Coordinated Operation and Control of Combined Electricity and Natural Gas Systems with Thermal Storage

As one of the most effective approaches in dealing with the energy crisis, combined electricity and natural gas systems have become more and more popular worldwide. To take full advantages of such hybrid energy networks, a proper operation and control method is required. In this paper, a novel appro...

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Main Authors: Yu Liu, Shan Gao, Xin Zhao, Chao Zhang, Ningyu Zhang
Format: Article
Language:English
Published: MDPI AG 2017-07-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/10/7/917
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spelling doaj-b6fb9142ff7f425098b85df9af2897012020-11-25T00:55:35ZengMDPI AGEnergies1996-10732017-07-0110791710.3390/en10070917en10070917Coordinated Operation and Control of Combined Electricity and Natural Gas Systems with Thermal StorageYu Liu0Shan Gao1Xin Zhao2Chao Zhang3Ningyu Zhang4School of Electrical Engineering, Southeast University, Nanjing 210018, ChinaSchool of Electrical Engineering, Southeast University, Nanjing 210018, ChinaSchool of Electrical Engineering, Southeast University, Nanjing 210018, ChinaSchool of Electrical Engineering, Southeast University, Nanjing 210018, ChinaState Grid Jiangsu Electric Power Company Research Institute, Nanjing 211103, ChinaAs one of the most effective approaches in dealing with the energy crisis, combined electricity and natural gas systems have become more and more popular worldwide. To take full advantages of such hybrid energy networks, a proper operation and control method is required. In this paper, a novel approach coordinating combined heating and power generation is proposed. First, state excursion rate, a criterion describing the deviation of system operation, is defined for system state evaluation. Then, thermal energy storage is allocated to provide more and better operation modes for combined generation. By investigating the state excursion rate of hybrid energy systems, the optimal operation mode is chosen through an analytical strategy. Case studies on hybrid energy networks show that all state variables, including voltages in electric systems and pressures in gas networks, are adjusted to follow proper operation constraints by the implementations of the proposed strategy. In addition to providing sufficient auxiliary services for hybrid systems, it is also possible to maintain the economic and energy-efficient benefits of energy supply. This study provides an effective method to utilize the regulation capability of combined heating and power generations, which is a technical basis of energy internet.https://www.mdpi.com/1996-1073/10/7/917combined heating and power generationenergy optimizationhybrid energy flowintegrated energy systemssmart operation strategy
collection DOAJ
language English
format Article
sources DOAJ
author Yu Liu
Shan Gao
Xin Zhao
Chao Zhang
Ningyu Zhang
spellingShingle Yu Liu
Shan Gao
Xin Zhao
Chao Zhang
Ningyu Zhang
Coordinated Operation and Control of Combined Electricity and Natural Gas Systems with Thermal Storage
Energies
combined heating and power generation
energy optimization
hybrid energy flow
integrated energy systems
smart operation strategy
author_facet Yu Liu
Shan Gao
Xin Zhao
Chao Zhang
Ningyu Zhang
author_sort Yu Liu
title Coordinated Operation and Control of Combined Electricity and Natural Gas Systems with Thermal Storage
title_short Coordinated Operation and Control of Combined Electricity and Natural Gas Systems with Thermal Storage
title_full Coordinated Operation and Control of Combined Electricity and Natural Gas Systems with Thermal Storage
title_fullStr Coordinated Operation and Control of Combined Electricity and Natural Gas Systems with Thermal Storage
title_full_unstemmed Coordinated Operation and Control of Combined Electricity and Natural Gas Systems with Thermal Storage
title_sort coordinated operation and control of combined electricity and natural gas systems with thermal storage
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2017-07-01
description As one of the most effective approaches in dealing with the energy crisis, combined electricity and natural gas systems have become more and more popular worldwide. To take full advantages of such hybrid energy networks, a proper operation and control method is required. In this paper, a novel approach coordinating combined heating and power generation is proposed. First, state excursion rate, a criterion describing the deviation of system operation, is defined for system state evaluation. Then, thermal energy storage is allocated to provide more and better operation modes for combined generation. By investigating the state excursion rate of hybrid energy systems, the optimal operation mode is chosen through an analytical strategy. Case studies on hybrid energy networks show that all state variables, including voltages in electric systems and pressures in gas networks, are adjusted to follow proper operation constraints by the implementations of the proposed strategy. In addition to providing sufficient auxiliary services for hybrid systems, it is also possible to maintain the economic and energy-efficient benefits of energy supply. This study provides an effective method to utilize the regulation capability of combined heating and power generations, which is a technical basis of energy internet.
topic combined heating and power generation
energy optimization
hybrid energy flow
integrated energy systems
smart operation strategy
url https://www.mdpi.com/1996-1073/10/7/917
work_keys_str_mv AT yuliu coordinatedoperationandcontrolofcombinedelectricityandnaturalgassystemswiththermalstorage
AT shangao coordinatedoperationandcontrolofcombinedelectricityandnaturalgassystemswiththermalstorage
AT xinzhao coordinatedoperationandcontrolofcombinedelectricityandnaturalgassystemswiththermalstorage
AT chaozhang coordinatedoperationandcontrolofcombinedelectricityandnaturalgassystemswiththermalstorage
AT ningyuzhang coordinatedoperationandcontrolofcombinedelectricityandnaturalgassystemswiththermalstorage
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