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首页> 外文期刊>Fuel Processing Technology >Process concepts to produce syngas for Fischer-Tropsch fuels by solar thermochemical splitting of water and/or CO2
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Process concepts to produce syngas for Fischer-Tropsch fuels by solar thermochemical splitting of water and/or CO2

机译:通过水和/或CO2的太阳热化学分解生产费托燃料合成气的工艺概念

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摘要

Process concepts for making synthesis gas by solar thermochemical cycling have been screened. The produced gas is delivered at 70 degrees C, 5 bar pressure and with a H-2/CO ratio of 2.0 which, with moderate adjustments, fit specifications of Fischer-Tropsch synthesis using a cobalt-based catalyst. The cobalt ferrite/alumina assisted hercynite cycle run adiabatically between 1350 and 1330 degrees C was selected for the study. HYSYS process simulations comprise six process combinations; quenching of hydrogen with CO2; separate solar splitting of water and CO2; vacuum depletion of oxygen in cobalt ferrite; flushing out oxygen with nitrogen produced cryogenically; and flushing with nitrogen from high temperature dense membranes. Calculated energy demand eliminates cryogenic concepts whereas the dense membranes require further study. Most promising is the water-only splitting pathway in combination with CO2 quench and vacuum oxygen depletion. The alternative with separate H2O and CO2 solar splitting benefits from half the amount of inert CO2 in the produced syngas and 7% reduction in heliostat size, but suffers from technical challenges with high temperature heat exchangers and severe coking probability; and calculated 7% higher installed cost. The novel chemical quench method limits the use of high temperature heat exchangers to just one for the depleted oxygen. (C) 2016 Elsevier B.V. All rights reserved.
机译:已经筛选了通过太阳能热化学循环制备合成气的工艺概念。产生的气体在70摄氏度,5巴压力和H-2 / CO比为2.0的条件下输送,通过适度调整,可以满足使用钴基催化剂进行费托合成的技术要求。选择在1350至1330摄氏度之间绝热运行的钴铁氧体/氧化铝辅助的锂铁矿循环。 HYSYS过程模拟包括六个过程组合;用CO 2淬灭氢;分别将水和二氧化碳分解为太阳能;真空消耗钴铁氧体中的氧气;用低温产生的氮气冲洗掉氧气;然后用高温致密膜中的氮气冲洗。计算出的能量需求消除了低温概念,而致密膜需要进一步研究。最有前途的是与CO2淬灭和真空耗氧相结合的仅水裂解途径。具有分开的H2O和CO2太阳能分光的替代方案受益于所产生的合成气中惰性CO2量的一半和定日镜尺寸减小7%,但由于高温热交换器和严重的焦化可能性而遭受技术挑战;并计算出安装成本增加了7%。新颖的化学淬火方法将高温热交换器的使用限制为仅用于贫氧的热交换器。 (C)2016 Elsevier B.V.保留所有权利。

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