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Analysis and prediction of slag-induced corrosion of chromium oxide-free refractory materials during fusion of coal and biomass ash under simulated gasification conditions

机译:模拟气化条件下煤与生物质灰融合过程中无铬难熔材料炉渣腐蚀的分析与预测

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Four chromium oxide-free refractories based on spinel, alumina, and calcium aluminatesare brought in contact with three ashes from coal and biomass with different base to acid ratios (B/A) and alkali contents under reducing atmosphere (simulated gasification). This investigation is performed in a lab-scale oven with a defined heat up to 1450 degrees C and a subsequent slow cool down to room temperature in H-2/Ar atmosphere over a period of 3-4 h. Afterwards sample sections are prepared and analyzed by optical microscopy and SEM/EDX. The slag infiltration pathways are identified and the formed mineral phases in the sections are localized by SEM/EDX mapping. A stepwise model of thermochemical calculations of the interacting species using the FactSageTm software package is applied to reproduce the slag progression inside of the different refractory materials and to predict the formed mineral phases by equilibrium state calculations. The corrosion mechanisms and corrosion depths are concluded from the comparison between experiment and thermochemical calculations. A comparably good agreement between both experiment and calculation is shown. Aim of the present study is the identification of promising candidates of environmentally friendly and cheap substitutes for the commercially used chromium oxide-based refractory materials as well as the development of related methodical approaches for the evaluation/prediction. (C) 2016 Elsevier B.V. All rights reserved.
机译:在还原气氛下(模拟气化),将四种基于尖晶石,氧化铝和铝酸钙的无铬耐火材料与煤和生物质中的三种灰分接触,这些灰分具有不同的碱酸比(B / A)和碱含量。该研究是在实验室规模的烘箱中进行的,规定的加热温度高达1450摄氏度,随后在3-4小时内在H-2 / Ar气氛中缓慢冷却至室温。之后,准备样品切片并通过光学显微镜和SEM / EDX进行分析。通过SEM / EDX映射,确定了炉渣的渗透途径,并确定了各部分中形成的矿物相。使用FactSageTm软件包对相互作用的物种进行热化学计算的逐步模型可用于再现不同耐火材料内部的炉渣进展,并通过平衡态计算来预测形成的矿物相。通过实验与热化学计算的比较得出腐蚀机理和腐蚀深度。显示了实验和计算之间的相对良好的一致性。本研究的目的是确定有前景的候选材料,以商业上使用的三氧化二铬基耐火材料作为环境友好和廉价的替代品,并开发相关的评估/预测方法。 (C)2016 Elsevier B.V.保留所有权利。

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