首页> 外文会议>ASME International Combustion Engine Technical Conference >INFLUENCE OF PHYSICAL AND CHEMICAL PROPERTIES OF TWO BIODIESEL FUELS ON PERFORMANCE, COMBUSTION AND EXHAUST EMISSION CHARACTERISTICS IN A DI-CI ENGINE
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INFLUENCE OF PHYSICAL AND CHEMICAL PROPERTIES OF TWO BIODIESEL FUELS ON PERFORMANCE, COMBUSTION AND EXHAUST EMISSION CHARACTERISTICS IN A DI-CI ENGINE

机译:两种生物柴油燃料物理性质对DI-CI发动机性能,燃烧和排放特性的影响

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The purpose of this study is to examine the influence of biodiesel (BD) fuel properties on different characteristics of the engine and to compare with the baseline petroleum diesel (PD) fuel. This study consists of two parts, first one is biodiesel characterization and the second one is testing in the engine. Two BD fuels namely, the medium chain (C{sub}6-C{sub}24) coconut oil methyl ester (COME) and the long chain (C{sub}16-C{sub}18) sesame seed oil methyl ester (SSME) were selected. It is observed that, the physical and chemical properties such as viscosity, density, bulk modulus, calorific value, C/H ratio, and iodine value of SSME are higher than that of COME, while the cetane number, saturation% and oxygen% of the COME is higher than that of SSME. Experiments were conducted in a naturally aspirated, single cylinder, four-stroke, stationary, water cooled, constant rpm (1500), in-line (pump-high pressure tube-fuel injector) direct injection compression ignition (DI-CI) engine with COME, SSME (with and without preheating), and PD as fuels. The performance was evaluated in terms of fuel consumption (FC), brake specific energy consumption (BSEC), and thermal efficiency (BTE). Except for COME at full load, the BTE of the esters over all load ranges were less than that of PD fuel. Also, a significant improvement in BTE was observed, when the SSME is tested at PD's viscosity by using preheating technique. At full load, the BSFC of COME and SSME are increased by 16.61% and 18.24% respectively. The minimum BSEC (at full load) of COME is decreased by 1.3% and while that of SSME is increased by 4.5%, as compared to that of PD fuel. The full load peak pressures for COME, SSME and PD fuel are 63.8 bar, 65.8 bar, and 62.9 bar respectively. The high peak pressures of the methyl esters are probably due to dynamic injection advance, caused by their higher bulk modulus. The net heat release rate (HRR) and cumulative heat release (CHR) were calculated from the acquired data. The results show that, at all loads there is a slight increase in peak HRR for COME and large increase in peak HRR for SSME against PD fuel. The higher values of peak HRR indicate better premixed combustion with the methyl esters. However, the peak HRR for preheated SSME (SSME_H) decreases due to late injection and faster evaporation of the fuel. It was observed that, at full load the nitric oxide (NO) emission of SSME is increased by 12.9%, while that of COME is decreased by 13.8% as compared to that of PD fuel. The smoke is increasing linearly with the fuels 'C/H' ratio regardless of their molecular structure. The HC emissions of both the esters are very low and are reduced by up to 73%, as compared PD. Also, there is a significant reduction in all exhaust emissions, and in particular the NO emission is observed with preheated SSME, due to change in premixed combustion phase.
机译:本研究的目的是研究在发动机的不同特性的生物柴油(BD)的燃料特性的影响,并与基线石油柴油(PD)燃料比较。这项研究由两个部分组成,第一个是生物柴油的特性和发动机,第二个是测试。两个BD燃料即,中链(C {子} 6-C {子} 24)椰子油甲基酯(COME)和长链(C {子} 16-C {子} 18)芝麻籽油甲酯(SSME)被选定。据观察,在物理和化学性质,例如粘度,密度,体积弹性模量,热值,C / H比和SSME的碘值是比COME的更高,而十六烷值,饱和度%和氧%该来的是比SSME高。实验在自然吸气,单缸进行,四冲程,静止的,​​水冷却的,恒定的转速(1500),在线(泵高压管的燃料喷射器)的直接喷射压缩点火(DI-CI)发动机COME,SSME(具有和不具有预热),和PD作为燃料。性能燃料消耗(FC),制动比能耗(BSEC),和热效率(BTE)来评价。除了在全负荷来,酯在所有负载范围的BTE均小于PD燃料。另外,在BTE一个显著改善观察到,当SSME通过使用预热技术在PD的粘度测试。在满负荷,的BSFC COME和SSME都分别增加了16.61%和18.24%。 COME的最小黑海(满载)由1.3%下降,而SSME的增加4.5%,相比于PD燃料。为COME,SSME和PD燃料满载峰值压力是63.8巴,65.8巴,和分别62.9巴。甲酯的高的峰值压力可能是由于动态喷油提前,致其较高的体积弹性模量。净放热率(HRR)和累积热释放(CHR)从所获取的数据计算的。结果表明,在所有负载有峰值HRR略有增加在峰值HRR来,大量增加了对SSME燃料PD。峰HRR的较高值指示与甲酯更好预混合燃烧。然而,峰值为HRR预热SSME(SSME_H)由于后期喷射降低和燃料的速度更快的蒸发。据观察,在满负荷SSME的一氧化氮(NO)排放增加12.9%,而COME的是由13.8%相比于PD燃料的减少。烟线性与燃料“C / H”比不论其分子结构的增加。两个酯的HC排放量非常低,最多减少到73%,比PD。此外,还有在各排气排放显著减少,特别是NO的排放与预热的SSME观察到的,由于在预混合燃烧相位变化。

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