Transformation towards a carbon-neutral residential community with hydrogen economy and advanced energy management strategies

可再生能源 低碳经济 碳纤维 转化(遗传学) 氢经济 碳中和 环境科学 氢燃料 能源系统 能量转换 能量(信号处理) 业务 温室气体 环境经济学 工程类 经济 材料科学 电气工程 化学 热力学 生态学 物理 统计 复合数 复合材料 有机化学 基因 生物 生物化学 数学
作者
Yutong He,Yuekuan Zhou,Jing Yuan,Zhengxuan Liu,Zhe Wang,Guoqiang Zhang
出处
期刊:Energy Conversion and Management [Elsevier BV]
卷期号:249: 114834-114834 被引量:46
标识
DOI:10.1016/j.enconman.2021.114834
摘要

• A community with renewables, microgrid, hydrogen vehicles and a hydrogen station. • Microgrid energy sharing to improve hydrogen system efficiency under idling modes. • Advanced energy management for energy flexibility and grid power stability. • A two-stage cooling design for heat recovery from an electrolyzer and fuel cells. • Seasonal hydrogen storage for annual energy balance via optimal synergistic powers. Cleaner power production, distributed renewable generation, building-vehicle integration, hydrogen storage and associated infrastructures are promising for transformation towards a carbon–neutral community, whereas the academia provides limited information through integrated solutions, like intermittent renewable integration, hydrogen sharing network, smart operation on electrolyzer and fuel cell, seasonal hydrogen storage and advanced heat recovery. This study proposes a hybrid electricity-hydrogen sharing system in California, United States, with synergistic electric, thermal and hydrogen interactions, including low-rise houses, rooftop photovoltaic panels, hydrogen vehicles, a hydrogen station, micro and utility power grid and hydrogen pipelines. Advanced energy management strategies were proposed to enhance energy flexibility and grid stability. Besides, simulation-based optimizations on smart power flows of vehicle-to-grid interaction and electrolyzer are conducted for further seasonal grid stability and annual cost saving. The obtained results indicate that, the green renewable-to-hydrogen can effectively reduce reliance on pipelines delivered hydrogen, and the hydrogen station is effective to address security concerns of high-pressure hydrogen and improve participators’ acceptance. Microgrid peer-to-peer sharing can improve hydrogen system efficiency under idling modes. Furthermore, the integrated system can reduce the annual net hydrogen consumption in transportation from 127.0 to 1.2 kg/vehicle. The smart operation (minimum input power of electrolyzer and fuel cell at 65 and 80 kW) can reduce the maximum mean hourly grid power to 78.2 kW by 24.2% and the annual energy cost to 1228.5 $/household by 38.9%. The proposed district hydrogen-based community framework can provide cutting-edge techno-economic guidelines for carbon-neutral transition with district peer-to-peer energy sharing, zero-energy buildings, hydrogen-based transportations together with smart strategies for high energy flexibility.
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