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首页> 外文期刊>Journal of Manufacturing Systems >A Multivariate Statistical Analysis of Sampling Uncertainties in Geometric and Dimensional Errors for Circular Features
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A Multivariate Statistical Analysis of Sampling Uncertainties in Geometric and Dimensional Errors for Circular Features

机译:圆形特征的几何和尺寸误差中的采样不确定度的多元统计分析

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摘要

Traditional research on sampling strategies for circular features has focused on reducing the error in estimation of form error for determining the optimal sample size. However, circular features have more than one geometric dimensioning and tolerancing (GD&T) error (form, position, and size) that need to be estimated simultaneously using a single inspection procedure. The inspection method used should, therefore, have a good overall performance in simultaneously assessing all of the GD&T parameters of interest. In this paper, a multivariate statistical model using Exploratory Factor Analysis has been presented for simultaneously analyzing the effect of sampling strategies on the sampling uncertainty of the GD&T errors. Realistic circular profiles have been generated incorporating lobes, eccentricity, and roughness, and a minimum zone fitting algorithm has been used to determine the form error. The error in position and size are computed based on the minimum circumscribed circle of the profile, in accordance with ANSI guidelines. A six-dimensional performance metric vector quantifies the difference between the true value of the errors and the value evaluated using the sample. This vector is used as a basis to recommend a sample size and technique that performs well in simultaneously evaluating the form error, position, and size of a circular profile. The results obtained from the simulated profiles are validated using data collected from manufactured parts.
机译:关于圆形特征的采样策略的传统研究集中于减少用于确定最佳样本大小的形状误差估计中的误差。但是,圆形特征具有多个几何尺寸和公差(GD&T)误差(形状,位置和尺寸),这些误差需要使用单个检查程序同时进行估算。因此,在同时评估所有感兴趣的GD&T参数时,所使用的检查方法应具有良好的整体性能。本文提出了一种探索性因素分析的多元统计模型,用于同时分析抽样策略对GD&T误差抽样不确定性的影响。生成了真实的圆形轮廓,其中包含凸角,偏心率和粗糙度,并且已使用最小区域拟合算法来确定形状误差。根据ANSI准则,根据轮廓的最小外接圆计算位置和尺寸的误差。六维性能度量矢量可量化误差的真实值与使用样本评估的值之间的差异。该向量用作推荐样本大小和技术的基础,该样本在同时评估圆形轮廓的形状误差,位置和大小方面表现良好。从仿真轮廓中获得的结果将使用从制造零件中收集的数据进行验证。

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