首页> 外文期刊>Proceedings of the Royal Society. Mathematical, physical and engineering sciences >An adaptive polynomial based forward prediction algorithm for multi-actuator real-time dynamic substructuring
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An adaptive polynomial based forward prediction algorithm for multi-actuator real-time dynamic substructuring

机译:基于自适应多项式的多执行器实时动态子结构正向预测算法

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摘要

Real-time dynamic substructuring is a, novel experimental technique used to test the dynamic behaviour of complex structures. The technique involves creating a hybrid model of the entire structure by combining an experimental test piece-the substructure-with a set of numerical models. In this paper we describe a multi-actuator substructured system of a coupled three mass-spring-damper system and use this to demonstrate the nature of delay errors which can first lead to a loss of accuracy and then to instability of the substructuring algorithm. Synchronization theory and delay compensation are used to show how the delay errors, present in the transfer systems, can be minimized by online forward prediction. This new algorithm uses a more generic approach than the single step algorithms applied to substructuring thus far, giving considerable advantages in terms of flexibility and accuracy. The basic algorithm is then extended by closing the control loop resulting in an error driven adaptive feedback controller which can operate with no prior knowledge of the plant dynamics. The adaptive algorithm is then used to perform a real substructuring test using experimentally measured forces to deliver a stable substructuring algorithm.
机译:实时动态子结构是一种新颖的实验技术,用于测试复杂结构的动态行为。该技术涉及通过将实验测试件(子结构)与一组数值模型相结合来创建整个结构的混合模型。在本文中,我们描述了一个耦合的三质量-弹簧-阻尼器系统的多执行器子结构系统,并用它来证明延迟误差的性质,该误差首先会导致精度损失,然后导致子结构算法不稳定。同步理论和延迟补偿用于说明如何通过在线前向预测使传输系统中存在的延迟错误最小化。与迄今为止应用于子结构的单步算法相比,该新算法使用了更通用的方法,在灵活性和准确性方面具有可观的优势。然后,通过关闭控制回路来扩展基本算法,从而产生一个误差驱动的自适应反馈控制器,该控制器可以在无需事先了解工厂动态的情况下运行。然后,将自适应算法用于使用实验测得的力来执行实际的子结构测试,以提供稳定的子结构算法。

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