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Computational fluid dynamics for biomass producer gas burner development to be used in a cremation process

机译:用于生物质生产者气体燃烧器开发的计算流体动力学在火葬过程中使用

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In this paper, the Computational Fluid Dynamics (CFD) has been applied for burner design and development in order to simulate the flow and significant characteristics of producer gas combustion, such as when pollution is released. The producer gas's constituents were taken by GC analysis, whereas the amount of combustion air was determined from 1 mole, assuming a combustion equivalent ratio of 0.9. From CFD simulation, it was found that the maximum temperature occurring from combustion is 1,800 K, and the temperature inside the crematory reached its maximum at 1,100 K. The turbulent intensity and turbulent kinetic energy of a burner, which are described as blending characteristics of fuel and air, are equal to 180% and 10.2 m2/s2, respectively. In addition, 6.78 × 10−5 kmol/m3-s of the maximum NO formation rate was found, and there was no unburned CO released inside the crematory model. Hence, employing CFD assistance for the burner's design and development can save costs for the actual experimental rig implementation and reduce the time spent on conducting experiments.
机译:在本文中,计算流体动力学(CFD)已应用于燃烧器设计和开发,以模拟生产者气体燃烧的流量和显着特性,例如释放污染时。生产者气体的成分由GC分析捕获,而燃烧空气量由1摩尔测定,假设燃烧当量比为0.9。从CFD仿真中发现,从燃烧中发生的最大温度为1,800 k,而火药内的温度达到其最大值为1,100 K.燃烧器的湍流强度和湍流动能,称为燃料的混合特性和空气,等于180%和10.2M 2 / s 2 。此外,在火药模型内没有发现最大形成率的6.78×10 -5 kmol / m 3 -s-s的最大没有未燃烧的CO。因此,聘请燃烧器的设计和开发的CFD辅助可以节省实际实验钻机的成本,并减少在进行实验上花费的时间。

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