Holistic modeling and optimization of“setting heat with gas”considering power-to-gas,carbon capture and hydrogen fuel cell

被引:0
作者
Bao G. [1 ]
Wang J. [2 ]
机构
[1] School of Electronics and Information Engineering, Southwest Petroleum University, Chengdu
[2] Department of Electrical Engineering and Information Engineering, Lanzhou University of Technology, Lanzhou
来源
Dianli Zidonghua Shebei/Electric Power Automation Equipment | 2023年 / 43卷 / 12期
关键词
carbon capture system; carbon trading; hydrogen fuel cell; integrated energy system; power-to-gas;
D O I
10.16081/j.epae.202304003
中图分类号
学科分类号
摘要
A holistic modeling approach of “setting heat with gas” considering power-to-gas(P2G),carbon capture system(CCS) and hydrogen fuel cell(HFC) is proposed. Considering the carbon-hydrogen coupling process of P2G,the joint operation framework of P2G with CCS and HFC(PCH) is constructed. The“setting heat with gas” modeling approach is proposed,based on which the integral model of PCH is established and its energy coupling characteristics of electricity,heat,gas and carbon are analyzed synchronously. Based on PCH,combined heat and power units,gas-fired boilers and energy storage devices,the low-carbon economic scheduling model of integrated energy system(IES) considering carbon trading mechanism is constructed. Several operation scenarios are set to verify the contribution degree of PCH to carbon emission reduction. Simulative results show that the PCH model under the modeling approach of “setting heat with gas” can reduce the overall carbon emissions and operation costs of IES to a large extent. © 2023 Electric Power Automation Equipment Press. All rights reserved.
引用
收藏
页码:37 / 44and76
页数:4439
相关论文
共 22 条
[1]  
Yang CUI, ZENG Peng, ZHONG Wuzhi, Et al., Low-carbon eco⁃ nomic dispatch of electricity-gas-heat integrated energy sys⁃ tem considering stepped carbon trading[J], Electric Power Automation Equipment, 41, 3, pp. 10-17, (2021)
[2]  
CHEN Sheng, WEI Zhinong, GU Wei, Et al., Transformation and reform of energy system under the goal of carbon neu⁃ trality:multi-energy flow collaborative technology[J], Electric Power Automation Equipment, 41, 9, pp. 3-12, (2021)
[3]  
QIU Yue, LU Shuai, LU Hai, Et al., Flexibility of integrated energy system:basic connotation,mathematical model and re⁃ search framework[J], Automation of Electric Power Systems, 46, 17, pp. 16-43, (2022)
[4]  
ZANG Haixiang, GENG Minghao, HUANG Manyun, Et al., Re⁃ view and prospect of state estimation for electricity-heat-gas integrated energy system[J], Automation of Electric Power Systems, 46, 7, pp. 187-199, (2022)
[5]  
ZHANG Y, Et al., Coordinated optimal dispatch and market equilibrium of integrated electric power and natural gas networks with P2G embedded[J], Journal of Modern Power Systems and Clean Energy, 6, 3, pp. 495-508, (2018)
[6]  
CHENG Y, Et al., Optimization of multi-carrier energy system based on new operation mechanism modelling of power-to-gas integrated with CO<sub>2</sub>-based electro-thermal energy storage[J], Energy, 216, (2021)
[7]  
Li CHEN, YANG Yang, Two-stage robust optimization model for integrated energy system with P2G-CCHP[J], Journal of Electric Power, 37, 5, pp. 422-429, (2022)
[8]  
CLEGG S, MANCARELLA P., Integrated modeling and assessment of the operational impact of power-to-gas(P2G) on electrical and gas transmission networks[J], IEEE Transactions on Sustainable Energy, 6, 4, pp. 1234-1244, (2015)
[9]  
WANG J L,, WAN W., Experimental design methods for fermentative hydrogen production:a review[J], International Journal of Hydrogen Energy, 34, 1, pp. 235-244, (2009)
[10]  
LUO Nan, Overview on global strategy of hydrogen develop⁃ ment [J], Shanghai Energy Conservation, 10, pp. 1058-1061, (2021)