Economic and Environmental Policy Analysis for Emission-Neutral Multi-Carrier Microgrid Deployment

被引:37
作者
Azimian, Mahdi [1 ]
Amir, Vahid [1 ]
Javadi, Saeid [1 ]
机构
[1] Islamic Azad Univ, Dept Elect & Comp Engn, Kashan Branch, Kashan, Iran
关键词
Demand response; Distributed energy resources; Economic analysis; Multi-carrier microgrid; Net-zero emission; Planning; RENEWABLE ENERGY-SYSTEM; DEMAND RESPONSE; TECHNOECONOMIC ANALYSIS; INDUSTRIAL PARK; OPTIMAL-DESIGN; POWER; OPTIMIZATION; STORAGE; HEAT; RELIABILITY;
D O I
10.1016/j.apenergy.2020.115609
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Energy and global climate change crises are correlated issues since energy generation currently contributes to nearly 40% of global greenhouse gas emissions, and inevitably the escalating energy demand realization exacerbates the ongoing undesirable circumstances. As a viable solution against the concerns above, microgrid deployments with low-emission on-site resources have been receiving increasing attention from power decision-makers. Thus, this study scrutinizes the technical and financial sustainability of deploying a net-zero emission multi-carrier microgrid and determines the optimal generation configurations. Besides, the proposed emission-neutral multi-carrier microgrid model provides insights into the economic prominence of renewable energy incentives together with regulations for the short-term deployment of green resources. The objective of the proposed model is to minimize the multi-carrier microgrid deployment costs associated with the investment, operation, maintenance, energy demand shifting, monthly peak demand charge, emission, and reliability. Furthermore, load prioritization and a novel demand shifting of demand response schemes are propounded to maintain at least the continuous flow of energy for high-prioritized loads. The customer multi-carrier microgrid deployment problem is disintegrated into an investment master problem and an operation subproblem. The results indicate that notable electrical peak mitigation of about 7-23% is procured by employing the demand response scheme. Furthermore, the sensitivity analysis illustrates that renewable penetration of 30% along with dispatchable resources is required to procure the targeted share of green resources within microgrids. Finally, the economic and environmental merits of the proposed emission-neutral multi-carrier microgrid are ensured with savings and the discounted payback period of 131% and 3.977 years, respectively.
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页数:16
相关论文
共 85 条
[11]  
[Anonymous], 2016, 2016 IEEE Power Energy Society Innovative Smart Grid Technologies Conference (ISGT)
[12]  
Bahramirad S, 2012, TRANS DISTRIB CONF, DOI 10.1109/TDC.2012.6281697
[13]   Expansion planning of energy storages in microgrid under uncertainties and demand response [J].
BiazarGhadikolaei, Milad ;
Shahabi, Majid ;
Barforoushi, Taghi .
INTERNATIONAL TRANSACTIONS ON ELECTRICAL ENERGY SYSTEMS, 2019, 29 (11)
[14]   Optimal sizing of an autonomous photovoltaic/wind/battery/diesel generator microgrid using grasshopper optimization algorithm [J].
Bukar, Abba Lawan ;
Tan, Chee Wei ;
Lau, Kwan Yiew .
SOLAR ENERGY, 2019, 188 :685-696
[15]   The impact of ancillary services in optimal DER investment decisions [J].
Cardoso, G. ;
Stadler, M. ;
Mashayekh, S. ;
Hartvigsson, E. .
ENERGY, 2017, 130 :99-112
[16]   Optimal Sizing for Grid-Tied Microgrids With Consideration of Joint Optimization of Planning and Operation [J].
Chen, Jian ;
Zhang, Weitong ;
Li, Jiaqi ;
Zhang, Wen ;
Liu, Yutian ;
Zhao, Bo ;
Zhang, Yicheng .
IEEE TRANSACTIONS ON SUSTAINABLE ENERGY, 2018, 9 (01) :237-248
[17]   Socially optimal deployment strategy and incentive policy for solar photovoltaic community microgrid: A case of China [J].
Chen, Weidong ;
Wei, Pengbang .
ENERGY POLICY, 2018, 116 :86-94
[18]   Planning multiple energy systems for low-carbon districts with high penetration of renewable energy: An empirical study in China [J].
Cheng, Yaohua ;
Zhang, Ning ;
Kirschen, Daniel S. ;
Huang, Wujing ;
Kang, Chongqing .
APPLIED ENERGY, 2020, 261
[19]   The first step towards a 100% renewable energy-system for Ireland [J].
Connolly, D. ;
Lund, H. ;
Mathiesen, B. V. ;
Leahy, M. .
APPLIED ENERGY, 2011, 88 (02) :502-507
[20]   A 100% renewable energy system in the year 2050: The case of Macedonia [J].
Cosic, Boris ;
Krajacic, Goran ;
Duic, Neven .
ENERGY, 2012, 48 (01) :80-87