首页> 外文会议>Annual International Pittsburgh Coal Conference >Biochar and Ni-biochar Based Catalysts: A Sustainable Catalyst for Treatment of Tar obtained from Co-gasification of Coal and Biomass in a Fluidised Bed Gasifier
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Biochar and Ni-biochar Based Catalysts: A Sustainable Catalyst for Treatment of Tar obtained from Co-gasification of Coal and Biomass in a Fluidised Bed Gasifier

机译:生物炭和镍生物炭基催化剂:可持续的催化剂,用于处理流化床气化炉中煤和生物质的共同气化制得的焦油

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Tars are produced during biomass gasification or co-gasification of biomass and coal. It could lead to operational difficulties such as blockages of valves, filters, condensers and feed line of gasifiers. Secondly, the presence of tar in the produced gas affects the quality and the perfonnance of end user equipment. Catalysts are employed to crack tars to minimise their production, hence; resulting to a reduction in the cost of gas cleaning and an enhancement of the product gas quality and yield. In this study, 3 biochar based (corn cob (CC-BC), sugarcane bagasse (SCB-BC), & pine sawdust (PSD-BC) and 3 Ni-biochar based catalysts (Ni-CC-BC), Ni-SCB-BC, & Ni-PSD-BC were used to carry out the tar treatment. The Ni-biochar based catalysts were synthesised via wet incipient impregnation method, and using Ni-to-Biochar ratio of 10:15. The tars that were treated were produced from Coal + CC, Coal + SCB, & Coal + PSD, and were referred to as CCC-T, CSCB-T, & CPSD-T, respectively. Averagely, the percentage amount of tar conversion (PTC) obtained from the optimum catalysts: PSD-BC and Ni-PSD-BC were around 89.76 and 96.73 %, respectively. An evaluation of the catalyst activity using conversion times of 10, 15, and 20 min at 900 °C revealed that the Ni-biochar catalysts were more efficient in tar cracking than that of biochar by 7.87, 3.87, & 3.79 % respectively. In terms of sustainability and cost effectiveness, biochar based catalyst may be considered more attractive. A comprehensive tar treatment model was developed, and could be instrumental for estimating the PTC for feedstock (precursors) similar to the ones studied.
机译:焦油是在生物质气化或生物质与煤的共气化过程中产生的。这可能会导致操作困难,例如阀门,过滤器,冷凝器和气化器进料管线的堵塞。其次,产气中焦油的存在会影响最终用户设备的质量和性能。因此,使用催化剂裂化焦油以使其产量最小。从而降低了气体清洁的成本,并提高了产品气体的质量和产量。在这项研究中,基于3种生物炭的(玉米芯(CC-BC),甘蔗渣(SCB-BC)和松木屑(PSD-BC)和3种基于镍生物炭的催化剂(Ni-CC-BC),基于Ni-SCB用-BC,Ni-PSD-BC进行焦油处理,通过湿法初浸渍法,以Ni / Biochar的比例为10:15合成了Ni-biochar基催化剂。分别由Coal + CC,Coal + SCB和Coal + PSD产生,分别称为CCC-T,CSCB-T和&CPSD-T。最佳催化剂:PSD-BC和Ni-PSD-BC分别约为89.76%和96.73%。在900°C下使用10、15和20分钟的转化时间对催化剂活性进行了评估,结果表明:与生物炭相比,焦油裂化效率更高,分别为7.87%,3.87%和3.79%。就可持续性和成本效益而言,基于生物炭的催化剂可能被认为更具吸引力。开发了处理模型,该模型可用于估算与所研究的相似的原料(前体)的PTC。

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