Feeding device for magnetic core detection equipment
By designing a magnetic core feeding device including a multi-stage conveyor belt and guide rod assembly, the problem of low sorting accuracy of existing devices is solved, stable transportation and efficient sorting of magnetic cores are achieved, and the normal operation of the detection equipment is ensured.
Patent Information
- Application Number
- CN202422315985.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-23
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2034-09-23
AI Technical Summary
The existing magnetic core loading devices have low sorting accuracy, which can easily lead to core stacking and congestion, affecting the detection of magnetic core performance by the detection equipment.
A feeding device including a support base, a transmission mechanism, a first conveyor belt, a guide rod assembly, a second conveyor belt and a loading plate is designed. Through the cooperation of the multi-stage conveyor belt and a guide rod assembly, the stable transportation and sorting of the magnetic cores are achieved.
The accuracy of the sorting and conveying of the magnetic cores is improved, the normal and stable operation of the detection equipment is ensured, the transportation distance is extended, the area after the equipment is assembled, and the factory space is saved.
Smart Images

Figure CN223015606U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of loading machines, and particularly relates to a feeding device for a magnetic core detection device. Background Art
[0002] A magnetic core refers to a sintered magnetic metal oxide composed of various iron oxide mixtures and is used in coils and transformers of various electronic devices. Therefore, the quality and performance of the magnetic core directly affect the reliability and stability of the applied electronic devices. In actual production, to ensure that the quality of the magnetic core meets the requirements, it is necessary to detect the performance of the magnetic core skeleton one by one. Currently, automated detection equipment is mostly used to quickly detect and sort the magnetic cores and at the same time reject unqualified products. From the perspective of saving labor, the detection equipment is equipped with an automated feeding device to sort and feed the magnetic cores. However, such feeding devices generally only focus on the feeding efficiency, with low sorting accuracy, which easily causes stacking and congestion of the magnetic cores, thus affecting the performance detection of the magnetic cores by the detection equipment. Summary of the Utility Model
[0003] Aiming at the problems existing above, the utility model specifically designs a feeding device for a magnetic core detection device to improve the sorting and conveying accuracy of the magnetic cores and ensure the normal and stable operation of the detection equipment.
[0004] To achieve the above object, the utility model provides a feeding device for a magnetic core detection device, which includes a support base, a transmission mechanism, a first conveyor belt, a guide rod assembly, a second conveyor belt, and a blanking plate. The first conveyor belt is inclined and is rotationally connected to the support base through the transmission mechanism. The support base is additionally provided with a first baffle. The guide rod assembly is detachably connected to the first baffle. The second conveyor belt is rotationally connected to the support base through the transmission mechanism. The discharge end of the second conveyor belt is communicated with the detection equipment. The blanking plate is inclined, detachably connected to the support base, and communicates the discharge end of the first conveyor belt with the feeding end of the second conveyor belt.
[0005] Preferably, there are multiple groups of the transmission mechanisms, which are respectively drivingly connected to the first conveyor belt and the second conveyor belt. The transmission mechanism includes a power source, a driving wheel, a driven wheel, and a tensioning wheel. The housing of the power source is fixedly connected to the support base. The driving wheel is sleeved on the output shaft of the power source. The driven wheel and the tensioning wheel are respectively hinged to the support base. The first conveyor belt and the second conveyor belt are respectively sleeved between the driving wheel and the driven wheel. The tensioning wheel is arranged on the loose sides of the first conveyor belt and the second conveyor belt.
[0006] Preferably, the guide rod assembly includes a first inclined rod, a triangular inclined rod, and an arc-shaped scraping plate. The first inclined rod and the triangular inclined rod are respectively detachably connected to the first baffle, and the guiding ends of the first inclined rod and the triangular inclined rod communicate with the blanking plate. The arc-shaped scraping plate is detachably connected to the triangular inclined rod.
[0007] Preferably, a reinforcing rib is detachably connected between the first inclined rod and the support base.
[0008] Preferably, a guiding strip is additionally installed on the blanking plate.
[0009] Preferably, a second baffle is additionally installed on the support base close to the second conveyor belt.
[0010] Preferably, the second baffle includes a vertical plate and a horizontal plate. The vertical plate is fixedly connected to the horizontal plate, and the horizontal plate is detachably connected to the support base through a connecting plate and fasteners.
[0011] Preferably, an aggregate box is detachably installed on the first baffle.
[0012] In summary, the present utility model has the following advantages and beneficial technical effects:
[0013] 1. In the present utility model, the first conveyor belt is inclined. This design ensures the stable transportation of the magnetic core, while avoiding the accumulation or slipping of objects during transportation. In addition, it has a large width and strong load-bearing capacity; the multi-stage conveyor belts cooperate to extend the transportation distance, ensuring that the magnetic core has enough time to sort and adjust its posture, enhancing the sorting effect. The vertically arranged multi-stage conveyor belts are used to reduce the area after the equipment is assembled, saving factory space; the detachable guide rod assembly and blanking plate avoid the metal thermal deformation caused by welding, can be quickly disassembled and adjusted according to different usage requirements, and have a wide range of applications.
