Decarbonizing the electricity sector in Qatar using PV combined with ice thermal and battery storage

被引:3
作者
Al-Aali, I. [1 ]
Modi, V. [1 ]
机构
[1] Columbia Univ, Mech Engn Dept, New York, NY 10027 USA
关键词
Ice storage; Battery energy storage system; Solar photovoltaic; Deep decarbonization solutions; High renewables penetration; Sustainability; Cooling load decarbonization; Qatar energy; ENERGY-CONSUMPTION; SOLAR PV; SYSTEMS; PERFORMANCE; OPTIMIZATION; GENERATION; PLANTS;
D O I
10.1016/j.esr.2022.101014
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
High daytime electricity demand from space cooling synergetic with predictable and reliable solar insolation creates a unique opportunity to exploit solar PV-enabled decarbonization solutions in Qatar. This paper examines the economic viability of combining utility-scale PV with ice thermal and battery storage to decarbonize the electricity sector in Qatar, which exclusively runs on gas generation. The problem is formulated in a two-stage stochastic linear programming that minimizes annual system costs at a given gas price. Under the current gas price of $3.3/MMBtu (gas-generated electricity at $37/MWh), PV and ice storage deployed in Qatar could reduce gas generation use and peak demand by 43% and 18%, respectively, and cut the annual system costs by 20%. At a gas price of $6.5/MMBtu (equivalent to carbon pricing at $60/ton of CO2), gas generation can be reduced by 60% using PV and ice storage. Reducing gas generation further is challenging since both cooling and non-cooling demands peak in August, whereas PV generation peaks in June, producing less surplus generation at a time of need, and ice thermal storage cannot cost-effectively outcompete already existing gas generations for highly seasonal cooling needs. Battery storage becomes cost-effective above a gas price of $9.2/MMBtu (equivalent to carbon pricing at $110/ton of CO2); it is primarily used to manage the diurnal behavior of non-cooling loads and could decarbonize the electricity sector by around 90%.
引用
收藏
页数:22
相关论文
共 79 条
[61]  
Mongird K., 2020, GRID ENERGY STORAGE
[62]  
New Qatari Standards for AC Energy Efficiency Kahramaa, 2013, EFF SYST CONT 12 25
[63]   Grid integration of renewable energy in Qatar: Potentials and limitations [J].
Okonkwo, Eric C. ;
Wole-Osho, Ifeoluwa ;
Bamisile, Olusola ;
Abid, Muhammad ;
Al-Ansari, Tareq .
ENERGY, 2021, 235
[64]  
Qatar - Countries & Regions - IEA, 2019, US
[65]   Application of the Linear Programming Method in the Construction of a Mathematical Model of Optimization Distributed Energy [J].
Rabe, Marcin ;
Bilan, Yuriy ;
Widera, Katarzyna ;
Vasa, Laszlo .
ENERGIES, 2022, 15 (05)
[66]   Optimization and analysis of Building Combined Cooling, Heating and Power (BCHP) plants with chilled ice thermal storage system [J].
Ruan, Yingjun ;
Liu, Qingrong ;
Li, Zhengwei ;
Wu, Jiazheng .
APPLIED ENERGY, 2016, 179 :738-754
[67]   A Numerical and Graphical Review of Energy Storage Technologies [J].
Sabihuddin, Siraj ;
Kiprakis, Aristides E. ;
Mueller, Markus .
ENERGIES, 2015, 8 (01) :172-216
[68]  
Saffouri F., 2018, QUANTIFYING COST COO, P1, DOI [DOI 10.1109/IEEEGCC.2017.8448269, 10.1109/ieeegcc.2017.8448269]
[69]   The evolving energy and capacity values of utility-scale PV-plus-battery hybrid system architectures [J].
Schleifer, Anna H. ;
Murphy, Caitlin A. ;
Cole, Wesley J. ;
Denholm, Paul L. .
ADVANCES IN APPLIED ENERGY, 2021, 2
[70]   The Role of Firm Low-Carbon Electricity Resources in Deep Decarbonization of Power Generation [J].
Sepulveda, Nestor A. ;
Jenkins, Jesse D. ;
de Sisternes, Fernando J. ;
Lester, Richard K. .
JOULE, 2018, 2 (11) :2403-2420