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A study on pyrolytic gasification of coffee grounds and implications to allothermal gasification

机译:咖啡渣的热解气化及其对变热气化的影响研究

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The increasing interest in biomass, as a renewable source of energy, is stimulating a search for suitable biomass resources as well as the development of technologies for their effective utilization. This work concentrated on characteristics of processes occurring during pyrolytic gasification of upgraded food industry residues, namely residue from industrial production of liquid coffee, and assessed its suitability for conversion in an allothermal gasifier. The influence of several operating parameters on product composition was examined with three different laboratory-scale reactors, studying the primary pyrolysis and secondary pyrolysis of nascent volatiies, and the steam gasification of char. The experimental results show that a high degree of conversion of UCG into volatiies and gases (up to 88% C-basis) can be achieved by fast pyrolysis even at temperatures as low as 1073 K. In addition, the degree of conversion is not influenced by the presence or concentration of steam, which is an important factor in allothermal gasification. Mathematical simulation of an allothermal gasifier showed that net cold-gas efficiency as high as 86% can be reached.
机译:人们对生物质作为可再生能源的兴趣与日俱增,这促使人们寻找合适的生物质资源以及有效利用其技术的发展。这项工作集中于升级食品行业残渣(即液态咖啡的工业生产中的残渣)的热解气化过程中发生的过程的特征,并评估了其在同质气化炉中转化的适用性。使用三个不同的实验室规模的反应器,研究了几个操作参数对产物组成的影响,研究了新生挥发物的一次热解和二次热解以及炭的蒸汽气化。实验结果表明,即使在低至1073 K的温度下,也可以通过快速热解实现UCG高度转化为挥发物和气体(高达88%的C基)。此外,转化率不受影响蒸汽的存在或浓度,这是变温气化的重要因素。变热气化炉的数学模拟表明,净冷气效率可以达到86%。

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