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首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Revealing the pathways of catalyst deactivation by coke during the hydrodeoxygenation of raw bio-oil
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Revealing the pathways of catalyst deactivation by coke during the hydrodeoxygenation of raw bio-oil

机译:揭示焦炭在原料生物油的加氢脱氧过程中易易失相的途径

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Virtually all processes aiming for fuels and chemicals from biomass entail no less than one step for removing oxygen by hydrodeoxygenation (HDO). The bottleneck of HDO is the formation of deactivating carbonaceous species on the catalyst surface. In this work, we have studied the deactivation pathways of catalysts based on noble metal nanoparticles (Pt-Pd) supported on mildly acid supports during the HDO of raw bio-oil. At conditions of accelerated deactivation, monitoring the evolution with time on stream of hydrocarbon and oxygenated compounds in the reaction medium, the intermediates on the catalyst surface and the nature-location of deactivating species, two parallel deactivation routes have been revealed: the deposition of (i) thermal or pyrolytic lignin from alkylmethoxy phenols, on the catalyst mesopores and favored at low temperature, and; of (ii) aromatic coke from polycyclic aromatic hydrocarbons, starting on the catalyst micropores through condensation reactions and promoted by acidic sites and high temperature. Nevertheless, catalyst deactivation can be controlled within limits at harsh temperature conditions (450 degrees C) due to the preferential HDO of alkyl(methoxy) phenols into aromatics and the formation-hydrocracking steady state of the aromatic precursors of coke.
机译:实际上,旨在从生物质的燃料和化学物质的所有方法都是不少于一个通过加氢脱氧(HDO)除去氧的步骤。 HDO的瓶颈是在催化剂表面取消激活碳质物种的形成。在这项工作中,我们研究了基于贵金属纳米颗粒(Pt-Pd)的催化剂的失活途径在原始生物油的HDO期间支持含有温和的酸支撑的贵金属纳米颗粒(Pt-Pd)。在加速失活的条件下,在反应介质中监测烃和含氧化合物流的时间,催化剂表面上的中间体和失活物种的性质 - 已经显示出两种平行的失活途径:沉积( i)从烷基甲氧基酚的热或热解木质素,在催化剂中oporoOly并在低温下青睐,并且; (II)来自多环芳烃的芳族焦炭,在催化剂微孔通过缩合反应开始并通过酸性位点和高温促进。然而,由于烷基(甲氧基)酚的优先HDO,可以在苛刻的温度条件(450℃)的限制内控制催化剂去激活,并且由于焦炭的芳香族前体的形成 - 加氢裂化稳定状态,因此可以在苛刻的温度条件(450℃)的范围内。

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