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首页> 外文期刊>Case Studies in Thermal Engineering >Combustion of sustainable and renewable biohythane fuel in trapped vortex combustor
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Combustion of sustainable and renewable biohythane fuel in trapped vortex combustor

机译:捕集涡流燃烧器中可持续和可再生生物甲烷燃料的燃烧

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摘要

Biohythane fuel combustion in Trapped Vortex Combustor under high-speed conditions is presented in this paper. The main objective is to test the combustion performance and greenhouse gas emissions of sustainable and alternative fuels with high hydrogen content. Combustion modeling and simulation based on Reynolds Average Navier-Stokes method were used to study the interaction mechanisms between the chemical reaction and turbulent flow. The results show the effects of hydrogen to methane ratios (0–3); and heatign value (17.5–33?MJ/m3) at constant combustor power (P?=?7.6?kW) on the flame temperature; the velocity field; the species concentrations; and the NOXand CO2greenhouse gas emissions at the exit of the combustor. The numerical results show good agreement with those obtained experimentally. The numerical results show an increase of the flame temperature by 8.25% when methane is replaced with hydrogen fuel. For the biohythane fuel, an increase in the hydrogen content from 25% to 75% will increase the gas flame temperature by 0.6%–4.05%. The NOXemissions for the biohythane gas fuels are comparable to those obtained with methane fuel. In the other hand, substantial decrease in CO2emissions for the biohythane fuel compared to methane gas fuel.
机译:本文介绍了在高速条件下,捕集涡流燃烧器中的生物hy燃料燃烧。主要目的是测试氢含量高的可持续和代用燃料的燃烧性能和温室气体排放。基于雷诺平均Navier-Stokes方法的燃烧建模与仿真研究了化学反应与湍流的相互作用机理。结果表明氢与甲烷之比(0-3)的影响。在燃烧温度恒定(P power =?7.6?kW)的情况下,热值(17.5-33?MJ / m3)取决于火焰温度;速度场物种浓度;燃烧室出口处的NOX和CO2温室气体排放。数值结果表明与实验结果吻合良好。数值结果表明,用氢气代替甲烷可将火焰温度提高8.25%。对于生物hy燃料,氢含量从25%增加到75%将使气体火焰温度增加0.6%–4.05%。生物甲烷气体燃料的NOx排放量与甲烷燃料的NOx排放量相当。另一方面,与甲烷气体燃料相比,生物乙烷燃料的二氧化碳排放量大幅减少。

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