Model-based Design Tool for Cyber-physical Power Systems using SystemC-AMS

Fuente: arXiv
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Main Authors: Bhadani, Rahul, Banik, Satyaki, Tu, Hao, Lukic, Srdjan, Karsai, Gabor
Format: Preprint
Published: 2024
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author Bhadani, Rahul
Banik, Satyaki
Tu, Hao
Lukic, Srdjan
Karsai, Gabor
author_facet Bhadani, Rahul
Banik, Satyaki
Tu, Hao
Lukic, Srdjan
Karsai, Gabor
contents Cyber-physical power systems, such as grids, integrate computational and communication components with physical systems to introduce novel functions and improve resilience and fault tolerance. These systems employ computational components and real-time controllers to meet power demands. Microgrids, comprising interconnected components, energy resources within defined electrical boundaries, computational elements, and controllers, offer a solution for integrating renewable energy sources and ensuring resilience in electricity demand. Simulating these cyber-physical systems (CPS) is vital for grid design, as it facilitates the modeling and control of both continuous physical processes and discrete-time power converters and controllers. This paper presents a model-based design tool for simulating cyber-physical power systems, including microgrids, using SystemC-AMS. The adoption of SystemC-AMS enables physical modeling with both native components from the SystemC-AMS library and user-defined computational elements. We observe that SystemC-AMS can accurately produce the electromagnetic transient responses essential for analyzing grid stability. Additionally, we demonstrate the effectiveness of SystemC-AMS through use cases that simulate grid-following inverters. Comparing the SystemC-AMS implementation to one in Simulink reveals that SystemC-AMS offers a more rapid simulation. A design tool like this could support microgrid designers in making informed decisions about the selection of microgrid components prior to installation and deployment.
format Preprint
id arxiv_https___arxiv_org_abs_2406_17785
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Model-based Design Tool for Cyber-physical Power Systems using SystemC-AMS
Bhadani, Rahul
Banik, Satyaki
Tu, Hao
Lukic, Srdjan
Karsai, Gabor
Systems and Control
Cyber-physical power systems, such as grids, integrate computational and communication components with physical systems to introduce novel functions and improve resilience and fault tolerance. These systems employ computational components and real-time controllers to meet power demands. Microgrids, comprising interconnected components, energy resources within defined electrical boundaries, computational elements, and controllers, offer a solution for integrating renewable energy sources and ensuring resilience in electricity demand. Simulating these cyber-physical systems (CPS) is vital for grid design, as it facilitates the modeling and control of both continuous physical processes and discrete-time power converters and controllers. This paper presents a model-based design tool for simulating cyber-physical power systems, including microgrids, using SystemC-AMS. The adoption of SystemC-AMS enables physical modeling with both native components from the SystemC-AMS library and user-defined computational elements. We observe that SystemC-AMS can accurately produce the electromagnetic transient responses essential for analyzing grid stability. Additionally, we demonstrate the effectiveness of SystemC-AMS through use cases that simulate grid-following inverters. Comparing the SystemC-AMS implementation to one in Simulink reveals that SystemC-AMS offers a more rapid simulation. A design tool like this could support microgrid designers in making informed decisions about the selection of microgrid components prior to installation and deployment.
title Model-based Design Tool for Cyber-physical Power Systems using SystemC-AMS
topic Systems and Control
url https://arxiv.org/abs/2406.17785