首页> 外文会议>ASME Internal Combustion Engine Division technical conference >EXPLORING STRATEGIES FOR REDUCING HIGH INTAKE TEMPERATURE REQUIREMENTS AND ALLOWING OPTIMAL OPERATIONAL CONDITIONS IN A BIOGAS FUELED HCCI ENGINE FOR POWER GENERATION
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EXPLORING STRATEGIES FOR REDUCING HIGH INTAKE TEMPERATURE REQUIREMENTS AND ALLOWING OPTIMAL OPERATIONAL CONDITIONS IN A BIOGAS FUELED HCCI ENGINE FOR POWER GENERATION

机译:探讨降低高进气温要求的策略,允许沼气中的最佳运行条件推动的HCCI发电

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This paper evaluates strategies for reducing the intake temperature requirement for igniting biogas in HCCI engines. HCCI combustion is a promising technology for stationary power generation using renewable fuels in combustion engines. Combustion of biogas in HCCI engines allows high thermal efficiency similar to Diesel engines, with low net CO_2 and low NO_x emissions. However, in order to ensure the occurrence of autoignition in purely biogas fueled HCCI engines, a high inlet temperature is needed. This paper presents experimental and numerical results. First, experimental analysis on a 4 cylinder, 1.9 L Volkswagen TDI Diesel engine running with biogas in HCCI mode shows high gross indicated mean effective pressure (close to 8 bar), high gross indicated efficiency (close to 45%) and NO_x emissions below the 2010 US limit (0.27g/kWh). Stable HCCI operation is experimentally demonstrated with a biogas composition of 60% CH_4 and 40% CO_2 on a volumetric basis, inlet pressures of 2-2.2 bar (absolute) and inlet temperatures of 200-210°C for equivalence ratios between 0.19 - 0.29. At lower equivalence ratios, slight changes in inlet pressure and temperature caused large changes in cycle-to-cycle variations while at higher equivalence ratios these same small pressure and temperature variations caused large changes to ringing intensity. Second, numerical simulations have been carried out to evaluate the effectiveness of high boost pressures and high compression ratios for reducing the inlet temperature requirements while attaining safe operation and high power output. The one zone model in Chemkin was used to evaluate the ignition timing and peak cylinder pressures with variations in temperatures at IVC from 373 to 473 K. In-cylinder temperature profiles between IVC and ignition were computed using Fluent 6.3 and fed into the multi-zone model in Chemkin to study combustion parameters. According to the numerical results, the use of both higher boost pressures and higher compression ratios permit lower inlet temperatures within the safe limits experimentally observed and allow higher power output. However, the range of inlet temperatures allowing safe and efficient operation using these strategies is very narrow, and precise inlet temperature control is needed to ensure the best results.
机译:本文评估了降低在HCCI发动机点燃沼气的进气温度要求的策略。 HCCI燃烧是一种希望在燃烧发动机中使用可再生燃料的静止发电的有希望的技术。沼气中的沼气中的燃烧允许高热效率与柴油发动机类似,具有低净CO_2和低NO_X排放。但是,为了确保纯沼气燃料HCCI发动机的自燃发生,需要高入口温度。本文提出了实验性和数值结果。首先,在HCCI模式下使用沼气模式的4个气缸的实验分析,1.9 L大众TDI柴油发动机在HCCI模式下展示了高毛的表明平均有效压力(接近8巴),高毛出效率(接近45%)和下面的NO_X排放2010年美国限制(0.27g /千瓦时)。实验稳定的HCCI操作用沼气组合物在体积的基础上用60%CH_4和40%CO_2进行了实验证明的,入口压力为2-2.2巴(绝对)和200-210℃的入口温度为0.19-0.29之间的等效比。在较低的等效比率下,入口压力和温度的微小变化导致循环到循环变化的大变化,而在较高的等效比率上,这些相同的小压力和温度变化导致振铃强度的大变化。其次,已经进行了数值模拟,以评估高升压压力和高压缩比的有效性,以降低入口温度要求,同时获得安全操作和高功率输出。 Chemin中的一个区域模型用于评估点火正时和峰值缸压力,在IVC的温度变化下,从373到473 K.使用流畅的6.3计算IVC和点火之间的缸内温度曲线,并进入多区Chemkin模型研究燃烧参数。根据数值结果,使用较高的增压压力和更高的压缩比允许实验观察到的安全限制内的下部入口温度并允许更高的功率输出。然而,使用这些策略允许安全和有效的操作的入口温度范围非常窄,因此需要精确的入口温度控制来确保最佳效果。

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