Parametric Investigation of Combustion and Heat Transfer Characteristics of Oscillating Linear Engine Alternator

IF 1.5 Q3 ENGINEERING, CHEMICAL
M. Bade, N. Clark, Matthew C. Robinson, P. Famouri
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引用次数: 13

Abstract

An Oscillating Linear Engine Alternator (OLEA) has the potential to overcome the thermal, mechanical, and combustion inadequacies encountered by the conventional slider-crank engines. The linear engines convert the reciprocating piston motion into electricity, thereby eliminating needless crankshaft linkages and rotational motion. As the dead center positions are not explicitly identified unlike crankshaft engines, the linear engine exhibits different stroke and compression ratio every cycle and should manage the unfavorable events like misfire, rapid load changes, and overfueling without the energy storage of a flywheel. Further, the apparatus control and management strategy is difficult for OLEA when compared to conventional engines and depends on the combustion event influencing the translator dynamics. In this research paper, the MATLAB®/Simulink numerical model of a single cylinder, mechanical spring assisted, 2-stroke natural gas fueled, spark-ignited OLEA was investigated to enhance the perception of the coupled system. The effect of combustion and heat transfer characteristics on translator dynamics and performance of OLEA were analyzed by using Wiebe form factors, combustion duration, and heat transfer correlations. Variation in the Wiebe form factors revealed interesting insights into the translator dynamics and in-cylinder thermodynamics of a coupled system. High translator velocity, acceleration, and higher heat transfer rate were favored by low combustion duration.
振荡线性发动机交流发电机燃烧传热特性参数化研究
振荡线性发动机交流发电机(OLEA)有潜力克服传统曲柄滑块发动机所遇到的热、机械和燃烧方面的不足。直线发动机将活塞的往复运动转化为电能,从而消除了不必要的曲轴连杆和旋转运动。由于死点位置不像曲轴发动机那样明确确定,线性发动机在每个循环中表现出不同的冲程和压缩比,并且应该在没有飞轮储能的情况下管理诸如失火、负载快速变化和过度加油等不利事件。此外,与传统发动机相比,OLEA的设备控制和管理策略比较困难,并且依赖于影响翻译者动力学的燃烧事件。本文采用MATLAB®/Simulink对单缸、机械弹簧辅助、二冲程天然气燃料、火花点燃的OLEA进行了数值模拟,以提高耦合系统的感知能力。利用Wiebe形状因子、燃烧持续时间和传热相关性分析了燃烧和传热特性对OLEA翻译者动力学和性能的影响。韦贝形状因子的变化揭示了对耦合系统的翻译者动力学和缸内热力学的有趣见解。较短的燃烧时间有利于提高转化器的速度、加速度和换热率。
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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来源期刊
Journal of Combustion
Journal of Combustion ENGINEERING, CHEMICAL-
CiteScore
2.00
自引率
28.60%
发文量
8
审稿时长
20 weeks
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