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首页> 外文期刊>Structural health monitoring >Integration of Non-Destructive Evaluation-based Ultrasonic Simulation: A means for simulation in structural health monitoring
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Integration of Non-Destructive Evaluation-based Ultrasonic Simulation: A means for simulation in structural health monitoring

机译:基于无损评估的超声仿真的集成:结构健康监测中的仿真手段

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摘要

Simulation has become a prerequisite in engineering and science today for visualization of ideas and concepts. In non-destructive evaluation, simulation is increasingly used to show how an inspection method functions with regard to the component to be inspected and is even used for determining the probability of detection of a respective flaw with regard to the inspection method applied. Probability of detection in non-destructive evaluation is optimized in a way that the best sensor positions, as well as sensor tracking paths, can be found through simulation. In classical non-destructive evaluation, a transducer or transducer array can be virtually moved over the surface of a component to be inspected until a full capture of the component's surface and hopefully volume is achieved in terms of the inspection process. However, with structural health monitoring, no movement of the transducers is possible in case those become an integral and hence fixed part of the component considered. Determining the optimum position of a respective structural health monitoring transducer network can therefore only be achieved through optimization procedures, where numerical simulation is possibly the only viable solution to get this done. Establishing a numerical simulation platform for structural health monitoring purposes has been the major objective of the recently completed INDEUS (Integration of Non-Destructive Evaluation-based Ultrasonic Simulation) project, which is described in this article. The open simulation platform includes different simulation tools, where the requirements and options for further extension of those tools and different test cases applied for validation so far are described. The target is to even simulate real complex structures such as applied in civil, aeronautical, and other engineering disciplines made of metallic and polymer-based monolithic and composite materials where the digital models are inherited from traditional computer-aided design and finite element-based designs. This lays the ground for determining the probability of damage for a given loading condition and structure, and the propagation of guided waves in the structure considered for an undamaged and a damage tolerant condition. From those simulation results, the determination of an optimum configuration of sensing transducers for a given set of actuating transducers is then shown for a guided wave-based structural health monitoring system solution to be designed allowing the tolerable damage to be detected reliably.
机译:对于思想和概念的可视化,模拟已经成为当今工程和科学的先决条件。在无损评估中,越来越多地使用模拟来显示一种检查方法相对于要检查的组件的功能,甚至用于确定所采用的检查方法对相应缺陷的检测概率。优化了无损评估中的检测概率,可以通过仿真找到最佳传感器位置以及传感器跟踪路径。在经典的非破坏性评估中,换能器或换能器阵列实际上可以在要检查的组件表面上移动,直到完全捕获组件的表面,并希望在检查过程中达到体积。但是,在进行结构健康监视的情况下,如果换能器成为所考虑组件的组成部分并因此成为固定部分,则换能器将无法移动。因此,只能通过优化程序来确定各个结构健康监测换能器网络的最佳位置,而数值模拟可能是实现此目的的唯一可行解决方案。建立用于结构健康监测的数值模拟平台已成为最近完成的INDEUS(基于无损评估的超声模拟集成)项目的主要目标,本文将对此进行介绍。开放的仿真平台包括不同的仿真工具,其中描述了进一步扩展这些工具的要求和选项以及迄今为止用于验证的不同测试用例。目标甚至是模拟真实的复杂结构,例如在民用,航空和其他工程学科中应用,这些学科是由金属和聚合物基单片及复合材料制成的,其中数字模型继承自传统的计算机辅助设计和基于有限元的设计。这为确定给定的负载条件和结构的损坏可能性以及考虑到结构的无损损坏容忍条件下的结构中的导波传播奠定了基础。从这些模拟结果中,然后显示出对于给定的一组致动换能器,确定感测换能器的最佳配置,以针对基于导波的结构健康监测系统解决方案进行设计,从而可以可靠地检测出可容忍的损坏。

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