[0014] 2. The cooperation of the first inclined rod and the triangular inclined rod increases the guidance of the magnetic core, enabling the magnetic core to move along the sorting channel according to the drive of the first conveyor belt; the arc-shaped scraping plate ensures that the magnetic cores pass through in a single layer, preventing the magnetic cores from overlapping; the setting of the reinforcing rib is used to increase the stiffness and stability of the first inclined rod and improve the load-bearing capacity.
[0015] 3. The guiding strip is used to limit the movement range of the magnetic core based on the blanking plate, assisting the magnetic core to slide orderly and preventing deviation; the first baffle and the second baffle play a role in stabilizing the magnetic core, avoiding the slipping of materials, and ensuring that the magnetic core can be stably transported to the destination.
[0016] 4. When the worker pours the magnetic cores onto the first conveyor belt, if defective products such as broken ones are found, they can be selected and temporarily stored in the aggregate box for use and management during the production process, reducing the pressure on the detection equipment. Description of the Drawings
[0017] The above and / or additional aspects and advantages of the present utility model will become apparent and be readily understood from the following description of embodiments in conjunction with the accompanying drawings, where:
[0018] Figure 1 is a three-dimensional schematic diagram of the present utility model Figure 1 ;
[0019] Figure 2 is a structural schematic diagram of the transmission mechanism in the present utility model;
[0020] Figure 3 is a top view schematic diagram of the present utility model;
[0021] Figure 4 is a three-dimensional schematic diagram of the present utility model Figure 2 ;
[0022] Figure 5 is a side view schematic diagram of the present utility model.
[0023] The reference numerals in the accompanying drawings are:
[0024] 1, support base; 11, first baffle; 12, second baffle; 13, aggregate box;
[0025] 2, transmission mechanism; 21, power source; 22, driving wheel; 23, driven wheel; 24, tensioning wheel;
[0026] 3, first conveyor belt; 4, guide rod assembly; 41, first inclined rod; 42, triangular inclined rod; 43, arc-shaped scraper; 44, reinforcing rib;
[0027] 5, second conveyor belt; 6, blanking plate; 7, guide strip. Detailed implementation manners
[0028] The following further elaborates on the present utility model in conjunction with the attached Figures 1 - 5 drawings:
[0029] As Figure 1As shown in the figure, this embodiment discloses a feeding device for a magnetic core detection device, which includes a support base 1, a transmission mechanism 2, a first conveyor belt 3, a guide rod assembly 4, a second conveyor belt 5, and a blanking plate 6. The first conveyor belt 3 is inclined, and the height of the feeding end from the ground is lower than that of the discharging end. The first conveyor belt 3 is rotationally connected to the support base 1 through the transmission mechanism 2. The support base 1 is additionally provided with a first baffle 11, and the first baffle 11 surrounds the upper end surface of the first conveyor belt 3. The guide rod assembly 4 is detachably connected to the first baffle 11 through a fastening bolt. The second conveyor belt 5 is perpendicular to the conveying direction of the first conveyor belt 3. The second conveyor belt 5 is rotationally connected to the support base 1 through the transmission mechanism 2, and the discharging end communicates with the detection device. The blanking plate 6 is inclined, and the height of the feeding end from the ground is higher than that of the discharging end. The blanking plate 6 is detachably connected to the support base 1 through a fastening bolt and communicates with the discharging end of the first conveyor belt 3 and the feeding end of the second conveyor belt 5.
[0030] As Figure 2 shown in the figure, there are two sets of transmission mechanisms 2, which are respectively drivingly connected to the first conveyor belt 3 and the second conveyor belt 5. The transmission mechanism 2 includes a power source 21, a driving wheel 22, a driven wheel 23, and a tensioning wheel 24. The power source 21 is a motor, and the motor housing is fixed to one side of the support base 1 through a fastening bolt. The driving wheel 22 is sleeved on the output shaft of the motor. The driven wheel 23 and the tensioning wheel 24 are respectively hinged to the support base 1. The conveyor belt is sleeved between the driving wheel 22 and the driven wheel 23, and the tensioning wheel 24 is arranged on the loose side of the conveyor belt.
