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Material Flaw Populations and Component Strength Distributions in the Context of the Weibull Function

机译:在Weibull功能的背景下的材料缺陷群体和部件强度分布

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摘要

A clear relationship between the population of brittle-fracture controlling flaws generated in a manufactured material and the distribution of strengths in a group of selected components is established. Assumptions regarding the strength-flaw size relationship, the volume of the components, and the number in the group, are clarified and the contracting effects of component volume and truncating effects of group number on component strength empirical distribution functions highlighted. A simple analytical example is used to demonstrate the forward prediction of population distribution and the more important reverse procedure of empirical strength distribution underlying flaw population. Three experimental examples are given of the application of the relationships to state-of-the-art micro- and nano-scale strength distributions to experimentally determine flaw populations: two on etched microelectromechanical systems (MEMS) structures and one on native and oxidized silicon nanowires. In all examples, the minimum threshold strength and conjugate maximum flaw size are very well estimated and the complete flaw population, including the minimum flaw size, are very poorly estimated, although etching, bimodal, and oxidation effects were clearly discernible. The results suggest that the best use of strength distribution information for MEMS manufacturers and designers might be in estimation of the strength threshold.
机译:建立了在制造材料中产生的脆性断裂控制缺陷之间的明显关系,并建立了一组所选组分中的强度分布。关于强度缺陷尺寸关系的假设,阐明了组分的体积和组中的数量,并突出了组分强度经验分布函数的组分体积和截断效应的收缩效应。一种简单的分析例子用于证明人口分布的前向预测和缺陷群体的经验强度分布的更重要的反向程序。给出了三种实验例,赋予了现有技术微型和纳米级强度分布的关系,以实验确定缺陷群:两个在蚀刻的微机电系统(MEMS)结构上,并且在天然和氧化的硅纳米线上。在所有示例中,最小阈值强度和缀合物最大缺陷尺寸非常估计,并且在蚀刻,双峰和氧化效应清晰可辨别蚀刻,并且氧化效应,估计具有最小缺陷尺寸的完整缺陷群体估计非常差。结果表明,MEMS制造商和设计人员的最佳强度分布信息可能估计强度阈值。

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