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Excitation Design For Damage Detection Using Iterative Adjoint-based Optimization-part 1: Method Development

机译:基于迭代伴随优化的损伤检测励磁设计-第1部分:方法开发

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A technique is developed to answer the important question: "Given limited system response measurements and ever-present physical limits on the level of excitation, what excitation should be provided to a system to make damage most detectable?" The solution is developed by forming an augmented system that is the union of the undamaged and damaged systems. The difference between measurable outputs of the undamaged and damaged systems then simply becomes a state in this augmented system which may be then maximized by maximizing a related and easily developed cost function. By formulating an adjoint version of the optimization problem, the gradient of this cost function with respect to the excitation may be calculated very efficiently, and a straight forward gradient ascent procedure follows. This process is demonstrated on a 2 DOF system with a nonlinear stiffness, where it is shown that an optimized excitation increases the detectability of the damage by several orders of magnitude.
机译:已开发出一种技术来回答以下重要问题:“鉴于有限的系统响应测量和对激励水平的不断出现的物理限制,应向系统提供哪种激励以使损害最可检测到?”该解决方案是通过形成一个增强的系统来开发的,该系统是未损坏和损坏的系统的结合体。然后,未损坏的系统和损坏的系统的可测量输出之间的差异仅变成该扩充系统中的一种状态,然后可以通过最大化相关且易于开发的成本函数来使其最大化。通过制定最优化问题的伴随版本,可以非常有效地计算此成本函数相对于激励的梯度,并遵循直截了当的梯度上升过程。在具有非线性刚度的2自由度系统上演示了此过程,其中显示了优化的激励将损坏的可检测性提高了几个数量级。

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