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Gaussian Process Time-Series Models for Structures under Operational Variability

机译:操作变异性下结构的高斯过程时间序列模型

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A wide range of vibrating structures are characterized by variable structural dynamics resulting from changes in environmental and operational conditions, posing challenges in their identification and associated condition assessment. To tackle this issue, the present contribution introduces a stochastic modeling methodology via Gaussian Process (GP) time-series models. In the presently introduced approach, the vibration response is represented by means of a random coefficient time-series model, whose coefficients comply with a GP regression on the environmental and operational parameters. The approach may be implemented in conjunction to any type of linear-in-the-parameters time-series model, ranging from simple AR models to more complex non-linear or non-stationary time-series models. The obtained GP time-series modeling approach provides an effective and compact global representation of the vibrational response of a structure under a wide span of environmental and operational conditions. The effectiveness of the postulated GP time-series models is demonstrated through two case studies: the first involves the identification of the vertical vibration response of the Humber bridge, evaluated over a period of three years; the second considers the long-term simulated vibration response of a wind turbine featuring non-stationary dynamics stemming from the rotor speed. In both cases, the variation of the average wind speed is the main driver of uncertainty, while, through application of the proposed GP time-series models, it is possible to track the resulting variation in modal quantities.
机译:各种振动结构的特征是环境和操作条件的变化会导致结构动态变化,这给它们的识别和相关条件评估带来了挑战。为了解决这个问题,本文稿通过高斯过程(GP)时间序列模型引入了一种随机建模方法。在当前介绍的方法中,振动响应是通过随机系数时间序列模型表示的,该模型的系数符合关于环境和操作参数的GP回归。该方法可以结合从简单的AR模型到更复杂的非线性或非平稳时间序列模型的任何类型的参数线性时间序列模型来实施。所获得的GP时间序列建模方法可在广泛的环境和操作条件下提供有效而紧凑的结构振动响应的全局表示。通过两个案例研究证明了假定的GP时间序列模型的有效性:第一个案例涉及识别汉伯桥的竖向振动响应,并进行了为期三年的评估。第二部分考虑了具有长期动态特性的风力涡轮机的振动响应,该响应具有源自转子转速的非平稳动力。在这两种情况下,平均风速的变化是不确定性的主要驱动因素,而通过应用建议的GP时间序列模型,可以跟踪模态量的最终变化。

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