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Effects of hydrogen and steam addition on laminar burning velocity of methane–air premixed flame: Experimental and numerical analysis

机译:氢气和蒸汽添加对甲烷-空气预混火焰层流燃烧速度的影响:实验和数值分析

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摘要

Effects of hydrogen enrichment and steam addition on laminar burning velocity of methaneeair premixed flame were studied both experimentally and numerically. Measurements were carried out using the slot burner method at 1 bar for fresh gases temperatures of 27 °C and 57 °C and for variable equivalence ratios going from 0.8 to 1.2. The hydrogen content in the fuel was varied from 0% to 30% in volume and the steam content in the air was varied from 0 to 112 g/kg (0e100% of relative humidity). Numerical calculations were performed using the COSILAB code with the GRI-Mech 3.0 mechanism for one-dimensional premixed flames. The calculations were implemented first at room temperature and pressure and then extended to higher temperatures (up to 917 K) and pressures (up to 50 bar). Measurements of laminar burning velocities of methanee hydrogeneair and methaneeairesteam agree with the GRI-Mech calculations and previous measurements from literature obtained by different methods. Results show that enrich- ment by hydrogen increases of the laminar burning velocity and the adiabatic flame temperature. The addition of steam to a methaneeair mixture noticeably decreases the burning velocity and the adiabatic flame temperature. Modeling shows that isentropic compression of fresh gases leads to the increase of laminar burning velocity.
机译:实验和数值研究了富氢和蒸汽添加对甲烷空气预混火焰层流燃烧速度的影响。使用狭缝燃烧器方法在1 bar下对27°C和57°C的新鲜气体温度以及从0.8到1.2的可变当量比进行测量。燃料中的氢含量范围从0%到30%不等,空气中的蒸汽含量从0到112 g / kg(相对湿度为0e100%)不等。使用COSILAB代码和GRI-Mech 3.0机制对一维预混火焰进行了数值计算。该计算首先在室温和压力下进行,然后扩展到更高的温度(最高917 K)和压力(最高50 bar)。甲烷氢气和甲烷蒸汽的层流燃烧速度的测量结果与GRI-Mech计算结果和以前通过不同方法获得的文献的测量结果一致。结果表明,氢富集增加了层流燃烧速度和绝热火焰温度。向甲烷空气混合物中添加蒸汽会明显降低燃烧速度和绝热火焰温度。模型表明,新鲜气体的等熵压缩导致层流燃烧速度的增加。

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