论文标题

通过电解来加速化学工业的脱碳化

Towards an accelerated decarbonization of chemical industry by electrolysis

论文作者

Barecka, Magda H., Ager, Joel W.

论文摘要

由于化学部门对石化原料的基本依赖,向碳中性化学生产的过渡具有挑战性。由可再生能源提供支持的基于电解的制造是一项快速发展的技术,可能能够大大降低化学部门的二氧化碳排放。但是,是否有可能在完全脱碳的所有化学植物中规模扩展电解系统?这种观点估计,在2050年到2050年,基于全尺度电解的化学制造能力为基于全尺度电解的化学制造供电需要多少能量。在当前计划的可再生能源扩展和使化学产量电气化所必需的能源输入之间存在显着差距:至少要对CO2的产生和电能对应到50%的能源所需的能量,从而使所有能源均可供应到50%。为了弥补这一差距,正在从单个电解系统和集成的电植物的角度讨论能够有意义地减少电解能量输入的策略。制定了一些面向规模的研究优先级,以及时开发和商业可用性,并探索协同作用并支持可再生能源部门的进一步增长,对于实现化学制造中描述的范式转移至关重要。

The transition towards carbon-neutral chemical production is challenging due to the fundamental reliance of the chemical sector on petrochemical feedstocks. Electrolysis-based manufacturing, powered by renewables, is a rapidly evolving technology that might be capable of drastically reducing CO2 emissions from the chemical sector. However, will it be possible to scale up electrolysis systems to the extent necessary to entirely decarbonize all chemical plants? Applying a forward-looking scenario, this perspective estimates how much energy will be needed to power full-scale electrolysis based chemical manufacturing by 2050. A significant gap is identified between the currently planned renewable energy expansion and the energy input necessary to electrify the chemical production: at minimum, the energy required for production of hydrogen and electrolysis of CO2 corresponds to > 50% of all renewable energy that is planned to be available. To cover this gap, strategies enabling a meaningful reduction of the energy input to electrolysis are being discussed from the perspective of both a single electrolysis system and an integrated electro-plant. Several scale-up oriented research priorities are formulated to underpin timely development and commercial availability of described technologies, as well as to explore synergies and support further growth of the renewable energy sector, essential to realize described paradigm shift in chemical manufacturing.

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