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Simulating a Gaussian random process by conditional PDF

机译:通过条件PDF模拟高斯随机过程

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Purpose - One of the biggest problems in an R&D process is the acquisition of information about the structure dynamic loads, which are needed to reliably prove the structure's durability. This paper aims to present an innovative method for simulating stationary Gaussian random processes, which is based on the conditional probability density function (PDF) approach. Design/methodology/approach - The basic information on the structure dynamic loads is first obtained by short-duration measurements on prototypes or the structure itself. These data are then used to simulate the expected structure load states during operations. A theoretical background is presented first, which is followed by the application of the method. Findings - The results show that the spectral characteristics of the original and simulated Gaussian random processes are very similar, if the influential range of the conditional PDF is properly chosen. Practical implications - The method can be applied for simulating random loads of structures, and excitations of dynamic systems, for example. Originality/value - The innovative simulation approach could be helpful to engineers in the early phases of the new product development process.
机译:目的-研发过程中最大的问题之一是获取有关结构动态载荷的信息,这是可靠地证明结构耐久性的必要条件。本文旨在基于条件概率密度函数(PDF)方法,提出一种模拟平稳高斯随机过程的创新方法。设计/方法/方法-有关结构动态载荷的基本信息首先是通过对原型或结构本身进行短期测量获得的。然后,这些数据将用于模拟操作过程中预期的结构荷载状态。首先介绍了理论背景,然后是该方法的应用。发现-结果表明,如果适当选择条件PDF的影响范围,则原始和模拟的高斯随机过程的光谱特性非常相似。实际意义-例如,该方法可用于模拟结构的随机载荷和动态系统的激励。原创性/价值-创新的模拟方法可能对新产品开发过程的早期阶段的工程师有所帮助。

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