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Gasification of Iranian walnut shell as a bio-renewable resource for hydrogen-rich gas production using supercritical water technology

机译:使用超临界水技术作为伊朗核桃壳的气化作为富含氢气生产的生物可再生资源

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Gasification in supercritical water (SCW) media is known as an efficient and promising technology for obtaining hydrogen-rich gas from dry and wet bio-renewable materials. Gasification of walnut shell as the main hard nutshell produced in Kurdistan Province of Iran was investigated using a stainless steel batch micro-reactor. Effects of reaction time in the range of 10–30?min, feed loading in the range of 0.06–0.18?g, and temperature in the range of 400–440?°C were investigated to determine the condition for maximum hydrogen yield. Furthermore, carbon gasification efficiency (CGE) and hydrogen gasification efficiency (HGE) were calculated according to the elemental analysis and the yields of gaseous products. Total gas yield and hydrogen yield were directly correlated with temperature. Steam reforming of walnut shell was favored at higher temperatures. Also, walnut shell loading was inversely correlated with total gas and hydrogen yields while production of methane was favored by higher loading of walnut shell. Furthermore, hydrogen yield increased first, when reaction time increased from 10 to 20?min, and then decreased. Maximum hydrogen yield of 4.63?mmol/g of walnut shell was obtained at 440?°C, walnut shell loading of 0.06?g and reaction time of 20?min.
机译:超临界水(SCW)介质中的气化被称为有效和有前途的技术,用于从干燥和湿生物可再生材料中获得富含氢气的气体。使用不锈钢批量微反应器研究了核桃壳的气化作为库尔德斯坦省伊朗生产的主要硬质壳。反应时间的影响在10-30Ω·min的范围内,进料加载在0.06-0.18·g的范围内,并研究了400-440℃的温度,以确定最大氢产率的条件。此外,根据元素分析和气态产物的产量计算碳气化效率(CGE)和氢气化效率(HGE)。总气体产率和氢气产率与温度直接相关。核桃壳的蒸汽重整在更高的温度下青睐。此外,核桃壳负载与总气体和氢气收率相反,同时通过更高负载核桃壳产生甲烷的生产。此外,当反应时间从10到20℃增加时,氢产率先增加,然后减少。在440℃,核桃壳负载下获得0.06°C,核桃壳负荷和20Ω·克的反应时间,最大氢气产率为4.63Ω·克/克核桃壳。

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