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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Alternative Fuels Based on Biomass: An Investigation of Combustion Properties of Product Gases
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Alternative Fuels Based on Biomass: An Investigation of Combustion Properties of Product Gases

机译:基于生物质的代用燃料:产品气体燃烧特性的研究

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Fuels from low quality feedstock such as biomass and biomass residues are currently discussed with respect to their potential to contribute to a more sustainable electrical power supply. In the present work, we report on the study of generic representative gas mixtures stemming from the gasification of different feedstock, from wood and algae. Two major combustion properties—burning velocities and ignition delay times—were measured for different parameters: (ⅰ) for two pressures—I bar and 3 bar—at a constant preheat temperature T_o = 373 K, to determine burning velocities by applying the cone angle method; and (ⅱ) for elevated pressures—up to 16 bar—in the temperature range between about 1000 and 2000 K, at fuel-equivalence ratios (p of 0.5 and 1.0, to obtain ignition delay times by applying the shock tube method. Additional studies performed in our group on gas mixtures of natural gas, methane, and hydrogen were also taken into account as major components of biogenic gas mixtures. It was found that the reaction behavior of the wood gasification product (N_2, CO, H_2, CO_2, CH_4) is mainly determined by its H_2 content, besides CH_4; methane determines the kinetic behavior of the algae fermentation product (CH_4, CO_2, N_2) due to its relatively high amount. Detailed chemical kinetic reaction models were used to predict the measured data. The trends and main features were captured by predictions applying different reaction models. The agreement of the experiments and the predictions is dependent on the pressure range.
机译:目前就低质原料燃料(如生物质和生物质残渣)的燃料潜力进行了讨论,这些燃料有助于实现更可持续的电力供应。在当前的工作中,我们报告了对来自木材和藻类的不同原料的气化产生的一般代表性气体混合物的研究。针对不同的参数测量了两个主要燃烧特性-燃烧速度和点火延迟时间:(ⅰ)在恒定预热温度T_o = 373 K的两个压力(I bar和3 bar)下,通过应用锥角确定燃烧速度方法; (ⅱ)在燃油当量比(p为0.5和1.0,通过使用冲击管方法获得点火延迟时间)的情况下,在大约1000至2000 K的温度范围内的最高压力(最高16 bar)。在我们小组中对天然气,甲烷和氢气的混合气体进行的研究也被视为生物混合气体的主要成分,发现木材气化产物(N_2,CO,H_2,CO_2,CH_4 )主要由其H_2含量决定,CH_4除外;甲烷因其含量较高而决定藻类发酵产物(CH_4,CO_2,N_2)的动力学行为,并使用详细的化学动力学反应模型来预测测量数据。通过使用不同反应模型的预测来捕获趋势和主要特征,实验和预测的一致性取决于压力范围。

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