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Solar photochemical process engineering for production of fuels and chemicals

机译:用于燃料和化学品生产的太阳能光化学工艺工程

摘要

The engineering costs and performance of a nominal 25,000 scmd (883,000 scfd) photochemical plant to produce dihydrogen from water were studied. Two systems were considered, one based on flat-plate collector/reactors and the other on linear parabolic troughs. Engineering subsystems were specified including the collector/reactor, support hardware, field transport piping, gas compression equipment, and balance-of-plant (BOP) items. Overall plant efficiencies of 10.3 and 11.6% are estimated for the flat-plate and trough systems, respectively, based on assumed solar photochemical efficiencies of 12.9 and 14.6%. Because of the opposing effects of concentration ratio and operating temperature on efficiency, it was concluded that reactor cooling would be necessary with the trough system. Both active and passive cooling methods were considered. Capital costs and energy costs, for both concentrating and non-concentrating systems, were determined and their sensitivity to efficiency and economic parameters were analyzed. The overall plant efficiency is the single most important factor in determining the cost of the fuel.
机译:研究了名义上的25,000 scmd(883,000 scfd)光化工厂从水中生产二氢的工程成本和性能。考虑了两种系统,一种基于平板收集器/反应器,另一种基于线性抛物槽。指定了工程子系统,包括收集器/反应器,支持硬件,现场运输管道,气体压缩设备和工厂平衡(BOP)项目。基于假定的12.9和14.6%的太阳光化学效率,平板和槽式系统的总体工厂效率分别估计为10.3和11.6%。由于浓度比和操作温度对效率的相反影响,得出的结论是,槽式系统必须对反应器进行冷却。考虑了主动和被动冷却方法。确定了集中系统和非集中系统的资本成本和能源成本,并分析了它们对效率和经济参数的敏感性。总体工厂效率是确定燃料成本的最重要的因素。

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