A soft magnetic core automatic detection machine conveying assembly

CN224740147UActive Publication Date: 2026-09-11XIANTAO XINHENRUI NEW MATERIAL TECH CO LTD
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Patent Information

Application Number
CN202522184040.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-16
Publication Date
2026-09-11
Estimated Expiration
2035-10-16

AI Technical Summary

Technical Problem

[0003]但现今在对软磁芯的电感值进行测量时,主要是由人工进行操作,需要人工依次将软磁芯放置在检测台上,并将探针插入到软磁芯的内圈位置,如此会使得软磁芯的检测工作较为复杂,不仅导致人工工作强度高,同时也影响了软磁芯检测工作的效率;为此,我们提出一种软磁芯自动检测机输送组件

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a kind of soft magnetic core automatic detection machine conveying assembly, it is related to soft magnetic core detection technical field, including feeding conveyor belt, the side of feeding conveyor belt side is equipped with detection passage, guiding mechanism is equipped on feeding conveyor belt, guiding mechanism is used to direct soft magnetic core into detection passage, detection mechanism is set to the end portion of detection passage close to feeding conveyor belt, discharging mechanism is set to the side of detection passage away from feeding conveyor belt, after the soft magnetic core of detection is automatically discharged.The utility model makes soft magnetic core into detection passage in order by feeding conveyor belt and guiding mechanism thereon and be positioned, so that detection mechanism can automatically detect the soft magnetic core in place in detection passage, and along with the continued movement of soft magnetic core, after detection, soft magnetic core can be automatically discharged by discharging mechanism, so that the whole detection process of soft magnetic core is highly automated, reduce labor cost while improving work efficiency.
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Description

Technical Field

[0001] This utility model relates to the field of soft magnetic core testing technology, and in particular to a conveying assembly for an automatic soft magnetic core testing machine. Background Technology

[0002] Soft magnetic cores are one of the important components in inductor coils. During the manufacturing process of inductor coils, in order to ensure the quality of the soft magnetic cores used in applications, it is necessary to test the soft magnetic cores. Currently, the inductance value of soft magnetic cores is measured by inserting a probe connected to an inductance measuring instrument into the inner ring of the soft magnetic core.

[0003] Currently, the measurement of inductance values ​​of soft magnetic cores is mainly done manually. This requires manual placement of the soft magnetic cores on the testing stage and insertion of probes into the inner ring of the soft magnetic cores. This makes the testing of soft magnetic cores quite complicated, resulting in high manual labor intensity and affecting the efficiency of the testing process. To address this, we propose an automatic soft magnetic core testing machine conveying component. Utility Model Content

[0004] The purpose of this invention is to provide a conveying assembly for an automatic soft magnetic core testing machine to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a conveying assembly for an automatic soft magnetic core testing machine, comprising:

[0006] A feeding conveyor belt is provided with a detection channel on one side of the feeding conveyor belt, and a guiding mechanism is provided on the feeding conveyor belt for guiding the soft magnetic core into the detection channel in a specific direction;

[0007] The testing mechanism is located at the end of the testing channel near the feeding conveyor belt;

[0008] The unloading mechanism is located on the side of the detection channel away from the feeding conveyor belt, and automatically unloads the soft magnetic cores after detection.

[0009] Preferably, the detection mechanism includes a detection probe, which is vertically positioned above the detection channel near the end of the feeding conveyor belt. A detection cylinder is fixedly installed at the front end of the detection channel, and a probe seat is fixedly connected to the telescopic end of the top of the detection cylinder. The top of the probe seat extends backward and is fixed to the top of the detection probe.

[0010] Preferably, the feeding mechanism includes:

[0011] The discharge point is located at the end of the detection channel away from the feeding conveyor belt;

[0012] A positioning component is provided on the side of the discharge position away from the detection channel to block and position the soft magnetic core entering the discharge position.

[0013] The material pushing component is located in front of the discharge position and pushes the soft magnetic core in the discharge position backward for feeding.

