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Guidelines for placing additional sensors to improve variation diagnosis in assembly processes

机译:放置附加传感器以改善装配过程中的变化诊断的准则

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Dimensional variation reduction is critical to assuring high quality in assembly and manufacturing processes. The extent to which data from a multiple-sensor system aids the diagnosis of variation sources depends on the effective placement of the sensors. The diagnostic objective that we consider is to estimate the variance components for potential variation sources. Using a linear structured model to represent the effects of the variation sources on the measurement data, this paper studies the problem of how to add additional sensor(s) to ensure diagnosability and/or improve estimation accuracy. Most prior work on sensor placement focused on automated numerical search algorithms that optimize rather unintuitive mathematical measures of diagnosability and accuracy. Our objective is to translate the measures into expressions that provide better conceptual guidance into how to most appropriately locate additional sensors to improve accuracy and diagnosability. The expressions may be used in conjunction with qualitative judgment and expert knowledge as the basis for locating additional sensors. Alternatively, they can be used in conjunction with existing numerical search routines by providing initial guesses for the sensor location and/or substantially narrowing the space of feasible sensor locations that must be searched during the numerical optimization. The proposed method is illustrated with examples from automotive panel assembly.
机译:减小尺寸偏差对于确保组装和制造过程的高质量至关重要。来自多传感器系统的数据有助于诊断变化源的程度取决于传感器的有效放置。我们考虑的诊断目标是估计潜在变异源的变异分量。本文使用线性结构化模型表示变化源对测量数据的影响,研究了如何添加额外的传感器以确保可诊断性和/或提高估计精度的问题。传感器放置的大多数现有工作都集中在自动数值搜索算法上,该算法优化了诊断性和准确性相当不直观的数学度量。我们的目标是将这些度量转化为表达形式,从而为如何最适当地定位其他传感器以提高准确性和可诊断性提供更好的概念指导。这些表达可以与定性判断和专业知识一起用作定位其他传感器的基础。或者,它们可以与现有的数字搜索例程结合使用,方法是提供传感器位置的初始猜测和/或大大缩小在数值优化过程中必须搜索的可行传感器位置的空间。所提出的方法以汽车面板组件为例进行说明。

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