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Reliability of mechanisms with periodic random modal frequencies using an extreme value-based approach

机译:使用基于极值的方法对具有周期性随机模态频率的机制的可靠性

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摘要

Resonance in a dynamic system is to be avoided since it often leads to impaired performance, over-stressing, fatigue fracture and adverse human reactions. Thus, it is necessary to know the modal frequencies and ensure they do not coincide with any applied periodic loadings. For a rotating planar mechanism, the coefficients in the mass and stiffness matrices are periodically varying, and if the underlying geometry and material properties are treated as random variables then the modal frequencies are both position-dependent and probabilistic. The avoidance of resonance is now a complex problem. Herein, free vibration analysis helps determine ranges of modal frequencies that in turn, identify the running speeds of the mechanism to be avoided. This paper presents an efficient and accurate sample based approach to determine probabilistic minimum and maximum extremes of the fundamental frequencies and the angular positions of their occurrence. Then, given critical lower and upper frequency constraints it is straightforward to determine reliability in terms of probability of exceedance. The novelty of the proposed approach is that the original expensive and implicit mechanistic model is replaced by an explicit meta-model that captures the tolerances of the design variables over the entire range of angular positions: position-dependent eigenvalues can be found easily and quickly. Extreme value statistics of the modal frequencies and extreme-value statistics of the angular positions are readily computed through MCS. Limit-state surfaces that connect the frequencies to the design variables may be easily constructed. Error analysis identifies three errors and the paper presents ways to control them so the methodology can be sufficiently accurate. A numerical example of a flexible four-bar linkage shows the proposed methodology has engineering applications. The impact of the proposed methodology is two-fold: it presents a safe-side analysis based on free vibration methods to assess and manage the uncertainty in the range of modal frequencies, and, it provides a launching platform for timely design optimization. (C) 2016 Elsevier Ltd. All rights reserved.
机译:应避免在动态系统中产生共振,因为它通常会导致性能下降,过应力,疲劳断裂和不利的人体反应。因此,有必要知道模态频率并确保它们与任何施加的周期性载荷都不相符。对于旋转平面机构,质量矩阵和刚度矩阵中的系数会定期变化,并且如果将基础几何形状和材料属性视为随机变量,则模态频率既取决于位置又具有概率。现在,避免共振是一个复杂的问题。在此,自由振动分析有助于确定模态频率的范围,进而确定要避免的机构的运行速度。本文提出了一种有效且准确的基于样本的方法来确定基本频率及其出现角位置的概率最小和最大极值。然后,给定关键的较低和较高的频率约束,可以直接根据超出概率确定可靠性。提出的方法的新颖性在于,原始的昂贵且隐式的机械模型被一个显式的元模型代替,该模型捕获了整个角度位置范围内设计变量的公差:可以轻松,快速地找到与位置相关的特征值。模态频率的极值统计和角位置的极值统计可通过MCS轻松计算。将频率连接到设计变量的极限状态曲面很容易构造。错误分析可识别三个错误,并且本文提出了控制它们的方法,因此该方法可以足够准确。柔性四连杆机构的数值例子表明,所提出的方法具有工程应用价值。所提出方法的影响有两方面:它提供了一种基于自由振动方法的安全侧分析,以评估和管理模态频率范围内的不确定性,并且为及时进行设计优化提供了一个平台。 (C)2016 Elsevier Ltd.保留所有权利。

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