Automatic diode feeding device

By designing an automatic diode feeding device, the problem of slow diode feeding speed was solved, enabling batch feeding of diodes and improving production efficiency.

CN224091053UActive Publication Date: 2026-04-07SUZHOU XTONG PHOTOVOLTAIC TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-17
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing diode feeding speed is slow, and traditional feeding structures are difficult to achieve batch feeding.

Method used

Design an automatic diode feeding device, including a hopper, a tube misalignment conveying mechanism, a tube receiving and flipping mechanism, a diode slide mechanism, and a diode direct vibration feeding mechanism. Through the cooperation of these mechanisms, the tube can be taken out, flipped, and the diodes can be fed in batches.

Benefits of technology

This enabled batch feeding of diodes, improving production efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224091053U_ABST
    Figure CN224091053U_ABST
Patent Text Reader

Abstract

An automatic diode feeding device comprises a rack, and the rack is provided with a stock bin, a material pipe staggered conveying mechanism, a material pipe receiving and overturning mechanism, a diode sliding way mechanism, a diode direct vibration feeding mechanism and a diode receiving mechanism. The material bin is used for stacking material pipes, the material pipe dislocation conveying mechanism is used for taking out the material pipes from the material bin and conveying the material pipes to the material pipe receiving and overturning mechanism, and the material pipe receiving and overturning mechanism is used for receiving the material pipes conveyed out by the material pipe dislocation conveying mechanism and overturning the material pipes to be in butt joint with the diode sliding way mechanism. The diode slideway mechanism is used for guiding the diodes in the material pipe into the diode direct vibration feeding mechanism, and the diode direct vibration feeding mechanism is used for feeding the diodes to the diode receiving mechanism. According to the scheme, the material pipe staggered conveying mechanism and the material pipe receiving and overturning mechanism are matched with each other, the stacked material pipes can be taken out and overturned to the discharging state, batch feeding of diodes can be achieved through the structure, and great significance is achieved for improving the production efficiency.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model relates to diode feeding equipment field, especially in kind diode automatic feeding device. BACKGROUND

[0002] Diode is one of the earliest born semiconductor devices, and its application is very extensive. Especially in various electronic circuits, diodes and resistors, capacitors, inductors and other components are connected reasonably to form circuits with different functions, which can realize functions such as AC rectification, modulation signal detection, amplitude limiting and clamping, and power supply voltage stabilization. Before diode assembly, diodes need to be fed, and diode feeding mechanism will be used in this process.

[0003] The existing diode feeding speed is slow, and batch feeding is usually carried out by using a tube, but the tube needs to be inclined to be set to feed, and it is difficult to realize feeding by using the traditional feeding structure.

[0004] Therefore, in view of the deficiencies of the prior art, it is necessary to design a diode automatic feeding device to solve the above problems. INVENTION CONTENTS

[0005] In order to overcome the deficiencies of the prior art, the utility model aims at providing a kind of diode automatic feeding device.

[0006] In order to achieve the above object and other related purposes, the technical scheme provided by the utility model is: a kind of diode automatic feeding device, including rack, the rack is equipped with hopper, tube misplacement conveying mechanism, tube receiving turnover mechanism, diode chute mechanism, diode direct vibration feeding mechanism and diode receiving mechanism;The hopper is used to stack the tube, the tube misplacement conveying mechanism is used to take out the tube from the hopper and send to the tube receiving turnover mechanism, the tube receiving turnover mechanism is used to receive the tube sent out by the tube misplacement conveying mechanism, and the tube is turned over to be butt joint with the diode chute mechanism, the diode chute mechanism is used to guide the diode in the tube to the diode direct vibration feeding mechanism, and the diode direct vibration feeding mechanism is used to send the diode to the diode receiving mechanism.

[0007] The preferred technical scheme is: the hopper is composed of two groups of longitudinally opposite interval arranged troughs, the outlet side bottom of two groups of the trough is equipped with an opening, and two openings constitute the discharge port of the hopper.

[0008] The preferred technical solution is as follows: the material tube misalignment conveying mechanism consists of a screw transfer module and a receiving arm assembly. The screw transfer module is fixed on the frame and is used to drive the receiving arm assembly to reciprocate laterally between the two sets of material troughs. The receiving arm assembly consists of two sets of receiving arms arranged in parallel at a lateral interval. The two sets of receiving arms are provided with corresponding receiving troughs, and the receiving troughs are matched with the material tube.

[0009] The preferred technical solution is as follows: the diode slide mechanism consists of a fixed slide and a slide support, the slide support is fixed on the frame and is used to support the fixed slide to be inclined longitudinally.

