Combustion Simulation and Quick-freeze Observation of a Cupola-furnace Process Using a Bio-coke Fuel Based on Tea Scum

Kazuyoshi Ishii, H. Murata, K. Kuwana, S. Mizuno, A. Morita, T. Ida
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引用次数: 5

Abstract

Global environment problems have become more and more serious in recent years, and reduction of greenhouse gas emission based on Kyoto Protocol adopted at the 3rd conference of the parties of the United nations Framework Convention on Climate Change (COP3); securement of primary energy source and development of clean and renewable energy sources have been pressingly needed in consideration of the predicted depletion of fossil fuel in the future. In this study, we explore the use of a solidified biomass-derived fuel, having the maximum compressive strength of 100MPa and calorific value of 21MJ/kg, in iron-casting or iron-making processes as an alternative fuel to be mixed with coal coke. This study, carried out for internal observation using a quick-freeze technique, observed an actual working cupola furnace under the 20% alternative coal coke operation condition. After quick freeze of the cupola furnace, the solidified biomass fuel was found to inhabit near the iron-melting zone. Especially, this solidified biomass fuel smoothly changes carbonized fuel through high-density state during the operating process. On the other hand, this study tried to simulate gasification combustion under a high temperature environment instead of actual internal combustion of solidified biomass fuel. These combustion mechanisms were confirmed to be similar to diffusion-flame phenomena in general.
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茶渣生物焦燃料冲天炉燃烧模拟及速冻观察
近年来,全球环境问题日益严重,在《联合国气候变化框架公约》第三次缔约方大会通过的《京都议定书》基础上减少温室气体排放;考虑到未来化石燃料的预期枯竭,确保一次能源和开发清洁和可再生能源已成为迫切需要。在这项研究中,我们探索了一种固化的生物质衍生燃料的使用,其最大抗压强度为100MPa,热值为21MJ/kg,可作为铸铁或炼铁过程中与煤焦混合的替代燃料。本研究采用速冻技术进行了内部观察,在20%替代煤焦操作条件下观察了一个实际工作的冲天炉。冲天炉快速冷冻后,在铁熔点附近发现了凝固的生物质燃料。特别是这种固化的生物质燃料在运行过程中通过高密度状态平稳地改变了碳化燃料。另一方面,本研究试图模拟高温环境下的气化燃烧,而不是固化生物质燃料的实际内燃。这些燃烧机理被证实与一般的扩散-火焰现象相似。
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