Advancements in hydrogen energy systems: A review of levelized costs, financial incentives and technological innovations

Joseph Nyangon , Ayesha Darekar
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Abstract

Hydrogen energy systems (HES) are increasingly recognized as pivotal in cutting global carbon dioxide (CO2) emissions, especially in transportation, power generation, and industrial sectors. This paper offers a comprehensive review of HES, emphasizing their diverse applications and economic viability. By 2030, hydrogen energy is expected to revolutionize various sectors, significantly impacting CO2 abatement and energy demand. In electricity and power generation, hydrogen could reduce CO2 emissions by 50–100 million tons annually, requiring 10–20 million tons of hydrogen and an investment of $50–100 billion, underscoring its role in grid stabilization. Additionally, in the heating sector, hydrogen could facilitate a CO2 abatement of 30–50 million tons. We examine the levelized cost of hydrogen (LCOH) production, influenced by factors like production methods, efficiency, and infrastructure. While steam methane reforming is cost-effective, it poses a larger environmental impact compared to electrolysis. The global life-cycle cost of hydrogen production decreases as production scales up, with current costs ranging from $1–3 per kg for fossil-based sources to $3.4–7.5 per kg for electrolysis using low-emission electricity. These costs are projected to decrease, especially for electrolytic hydrogen in regions with abundant solar energy. However, despite the technical feasibility of decarbonization, high production costs still pose challenges. A systematic and effective transition to a hydrogen economy requires comprehensive policy and financial support mechanisms, including incentives, subsidies, tax measures, and funding for research and development of pilot projects. Additionally, the paper discusses hydrogen's role in advanced storage technologies such as hydrides and Japan's ENE-FARM solution for residential energy, emphasizing the need for strategic investments across the hydrogen value chain to enhance HES competitiveness, reduce LCOH, and advance the learning rates of hydrogen production technologies.

Abstract Image

氢能源系统的进步:平准化成本、财政激励措施和技术创新综述
氢能源系统(HES)越来越被认为是减少全球二氧化碳(CO2)排放的关键,尤其是在交通、发电和工业领域。本文对氢能源系统进行了全面回顾,强调了其多样化应用和经济可行性。预计到 2030 年,氢能将在各个领域掀起一场革命,对二氧化碳减排和能源需求产生重大影响。在发电领域,氢能每年可减少 5000 万至 1 亿吨二氧化碳排放,需要 1000 万至 2000 万吨氢气和 500 亿至 1000 亿美元的投资,突出了氢能在电网稳定方面的作用。此外,在供热领域,氢能可减少 3000 万至 5000 万吨二氧化碳。我们研究了受生产方法、效率和基础设施等因素影响的氢气平准化生产成本(LCOH)。虽然蒸汽甲烷转化具有成本效益,但与电解法相比,它对环境的影响更大。全球氢气生产的生命周期成本随着生产规模的扩大而降低,目前化石能源的成本为每公斤 1-3 美元,而使用低排放电力进行电解的成本为每公斤 3.4-7.5 美元。预计这些成本将会降低,特别是在太阳能丰富的地区,电解氢的成本将会降低。然而,尽管去碳化在技术上是可行的,但高昂的生产成本仍然构成了挑战。要系统、有效地过渡到氢经济,需要全面的政策和财政支持机制,包括激励、补贴、税收措施以及试点项目的研发资金。此外,本文还讨论了氢在先进存储技术中的作用,如氢化物和日本用于住宅能源的 ENE-FARM 解决方案,强调需要对整个氢价值链进行战略性投资,以提高氢能经济的竞争力、降低 LCOH,并提高制氢技术的学习率。
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CiteScore
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