用核能制氢、纤维素碳氢化合物生物燃料和可调度电力取代所有化石燃料

Charles Forsberg, Bruce E. Dale, Eric Ingersoll
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摘要

我们描述了一个路线图,利用三套技术使基本负荷核反应堆在低碳世界中取代所有化石燃料。这些技术整合了核能、风能、太阳能、水能和生物质能源。基础负荷核反应堆与大规模热存储相结合,可向电网提供可调度的电力。低成本的储热装置可以购买多余的风能和太阳能电力,为储热装置充电,以便日后发电,同时提供可靠的发电能力。全球炼油厂规模的核制氢设施可生产氢气,取代天然气(气体燃料)作为化学原料和热源。单个生产基地可在当地工厂生产数十个模块化反应堆,通过转换为制造反应堆的模式来降低成本。核热和核氢可将纤维素生物质转化为即用型液态碳氢化合物生物燃料,以替代化石燃料汽油、柴油、喷气燃料和化工行业的碳氢化合物原料。外部热量和氢气的输入增加了每单位纤维素原料可生产的生物燃料数量,从而确保有足够的生物质原料替代所有原油,而不会对粮食和纤维价格产生重大影响。生物燃料生产系统能够从大气中排出大量二氧化碳,这些二氧化碳以碳炭的形式封存在土壤中,同时循环利用植物养分(钾、磷等),确保农业和森林的可持续发展。
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Replacing All Fossil Fuels With Nuclear-Enabled Hydrogen, Cellulosic Hydrocarbon Biofuels, and Dispatchable Electricity
We describe a roadmap using three sets of technologies to enable base-load nuclear reactors to replace all fossil fuels in a low-carbon world. The technologies integrate nuclear, wind, solar, hydroelectricity and biomass energy sources. Base-load nuclear reactors with large-scale heat storage enable dispatchable electricity to the grid. The low-cost heat storage enables buying excess wind and solar electricity to charge heat storage for later electricity production while providing assured generating capacity. Nuclear hydrogen production facilities at the scale of global oil refineries produce hydrogen to replace natural gas (gaseous fuel) as a chemical feedstock and heat source. Single sites may have tens of modular reactors produced in a local factory to lower costs by converting to a manufacturing model for reactor construction. Nuclear heat and hydrogen convert cellulosic biomass into drop-in liquid hydrocarbon biofuels to replace fossil-fuel gasoline, diesel, jet fuel, and hydrocarbon feed stocks for the chemical industry. External heat and hydrogen inputs increase the quantities of biofuels that can be produced per unit of cellulosic feedstock, thus assuring sufficient biomass feed stocks to replace all crude oil without major impacts on food and fiber prices. The biofuel production system enables the removal of large quantities of carbon dioxide from the atmosphere that is sequestered as carbon char in the soil while recycling plant nutrients (potassium, phosphorous, etc.) to assure agricultural and forest sustainability.
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