Optimum Selection of Discrete Tolerances

W. Lee, T. Woo
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引用次数: 132

Abstract

Tolerancing involves considerations from all phases of the life cycle of a product including design, manufacturing, assembly, and inspection. Along with minimum cost and maximum functionality and interchangeability, the practice of tolerancing urges a designer to choose an appropriate manufacturing (or inspection) process as well. This situation is formalized as a discrete optimization problem. For an optimum selection of tolerances from a given discrete model involving various manufacturing processes, minimization of manufacturing cost is achieved under the constraint of tolerance stack-up. A random variable and its standard deviation are associated with a dimension and its tolerance. This probabilistic approach enables a trade-off between performance and tolerance (cost). But it also suggests probabilistic optimization. With the aid of a notion called the reliability index [8], tolerance selection is formulated as an integer programming problem. A branch and bound algorithm for ensuring optimum selection is developed by exploiting the special structure of the constraints. To make the enumeration tree small, monotonic relations among the reliability index, cost, and tolerance are examined. The algorithm is tested with examples.
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离散公差的最佳选择
公差涉及产品生命周期的所有阶段,包括设计、制造、装配和检验。除了最低的成本和最大的功能和互换性外,公差的实践也促使设计师选择适当的制造(或检验)过程。这种情况被形式化为离散优化问题。对于给定的离散模型中涉及多个制造过程的公差的最优选择,在公差叠加约束下实现制造成本的最小化。随机变量及其标准差与尺寸及其容差有关。这种概率方法可以在性能和容忍度(成本)之间进行权衡。但它也提出了概率优化。借助可靠性指标[8]的概念,将公差选择表述为一个整数规划问题。利用约束的特殊结构,提出了一种保证最优选择的分支定界算法。为了使枚举树较小,研究了可靠性指标、成本和公差之间的单调关系。通过实例对算法进行了验证。
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