[0014] Preferably, the positioning component includes:

[0015] A positioning baffle is movably disposed on the side of the discharge position away from the detection channel;

[0016] A positioning cylinder is fixedly installed on the side of the positioning baffle away from the discharge position, and is used to drive the positioning baffle to move in a straight line.

[0017] Preferably, the feeding assembly includes:

[0018] A pusher plate, which is movably disposed on the front of the discharge position;

[0019] A pusher cylinder is fixedly installed on the side of the pusher plate away from the discharge position, and is used to drive the pusher plate to move back and forth.

[0020] Preferably, a discharge conveyor belt is provided on the back side of the feeding conveyor belt, one end of the discharge conveyor belt extends to the back side of the discharge position, and multiple material feeding components are provided at intervals on the discharge conveyor belt to classify and discharge the soft magnetic cores according to the test results.

[0021] Preferably, the feeding assembly includes:

[0022] A material guide plate is vertically positioned at the front of the top end of the unloading conveyor belt.

[0023] A material-pushing cylinder is located at the top of the back of the material-pushing plate. The material-pushing cylinder is used to drive the material-pushing plate to move back and forth to push the soft magnetic core off the unloading conveyor belt.

[0024] Preferably, the guiding mechanism includes a guide plate and a triangular plate. The guide plate is inclined and positioned above the feeding conveyor belt, with one end of the guide plate fixedly connected to the side wall of the detection channel port. The triangular plate is positioned on the back of the guide plate, with one end of the triangular plate fixedly connected to the other side of the detection channel port. A channel is formed between the guide plate and the triangular plate for the soft magnetic core to be transmitted to the detection channel port.

[0025] The technical effects and advantages of this utility model are as follows:

[0026] This invention utilizes a feeding conveyor belt and its guiding mechanism to allow soft magnetic cores to sequentially enter the testing channel for positioning. This enables the testing mechanism to automatically test the soft magnetic cores in the testing channel. As the soft magnetic cores continue to move, the unloading mechanism automatically unloads the tested soft magnetic cores, making the entire testing process highly automated, reducing labor costs and improving work efficiency. Attached Figure Description

[0027] Figure 1 This is a three-dimensional structural diagram of the present invention.

[0028] Figure 2 This is a three-dimensional structural diagram of the testing mechanism of this utility model.

[0029] In the diagram: 100, feeding conveyor belt; 101, detection channel; 102, guide plate; 103, triangular plate; 104, discharge position; 105, detection probe; 106, probe holder; 107, detection cylinder; 108, positioning baffle; 109, positioning cylinder; 110, pusher plate; 111, pusher cylinder; 112, unloading conveyor belt; 113, pusher plate; 114, pusher cylinder. Detailed Implementation

[0030] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0031] This utility model provides, for example Figures 1-2The automatic soft magnetic core testing machine conveyor assembly shown includes a feeding conveyor belt 100, a testing mechanism, and a discharging mechanism. A testing channel 101 is provided on one side of the feeding conveyor belt 100, and a guiding mechanism is provided on the feeding conveyor belt 100 to orient the soft magnetic cores into the testing channel 101. The testing mechanism is located at the end of the testing channel 101 near the feeding conveyor belt 100, and the discharging mechanism is located on the side of the testing channel 101 away from the feeding conveyor belt 100 to automatically unload the tested soft magnetic cores. In this embodiment, the feeding conveyor belt 100 and the guiding mechanism work together... The system can sequentially feed multiple soft magnetic cores into the detection channel 101, thereby achieving automatic feeding and positioning of the soft magnetic cores for detection. Then, in conjunction with the detection mechanism, it completes the automatic detection of the soft magnetic cores. Finally, the continued conveying of the feeding conveyor belt 100 generates a pushing force between adjacent soft magnetic cores, causing the detected soft magnetic cores to be sequentially fed into the unloading mechanism, thus completing the automatic unloading of the detected soft magnetic cores. In this way, the detection of soft magnetic cores can be automatically completed, including feeding, positioning, detection, and unloading, reducing labor costs and improving work efficiency.

