provided with a plurality of slide grooves 140, and the end of the slide grooves 140 away from the locking position 110 is open; the bottom of the pressure plate 300 is correspondingly provided with a plurality of sliders 310, which are adapted to the shape of the slide grooves, and the sliders 310 are slidably locked in the slide grooves 130; the movement direction of the pressure plate can be further limited, and it can only move along the width direction of the support bar;

[0047] A guide rod 150 is fixed to the end surface of the middle chute, and a spring 500 is sleeved on the guide rod 150; a corresponding guide hole 311 is provided on the slider 310, and the guide hole 311 is adapted in shape to the guide rod 150. The spring is mounted between the slider and the end surface of the chute; providing a location for the spring to be clamped and supported, effectively preventing the spring from detaching, and also facilitating the spring to provide the required reset pushing force to the pressure plate;

[0048] A second magnet block 320 is embedded on the wall surface of the slider at both ends away from the locking position, and a second electromagnet 430 is correspondingly embedded on the end cover 400. After the second electromagnet is energized, it has the same magnetic attraction as the second magnet block, providing a thrust of the compression spring to the slide seat; by providing the second electromagnet and the second magnet block, the thrust of the spring is further increased. The second electromagnet is energized synchronously with the first electromagnet, so that the pressure plate can move in the locking direction and the support plate can swing downward smoothly, thereby forming an inclined portion at the top of the locking position and a blocking limit at the top of the locking position;

[0049] Furthermore, the slide groove is a T-slot or dovetail groove structure, and the slider is slidably clamped in the slot, which does not affect the movement and can also prevent the slider from detaching from the slide groove, thereby preventing the pressure plate from detaching from the slot, ensuring that the pressure plate slides close to the top surface of the support bar.

[0050] Further, if Figure 2 、 Figure 5 As shown, the support plate 200 and the pressure plate 300 are connected by a pulling rope 700; when the support plate 200 swings downward, the pressure plate 300 is dragged to move toward the side of the locking position 110; when the spring 500 pushes the pressure plate 300 to reset, it drives the support plate 200 to swing upward, and the linkage between the support plate and the pressure plate is achieved through the pulling rope, which has a simple structure and low cost.

[0051] Further, if Figure 8 、 Figure 10 As shown, a first guide ring 330 is fixedly provided at both ends of the bottom surface of the pressure plate 300, and the first guide ring 330 corresponds to the position of the slider 310 at both ends, and the first guide ring 330 is located on the side of the center of the pressure plate 300 close to the locking position 110; a second guide ring 160 is fixedly provided on the end surface of the slide groove at both ends, and the position of the second guide ring 160 corresponds to the position of the first guide ring 330; one end of the traction rope 700 is fixed on the slider 310, and the traction rope 700 passes through the first guide ring 330 and the second guide ring 160 in sequence, and the other end of the traction rope 700 is fixed to the top of the support plate 200 away from the locking position 110; the position of the traction rope is limited by setting the first guide ring and the second guide ring, so that the direction of the dragging force is adapted, so that when the support plate 200 swings downward, the traction rope 700 is dragged to provide the pressure plate 300 with a pulling force to move toward the locking position 110.

[0052] Furthermore, both ends of the pulling rope are fixed with bolts, a first threaded hole is provided on the side wall of the slider close to the first guide ring, and a second threaded hole is provided on the top of the side of the support plate away from the clamping position, and the two ends of the pulling rope are respectively installed at the first threaded hole and the second threaded hole by bolts; an assembled structure is adopted to facilitate the layout of the pulling rope and the connection between the slider and the support plate; the port edges of the first guide ring and the second guide ring are provided with rounded corners, which can facilitate the threading of the pulling rope, prevent the edges and corners from scratching the pulling rope, and prevent the pulling rope from breaking.

[0053] Further, if Figure 4 、 Figure 11As shown, the end cover 400 includes two cover plates 410 arranged opposite to each other, and the two cover plates 410 are fixedly connected by a frame bar 420. The length of the frame bar 420 is adapted to the length of the support bar 100. The cover plates 410 are respectively arranged at both ends of the support bar 100. Fourth threaded holes are provided at the four corners of the two end surfaces of the support bar. A plurality of through holes are correspondingly provided on the cover plates. The cover plates are fixedly installed on the end surfaces of the support bar by bolts, and the cover plates 410 block the two ends of the groove cavity 120; a third threaded hole is provided on the cover plate corresponding to the insertion hole, and the rotating shaft is threadedly installed at the third threaded hole, and the plug column extends into the insertion hole; the assembly structure is adopted, which can facilitate the processing and production of various structural components and also facilitate the installation and coordination between the end cover and the support bar;

[0054] The position of the frame bar 420 corresponds to the position of the slide groove 140. The frame bar 420 blocks the end of the slide groove 140. The second electromagnet 430 is correspondingly embedded on the wall surface of the frame bar 420 close to the slide groove 140. The frame bar can block the end of the slide groove to prevent the pressure plate from detaching.

[0055] Furthermore, if Figure 2 As shown, a third electromagnet 170 is embedded in the bottom surface of the slot cavity 120, and the third electromagnet 170 is located on the side of the first electromagnet 130 away from the locking position 110, and a third magnet block 230 is correspondingly embedded in the bottom surface of the support plate 200; after the third electromagnet is energized, it has the same magnetism as the third magnet block, providing an upward swinging thrust to the support plate, providing auxiliary cooperation for the spring, ensuring that the support plate can swing upward and return to the state of blocking the bottom of the locking position, and the pressure plate is completely separated from the top of the locking position, so that the entire locking position is restored to a flat and open position for taking and placing workpieces.

