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汽车发动机废热化学水解制氢系统结构设计与分析 被引量:1
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作者 朱景建 《湖州职业技术学院学报》 2012年第3期10-12,16,共4页
汽车发动机加氢与富氧燃烧是当今节能行业研究的热点问题。通过热力学计算和对发动机排气系统改造,设计了一个化学反应系统,采集排气的高温热能,用于硫碘循环热化学水解制氢。使制取的氢气和氧气反馈到内燃机燃烧,其热效率达到43.5%,直... 汽车发动机加氢与富氧燃烧是当今节能行业研究的热点问题。通过热力学计算和对发动机排气系统改造,设计了一个化学反应系统,采集排气的高温热能,用于硫碘循环热化学水解制氢。使制取的氢气和氧气反馈到内燃机燃烧,其热效率达到43.5%,直接降低发动机油耗6.6%以上。 展开更多
关键词 废热利用 热化学水解制氢 汽车发动机
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污泥热调质水解技术的进展与应用
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作者 鲁巍 乔玮 邵世云 《环境卫生工程》 2012年第6期19-23,共5页
通过对热水解、热化学水解和微波辐射水解3种基于加热水解的污泥预处理方法进行了综合分析,得出结论:热水解技术已实现了工业化应用,但高浓度的水解污泥消化滤液的后续处理还存在难点;热化学水解温度低、水解率高,也可显著提高污泥消化... 通过对热水解、热化学水解和微波辐射水解3种基于加热水解的污泥预处理方法进行了综合分析,得出结论:热水解技术已实现了工业化应用,但高浓度的水解污泥消化滤液的后续处理还存在难点;热化学水解温度低、水解率高,也可显著提高污泥消化效率,但目前仍处于小试研究;微波辐射较热化学水解效率更高,主要体现在水解时间短,在碱辅助的条件下,还能进一步减低微波辐射温度,是具有发展前景的技术,但仍需要进一步降低能耗及加快工程化的密闭微波辐射设备研制。 展开更多
关键词 污泥 水解 热化学水解 微波辐射
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La_(1-x)Ca_xMn_(1-y)Al_yO_3 perovskites as efficient catalysts for two-step thermochemical water splitting in conjunction with exceptional hydrogen yields 被引量:3
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作者 Lulu Wang Mohammad Al‐Mamun +3 位作者 Porun Liu Yun Wang Hua Gui Yang Huijun Zhao 《Chinese Journal of Catalysis》 EI CSCD 北大核心 2017年第6期1079-1086,共8页
Solar‐driven thermochemical water splitting represents one efficient route to the generation of H2as a clean and renewable fuel.Due to their outstanding catalytic abilities and promising solar fuel production capacit... Solar‐driven thermochemical water splitting represents one efficient route to the generation of H2as a clean and renewable fuel.Due to their outstanding catalytic abilities and promising solar fuel production capacities,perovskite‐type redox catalysts have attracted significant attention in this regard.In the present study,the perovskite series La1‐xCaxMn1‐yAlyO3(x,y=0.2,0.4,0.6,or0.8)was fabricated using a modified Pechini method and comprehensively investigated to determine the applicability of these materials to solar H2production via two‐step thermochemical water splitting.The thermochemical redox behaviors of these perovskites were optimized by doping at either the A(Ca)or B(Al)sites over a broad range of substitution values,from0.2to0.8.Through this doping,a highly efficient perovskite(La0.6Ca0.4Mn0.6Al0.4O3)was developed,which yielded a remarkable H2production rate of429μmol/g during two‐step thermochemical H2O splitting,going between1400and1000°C.Moreover,the performance of the optimized perovskite was found to be eight times higher than that of the benchmark catalyst CeO2under the same experimental conditions.Furthermore,these perovskites also showed impressive catalytic stability during two‐step thermochemical cycling tests.These newly developed La1‐xCaxMn1‐yAlyO3redox catalysts appear to have great potential for future practical applications in thermochemical solar fuel production. 展开更多
关键词 Two‐step thermochemical route Water splitting Solar fuel Perovskite‐type redox catalyst Hydrogen production
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