FLUID DYNAMIC SIMULATION ON THE FLARE OF COMBUSTION OF GAS FROM BIOMASS GASIFICATION

Dian Susanto, Muhtar Kosim, Ari Wibowo
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Abstract

The use of energy which always comes from fossil fuels will eventually run out, so the development of renewable energy or alternative energy is very important to maintain petroleum reserves and as a substitute for fossil fuels which are the main energy source. One alternative energy is biomass which has not been widely used by the gasification method. The gas produced by the gasification process is utilized by burning it in a flare to get a flame. In this study, the 3D simulation method with Computational Fluid Dynamics (CFD) was used to determine the temperature distribution on the flare walls using CFD simulations and to compare the temperature of the flare walls from the CFD simulation results with the test results. The results of this study, the distribution of combustion occurs in the flare with a temperature of 1106°C in the upper area close to the outlet boundary. The wall temperature comparison shows that the CFD simulation tends to be similar to the test results. This shows that computational fluid dynamic simulations can be used to predict fluid flow rates and combustion reactions.
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生物质气化气体燃烧耀斑的流体动力学模拟
由于能源总是来自于化石燃料,因此,开发可再生能源或替代能源对于维持石油储量和替代化石燃料这一主要能源至关重要。一种替代能源是生物质,但尚未被气化方法广泛使用。气化过程产生的气体通过在火炬中燃烧得到火焰来利用。本研究采用计算流体力学(Computational Fluid Dynamics, CFD)的三维模拟方法,通过CFD模拟确定耀斑壁面上的温度分布,并将CFD模拟结果与试验结果进行对比。研究结果表明,燃烧分布在靠近出口边界的上部区域温度为1106℃的耀斑中。壁面温度对比表明,CFD模拟结果与试验结果趋于接近。这表明计算流体动力学模拟可以用来预测流体流速和燃烧反应。
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