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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part B. Journal of engineering manufacture >Thermal error prediction method for spindles in machine tools based on a hybrid model
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Thermal error prediction method for spindles in machine tools based on a hybrid model

机译:基于混合模型的机床主轴热误差预测方法

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摘要

Thermal error is one of the major sources of machining inaccuracy. It becomes the dominant source of error and therefore should be predicted and compensated for. This article proposes a vector-angle-cosine hybrid model for thermal error prediction. The model combines the advantages of different constituent models and makes full use of the original measurement results. A multivariable linear regression model, a natural exponential model, and the finite element method are chosen as the three constituent models, and their advantages and disadvantages are demonstrated in detail. The combination weights of the three constituent models are determined by maximizing the cosine value of the angle between the vector-angle-cosine prediction vector and the actual thermal error vector. Experiments on spindle thermal errors are conducted to build and validate the proposed model. The performance comparison between the vector-angle-cosine hybrid model and the three constituent models indicates that the former has better accuracy and robustness under different working conditions. Some actual machining tests are conducted pre- and post compensation, and results show that the size errors are decreased by 60%.
机译:热误差是加工误差的主要来源之一。它成为错误的主要来源,因此应该进行预测和补偿。本文提出了一种用于热误差预测的矢量角余弦混合模型。该模型结合了不同组成模型的优势,并充分利用了原始测量结果。选择了多元线性回归模型,自然指数模型和有限元方法作为三个组成模型,并详细说明了它们的优缺点。通过最大化矢量角度余弦预测矢量和实际热误差矢量之间的角度的余弦值来确定三个组成模型的组合权重。进行主轴热误差实验以建立和验证所提出的模型。向量角余弦混合模型与三个组成模型之间的性能比较表明,在不同的工作条件下,前者具有更好的精度和鲁棒性。在补偿之前和之后进行了一些实际的机加工测试,结果表明尺寸误差降低了60%。

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