Measured values of the sliding friction force of magnetic suction ornaments in plane adhesion
Time:2026-09-27 15:01:46


In modern home and office environments, magnetic suction ornaments have gradually become popular as a combination of decoration and functionality due to their aesthetics, practicality, and convenience. Magnetic suction ornaments are usually made of magnetic materials and can be attached to metal surfaces such as refrigerators, whiteboards, and metal desks, demonstrating strong adhesion and stable fixation. However, although their adhesion properties have received extensive attention, there is a lack of systematic research on the measured data of the sliding friction force they exhibit in actual use. This article will focus on the measured analysis of the sliding friction force of magnetic suction ornaments in a plane adhesion state and discuss its influencing factors and application significance.

I. Experimental design and measurement method

In order to accurately obtain the sliding friction force of the magnetic under different conditions, we designed a set of experiments. The experimental object is a common magnetic, mainly composed of an iron base and neodymium magnet, with a plastic or rubber coating on the surface to enhance the aesthetic and anti-scratch properties. The test platform is a flat stainless steel plate, ensuring that the surface is smooth and free of impurities.

The experiment used a tensile force gauge (force gauge) for measurement, by manually slowly pushing the magnetic, recording the maximum static friction force when it starts to slide and the dynamic friction force during continuous sliding. Each experiment was repeated three times, and the average value was taken to improve the reliability of the data.

II. Analysis of actual measurement results

After repeated measurements, we obtained the following data:

Static friction force: The average value is between 0.8 N and 1.2 N;

Dynamic friction force: The average value is between 0.5 N and 0.9 N.

From the data, it can be seen that the magnetichas a certain sliding resistance in theadhesive state, which is closely related to its adhesive force and the material of the contact surface. The static friction force is significantly greater than the dynamic friction force, which conforms to the basic law of general friction.

In addition, we also tested the influence of different surface materials on friction. For example, the friction force is smaller on a smooth stainless steel surface; while on a slightly textured metal plate, the friction force increases. This indicates that the roughness of thesurface affects the sliding performance of the magnetic.

III. Analysis of influencing factors

Adhesive strength: The stronger the adhesive force of the magnetic, the greater the friction force. Therefore, choosing an appropriate magnet strength of the piece is crucial for actual use.

Contact surface material: Different metal surfaces have a significant impact on friction. For example, the friction coefficient between galvanized steel plate and pure iron plate is different.

Surface coating: Some magnetic are coated with rubber or silicone, which can effectively reduce friction and improve the smoothness of sliding.

Temperature and humidity: Changes in environmental temperature and humidity may affect the performance of the magnet, thereby indirectly affecting the friction performance.

IV. Application significance and suggestions

Understanding the sliding friction force of magnetic is of great significance for product design, user experience optimization, and safety protection. For example, in scenarios where frequent position adjustment is required, lower friction force helps to improve the convenience of operation; while in high-precision applications, it is necessary to ensure sufficient friction force to prevent accidental sliding.

Based on the actual measurement data, it is recommended that manufacturers reasonably control the size of the magnet and the adhesive area when designing magnetic, and at the same time consider the user's application scenario, choose an appropriate surface treatment method to achieve a good balance.

V. Conclusion

Through the actual measurement and analysis of the sliding friction force of the magneticplanar adhesion, we not only obtained the key physical parameters, but also provided a scientific basis for the optimization and application of the product. With the continuous development of smart home and office equipment, magneticas a new type of multifunctional accessory, its performance research will become more and more important. In the future, further multidimensional and multi-scenario friction tests will help promote the standardization and intelligent development of such products.

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