Dynamic State Estimation for The Low-Carbon Integrated Electricity-Heat-Gas System

Yuan Yao, Yinliang Xu, Wai Kin Victor Chan, Yuzhu Zeng
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引用次数: 1

Abstract

The integrated energy system (IES) concept has been proposed in recent years to efficiently lower the whole system’s operation cost and carbon emission. The uncertainty and volatility of various sources pose challenges to identifying and maintaining the normal state of the IES during daily operation. This paper proposes a dynamic state estimation model for the integrated electricity-heat-gas system based on the Kalman Filter. By applying the finite difference method, the partial differential equations that describe the dynamic characteristics of gas and heat are transformed into a set of algebraic equations. Then, the discrete-time system equations of IES are developed. Finally, the Kalman filter is applied to establish the dynamic state estimation model of IES. Simulation results verify the effectiveness of the proposed method.
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低碳电-热-气一体化系统的动态估计
为了有效降低整个系统的运行成本和碳排放,近年来提出了综合能源系统(IES)的概念。各种来源的不确定性和波动性对识别和维持IES在日常运行中的正常状态提出了挑战。提出了一种基于卡尔曼滤波的电-热-气一体化系统的动态状态估计模型。利用有限差分法,将描述气体和热量动态特性的偏微分方程转化为一组代数方程。然后,建立了IES的离散时间系统方程。最后,应用卡尔曼滤波建立了系统的动态状态估计模型。仿真结果验证了该方法的有效性。
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