Design and development of compressed air engine

Aplesh Kumar Mahato, Dinanath Sharma, Durga Bastakoti, Min Narayan Shrestha, Niraj Bhatt, Rajesh Koirala
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引用次数: 2

Abstract

This research aims to build an engine that uses compressed air as a fuel to provide mechanical energy to rotate a crankshaft which can be used for useful work. The specific objectives of the study are to design and fabricate a compressed air engine within a pressure range of two to five bar and to test the engine's performance in terms of angular velocity of the crankshaft, torque produced at the crankshaft, stress and displacement analysis on the base frame and efficiency of the engine. To achieve these objectives, design equations of inertial forces in reciprocating parts is used to calculate the torque produced at the crankshaft, computational tool is used to calculate the stress and displacement analysis on the base of the frame and experimentally the engine is tested to calculate the angular velocity at the crankshaft and valve timing so that crankshaft produces uniform rotational motion. It was found that, the angular velocity is directly and Arduino valve timing is inversely proportional to the pressure exerted by the piston. A force of 245.43 N is exerted by the pneumatic piston cylinder when rotated at 100 RPM producing a torque of 45 Nm at efficiency of 29.60%. The base frame exerted a maximum stress of 48 Mpa and maximum displacement of 1.9 mm, both at the location at which the crankshaft is installed. It is important to note that the results may not be generalizable to all compressed air engines and further research is needed to fully understand their performance and capabilities.
压缩空气发动机的设计与开发
这项研究的目的是制造一种使用压缩空气作为燃料的发动机,以提供机械能来旋转曲轴,从而可以用于有用的工作。该研究的具体目标是设计和制造一台压力范围为2 - 5 bar的压缩空气发动机,并测试发动机在曲轴角速度、曲轴产生的扭矩、基础框架的应力和位移分析以及发动机效率方面的性能。为了实现这些目标,利用往复零件惯性力设计方程计算曲轴处产生的扭矩,利用计算工具在车架基础上计算应力和位移分析,并对发动机进行实验测试,计算曲轴处的角速度和配气正时,使曲轴产生均匀的旋转运动。研究发现,角速度与活塞施加的压力成正比,Arduino配气正时与活塞施加的压力成反比。当以100转/分的速度旋转时,气动活塞气缸施加245.43牛的力,产生45牛的扭矩,效率为29.60%。在曲轴安装位置,基础框架施加的最大应力为48 Mpa,最大位移为1.9 mm。值得注意的是,研究结果可能不适用于所有压缩空气发动机,需要进一步研究以充分了解其性能和能力。
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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