能量采集器的安全设计研究

Oleg Gaidai, Vladimir Yakimov, Fang Wang, Yihan Xing, Fuxi Zhang
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引用次数: 1

摘要

现代海上和陆上绿色能源工程包括能源收集,因此,广泛的实验研究以及安全性和可靠性分析对设计和工程至关重要。为此,在实际的现场风速条件下,进行了多次风洞试验,以检验驰骋式能量采集器的性能。接下来,本文提出了一种新的结构可靠性方法,该方法特别适合于在代表性时间推移期间进行数值模拟或模拟观察的多维能量收集系统,从而产生遍历系统时间记录。本研究表明,所提倡的方法可用于动态系统结构损伤或失效的风险评估。此外,处理时间序列的传统可靠性方法不容易处理系统的高维性,以及系统组件之间的非线性相互关系。本研究的目的是评估最先进的可靠性方法,即使从有限的底层数据集中也能有效地提取相关统计信息。本文所描述的方法旨在帮助设计者评估非线性多维动态能量收集系统的失效和危害风险。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Safety design study for energy harvesters
Abstract Modern offshore and onshore green energy engineering includes energy harvesting—as a result, extensive experimental investigations, as well as safety and reliability analysis are crucial for design and engineering. For this study, several wind-tunnel experiments under realistic in situ wind speed conditions have been conducted to examine the performance of galloping energy harvester. Next, a novel structural reliability approach is presented here that is especially well suited for multi-dimensional energy harvesting systems that have been either numerically simulated or analog observed during the representative time lapse, yielding an ergodic system time record. As demonstrated in this study, the advocated methodology may be used for risk assessment of dynamic system structural damage or failure. Furthermore, traditional reliability methodologies dealing with time series do not easily cope with the system’s high dimensionality, along with nonlinear cross-correlations between the system’s components. This study’s objective was to assess state-of-the-art reliability method, allowing efficient extraction of relevant statistical information, even from a limited underlying dataset. The methodology described in this study aims to assist designers when assessing nonlinear multidimensional dynamic energy harvesting system’s failure and hazard risks.
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