Linear Motor Magnetic Assembly Guide
- Ethan
- 지식 기반

A Linear Motor Magnetic Assembly is an important magnetic component in a 영구 자석 linear motor. It usually consists of multiple NdFeB 자석 arranged according to a specific magnetic pole arrangement, pole pitch, and magnetization direction. The magnets are assembled with a steel back iron, yoke, or other support structures according to the motor structure and magnetic circuit requirements. Compared with using individual permanent magnets, a magnetic assembly can create an overall magnetic field that meets the motor design requirements through precise magnet arrangement and assembly.
Based on the customer’s product structure, dimensions, quantity, and application requirements, we select the most suitable manufacturing and assembly process. For OEM and high-volume projects, supplying a complete Linear Motor Magnetic Assembly can also reduce the customer’s subsequent work in magnet arrangement, fixing, and assembly.
콘텐츠
주요 내용
- Linear Motor Magnetic Assemblies use precisely arranged permanent magnets to create a designed magnetic field for direct linear motion.
- Flat, U-shaped, and tubular structures offer different advantages in thrust, force fluctuation, magnetic attraction, and installation space.
- NdFeB 자석 are commonly used when high magnetic performance is required.
- Proper selection should consider thrust, precision, speed, travel, air gap, temperature, and mounting space.
- Custom magnetic assemblies can be designed according to specific motor structures and application requirements.
What Is a Linear Motor Magnetic Assembly?

A Linear Motor Magnetic Assembly is usually part of the Secondary in a permanent magnet linear motor. It works together with the Primary, which contains the coil windings, to form a complete linear motor system.
Unlike permanent magnets in traditional servo motors that generate rotary motion through a rotating magnetic field, a linear motor magnetic assembly usually consists of multiple permanent magnets arranged with specific magnetic poles and fixed to a suitable support structure. It forms a working magnetic field with the coil windings.
When current passes through the coil windings, the resulting electromagnetic field interacts directly with the magnetic field of the magnetic assembly. This interaction generates linear thrust and reduces the need for mechanical transmission systems such as gearboxes, ball screws, and belts.
How Does a Linear Motor Magnetic Assembly Work?

A typical permanent magnet linear motor usually includes:
- Primary: Contains the coil windings.
- Secondary: Contains the permanent magnet assembly.
When current enters the Primary windings, the windings generate a changing electromagnetic field. This electromagnetic field interacts with the magnetic field generated by the permanent magnet assembly. The interaction produces an electromagnetic force along the linear direction.
By controlling the current in the windings, the system can control the direction, speed, and position of the movement. During this process, the Linear Motor Magnetic Assembly provides the designed periodic magnetic field for the linear motor.
Main Types of Linear Motor Magnetic Assemblies