[0032] The guiding mechanism includes a guide plate 102 and a triangular plate 103. The guide plate 102 is inclined and positioned above the feeding conveyor belt 100, with one end fixedly connected to the side wall of the detection channel 101 port. The triangular plate 103 is positioned on the back of the guide plate 102, with one end fixedly connected to the other side of the detection channel 101 port. A channel is formed between the guide plate 102 and the triangular plate 103 for the soft magnetic core to be transmitted to the detection channel 101 port. In this embodiment, when the soft magnetic core is transmitted on the feeding conveyor belt 100, the inclined surface of the triangular plate 103 away from the detection mechanism allows the soft magnetic core to move to the side wall of the guide plate 102. Combined with the channel formed between the triangular plate 103 and the guide plate 102, the transmitted soft magnetic cores enter the detection channel 101 in rows, thereby achieving the purpose of automatic feeding and positioning of the soft magnetic core. This results in a high degree of automation and fast working efficiency.

[0033] The detection mechanism includes a detection probe 105, which is vertically positioned above the detection channel 101 near the end of the feeding conveyor belt 100. A detection cylinder 107 is fixedly installed at the front end of the detection channel 101, and a probe seat 106 is fixedly connected to the telescopic end of the top of the detection cylinder 107. The top of the probe seat 106 extends backward and is fixed to the top of the detection probe 105. The detection probe 105 is connected to an external inductance measuring instrument. The detection probe 105 is inserted into the inner ring of the soft magnetic core to detect the inductance value. The cooperation between the detection cylinder 107 and the probe seat 106 can drive the detection probe 105 to move up and down, thereby satisfying the automatic detection of the inductance value of the soft magnetic core. The detection channel 101 can accommodate two soft magnetic cores, so that the soft magnetic core located in the detection channel 101 near the end of the feeding conveyor belt 100 can be detected by the detection probe 105, thus achieving the detection of each soft magnetic core.

[0034] The feeding mechanism includes a discharge position 104, a positioning component, and a pushing component. The discharge position 104 is located at the end of the detection channel 101 away from the feeding conveyor belt 100. The positioning component is located on the side of the discharge position 104 away from the detection channel 101, blocking and positioning the soft magnetic cores entering the discharge position 104. The pushing component is located in front of the discharge position 104, pushing the soft magnetic cores in the discharge position 104 backward for feeding. The soft magnetic cores moving along the inner side of the detection channel 101 enter the discharge position 104 in sequence. The positioning component blocks and positions the soft magnetic cores at the discharge position 104, and then the pushing component pushes them backward to complete the feeding. This sequential operation can achieve the feeding of multiple soft magnetic cores.

[0035] The positioning component includes a positioning baffle 108 and a positioning cylinder 109. The positioning baffle 108 is movably disposed on the side of the discharge position 104 away from the detection channel 101. The positioning cylinder 109 is fixedly disposed on the side of the positioning baffle 108 away from the discharge position 104. It is used to drive the positioning baffle 108 to move in a straight line. The positioning baffle 108 provides a blocking effect, so that the soft magnetic core pushed out from the detection channel 101 is positioned at the discharge position 104. When the positioning cylinder 109 drives the positioning baffle 108 to retract, the thrust component moves to push the positioning baffle 108 backward, thereby achieving the feeding drive of the soft magnetic core.

[0036] The pushing assembly includes a pushing plate 110 and a pushing cylinder 111. The pushing plate 110 is movably disposed on the front of the discharge position 104, and the pushing cylinder 111 is fixedly disposed on the side of the pushing plate 110 away from the discharge position 104, for driving the pushing plate 110 to move back and forth. A discharging conveyor belt 112 is provided on the back of the feeding conveyor belt 100, with one end of the discharging conveyor belt 112 extending to the back of the discharge position 104. Multiple material-picking components are spaced apart on the discharging conveyor belt 112 to classify and discharge the soft magnetic cores according to the test results. The pushing cylinder 111 moves the pushing plate 110 forward to push away the soft magnetic cores at the discharge position 104 for discharge.