[0031] As Figure 3 shown in the figure, the guide rod assembly 4 includes a first inclined rod 41, a triangular inclined rod 42, and an arc-shaped scraping plate 43. The first inclined rod 41 and the triangular inclined rod 42 are respectively detachably connected to the first baffle 11 through fastening bolts, and the guiding terminal formed by the first inclined rod 41 and the triangular inclined rod 42 communicates with the blanking plate 6. One end of the arc-shaped scraping plate 43 is detachably connected to the triangular inclined rod 42 through a fastening bolt, and the other end is close to the first inclined rod 41. At the same time, the height of the arc-shaped scraping plate 43 from the first conveyor belt 3 only allows a single-layer magnetic core to pass through; a reinforcing rib 44 is detachably installed between the first inclined rod 41 and the support base 1 through a fastening bolt; a guide bar 7 is installed on the upper surface of the blanking plate 6 through a fastening bolt, and the guide bar 7 is close to the first inclined rod 41.
[0032] As Figures 4 - 5 shown in the figure, the support base 1 is provided with a second baffle 12 through a fastening bolt, and the second baffle 12 is arranged on the periphery of the second conveyor belt 5; the second baffle 12 includes a vertical plate and a horizontal plate, and the horizontal plate is detachably connected to the support base 1 through a connecting plate and a fastening bolt. The vertical plate and the horizontal plate are of a bent and integrally formed structure; the first baffle 11 is detachably installed with a collecting box 13.
[0033] The working principle of the feeding device for the magnetic core detection device of the present utility model is as follows:
[0034] After the detection device is powered on, the transmission mechanisms 2 at the first conveyor belt 3 and the second conveyor belt 5 are started in sequence. The motor outputs power to the driving wheel 22, and the driving wheel 22 rotates to drive the conveyor belt to rotate at the same time. The operator manually dumps the magnetic cores onto the first conveyor belt 3 according to the situation. Affected by the inclined feeding of the first conveyor belt 3, the magnetic cores with a higher stacking height are dumped under the action of their own weight. Thereafter, guided by the first inclined rod 41 and the triangular inclined rod 42 and limited by the height of the arc-shaped scraper 43, the single-layer magnetic cores approach the discharge end of the first conveyor belt 3 and slide onto the second conveyor belt 5 from the smooth blanking plate 6 in an orderly manner. Blocked by the second baffle 12, the magnetic cores move along with the second conveyor belt 5 towards the workbench of the detection device, realizing the sorting of the magnetic cores by the feeding device and the automatic feeding of the detection device.
[0035] The above are all the preferred embodiments of the present invention, and the protection scope of the present invention is not limited thereby. Therefore, all equivalent changes made according to the structure, shape, and principle of the present invention shall be covered within the protection scope of the present invention.
Claims
1. A feeding device for a magnetic core detection device, characterized in that: It includes a supporting base, a transmission mechanism, a first conveyor belt, a guide rod assembly, a second conveyor belt and a blanking plate. The first conveyor belt is arranged at an angle and is rotatably connected to the supporting base through the transmission mechanism. The supporting base is equipped with a first baffle. The guide rod assembly is detachably connected to the first baffle. The second conveyor belt is rotatably connected to the supporting base through the transmission mechanism. The discharge end of the second conveyor belt is connected to the detection equipment. The blanking plate is arranged at an angle and is detachably connected to the supporting base, and is connected to the discharge end of the first conveyor belt and the feed end of the second conveyor belt.
2. A feeding device for a magnetic core detection device according to claim 1, characterized in that: The transmission mechanism has multiple groups, which respectively drive and connect the first conveyor belt and the second conveyor belt. The transmission mechanism includes a power source, a driving wheel, a driven wheel and a tensioning wheel. The outer shell of the power source is fixedly connected to the support base. The driving wheel is sleeved on the output shaft of the power source. The driven wheel and the tensioning wheel are respectively hinged to the support base. The first conveyor belt and the second conveyor belt are respectively sleeved between the driving wheel and the driven wheel. The tensioning wheel is set on the loose sides of the first conveyor belt and the second conveyor belt.
3. A feeding device for a magnetic core detection device according to claim 2, characterized in that: The guide rod assembly includes a first oblique rod, a triangular oblique rod and an arc scraper. The first oblique rod and the triangular oblique rod are respectively detachably connected to the first baffle, and the guide terminals of the first oblique rod and the triangular oblique rod are connected to the blanking plate. The arc scraper is detachably connected to the triangular oblique rod.
4. A feeding device for a magnetic core detection device according to claim 3, characterized in that: A reinforcing rib is detachably connected between the first oblique rod and the support base.
5. A feeding device for a magnetic core detection device according to claim 4, characterized in that: The blanking plate is additionally provided with guide strips.
6. A feeding device for a magnetic core detection device according to claim 5, characterized in that: The support base is additionally provided with a second baffle near the second conveyor belt.
7. A feeding device for a magnetic core detection device according to claim 6, characterized in that: The second baffle includes a vertical plate and a horizontal plate, the vertical plate is fixedly connected to the horizontal plate, and the horizontal plate is detachably connected to the support base via a connecting plate and a fastener.
8. A feeding device for a magnetic core detection device according to claim 7, characterized in that: The first baffle is detachably mounted with a material collecting box.