[0010] A preferred technical solution is as follows: the tube receiving and flipping mechanism comprises a flipping frame, a tube feeding assembly, a tube clamping assembly, a diode-adjustable slide rail, and a flipping drive assembly; one end of the flipping frame is hinged to the slide rail support; the flipping drive assembly is disposed in the frame and is used to drive the flipping frame to switch between horizontal and inclined states; the diode-adjustable slide rail is disposed on the side of the flipping frame near the slide rail support; the discharge end of the diode-adjustable slide rail corresponds to the feed end of the fixed slide rail; and the tube clamping assembly is disposed on the flipping frame. On the side away from the slide rail support, the material tube clamping assembly consists of a clamping cylinder, an upper clamping block, and a lower clamping block. The clamping cylinder is fixed to the top side of the flipping frame, and the lower clamping block is fixed to the bottom side of the flipping frame. The clamping cylinder is used to drive the upper clamping block to approach or move away from the lower clamping block to clamp or release the material tube. The material tube pushing assembly consists of a pushing cylinder and a pushing block. The pushing cylinder is fixed to the frame and is used to drive the pushing block to push the material tube on the receiving arm assembly to the position corresponding to the feed end of the diode adjustable slide rail.

[0011] A preferred technical solution is as follows: the adjustable diode slide is composed of an adjusting cylinder, an upper slide, and a lower slide. The adjusting cylinder is fixed to the top side of the flip frame, the lower slide is fixed to the bottom side of the flip frame, and the upper slide is located on the top side of the lower slide. The adjusting cylinder is used to drive the upper slide to approach or move away from the lower slide to clamp or release the diode.

[0012] The preferred technical solution is as follows: the flipping drive assembly consists of a flipping drive cylinder and a hinge, the flipping drive cylinder is fixed in the frame, and the telescopic end of the flipping drive cylinder is hinged to the bottom side of the flipping frame through the hinge.

[0013] The preferred technical solution is as follows: the diode direct vibration feeding mechanism consists of a conveying slide and a direct vibration module, the conveying slide is disposed on the direct vibration module and the feeding end is correspondingly disposed with the discharging end of the fixed slide.

[0014] The preferred technical solution is as follows: the diode receiving mechanism consists of a diode receiving groove and a receiving bracket. The diode receiving groove is correspondingly arranged with the discharge end of the conveying slide and is supported and fixed by the receiving bracket.

[0015] Due to the application of the above technical solution, the beneficial effects of this utility model are as follows:

[0016] The present invention proposes an automatic diode feeding device, which, through the cooperation of a tube misalignment conveying mechanism and a tube receiving and flipping mechanism, can remove and flip stacked tubes to the discharge state. This structure enables batch feeding of diodes and is of great significance for improving production efficiency. Attached Figure Description

[0017] Fig. 1 This is a schematic diagram of the feeding device involved in this utility model.

[0018] Fig. 2 This is a schematic diagram of the material tube receiving and flipping mechanism involved in this utility model. Detailed Implementation

[0019] The following specific embodiments illustrate the implementation of this utility model. Those skilled in the art can easily understand other advantages and effects of this utility model from the content disclosed in this specification.

[0020] Please see Figs. 1-2 It should be noted that in the description of this utility model, the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship commonly used when the utility model product is in use. These terms are used only for the convenience of describing this utility model and for simplifying the description, and do not indicate or imply that the device or component referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. Furthermore, the terms "first," "second," and "third," etc., are only used to distinguish descriptions and should not be construed as indicating or implying relative importance. The terms "horizontal," "vertical," and "suspended," etc., do not indicate that the component must be absolutely horizontal or suspended, but rather that it can be slightly tilted. For example, "horizontal" simply means that its direction is more horizontal than "vertical," and does not mean that the structure must be completely horizontal, but can be slightly tilted.

[0021] In the description of this utility model, it should also be noted that, unless otherwise explicitly specified and limited, the terms "set," "install," "connect," and "link" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0022] Example:

[0023] like Figs. 1-2 As shown, according to an overall technical concept of this utility model, an automatic diode feeding device is provided, including a frame 1. The frame 1 is provided with a hopper 2, a tube misalignment conveying mechanism 3, a tube receiving and flipping mechanism 4, a diode slide mechanism 5, a diode direct vibration feeding mechanism 6, and a diode receiving mechanism 7. The hopper 2 is used to stack tubes. The tube misalignment conveying mechanism 3 is used to take the tubes out of the hopper 2 and send them to the tube receiving and flipping mechanism 4. The tube receiving and flipping mechanism 4 is used to receive the tubes sent out by the tube misalignment conveying mechanism 3 and flip the tubes to dock with the diode slide mechanism 5. The diode slide mechanism 5 is used to guide the diodes in the tubes to the diode direct vibration feeding mechanism 6. The diode direct vibration feeding mechanism 6 is used to send the diodes to the diode receiving mechanism 7.