[0037] The material feeding assembly includes a material feeding plate 113 and a material feeding cylinder 114. The material feeding plate 113 is vertically positioned at the front of the top of the unloading conveyor belt 112, and the material feeding cylinder 114 is located at the top of the back of the material feeding plate 113. The material feeding cylinder 114 is used to drive the material feeding plate 113 to move back and forth to push the soft magnetic cores off the unloading conveyor belt 112. The soft magnetic cores at the discharge position 104 are pushed onto the unloading conveyor belt 112 for transmission. Then, when the soft magnetic cores move with the unloading conveyor belt 112 to the corresponding position of the material feeding plate 113, the material feeding cylinder 114 drives the material feeding plate 113 to move backward, pushing the soft magnetic cores at the corresponding position off the unloading conveyor belt 112. With the help of external terminal control, the soft magnetic cores can be classified and fed according to the detection results.

[0038] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A soft magnetic core automatic detection machine conveying assembly, characterized in that, include: A feeding conveyor belt (100) is provided with a detection channel (101) on one side of the feeding conveyor belt (100). A guiding mechanism is provided on the feeding conveyor belt (100) for guiding the soft magnetic core into the detection channel (101). The testing mechanism is located at the end of the testing channel (101) near the feeding conveyor belt (100); The unloading mechanism is located on the side of the detection channel (101) away from the feeding conveyor belt (100) and automatically unloads the soft magnetic core after detection.

2. The soft magnetic core automatic detection machine conveying assembly according to claim 1, wherein, The detection mechanism includes a detection probe (105), which is vertically arranged above the detection channel (101) near the end of the feeding conveyor belt (100). A detection cylinder (107) is fixedly installed at the front end of the detection channel (101). A probe seat (106) is fixedly connected to the telescopic end of the top of the detection cylinder (107). The top of the probe seat (106) extends backward and is fixed to the top of the detection probe (105).

3. The transport assembly of claim 1, wherein, The feeding mechanism includes: The discharge position (104) is located at one end of the detection channel (101) away from the feeding conveyor belt (100); A positioning component is provided on the side of the discharge position (104) away from the detection channel (101) to block and position the soft magnetic core entering the discharge position (104). The material pushing component is located on the front of the discharge position (104) and pushes the soft magnetic core in the discharge position (104) backward for feeding.

4. The transport assembly of claim 3, wherein, The positioning component includes: A positioning baffle (108) is movably disposed on the side of the discharge position (104) away from the detection channel (101); Positioning cylinder (109) is fixedly installed on the side of positioning baffle (108) away from the discharge position (104) and is used to drive positioning baffle (108) to move in a straight line.

5. The transport assembly of claim 3, wherein, The feeding assembly includes: A pusher plate (110) is movably disposed on the front of the discharge position (104); The pusher cylinder (111) is fixedly installed on the side of the pusher plate (110) away from the discharge position (104) and is used to drive the pusher plate (110) to move back and forth.

6. The transport assembly of claim 1, wherein, The feeding conveyor belt (100) has a discharging conveyor belt (112) on its back side. One end of the discharging conveyor belt (112) extends to the back side of the discharge position (104). Multiple material feeding components are spaced apart on the discharging conveyor belt (112) to classify and feed the soft magnetic cores according to the test results.

7. The conveying assembly of an automatic soft magnetic core testing machine according to claim 6, characterized in that, The feeding assembly includes: A material guide plate (113) is vertically positioned at the front of the top end of the unloading conveyor belt (112); The material-pushing cylinder (114) is located at the top of the back of the material-pushing plate (113). The material-pushing cylinder (114) is used to drive the material-pushing plate (113) to move back and forth to pull the soft magnetic core off the feeding conveyor belt (112).

8. The transport assembly of claim 1, wherein, The guiding mechanism includes a guide plate (102) and a triangular plate (103). The guide plate (102) is inclined and positioned above the feeding conveyor belt (100). One end of the guide plate (102) is fixedly connected to the side wall of the detection channel (101) port. The triangular plate (103) is positioned on the back of the guide plate (102). One end of the triangular plate (103) is fixedly connected to the other side of the detection channel (101) port. A channel is formed between the guide plate (102) and the triangular plate (103) for the soft magnetic core to be transmitted to the detection channel (101) port.