一种纳米晶磁芯卷绕机

By designing the winding table and drive assembly of the nanocrystalline magnetic core winding machine, and combining the cooperation of the rotating rod and the moving rod, the problem of uneven winding of nanocrystalline magnetic cores was solved, achieving uniform winding and reducing friction damage, thus improving winding efficiency.

CN224519680UActive Publication Date: 2026-07-17HEBEI MINGQI TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HEBEI MINGQI TECH CO LTD
Filing Date
2025-08-26
Publication Date
2026-07-17

AI Technical Summary

Technical Problem

Nanocrystalline magnetic cores tend to accumulate during the winding process, leading to uneven winding and affecting their use.

Method used

A nanocrystalline magnetic core winding machine was designed, including a winding table, a drive assembly, and a guide roller. The main shaft is driven by a motor to rotate the sleeve and the winding drum. Combined with the cooperation of the rotating rod and the moving rod, the nanocrystalline magnetic core is wound evenly, reducing friction damage.

Benefits of technology

This technology enables uniform winding of nanocrystalline magnetic cores, reduces accumulation, avoids frictional damage, and improves winding efficiency and quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

本实用新型涉及晶磁芯卷绕机技术领域,具体为一种纳米晶磁芯卷绕机,包括卷绕台,卷绕台上表面靠近前端左侧处设有前支撑板,卷绕台上表面靠近后端处设有后支撑板,后支撑板后端面设有驱动组件,前支撑板与后支撑板设有用于往复滑动的移动杆,移动杆中间处设有过线环;该纳米晶磁芯卷绕机,设置驱动组件,在电机的配合下提供输出动力,主轴转动带动带有绕卷筒的套筒转动,转杆在第一锥型齿与第二锥型齿啮合下,实现转杆与曲轴盘同步转动,且移动杆在连杆配合下与曲轴盘转动连接,实现卷绕筒转动与移动杆来回移动同步进行,纳米晶磁芯从过线环穿过,来回移动平铺在卷绕筒上,绕卷均匀,避免堆积影响。
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Claims

1. A nanocrystalline magnetic core winding machine comprising a winding table (1), characterized in that: The front support plate (11) is arranged on the upper surface of the winding table (1) near the left side of the front end, the rear support plate (12) is arranged on the upper surface of the winding table (1) near the rear end, the rear end surface of the rear support plate (12) is provided with a driving assembly (3), the front support plate (11) and the rear support plate (12) are provided with a moving rod (2) for reciprocating sliding, and the moving rod (2) is provided with a wire passing ring (20) at the middle part. The driving assembly (3) comprises a motor (30) and a main shaft (31) coaxially connected with the output shaft of the motor (30), the main shaft (31) penetrates through the rear support plate (12), the end of the main shaft (31) is provided with a sleeve (311), a plurality of clamping strips (313) are arranged on the outer wall of the sleeve (311), the left end of the sleeve (311) is provided with a blocking ring (312), the sleeve (311) is sleeved with a winding drum (4), the outer wall of the winding drum (4) is provided with a ring edge (40) at both ends, the inner wall of the winding drum (4) is provided with an arc-shaped groove (41) corresponding to the clamping strip (313), the end of the sleeve (311) is provided with a fixing sleeve (314), and the rear end surface of the rear support plate (12) is further provided with a rotating rod (32); the main shaft (31) is further provided with a first bevel gear (310) near one end of the motor (30), and the rotating rod (32) is provided with a second bevel gear (321) corresponding to the first bevel gear (310). The rotating rod (32) is further provided with a crankshaft disc (320), and a connecting rod (21) is arranged between the clamping shaft of the crankshaft disc (320) and the moving rod (2).

2. The nanocrystalline magnetic core winding machine of claim 1, wherein: The left end surface of the winding table (1) is symmetrically provided with a convex plate (10), the convex plate (10) is provided with a U-shaped groove (100), and the U-shaped grooves (100) are provided with guide rollers (101).

3. The nanocrystalline magnetic core winding machine of claim 1, wherein: The rear end surface of the rear support plate (12) is symmetrically provided with limiting plates (13), the rotating rod (32) penetrates through the limiting plate (13) located at the middle and is rotationally connected, and the other end of the rotating rod (32) is rotationally connected with the limiting plate (13) at the left end.

4. The nanocrystalline magnetic core winding machine of claim 1, wherein: The motor (30) is fixedly connected with the rear support plate (12) through screws, the output shaft of the motor (30) is connected with the main shaft (31) through a connecting shaft, the main shaft (31) and the sleeve (311) are an integral molding structure, the blocking ring (312) and the sleeve (311) are an integral molding structure, the clamping strips (313) are annularly and equidistantly distributed, and the clamping strips (313) and the sleeve (311) are an integral molding structure.

5. The nanocrystalline magnetic core winder of claim 1, wherein: The first bevel gear (310) is welded and fixed with the main shaft (31), the second bevel gear (321) is welded and fixed with the rotating rod (32), and the second bevel gear (321) is engaged with the first bevel gear (310).

6. The nanocrystalline magnetic core winding machine of claim 1, wherein: The inner diameter of the winding drum (4) is matched with the outer diameter of the sleeve (311), the width of the inner wall of the arc-shaped groove (41) is matched with the width of the outer wall of the clamping strip (313), and the ring edge (40) and the winding drum (4) are an integral molding structure.

7. The nanocrystalline magnetic core winder of claim 1, wherein: The inner diameter of the fixing sleeve (314) is matched with the outer diameter of the sleeve (311), a clamping groove (3140) is arranged on the inner wall of the fixing sleeve (314) and corresponds to the clamping strip (313), and a fastening bolt (315) is further arranged at the outer end of the fixing sleeve (314), the fastening bolt (315) passes through the fixing sleeve (314) and is threadedly connected with the screw hole (3110) arranged on the end portion of the sleeve (311).