[0024] like Figs. 1-2 As shown, in an exemplary embodiment of this utility model, the hopper 2 is composed of two sets of material troughs arranged longitudinally and relatively spaced apart. Each set of material troughs has an opening 21 at the bottom of its discharge side, and the two openings constitute the discharge port of the hopper.

[0025] like Figs. 1-2 As shown, in an exemplary embodiment of this utility model, the material tube misalignment conveying mechanism 3 is composed of a screw transfer module 31 and a receiving arm assembly 32. The screw transfer module 31 is fixed on the frame 1 and is used to drive the receiving arm assembly 32 to reciprocate laterally between two sets of material troughs. The receiving arm assembly 32 is composed of two sets of receiving arms arranged in parallel at a lateral interval. The two sets of receiving arms are provided with corresponding receiving grooves 321, and the receiving grooves 321 are matched with the material tube.

[0026] It should be noted that a recycling frame 8 is provided on the frame 1 and located at the end of the receiving arm assembly 32. After the diode in the tube is discharged, the tube receiving and flipping mechanism 4 is reset, and the screw transfer module 31 drives the receiving arm assembly 32 to push the tube out of the frame 1 and send it to the recycling frame 8.

[0027] like Figs. 1-2As shown, in an exemplary embodiment of this utility model, the diode slide mechanism 5 consists of a fixed slide 51 and a slide support 52. The slide support 52 is fixed on the frame 1 and is used to support the fixed slide 51 to be inclined longitudinally.

[0028] like Figs. 1-2 As shown, in an exemplary embodiment of this utility model, the tube receiving and flipping mechanism 4 comprises a flipping frame 41, a tube feeding assembly 42, a tube clamping assembly 43, a diode-adjustable slide rail 44, and a flipping drive assembly (not shown). One end of the flipping frame 41 is hinged to the slide rail support 52. The flipping drive assembly is disposed in the frame 1 and is used to drive the flipping frame 41 to switch between horizontal and inclined states. The diode-adjustable slide rail 44 is disposed in the flipping frame 41 on the side near the slide rail support 52. The discharge end of the diode-adjustable slide rail 44 is correspondingly disposed to the feed end of the fixed slide rail 51. The tube clamping assembly 43 is disposed... On the side of the flip frame 41 away from the slide rail bracket 52, the material tube clamping assembly 43 consists of a clamping cylinder 431, an upper clamping block 432, and a lower clamping block 433. The clamping cylinder 431 is fixed on the top side of the flip frame 41, and the lower clamping block 433 is fixed on the bottom side of the flip frame 41. The clamping cylinder 431 is used to drive the upper clamping block 432 to approach or move away from the lower clamping block 433 to clamp or release the material tube. The material tube pushing assembly 42 consists of a pushing cylinder and a pushing block. The pushing cylinder is fixed on the frame 1 and is used to drive the pushing block to push the material tube on the receiving arm assembly 32 to the position corresponding to the feeding end of the diode adjustable slide rail 33.

[0029] like Figs. 1-2 As shown, in an exemplary embodiment of this utility model, the diode adjustable slide 33 is composed of an adjusting cylinder 331, an upper slide 332, and a lower slide 333. The adjusting cylinder 331 is fixed to the top side of the flip frame 41, the lower slide 333 is fixed to the bottom side of the flip frame 41, and the upper slide 332 is disposed on the top side of the lower slide 333. The adjusting cylinder 331 is used to drive the upper slide 332 to approach or move away from the lower slide 333 to clamp or release the diode.

[0030] like Figs. 1-2 As shown, in an exemplary embodiment of this utility model, the flipping drive assembly consists of a flipping drive cylinder and a hinge. The flipping drive cylinder is fixed in the frame 1, and the telescopic end of the flipping drive cylinder is hinged to the bottom side of the flipping frame 41 through the hinge to control the flipping frame 41 to switch between horizontal and tilted states.

[0031] like Figs. 1-2 As shown, in an exemplary embodiment of this utility model, the diode direct vibration feeding mechanism 6 is composed of a conveying slide 61 and a direct vibration module 62. The conveying slide 61 is disposed on the direct vibration module 62 and the feeding end is correspondingly disposed to the discharging end of the fixed slide 51.

[0032] like Figs. 1-2 As shown, in an exemplary embodiment of this utility model, the diode receiving mechanism 7 is composed of a diode receiving groove 71 and a receiving bracket 72. The diode receiving groove 71 is correspondingly arranged with the discharge end of the conveying slide 61 and is supported and fixed by the receiving bracket 72.

