优化储能系统设计,解决供需侧管理整合方法中的不确定性问题

IF 4.2 Q2 ENERGY & FUELS
Shamik Misra , Abhilasha Maheshwari , Ravindra D. Gudi
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引用次数: 0

摘要

可持续发展目标 7(SDG 7)的首要目标是增加可再生能源的使用,以减少对化石燃料的依赖并减缓气候变化。能源密集型行业可以从内部可再生能源发电中获益,减少对化石燃料电网电力的依赖,使生产流程更加绿色环保。然而,要克服可再生能源的间歇性,发电/购电、储能系统(ESS)和用电之间的整合至关重要。根据电力供应和价格,ESS 在提高复原力和优化材料生产方面发挥着至关重要的作用。考虑到成本、效率以及与可再生能源发电和材料产品需求相关的不确定性,需要对 ESS 的功效进行严格评估。本文提出了两种基于情景的优化方法,以评估不确定性对综合供需侧管理系统(ISDM)的影响,重点关注锂离子电池和低温储能(CES)。与基于情景的稳健优化(SRO)方法的保守方法相比,拟议的随机模拟优化(SSO)方法提供了一种 "风险中性 "解决方案,比最低预期成本解决方案少 6.45%。分析还表明,与 CES 相比,锂离子电池在拟议的综合框架中更具经济效益,与无电池方案相比,运营成本降低了近 29%。所提出的框架有助于能源密集型行业采用可持续且经济可行的能源管理方法。对此类框架的进一步研究和实施可加快可再生能源和储能技术在工业流程中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimal energy storage system design for addressing uncertainty issues in integration of supply and demand-side management approaches

The primary goal of Sustainable Development Goal 7 (SDG 7) is to increase renewable energy use to reduce reliance on fossil fuels and mitigate climate change. Energy-intensive industries can benefit from in-house renewable power generation, reducing their reliance on fossil fuel-based grid power and making processes greener. However, integration among power generation/purchase, energy storage systems (ESS), and power consumption is crucial to overcome the intermittent nature of renewable power sources. ESS plays a vital role in increasing resilience and optimizing material production based on power availability and pricing. The efficacy of ESS needs critical evaluation considering cost, efficiency, and uncertainties related to renewable power generation and material product demand. The paper proposes two scenario-based optimization approaches to assess the impact of uncertainties on the integrated supply and demand side management (ISDM) system, focusing on lithium-ion batteries and cryogenic energy storage (CES). Compared to the conservative approach of the scenario-based robust optimization (SRO) method, the proposed stochastic simulation optimization (SSO) method provides a ‘risk-neutral’ solution, which is 6.45% less than the minimum expected cost solution. The analysis also suggests that lithium-ion batteries are more economically effective for the proposed integrated framework than CES, resulting in almost a 29% reduction in operating costs compared to no battery option. The proposed framework could contribute to sustainable and economically viable energy management practices in energy-intensive industries. Further research and implementation of such frameworks could accelerate the adoption of renewable energy and energy storage technologies in industrial processes.

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来源期刊
Renewable Energy Focus
Renewable Energy Focus Renewable Energy, Sustainability and the Environment
CiteScore
7.10
自引率
8.30%
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0
审稿时长
48 days
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