[0056] The present invention is described through preferred embodiments. Those skilled in the art will appreciate that various modifications or equivalent substitutions may be made to these features and embodiments without departing from the spirit and scope of the present invention. The present invention is not limited to the specific embodiments disclosed herein; other embodiments falling within the scope of the claims of this application are intended to be protected by the present invention.

Claims

1. A chip inductor arrangement transfer device, characterized by: Including support bars, supporting plates, pressing plates and end covers; A plurality of latches are provided on the top of one side wall of the support bar, and a groove cavity is provided on the support bar running through both ends, and the bottom of the latches is connected to the groove cavity; the end cover is installed on the support bar, and the end cover blocks the two ends of the groove cavity; The support plate is arranged inside the groove cavity, and is rotatably mounted on the end cover near the locking position. A first electromagnet is installed at the bottom of the groove cavity, and a first magnet block is correspondingly provided at the bottom of the support plate. When the first electromagnet is energized, it has a magnetic force opposite to that of the first magnet block, and the support plate is swung downward by magnetic attraction, so that the support plate is released from the locking position, and a support portion inclined inwardly is formed at the bottom of the locking position; The pressure plate is installed on the top of the support bar. The pressure plate and the supporting plate work in conjunction. When the supporting plate swings down, it will drive the pressure plate to move to the side of the card position to block the top of the card position. A spring is installed on the support bar, and the spring is used to reset the pressure plate, so that the pressure plate is separated from the top of the card position and drives the support plate to move upward to block the bottom of the card position.

2. The chip inductor arrangement transfer device according to claim 1, characterized in that: The rotation and swing angle of the support plate is 10° to 15°, and the distance between the top surface of the support plate when rotated and swung to the bottom and the bottom of the clamping position is less than 2 / 3 of the height of the workpiece.

3. The chip inductor arrangement transfer device according to claim 2, characterized in that: The cross section of the groove cavity is a fan-shaped structure, the center side of the groove cavity is close to the bottom of the clamping position, and the cavity wall on the side of the center of the groove cavity is an arc-shaped structure; one side of the supporting plate is a corresponding arc-shaped structure, and the side of the supporting plate rotates closely against the cavity wall of the groove cavity; the end surface of the supporting plate is provided with a socket at the rotation center; Rotating shafts are correspondingly installed at both ends of the end cover, and plug posts are correspondingly provided on the rotating shafts. The shape of the plug posts matches the shape of the sockets, and the support plate is rotatably mounted between the two rotating shafts.

4. The chip inductor arrangement transfer device according to claim 3, characterized in that: The side of the support plate away from the clamping position is an outward convex arc structure, and the side wall of the support plate slides against the other groove wall of the groove cavity; The first electromagnet is embedded in the bottom wall of the slot cavity, and is arranged on a side close to the center and biased towards the clamping position; the first magnet block is correspondingly embedded on the bottom surface of the supporting plate.

5. The chip inductor arrangement transfer device according to claim 4, characterized in that: The top of the support bar is provided with a plurality of slide grooves, and the end of the slide groove away from the card position is open; the bottom of the pressure plate is provided with a plurality of sliders, which are adapted to the shape of the slide grooves and are slidably locked in the slide grooves; A guide rod is fixed on the end surface of the middle chute, and a spring is sleeved on the guide rod; a guide hole is provided on the corresponding slider, and the guide hole is adapted to the shape of the guide rod, and the spring is mounted between the slider and the end surface of the chute; A second magnet block is embedded on the wall surface of the slider at both ends away from the locking position, and a second electromagnet is correspondingly embedded on the end cover. After the second electromagnet is powered on, it has the same magnetic attraction as the second magnet block, providing thrust of the compression spring to the slide.

6. The chip inductor arrangement transfer device according to claim 5, characterized in that: The supporting plate and the pressing plate are connected by a pulling rope; When the support plate swings downward, drag the pressure plate to move toward the locking position; When the spring pushes the plate back to its original position, it drives the supporting plate to swing upward.

7. The chip inductor arrangement transfer device according to claim 6, characterized in that: The two ends of the bottom surface of the pressing plate are fixed with first guide rings, which correspond to the positions of the sliders at both ends. The first guide rings are located on the side of the center of the pressing plate close to the locking position; The end surfaces of the slide grooves at both ends are fixed with second guide rings, and the positions of the second guide rings correspond to those of the first guide rings; One end of the pulling rope is fixed on the slider, the pulling rope passes through the first guide ring and the second guide ring in sequence, and the other end of the pulling rope is fixed on the top of the supporting plate away from the clamping position; When the support plate swings downward, the pulling rope is pulled to provide the pressing plate with a pulling force to move toward the locking position.

8. The chip inductor arrangement transfer device according to claim 7, characterized in that: The end cover comprises two oppositely arranged cover plates, which are fixedly connected by a frame bar. The length of the frame bar matches the length of the support bar. The cover plates are respectively arranged at both ends of the support bar and fixed by bolts. The cover plates seal the two ends of the slot cavity. The cover plate is provided with a third threaded hole corresponding to the insertion hole, the shaft is threadedly connected and installed at the third threaded hole, and the insertion column extends into the insertion hole; The position of the frame bar corresponds to the position of the chute, the frame bar blocks and blocks the end of the chute, and the second electromagnet is correspondingly embedded on the wall surface of the frame bar close to the chute.

9. The chip inductor arrangement transfer device according to claim 8, characterized in that: A third electromagnet is embedded in the bottom surface of the slot cavity, and the third electromagnet is located on the side of the first electromagnet away from the clamping position. A third magnet block is correspondingly embedded in the bottom surface of the support plate. When the third electromagnet is energized, it has the same magnetism as the third magnet block, providing a thrust for the support plate to swing upward.

Citation Information

Patent Citations

  • Mechanism is arranged to paster inductance

    CN204846649U

  • Surface-mounted inductor positioning device

    CN211858402U