[0033] Therefore, this utility model has the following advantages:

[0034] The present invention proposes an automatic diode feeding device, which, through the cooperation of a tube misalignment conveying mechanism and a tube receiving and flipping mechanism, can remove and flip stacked tubes to the discharge state. This structure enables batch feeding of diodes and is of great significance for improving production efficiency.

[0035] The above embodiments are merely illustrative of the principles and effects of this utility model and are not intended to limit the scope of this utility model. Any person skilled in the art can modify or alter the above embodiments without departing from the spirit and scope of this utility model. Therefore, all equivalent modifications or alterations made by those skilled in the art without departing from the spirit and technical concept disclosed in this utility model should still be covered by the claims of this utility model.

Claims

1. An automatic diode feeding device, characterized in that: The device includes a frame on which are mounted a hopper, a tube misalignment conveying mechanism, a tube receiving and flipping mechanism, a diode slide mechanism, a diode direct vibration feeding mechanism, and a diode receiving mechanism. The hopper is used to stack tubes. The tube misalignment conveying mechanism is used to remove tubes from the hopper and deliver them to the tube receiving and flipping mechanism. The tube receiving and flipping mechanism is used to receive tubes delivered by the tube misalignment conveying mechanism and flip the tubes to dock with the diode slide mechanism. The diode slide mechanism is used to guide diodes in the tubes to the diode direct vibration feeding mechanism. The diode direct vibration feeding mechanism is used to deliver diodes to the diode receiving mechanism.

2. The diode automatic feeding device according to claim 1, characterized in that: The hopper consists of two sets of longitudinally spaced material troughs, each with an opening at the bottom of its discharge side, and the two openings constitute the discharge port of the hopper.

3. The diode automatic feeding device according to claim 2, characterized in that: The material tube misalignment conveying mechanism consists of a screw transfer module and a receiving arm assembly. The screw transfer module is fixed on the frame and is used to drive the receiving arm assembly to reciprocate laterally between the two sets of material troughs. The receiving arm assembly consists of two sets of receiving arms arranged in parallel at a lateral interval. The two sets of receiving arms are provided with corresponding receiving troughs, and the receiving troughs are matched with the material tube.

4. The diode automatic feeding device according to claim 1, characterized in that: The diode slide mechanism consists of a fixed slide and a slide support. The slide support is fixed on the frame and is used to support the fixed slide in a longitudinally inclined manner.

5. The diode automatic feeding device according to claim 4, characterized in that: The tube receiving and flipping mechanism comprises a flipping frame, a tube feeding assembly, a tube clamping assembly, a diode-adjustable slide rail, and a flipping drive assembly. One end of the flipping frame is hinged to the slide rail support. The flipping drive assembly is disposed in the frame and is used to drive the flipping frame to switch between horizontal and inclined states. The diode-adjustable slide rail is disposed on the side of the flipping frame near the slide rail support, and the discharge end of the diode-adjustable slide rail corresponds to the feed end of the fixed slide rail. The tube clamping assembly is disposed on the flipping frame away from the fixed slide rail. On one side of the slide rail support, the material tube clamping assembly consists of a clamping cylinder, an upper clamping block, and a lower clamping block. The clamping cylinder is fixed to the top side of the flipping frame, and the lower clamping block is fixed to the bottom side of the flipping frame. The clamping cylinder is used to drive the upper clamping block to approach or move away from the lower clamping block to clamp or release the material tube. The material tube pushing assembly consists of a pushing cylinder and a pushing block. The pushing cylinder is fixed to the frame and is used to drive the pushing block to push the material tube on the receiving arm assembly to the position corresponding to the feed end of the diode adjustable slide rail.

6. The diode automatic feeding device according to claim 5, characterized in that: The adjustable diode slide consists of an adjusting cylinder, an upper slide, and a lower slide. The adjusting cylinder is fixed to the top side of the flip frame, the lower slide is fixed to the bottom side of the flip frame, and the upper slide is located on the top side of the lower slide. The adjusting cylinder is used to drive the upper slide to approach or move away from the lower slide to clamp or release the diode.

7. The diode automatic feeding device according to claim 5, characterized in that: The flipping drive assembly consists of a flipping drive cylinder and a hinge. The flipping drive cylinder is fixed in the frame, and the telescopic end of the flipping drive cylinder is hinged to the bottom side of the flipping frame through the hinge.

8. The diode automatic feeding device according to claim 4, characterized in that: The diode direct vibration feeding mechanism consists of a conveyor slide and a direct vibration module. The conveyor slide is set on the direct vibration module and the feeding end is set corresponding to the discharge end of the fixed slide.

9. The diode automatic feeding device according to claim 1, characterized in that: The diode receiving mechanism consists of a diode receiving groove and a receiving bracket. The diode receiving groove is correspondingly arranged with the discharge end of the conveying slide and is supported and fixed by the receiving bracket.