Linear Motor Magnetic Assemblies can be classified according to their cross-sectional structure and magnetic circuit design.
Flat Magnetic Assembly
The magnets are fixed to a flat plate, and the coil windings move above the magnets on one side. This structure is simple, 비용 효율적및 easy to manufacture.
However, the coil assembly may experience relatively strong magnetic attraction from one side. The linear guide or bearing system therefore needs to withstand the corresponding load.
U-Shaped Magnetic Assembly
Two magnetic plates are arranged opposite each other to form a U-shaped structure. The coil windings move in the gap between the two magnetic plates.
This structure can significantly reduce the net magnetic attraction. With an ideal symmetrical design, the net attraction can approach zero. This type of Linear Motor Magnetic Assembly is commonly used in ironless linear motors for high-precision positioning stages.
Tubular Magnetic Assembly
Ring-shaped permanent magnets are arranged with alternating magnetic poles along a cylindrical shaft. The coil assembly surrounds the shaft like a sleeve.
This structure helps create a relatively symmetrical radial magnetic field distribution. With a specific magnetic circuit design, it can also reduce part of the external stray magnetic field.
Applications of Linear Motor Magnetic Assembly
Linear Motor Magnetic Assemblies are widely used in equipment that requires direct linear drive, high-speed motion, or precision positioning.
- Semiconductor Equipment: Used for wafer handling, inspection, and precision positioning systems.
- Industrial Automation: Used for automatic handling, assembly, positioning, and high-speed motion equipment.
- Robotics: Used in robots, gantry systems, and other linear motion mechanisms.
- CNC and Precision Machine Tools: Used for high-precision linear motion and high-speed machining equipment.
- Precision Positioning Platforms: Used for measurement, inspection, laser processing, and other equipment.
- Automated Production Equipment: Suitable for automated systems that require fast, repetitive, and high-precision linear motion.
How to Choose the Right Configuration
| Magnetic Assembly Structure | Thrust Density | Force Fluctuation | Magnetic Attraction | 일반적인 애플리케이션 |
|---|---|---|---|---|
| Flat | Relatively High | Depends on the pole arrangement and magnetic circuit design | Relatively High, mainly on one side | Industrial Automation, CNC and General Linear Motion Equipment |
| U-Shaped | Medium | Relatively Low | Relatively Low; can approach zero with an ideal symmetrical design | Semiconductor Equipment, Precision Stages, Metrology Equipment |
| Tubular | Medium | Relatively Low | Relatively Balanced | Compact Motion Axes, Pick-and-Place Equipment, Dispensing Equipment |
The final selection usually requires a balance between thrust/cost 그리고 motion smoothness/precision.
Semiconductor wafer handling and optical alignment stages often use U-shaped or tubular magnetic assemblies. CNC machining and heavy-load material handling applications may use flat magnetic assemblies to achieve higher thrust output within a given volume.
The final configuration should be selected according to the specific motor design, load, speed, travel, air gap, precision, and operating conditions.
몇 가지 자주 묻는 질문
How Are Magnets Fixed in a Linear Motor Magnetic Assembly?
Magnets can be fixed using adhesive bonding, mechanical fixing, positioning structures, protective covers, or a combination of these methods, depending on the assembly design.
What Is the MOQ for a Custom Linear Motor Magnetic Assembly?
The MOQ depends on magnet specifications, assembly design, tooling requirements, manufacturing process, and order quantity.
What Materials Are Commonly Used in Linear Motor Magnetic Assemblies?
NdFeB 자석 are commonly used for high magnetic performance. Back irons are usually made from steel or other suitable magnetic materials, while other components depend on the application requirements.
Can Different Magnet Sizes Be Used in the Same Magnetic Assembly?
Yes. Different magnet sizes can be used when required by the magnetic circuit or mechanical design. Proper magnetic and positioning specifications are required to maintain the desired magnetic field.
What Happens If Magnet Spacing Is Not Consistent?
Inconsistent spacing can change the magnetic pole arrangement and field distribution. Large deviations may affect electromagnetic force consistency, especially in precision applications.
더 자세한 내용은 관련 블로그에서 확인하세요:
Ferrite Ring Magnets: Injection Molded vs. Sintered | TOPMAG
Why Ferrite Magnets Are Still Used in Motors?
Injection Molded Ferrite Ring Magnets for Fan Motors | TOPMAG
Multipole Ring Magnet: Complete Guide
프로젝트를 업그레이드할 준비가 되셨나요? TOPMAG에서 전체 제품군을 살펴보세요!🧲

저는 자석에 관한 대중 과학 글을 쓰고 있습니다. 제 기사는 주로 자석의 원리, 응용 분야, 업계 일화에 초점을 맞추고 있습니다. 제 목표는 독자들에게 유용한 정보를 제공하여 모든 사람이 자석의 매력과 중요성을 더 잘 이해할 수 있도록 돕는 것입니다. 동시에 자석과 관련된 여러분의 의견을 듣고 싶습니다. 자석의 무한한 가능성을 함께 탐구하는 동안 자유롭게 팔로우하고 참여해 주세요!