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A novel integrated system for sustainable generation of hydrogen and liquid hydrocarbon fuels using the five-step ZnSI thermochemical cycle, biogas upgrading process, and solar collectors

机译:使用五步ZNSI热化学循环,沼气升级过程和太阳能收集器,一种新型氢气和液态烃燃料的集成系统

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摘要

The utilization of renewable energy sources such as solar energy and biogas have recently received more attention due to a decline in fossil energy sources and environmental issues. A leading method for long-term renewable energies sources storage is to convert to fuels such as hydrogen and heavy value hydrocarbons. In this work, a novel integrated structure is developed for sustainable cogeneration of hydrogen and heavy liquid hydrocarbon fuels. This integrated structure consists of the zinc-sulfur-iodine thermochemical cycle, biogas treatment cycle, Fischer-Tropsch synthesis reactions, a carbon dioxide power generation, and solar dish collectors. It is demonstrated that this integrated structure produces 359.8 kmol/h hydrogen, 116.8 kmol/h liquid fuels, 1714 kmol/h carbon monoxide, and 289,149 kmol/h hot water. The thermal energy and exergy efficiencies of the integrated structure are 58.03% and 44.34%, respectively. The exergy analysis illustrates that exergy destruction mostly occurs in heat exchangers (36.67%), reactors (24.69%), and collectors (20.25%). The sensitivity analysis demonstrates that the absorbed useful energy and solar collector thermal efficiency decrease up to 9.735 kW and 0.7751, respectively when the average operating wall temperature in each solar collector increases from 627 degrees C to 1127 degrees C. The thermal efficiency and productivity of the liquid fuels increase up to 0.63 and 383.6 kmol/h, respectively with increase of carbon dioxide composition in the biogas from 40 mol% to 55 mol%.
机译:由于化石能源和环境问题的下降,最近,可再生能源和沼气等可再生能源和沼气的利用。长期可再生能源源存储的主要方法是转化为诸如氢气和重价碳氢化合物的燃料。在这项工作中,开发了一种新的集成结构,用于氢气和重型液态烃燃料的可持续发电。这种综合结构包括锌 - 硫 - 碘热化学循环,沼气治疗循环,费斯 - 托合成反应,二氧化碳发电和太阳能火锅收集器。证明这种综合结构产生359.8 kmol / h氢,116.8 kmol / h液体燃料,1714 kmol / h一氧化碳,289,149 kmol / h热水。综合结构的热能和漏极效率分别为58.03%和44.34%。 Deerveny分析说明了散热破坏主要发生在热交换器(36.67%),反应器(24.69%)和收集器(20.25%)中发生。灵敏度分析表明,当每个太阳能收集器的平均工作壁温从627摄氏度增加到1127℃时,吸收的有用能量和太阳能集热器热效率分别降低到9.735千瓦和0.7751。液体燃料分别增加0.63和383.6 kmol / h,分别随着沼气中的二氧化碳组合物的增加,从40摩尔%至55摩尔%。

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