Department of Mechanical Engineering, National Institute of Technology Andhra Pradesh, Tadepalligudem, India.
Department of Mechanical Engineering, ANURAG University, Hyderabad, India.
Environ Sci Pollut Res Int. 2023 Jun;30(28):72114-72129. doi: 10.1007/s11356-022-23288-y. Epub 2022 Sep 29.
Researchers are examining the possibilities for alternative fuel research as a fossil fuel replacement in light of global energy insecurity and other urgent challenges like global warming, severe emissions, and growing industrialization. This research uses 1-pentanol as a low reactivity fuel and Jatropha biodiesel as a high reactivity fuel to explore the reactivity-controlled compression ignition engine characteristics. A water-cooled single-cylinder engine is used in an experiment with varied loads of 25%, 50%, and 75% at a constant speed of 2000 rpm to examine the effects of operational parameters (i.e., (23 bTDC, 25 bTDC, and 27 bTDC) and (400 bar, 500 bar, and 600 bar)). The fuzzy-based Taguchi approach predicts operational parameters, including fuel injection time, fuel injection pressure, and engine load. Utilizing this ideal model, one may increase brake thermal efficiency and braking power while minimizing unburned hydrocarbon and nitrogen oxide emissions. An L20 orthogonal array is used to analyze the effects of various variables on an engine running on B20/1-pentanol fuel, including engine load, fuel injection timing, and fuel injection pressure. Multiple models are generated and verified with the use of experimental findings. Compared to other operating parameters, for reducing oxides of nitrogen, hydrocarbons, and brake-specific energy consumption maximally, engine load of 75%, FIP of 400 bar, and FIT of 23 bTDC are optimal based on the greatest MPCI value of 0.802.
研究人员正在研究替代燃料研究的可能性,以替代化石燃料,应对全球能源不安全和其他紧迫挑战,如全球变暖、严重排放和不断增长的工业化。本研究使用 1-戊醇作为低反应性燃料和麻疯树生物柴油作为高反应性燃料,探索反应控制压缩点火发动机的特性。在一个实验中使用水冷单缸发动机,在恒定转速 2000 rpm 下以 25%、50%和 75%的不同负荷进行实验,以研究操作参数(即 (23 bTDC、25 bTDC 和 27 bTDC) 和 (400 巴、500 巴和 600 巴))的影响。基于模糊的 Taguchi 方法预测操作参数,包括燃料喷射时间、燃料喷射压力和发动机负荷。利用这个理想模型,可以在最小化未燃烧的碳氢化合物和氮氧化物排放的同时,提高制动热效率和制动功率。使用 L20 正交数组分析了在 B20/1-戊醇燃料上运行的发动机的各种变量(包括发动机负荷、燃料喷射正时和燃料喷射压力)的影响。使用实验结果生成和验证了多个模型。与其他操作参数相比,为了最大限度地减少氮氧化物、碳氢化合物和制动比能消耗,在基于最大 MPCI 值 0.802 的情况下,发动机负荷为 75%、FIP 为 400 巴和 FIT 为 23 bTDC 是最佳的。