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State-space estimation with a Bayesian filter in a coupled PDE system for transient gas flows

机译:耦合PDE系统中用于瞬态气体流动的贝叶斯滤波器的状态空间估计

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The accuracy of the first-principle models describing the evolution of gas dynamics in pipelines is sometimes limited by the lack of understanding of the gas transport phenomena. In this paper, a stochastic filtering approach is proposed based on a sequential Monte Carlo method to provide real-time estimates of the state in gas pipelines. After constructing a state-space model of the compressible single-phase flow based on the laws of conservation of mass and momentum, the optimal sequential importance resampling filter (SIR) is implemented. The state variables are updated with simulated measurements. The two-step Lax-Wendroff method is used for the discretization of the partial differential equations describing the gas model in both space and time to obtain finite-dimensional discrete-time state-space representations. The system states are then combined into an augmented state vector. The resulting nonlinear state-space model is used for the design of the particle filter that provides real-time estimations of the system states. Simulation results for a coupled PDE system describing an unsteady isothermal gas flow demonstrate the effectiveness of the proposed method. A sensitivity analysis is conducted to examine the performance of the filter for different model and observation error covariances and observation intervals.
机译:缺乏对气体传输现象的了解,有时会限制描述管道中气体动力学演变的第一性原理模型的准确性。本文提出了一种基于顺序蒙特卡罗方法的随机滤波方法,以提供天然气管道状态的实时估计。在基于质量和动量守恒定律构造可压缩单相流状态空间模型后,实现了最佳顺序重要性重采样滤波器(SIR)。状态变量通过模拟测量值进行更新。使用两步Lax-Wendroff方法离散化描述气体模型在时间和空间上的偏微分方程,以获得有限维的离散时间状态空间表示。然后将系统状态组合成增强状态向量。生成的非线性状态空间模型用于粒子滤波器的设计,该滤波器提供系统状态的实时估计。描述非恒定等温气流的耦合PDE系统的仿真结果证明了该方法的有效性。进行了敏感性分析,以检查不同模型和观察误差协方差及观察间隔的滤波器性能。

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