Transition to a low-carbon building stock. Techno-economic and spatial optimization of renewables-hydrogen strategies in Spain

被引:22
作者
Maestre, V. M. [1 ]
Ortiz, A. [1 ]
Ortiz, I. [1 ]
机构
[1] Univ Cantabria, Chem & Biomol Engn Dept, ETSIIyT, Ave Los Castros S-N, Santander 39005, Spain
关键词
Renewable hydrogen-based systems; Low-carbon electricity supply; Spanish building stock; Centralized vs distributed; Techno-economic optimization; Land eligibility; FUEL-CELL; SEASONAL STORAGE; ENERGY-SYSTEMS; OPTIMAL-DESIGN; SUPPLY CHAIN; POWER; WIND; FUTURE; GAS; SURPLUS;
D O I
10.1016/j.est.2022.105889
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
Europe has set ambitious targets to reduce the final energy consumption of buildings in concerning the degree of electrification, energy efficiency, and penetration of renewable energy sources (RES). So far, hydrogen is becoming an increasingly important energy vector, offering huge opportunities to promote the share of inter-mittent RES. Thus, this manuscript proposes an energy model for the complete decarbonization of the estimated electricity consumed by the Spanish building stock in 2030 and 2050 scenarios; the model is based on the combination of photovoltaic and wind primary sources and hydrogen technologies considering both distributed and centralized configurations, applying also geospatial criteria for their optimal allocation. Large-scale RES generation, centralized hydrogen production, and re-electrification, along with underground hydrogen storage, result in the lowest levelized cost of energy (LCOE), hydrogen production costs (HPC), and the highest overall efficiency (mu SYS). Wind energy is mainly harvested in the north of Spain, while large PV farms are deployed in the mid-south. Furthermore, reinforcement of underground hydrogen storage enhances the overall system perfor-mance, reducing surplus energy and the required RES generation capacity. Finally, all the considered scenarios achieve LCOE below the Spanish utility grid benchmark, apart from accomplishing the decarbonization goals established for the year 2030.
引用
收藏
页数:15
相关论文
共 82 条
  • [1] Liquid organic hydrogen carriers for transportation and storing of renewable energy - Review and discussion
    Aaldto-Saksa, Paivi T.
    Cook, Chris
    Kiviaho, Jari
    Repo, Timo
    [J]. JOURNAL OF POWER SOURCES, 2018, 396 : 803 - 823
  • [2] Ahluwalia R. K., 2019, SYSTEM LEVEL ANAL HY
  • [3] [Anonymous], 2021, CONSUMOS SECTOR RESI
  • [4] [Anonymous], 2020, HYDR INN PROGR
  • [5] [Anonymous], BALANCE CONSUMO ENER
  • [6] [Anonymous], Hydrogen_Delivery_Scenario_Model_Analysis_(HDSAM)_V3.1
  • [7] [Anonymous], 2020, BP STAT REV WORLD BP
  • [8] [Anonymous], HOMER Pro - Microgrid Software for Designing Optimized Hybrid Microgrids
  • [9] [Anonymous], 2012, HYUNDER PROJECT
  • [10] [Anonymous], 2016, The Power to Change: Solar and Wind Cost Reduction Potential to 2025