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Hydrogen production from the catalytic supercritical water gasification of process water generated from hydrothermal liquefaction of microalgae

机译:由微藻水热液化产生的工艺用水的催化超临界水气化制氢

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摘要

The integration of hydrothermal liquefaction (HTL) and hydrothermal gasification (HTG) is an option for enhanced energy recovery and potential biocrude upgrading. The yields and product distribution obtained from the HTL of Chlorella vulgaris have been investigated. High conversion of algae to biocrude as well as near complete gasification of the remaining organic components in the aqueous phase was achieved. The aqueous phase from HTL was upgraded through catalytic HTG under supercritical water conditions to maximise hydrogen production for biocrude hydrotreating. High yields of hydrogen were produced (~30 mol H2 / kg algae) with near complete gasification of the organics (~98%). The amount of hydrogen produced was compared to the amounts needed for complete hydrotreating of the biocrude. A maximum of 0.29 g H2 was produced through HTG per gram of biocrude produced by HTL. The nutrient content of the aqueous phase was analysed to determine suitability of nutrient recovery for algal growth. The results indicate the successful integration of HTL and HTG to produce excess hydrogen and maintain nutrient recovery for algal growth.
机译:水热液化(HTL)和水热气化(HTG)的集成是增强能量回收和潜在生物粗提质升级的一种选择。已经研究了从寻常小球藻的HTL获得的产量和产品分布。实现了藻类到生物粗品的高转化率以及水相中剩余有机成分的几乎完全气化。来自HTL的水相在超临界水条件下通过催化HTG进行提质,以最大程度地提高氢气产量,用于生物粗加氢处理。产生了高产率的氢气(〜30 mol H2 / kg藻类),有机物几乎完全气化(〜98%)。将产生的氢的量与对生物原油进行完全加氢处理所需的量进行比较。每克HTL产生的生物原油,通过HTG最多产生0.29 g H2。分析水相的营养物含量,以确定营养物回收对于藻类生长的适合性。结果表明,HTL和HTG成功整合,产生了过量的氢气,并维持了藻类生长所需的养分回收。

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