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[会议论文]

Finite control set model predictive DC-grid voltage estimation control in DC-microgrids

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author:

Abdullahi, Salisu (Abdullahi, Salisu.) [1] | Jin, Tao (Jin, Tao.) [2] (Scholars:金涛)

Indexed by:

EI

Abstract:

Using a linear Kalman filtering approach (LKFA), the finite-control-set model predictive control (FCS- MPC) proposes for DC-grid voltage estimation control in direct current microgrid systems (DCMS). The proposed control algorithm technique addresses real-time measurements needed to implement the FCS-MPC by adopting the LKFA for real-time application. The state-space model is used to produce the second DCMS predictive model, which provides access to a sample time for the performance of an efficient algorithm. The dynamic model of DCMS is transformed into a stationary linear stochastic discrete time-invariant system to standardize the state estimation design. The DC-grid voltage estimation reference is computed leveraging LKFA and a state feedback control law based on the dynamic algebraic Riccati equation with integral action. The proposed algorithm has been verified under varying load demands. Fast computations, DC-grid voltage estimation, and equally estimated power-sharing between DERs have all been realized. © 2021 IEEE.

Keyword:

Invariance Microgrids Model predictive control Predictive analytics Predictive control systems Riccati equations State feedback State space methods Stochastic models Stochastic systems

Community:

  • [ 1 ] [Abdullahi, Salisu]Fuzhou University, School of Electrical Engineering and Automation, Fuzhou; 350116, China
  • [ 2 ] [Jin, Tao]Fuzhou University, School of Electrical Engineering and Automation, Fuzhou; 350116, China

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Year: 2021

Language: English

Cited Count:

WoS CC Cited Count:

SCOPUS Cited Count: 8

30 Days PV: 0

查看更多>>操作日志

管理员  2024-08-15 09:31:15  更新被引

管理员  2024-07-13 22:06:08  更新被引

颜晓玉  2024-04-29 15:44:37  数据初审

金涛  2023-10-18 20:50:15  认领

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