Reliability, economic, and environmental analysis of fuel-cell-based hybrid renewable energy networks for residential communities

被引:5
|
作者
Byun, Jiwook [1 ]
Go, Jaehyun [1 ]
Kim, Chulho [1 ,2 ]
Heo, Yeonsook [1 ]
机构
[1] Korea Univ, Coll Engn, Sch Civil Environm & Architectural Engn, 145 Anam Ro, Seoul 02841, South Korea
[2] Korea Univ, Res Future Construct Environm Convergence Res Inst, Coll Engn, 145 Anam Ro, Seoul 02841, South Korea
基金
新加坡国家研究基金会;
关键词
Hybrid renewable energy system; Fuel cell system; Heat and power supply; Energy system mix; Residential communities; HARMONY SEARCH ALGORITHM; POWER-SYSTEMS; COMBINED HEAT; OPTIMIZATION; STORAGE; PERFORMANCE; MODEL;
D O I
10.1016/j.enconman.2023.116964
中图分类号
O414.1 [热力学];
学科分类号
摘要
A fuel cell system has received considerable interest as an effective combined heat and power (CHP) generation system. In particular, a polymer electrolyte membrane fuel cell (PEMFC) has been regarded as suitable for residential buildings as their low-temperature heat generation can be used to meet high heat demand. This study aims to optimize renewable energy networks on the basis of PEMFC, considering both different system mixes in an energy network and different system sizes. This study scrutinizes the overall performance of different hybrid energy networks based on PEMFC in terms of the reliability, economic, and environmental perspectives when both the heat and power generation from PEMFC are used to meet the energy need of residential communities. A hybrid renewable energy network for a residential community with 12 households is modeled and simulated using TRNSYS to evaluate the performance of different hybrid energy network scenarios. Four scenarios are created on the basis of the base case with a gas-based fuel cell (FC) system and heat tank by incrementally adding renewable energy systems-a ground source heat pump (GSHP) system, photovoltaic (PV) system, battery, electrolyzer, and hydrogen storage tank. First, the impacts of individual design variables are quantified using variance-based sensitivity analysis for identification of key design variables. Second, the cost optimization of hybrid energy network is performed under the four scenarios of system mixes. Last, the effects of the key design variables for each scenario are further scrutinized through heat maps. The analysis results of the case study confirms the feasibility of a FC system as part of renewable energy network for residential buildings. Furthermore, Scenario 3 comprising a FC system, GSHP, PV system, and battery is found to be the optimal design in terms of all the three aspects. This result suggests that the whole performance of hybrid energy network can be improved when other renewable systems are included in the network to complement the FC system. In contrast, Scenario 4 using green hydrogen has poorer performance than Scenario 3 using gas as fuel due to high unit prices of hydrogen systems and low efficiency of green hydrogen production. Furthermore, external factors such as utility prices and system unit prices are considered in further analysis and found to have great influence on the optimal design of energy networks.
引用
收藏
页数:16
相关论文
共 50 条
  • [21] Design and Analysis of Fuel Cell for Standalone Renewable Energy System
    Samson, A. Antony
    Kumar, A. Senthil
    2014 IEEE NATIONAL CONFERENCE ON EMERGING TRENDS IN NEW & RENEWABLE ENERGY SOURCES AND ENERGY MANAGEMENT (NCET NRES EM), 2014, : 170 - 175
  • [22] Energy, economic and environmental (3E) analysis for the renewable jet fuel production process
    Hsu, Hsin-Wei
    Binyet, Emmanuel
    Chang, Yu-Hsuan
    Wang, Wei-Cheng
    SUSTAINABLE PRODUCTION AND CONSUMPTION, 2022, 33 : 146 - 157
  • [23] A Techno-Economic Analysis of a Hybrid Microgrid System in a Residential Area of Bangladesh: Optimizing Renewable Energy
    Ali, Md. Feroz
    Hossain, Md. Alamgir
    Julhash, Mir Md.
    Ashikuzzaman, Md
    Alam, Md Shafiul
    Sheikh, Md. Rafiqul Islam
    SUSTAINABILITY, 2024, 16 (18)
  • [24] Economic and environmental prospects of battery and fuel cell vehicles for the energy transition in German communities.
    Felgenhauer, Markus F.
    Pellow, Matthew A.
    Benson, Sally M.
    Hamacher, Thomas
    10TH INTERNATIONAL RENEWABLE ENERGY STORAGE CONFERENCE, IRES 2016, 2016, 99 : 380 - 391
  • [25] Electrification of residential and commercial buildings integrated with hybrid renewable energy systems: A techno-economic analysis
    Khosravani, Ali
    DeHaan, Matthew
    Billings, Blake W.
    Powell, Kody M.
    ENERGY, 2024, 302
  • [26] Potential for on-grid hybrid renewable energy in a humid subtropical climatic zone: technological, economic, and environmental aspects
    Hai, Tao
    Jaffar, Hussein A.
    Shami, Hayder Oleiwi
    Al-Rubaye, Ameer H.
    Rajab, Husam
    Farqad, Rand Otbah
    Hussein, Abbas Hameed Abdul
    Alhaidry, Wesam Abed A. L. Hassan
    Idan, Ameer Hassan
    Singh, Narinderjit Singh Sawaran
    INTERNATIONAL JOURNAL OF LOW-CARBON TECHNOLOGIES, 2024, 19 : 2409 - 2419
  • [27] Experimental review on solid oxide fuel cell-based hybrid power generation system: Performance, economic, and environmental analysis
    Yadav, Anil Kumar
    Kumar, Anil
    Sinha, Shailendra
    Singh, Samarjit
    Yadav, S. K.
    ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2024, 46 (01) : 12815 - 12828
  • [28] Integrated Load-Source Side Management for Techno-Economic-Environmental Performance Improvement of the Hybrid Renewable Energy System for Rural Electrification
    Kushwaha, Pawan Kumar
    Jha, Rakesh Kumar
    Bhattacharjee, Chayan
    Verma, Harish Kumar
    ELECTRIC POWER COMPONENTS AND SYSTEMS, 2024,
  • [29] Sustainable Growth in the Telecom Industry through Hybrid Renewable Energy Integration: A Technical, Energy, Economic and Environmental (3E) Analysis
    Ali, Muhammad Bilal
    Altamimi, Abdullah
    Kazmi, Syed Ali Abbas
    Khan, Zafar A.
    Alyami, Saeed
    SUSTAINABILITY, 2024, 16 (14)
  • [30] Reliability analysis of hybrid renewable energy system by fault tree analysis
    Khare, Vikas
    Nema, Savita
    Baredar, Prashant
    ENERGY & ENVIRONMENT, 2019, 30 (03) : 542 - 555