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首页> 外文期刊>IEEE Transactions on Instrumentation and Measurement >A Genetic-Algorithm-Optimized Fractal Model to Predict the Constriction Resistance From Surface Roughness Measurements
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A Genetic-Algorithm-Optimized Fractal Model to Predict the Constriction Resistance From Surface Roughness Measurements

机译:遗传算法优化分形模型,可通过表面粗糙度测量预测抗压强度

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摘要

The electrical contact resistance greatly influences the thermal behavior of substation connectors and other electrical equipment. During the design stage of such electrical devices, it is essential to accurately predict the contact resistance to achieve an optimal thermal behavior, thus ensuring contact stability and extended service life. This paper develops a genetic algorithm (GA) approach to determine the optimal values of the parameters of a fractal model of rough surfaces to accurately predict the measured value of the surface roughness. This GA-optimized fractal model provides an accurate prediction of the contact resistance when the electrical and mechanical properties of the contacting materials, surface roughness, contact pressure, and apparent area of contact are known. Experimental results corroborate the usefulness and accuracy of the proposed approach. Although the proposed model has been validated for substation connectors, it can also be applied in the design stage of many other electrical equipments.
机译:电气接触电阻会极大地影响变电站连接器和其他电气设备的热性能。在此类电气设备的设计阶段,至关重要的是准确预测接触电阻以实现最佳的热性能,从而确保接触稳定性和延长使用寿命。本文开发了一种遗传算法(GA)方法来确定粗糙表面分形模型参数的最佳值,以准确预测表面粗糙度的测量值。当已知接触材料的电气和机械性能,表面粗糙度,接触压力和表观接触面积时,此GA优化的分形模型可以准确预测接触电阻。实验结果证实了该方法的实用性和准确性。尽管所提出的模型已针对变电站连接器进行了验证,但它也可以应用于许多其他电气设备的设计阶段。

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