Application to smart multi-energy system for supply-demand side management of a building based on power-to-gas-to-power concept: Technical, environmental, and economic assessment

IF 10 1区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL Journal of Cleaner Production Pub Date : 2025-03-28 DOI:10.1016/j.jclepro.2025.145393
Amir Ebrahimi-Moghadam , Majid Kheir Abadi , Nima Jafarian Yazdi , Mohammad Sheykhi , Mohammadsadegh Pahlavanzadeh
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Abstract

Utilizing new concepts for the production and conversion of energy carriers leads to progress in reaching carbon neutrality targets. Green energy-integrated systems exposed to attention of energy scientists in recent years. In this study, a smart multi-energy system is proposed based on the hybrid utilization of solar and wind resources for producing green hydrogen. The produced green hydrogen is then blended with natural gas and used as an enviro-friendly fuel for internal combustion engine. Afterward, the heating potential of engine's exhaust and jacket water are recovered to run some equipment for producing extra power, heat, and cold. A powerful techno-economic and environmental framework is developed in EES software to assess the feasibility of the proposed system. Also, to make the modeling even more accurate, the engine is simulated in GT-Power software and its outputs are linked with EES. Furthermore, to make the proposal applicable, a case study hotel building is considered and system's effectiveness is demonstrated. The building is simulated with a full-detailed model and sustainable architectural elements are also considered in the simulation (green wall and photovoltaic facade). The analyses are done for three models (Model 1: 5 vol% hydrogen blended into NG, Model 2: 10 vol% hydrogen blended into NG, Model 3: 100 % NG). Analyzing the system illustrated that R123 is identified as the most efficient fluid for ORC with energy and exergy efficiencies of 18.03 % and 26.58 %, respectively. Also, dynamic modeling results indicated that hybrid utilization of solar/wind ensures a reliable and consistent supply of clean energy, significantly reducing reliance on fossil fuels. So that, 7.05 ton/year of CO2 emission is prevented by the hydrogen blending (in models 1 and 2) compared to the case where only methane is used as fuel. The payback period of the proposal, based on the discounted NPV approach, is obtained as 4.2 years proving its feasibility.

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基于电-气-电概念的智能多能源系统在建筑供需侧管理中的应用:技术、环境和经济评估
利用新概念生产和转换能源载体导致在实现碳中和目标方面取得进展。绿色能源集成系统近年来受到能源科学家的关注。本研究提出了一种基于太阳能和风能资源混合利用的智能多能制氢系统。产生的绿色氢与天然气混合,作为内燃机的环保燃料。然后,回收发动机排气和夹套水的加热势来运行一些设备,以产生额外的动力、热量和冷。在EES软件中开发了一个强大的技术经济和环境框架,以评估拟议系统的可行性。此外,为了使建模更加精确,发动机在GT-Power软件中进行了仿真,其输出与EES相关联。此外,为了使该建议适用,以酒店为例进行了研究,并证明了系统的有效性。该建筑采用全细节模型进行模拟,模拟中还考虑了可持续建筑元素(绿色墙和光伏立面)。对三种模型进行了分析(模型1:5%体积百分比的氢气混合到NG中,模型2:10%体积百分比的氢气混合到NG中,模型3:100% NG)。系统分析表明,R123被认为是ORC最有效的流体,能量和火用效率分别为18.03%和26.58%。此外,动态建模结果表明,太阳能/风能的混合利用确保了可靠和一致的清洁能源供应,大大减少了对化石燃料的依赖。因此,与仅使用甲烷作为燃料的情况相比,氢气混合(在模型1和模型2中)每年可减少7.05吨二氧化碳排放。根据NPV折现法,该方案的投资回收期为4.2年,证明了其可行性。
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来源期刊
Journal of Cleaner Production
Journal of Cleaner Production 环境科学-工程:环境
CiteScore
20.40
自引率
9.00%
发文量
4720
审稿时长
111 days
期刊介绍: The Journal of Cleaner Production is an international, transdisciplinary journal that addresses and discusses theoretical and practical Cleaner Production, Environmental, and Sustainability issues. It aims to help societies become more sustainable by focusing on the concept of 'Cleaner Production', which aims at preventing waste production and increasing efficiencies in energy, water, resources, and human capital use. The journal serves as a platform for corporations, governments, education institutions, regions, and societies to engage in discussions and research related to Cleaner Production, environmental, and sustainability practices.
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