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Efficient simulation of fully non-stationary random wind field based on reduced 2D hermite interpolation

机译:基于减少的2D Hermite插值的完全非平稳随机风场的高效模拟

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The spectral representation method (SRM) has been widely used to simulate stationary or non-stationary wind fields for engineering structures. Although several attempts have been made to realize the invoking of Fast Fourier Transform (FFT), the SRM is still very inefficient to simulate the fully non-stationary wind field with a time-varying coherence due to the extremely time-consuming Cholesky decompositions and large memory requirement. In this paper, a reduced 2D Hermite interpolation-enhanced approach is developed to further improve the efficiency of SRM in simulating fully non-stationary wind fields. Central to this approach is the interpolation procedure which requires Cholesky decompositions and storage of cross power spectral density matrix (CEPSD) elements only at interpolation knots. Thus the computational costs of Cholesky decompositions and memory requirement are dramatically decreased. The number of Cholesky decompositions is then fixed with no relation to the segments of frequency and duration of wind samples, which eliminates the Cholesky decomposition as a cause that affects the simulation efficiency. Meanwhile, each element in the decomposed CEPSD matrix is decoupled into products of time- and frequency-dependent functions by the reduced 2D Hermite interpolation, so the FFT can be used to expedite the summation of trigonometric terms. Apart from using FFT, another merit of the proposed approach is that an accelerated FFT algorithm can be incorporated to further improve the simulation efficiency based on the specific decoupled expression of frequency-dependent functions. The parametric analysis shows that the proposed approach is very efficient in comparison with the existing method using proper orthogonal decomposition (POD), and it provides a desired level of simulation accuracy when appropriate interpolation interval is selected. The case study in simulating the fully non-stationary wind field of a long-span cable-stayed bridge demonstrates the effectiveness of the proposed approach with verifications on both evolutionary power spectra and correlation functions.
机译:光谱表示方法(SRM)已被广泛用于模拟工程结构的固定式或非静止风场。虽然已经进行了几次尝试来实现快速傅里叶变换(FFT)的调用,但SRM仍然非常低效,以模拟由于极其耗时的尖头分解和大而具有时变的相干性的完全非平稳的风场。内存要求。在本文中,开发了一种减少的2D Hermite插值增强方法,以进一步提高SRM在模拟完全非平稳风场中的效率。这种方法的核心是插值过程,其需要在插值结处仅需要尖端分解和存储跨功率谱密度矩阵(CEPSD)元件。因此,巫弦分解和内存要求的计算成本显着降低。然后固定尖头分解的数量,没有与风样的频率和持续时间的段的关系,这消除了尖头分解作为影响模拟效率的原因。同时,分解的CEPSD矩阵中的每个元素通过减少的2D Hermite插值分离成时间和频率依赖性功能的产品,因此FFT可用于加快三角术语的求和。除了使用FFT之外,所提出的方法的另一种优点是可以结合加速的FFT算法,以进一步提高基于频率相关功能的特定解耦表达的模拟效率。参数分析表明,与使用适当的正交分解(POD)的现有方法相比,该方法非常有效,并且在选择适当的插值间隔时提供所需的模拟精度水平。模拟长跨度斜拉桥的完全非静止风电场的案例研究展示了所提出的方法对两种进化功率谱和相关函数的验证的有效性。

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