通过优化陆上和海上能源存储的能源管理,提高零排放酒店建筑对电网中断的能源弹性

IF 8 Q1 ENERGY & FUELS
Haojie Luo , Sunliang Cao
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引用次数: 0

摘要

增加可再生能源与建筑系统的整合需要增强灵活性和弹性,以在动态电网条件和意外停电下保持稳定性。现有的研究没有充分解决需求响应的能源灵活性和停电期间的恢复能力,没有充分利用混合移动/固定电力/机械储能,并且忽视了基于海洋的可再生能源潜力。为了弥补这些差距,本研究开发了一种先进的能源管理系统,利用建筑电池、电动汽车和波浪能转换水库来提高净零能耗建筑的灵活性和弹性。基于场景的分析表明,源的协调激活优于单源策略。协同控制将灵活性指数提高到192.67%(激励的1.93倍),将成本降低到80.66%;优先级进一步将灵活性提高到199.89%,并将成本降低到79.52%。集成的波浪能转换器增强了弹性,实现了战略性的能量存储/释放,从大约83%提高到99%以上,几乎消除了二氧化碳排放和对柴油备用的依赖。协调灵活源,缓解电力短缺,减少能源滞后,增强系统灵活性和停电弹性。该研究的独创性在于开创性的混合存储集成,以实现双重灵活性和弹性目标,新颖地利用波浪能转换器作为需求响应资产,以及解决利润最大化和停电恢复的有效控制策略。该研究为减少对化石燃料的依赖和确保电网干扰期间的稳定运行提供了实际意义,尤其适用于具有海洋能源潜力和电动汽车采用的沿海城市地区,为净零过渡提供了可复制的模型。这项工作弥合了灵活性源协调和海洋能源利用方面的关键差距,推进了有弹性、电网交互的智能建筑。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Energy resilience enhancement against grid outages for a zero-emission hotel building via optimal energy management of onshore and offshore energy storages
Increasing integration of renewable energy into building systems necessitates enhanced flexibility and resilience to maintain stability under dynamic grid conditions and unexpected outages. Existing research inadequately addresses energy flexibility for demand response and resilience during outages, underutilises hybrid mobile/stationary electrical/mechanical energy storage, and overlooks ocean-based renewable energy potential. To bridge these gaps, this study develops an advanced energy management system leveraging building batteries, electric vehicles, and wave energy converter reservoirs to improve flexibility and resilience in a net-zero energy building. Scenario-based analyses demonstrate that coordinated activation of sources outperforms single-source strategies. Coordinated control increased the flexibility index to 192.67% (1.93 times incentives), reducing costs to 80.66%; prioritisation further boosted flexibility to 199.89% and lowered costs to 79.52%. Resilience was enhanced by integrated wave energy converters, which enabled strategic energy storage/release, elevating from approximately 83% to over 99%, nearly eliminating CO2 emissions and diesel backup reliance. Coordinating flexibility sources mitigates power shortages and reduces energy lag, strengthening system flexibility and outage resilience. The study’s originality lies in pioneering hybrid storage integration for dual flexibility-resilience objectives, novel utilisation of wave energy converters as demand-responsive assets, and efficient control strategies addressing profit maximisation and outage recovery. This research provides practical implications for reducing fossil fuel reliance and ensuring stable operations during grid disturbances, particularly applicable to coastal urban areas with ocean energy potential and electric vehicle adoption, offering a replicable model for net-zero transitions. This work bridges critical gaps in flexibility source coordination and ocean energy utilisation, advancing resilient, grid-interactive smart buildings.
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来源期刊
Energy nexus
Energy nexus Energy (General), Ecological Modelling, Renewable Energy, Sustainability and the Environment, Water Science and Technology, Agricultural and Biological Sciences (General)
CiteScore
7.70
自引率
0.00%
发文量
0
审稿时长
109 days
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