向可再生氢系统过渡:到 2030 年奥地利氢气供应自给自足的最佳基础设施

IF 5.4 Q2 ENERGY & FUELS Smart Energy Pub Date : 2024-08-01 DOI:10.1016/j.segy.2024.100151
Stefan Strömer, Anton Beck, Matthias Traninger, Dana Orsolits, Stefan Reuter
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引用次数: 0

摘要

在这项研究中,我们采用了一个优化模型,为奥地利在 2030 年之前设计出一个自给自足、不依赖任何进出口的氢气基础设施。我们的方法将关键的氢技术整合到详细的空间投资和运营模型中,并结合欧洲规模的电力市场模型。我们专注于优化各种基础设施组件,包括拖车、管道、电解槽和储氢器,以满足奥地利的预期氢气需求。为了准确估算每小时的氢气需求量,我们结合现有的氢气战略和预测,考虑了各工业部门的发展,考虑了运输部门的需求,并整合了天然气发电厂对氢气的需求。考虑到与此类预测相关的固有不确定性,我们对两种互补方案进行了分析。通过认识到国内生产在早期市场阶段的关键作用,我们的方法解决了将大量可再生氢纳入未来能源系统的难题。这项工作的主要贡献在于,通过考虑行业耦合潜力、最佳电解槽位置以及本地氢网络的设计,弥补了氢基础设施优化方面的不足,从而在 2030 年之前有效整合奥地利国内的可再生氢生产。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Transitioning to a renewable hydrogen system: Optimal infrastructure for self-sufficient hydrogen supply in Austria by 2030

In this study, we employ an optimization model to optimally design a self-sufficient, independent of any imports and exports, hydrogen infrastructure for Austria by 2030. Our approach integrates key hydrogen technologies within a detailed spatial investment and operation model – coupled with a European scale electricity market model. We focus on optimizing diverse infrastructure components including trailers, pipelines, electrolyzers, and storages to meet Austria's projected hydrogen demand. To accurately estimate this demand in hourly resolution, we combine existing hydrogen strategies and projections to account for developments in various industrial sectors, consider demand driven by the transport sector, and integrate hydrogen demand arising from its use in gas-powered plants. Accounting for the inherent uncertainty linked to such projections, we run the analysis for two complementary scenarios. Our approach addresses the challenges of integrating large quantities of renewable hydrogen into a future energy system by recognizing the critical role of domestic production in the early market stages. The main contribution of this work is to address the gap in optimizing hydrogen infrastructure for effective integration of domestic renewable hydrogen production in Austria by 2030, considering sector coupling potentials, optimal electrolyzer placement, and the design of local hydrogen networks.

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来源期刊
Smart Energy
Smart Energy Engineering-Mechanical Engineering
CiteScore
9.20
自引率
0.00%
发文量
29
审稿时长
73 days
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