Investigating the Emissions and Performance of Ethanol and Biodiesel Blends on Al2O3 Thermal Barrier Coated Piston Engine Using Response Surface Methodology Design - Multiparametric Optimization

Kumaran P, Dr. S. Natarajan Sengodan, Sudesh Kumar M P, Anderson A, Prakash S
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Abstract

The Response Surface Methodology (RSM) optimization technique to examine the effect of load, Tomato Methyl Ester (TOME), and Ethanol injection enhanced diesel on engine performance and exhaust gas emissions with normal piston and Al2O3 coated piston. TOME biodiesel (10, 20, and 30%) and Ethanol (10, 20, and 30%) were chosen to increase BTE while minimizing BSFC, NOx, CO, smoke, and HC. The RSM technique was used to operate the engine by load (0-100%). The results revealed that engine load, TOME, and ethanol concentration all exhibited a considerable effect on the response variables. The (ANOVA) results for the established quadratic models specified that each model, furthermore, an ideal was discovered by optimizing an experiment's user-defined historical design. The present research efforts to improve the performance of a diesel engine by using a thermal barrier-coated piston that runs on biodiesel blends. Al2O3 is the chosen material for TBC due to its excellent thermal insulation properties. B20E30 has a 4% higher brake thermal efficiency than diesel, but B10E20 and B30E20 mixes have a 3.6% and 12% reduction in (BSFC). The B20 blends lowered CO and HC emissions by 6% to 8% respectively. In terms of performance and emissions, biodiesel blends performed similarly to pure diesel, and the combination was optimized through a design of experiment tool.
利用响应面方法设计--多参数优化,研究 Al2O3 热障涂层活塞发动机上乙醇和生物柴油混合物的排放和性能
采用响应面方法学(RSM)优化技术研究了负荷、番茄甲酯(TOME)和乙醇喷射增强柴油对普通活塞和 Al2O3 涂层活塞发动机性能和废气排放的影响。选择 TOME 生物柴油(10%、20% 和 30%)和乙醇(10%、20% 和 30%)可提高 BTE,同时最大限度地降低 BSFC、NOx、CO、烟雾和 HC。使用 RSM 技术按负荷(0-100%)操作发动机。结果显示,发动机负荷、TOME 和乙醇浓度对响应变量都有相当大的影响。已建立的二次方模型的(方差分析)结果表明,每个模型都是理想的,此外,通过优化实验的用户自定义历史设计,还发现了一个理想的模型。本研究旨在通过使用生物柴油混合燃料的隔热涂层活塞来提高柴油发动机的性能。由于 Al2O3 具有优异的隔热性能,因此被选为 TBC 的材料。B20E30 的制动热效率比柴油高 4%,但 B10E20 和 B30E20 混合物的(BSFC)分别降低了 3.6% 和 12%。B20 混合燃料的 CO 和 HC 排放量分别降低了 6% 至 8%。在性能和排放方面,生物柴油混合物的表现与纯柴油相似,并通过实验设计工具对组合进行了优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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