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Techno-Economic Assessment of Bio-Syngas Production for Methanol Synthesis: A Focus on the Water–Gas Shift and Carbon Capture Sections

机译:甲醇合成生物合成气生产的技术经济评估:专注于水 - 气体换算和碳捕获部分

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摘要

The biomass-to-methanol process may play an important role in introducing renewables in the industry chain for chemical and fuel production. Gasification is a thermochemical process to produce syngas from biomass, but additional steps are requested to obtain a syngas composition suitable for methanol synthesis. The aim of this work is to perform a computer-aided process simulation to produce methanol starting from a syngas produced by oxygen–steam biomass gasification, whose details are reported in the literature. Syngas from biomass gasification was compressed to 80 bar, which may be considered an optimal pressure for methanol synthesis. The simulation was mainly focused on the water–gas shift/carbon capture sections requested to obtain a syngas with a (H2 – CO2)/(CO + CO2) molar ratio of about 2, which is optimal for methanol synthesis. Both capital and operating costs were calculated as a function of the CO conversion in the water–gas shift (WGS) step and CO2 absorption level in the carbon capture (CC) unit (by Selexol® process). The obtained results show the optimal CO conversion is 40% with CO2 capture from the syngas equal to 95%. The effect of the WGS conversion level on methanol production cost was also assessed. For the optimal case, a methanol production cost equal to 0.540 €/kg was calculated.
机译:生物质 - 甲醇过程可能在为化学和燃料生产中引入产业链中的可再生能源方面发挥重要作用。气化是一种从生物质产生合成气的热化学过程,但请求额外的步骤获得适于甲醇合成的合成气组合物。这项工作的目的是进行计算机辅助过程模拟,从而从氧气 - 蒸汽生物质气化产生的合成气中产生甲醇,其细节在文献中报道。将生物质气化的合成气被压制至80巴,这可能被认为是甲醇合成的最佳压力。该模拟主要集中在所要求的水气移/碳捕获部分上,得到具有(H2 - CO 2)/(CO + CO2)摩尔比的合成气的约2,这对于甲醇合成是最佳的。作为CO转化在碳捕获(CC)单元(CC)单元(通过Selexol®过程中的CO2吸收水平的CO转换的函数,计算资本和运营成本。得到的结果表明,最佳CO转化为40%,CO 2从合成气捕获等于95%。还评估了WGS转化水平对甲醇生产成本的影响。对于最佳情况,计算了等于0.540欧元/ kg的甲醇生产成本。

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