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Application of Fuzzy Logic in the Analysis of Surface Roughness of Thin-Walled Aluminum Parts

机译:模糊逻辑在薄壁铝件表面粗糙度分析中的应用

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This paper presents the development and application of fuzzy logic in the milling of thin-walled parts for the purpose of analyzing surface roughness. Surface roughness is an important performance indicator of finished components. Depending on conditions such as feed ratio and wall thickness, different machining strategies can be applied. The objective was to analyze and determine the influence of the machining conditions on surface roughness. The model for analyzing and determining surface roughness of the aluminum alloy AL 7075 was trained (design rules) and compared by using the experimental data. The average deviation of the compared data for surface roughness was 12.3%. The effect of the feed ratio, wall thickness and machining strategy as well as their interactions in machining are thoroughly analyzed and presented in this study.
机译:本文介绍了薄壁零件铣削模糊逻辑的开发和应用,以分析表面粗糙度。 表面粗糙度是成品组件的重要性能指标。 根据进给比和壁厚的条件,可以应用不同的加工策略。 目的是分析和确定加工条件对表面粗糙度的影响。 用于分析和确定铝合金AL 7075的表面粗糙度的模型(设计规则)并通过使用实验数据进行比较。 表面粗糙度的比较数据的平均偏差为12.3%。 进料比,壁厚和加工策略以及它们在加工中的相互作用的效果彻底分析并介绍了本研究。

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