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The harmonic fitting method for the assessment of the substitute geometry estimate error. Part II: statistical approach, machining process analysis and inspection plan optimisation

机译:用于评估替代几何形状估计误差的谐波拟合方法。第二部分:统计方法,加工过程分析和检查计划优化

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摘要

The Harmonic Fitting Method (HFM), presented in the first part of this work, is here used to describe the estimate error in statistical terms. In fact, the estimate error can be considered as a random variable that depends on three different random processes: the machining, the part positioning, and the measurement processes. With the HFM it is possible to determine the moments of the estimate error (systematic value and covariance matrix) as a function of the inspection plan. It will be demonstrated that the systematic part of the estimate error derives from the systematic part of the machined surface deviations, and that the random part derives from the variability of the machining and measurement processes. In particular, the causes of the machining process variability will be analysed in terms of harmonics, thus establishing a direct relationship between the machining process and the substitute geometry estimate error. Moreover, the possibility of obtaining the probability density function of the estimate error from the HFM will be analysed, together with the problem of the inspection plan optimisation. The HFM will be used to design the optimal inspection plan for a circular geometric feature, and it will be demonstrated that, when the part positioning is subjected to a rotation uncertainty, the estimate errors of the diameter and of the eccentricity are likely to follow a Gaussian and a Rayleigh distribution, respectively. A real case of turned shafts will be considered, and the HFM optimisation of the inspection plan will be discussed.
机译:本文第一部分介绍的谐波拟合方法(HFM)用于以统计术语描述估计误差。实际上,估计误差可以认为是一个随机变量,它取决于三个不同的随机过程:加工,零件定位和测量过程。使用HFM,可以根据检查计划确定估计误差的矩(系统值和协方差矩阵)。将会证明,估计误差的系统部分来自于加工表面偏差的系统部分,而随机部分则来自于加工和测量过程的可变性。特别地,将根据谐波分析加工过程可变性的原因,从而在加工过程和替代几何估计误差之间建立直接关系。此外,将分析从HFM获得估计误差的概率密度函数的可能性,以及检查计划最优化的问题。 HFM将用于为圆形几何特征设计最佳检查计划,并且将证明,当零件定位受到旋转不确定性的影响时,直径和偏心率的估计误差可能会遵循高斯分布和瑞利分布。将考虑转轴的实际情况,并将讨论检查计划的HFM优化。

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