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Mineral matter interactions during co-pyrolysis of coal and biomass and their impact on intrinsic char co-gasification reactivity

机译:煤和生物质共热解过程中的矿物质相互作用及其对固有焦炭共气化反应性的影响

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Gasification of blends of biomass and coal can offer renewable fuels the scale and extent of deployment usually associated with fossil fuels. For significant penetration of renewables, however, co-utilization of significant quantities of biomass is required, which significantly impacts process performance. At a fundamental level, char reactivity affects many practical aspects of gasifier operation, and is complicated by the influence of blends of coal and biomass and their different behaviour during devolatilization. In this work, intrinsic gasification reaction kinetics of chars from biomass and coal mixtures with different proportions were studied: one set of chars produced separately and mixed prior to gasification; and another with chars produced from co-pyrolysis of biomass-coal blends. Lower specific and intrinsic rates were observed for the samples where the biomass and coal were pyrolyzed together than when they were pyrolyzed separately, suggesting some interaction during devolatilization that affects reactivity behaviour. XRD results showed that the catalytically-active calcium species in the biomass interacted with the aluminosilicate species in the coal mineral matter to form Ca2Al2SiO7 (gehlenite) crystals, which are catalytically inert. The conversion of catalytically-active Ca to catalytically-inactive Ca may have led to lower reactivity of co-pyrolyzed mixtures, highlighting the importance of understanding the type and nature of often catalytically-active species when investigating the gasification behaviour of blends of coal and biomass materials. (C) 2015 Elsevier B.V. All rights reserved.
机译:生物质和煤的混合物的气化可以提供可再生燃料,其规模和程度通常与化石燃料相关。然而,为了使可再生能源显着渗透,需要共同利用大量生物质,这会严重影响工艺性能。从根本上讲,焦炭反应性影响气化炉操作的许多实际方面,并且由于煤和生物质的混合物及其在脱挥发分期间的不同行为而受到影响。在这项工作中,研究了来自不同比例的生物质和煤混合物中的焦炭的内在气化反应动力学。另一种是由生物质-煤混合物的共热解产生的炭。与分别热解的生物质和煤相比,热解在一起的样品的比值和固有速率更低,这表明脱挥发分期间的某些相互作用会影响反应性。 XRD结果表明,生物质中具有催化活性的钙物质与煤矿物质中的铝硅酸盐物质相互作用形成Ca2Al2SiO7(方沸石)晶体,该晶体具有催化惰性。催化活性的Ca向催化惰性的Ca的转化可能导致共热解混合物的反应性降低,突出了在研究煤炭和生物质混合物的气化行为时了解经常具有催化活性的物质的类型和性质的重要性材料。 (C)2015 Elsevier B.V.保留所有权利。

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