首页> 外文会议>ASME Internal Combustion Engine Division Spring Technical Conference; 20050405-07; Chicago,IL(US) >HIGH EFFICIENCY ENERGY CONVERSION SYSTEM BASED ON MODIFIED BRAYTON CYCLE
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HIGH EFFICIENCY ENERGY CONVERSION SYSTEM BASED ON MODIFIED BRAYTON CYCLE

机译:基于改进布雷顿循环的高效能转换系统

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Each year, the users in the U.S. alone spend over $100 billion on various type of engines to produce power -electrical, mechanical, and thermal. Despite technological advances, most all of these power generation systems have only been fine tuned: the engine efficiencies may have been improved slightly, but the underlying thermodynamic principles have not been modified to effect a drastic improvement. The result is that most engines in service today suffer from two major problems: low fuel efficiency and emission of high levels of polluting gases in the exhaust gases. The current state of propulsion engines or distributed generation technologies using heat engines shows an average efficiency of between 20% and 40%. These low efficiencies in a high -cost energy market indicate a great need for more efficient technologies. This paper describes a new method of achieving a very high efficiency, namely optimizing every stage of the thermodynamic process-Brayton cycle. Two modified processes, such as isothermal compression and recuperation, add about 35% efficiency to the conventional Brayton cycle, making 60% efficiency for modified Brayton cycle. By utilizing a positive displacement compressor and expander with a novel vortex combustion chamber and a vortex recuperator, high levels of efficiency with low emissions and noise are possible. The prototype engine with low RPM and high torque has been built which use continuous combustion of different fuels under a constant pressure. First results of the engine's components testing are presented.
机译:每年,仅美国用户就花费超过1000亿美元购买各种类型的发动机以产生动力-电气,机械和热力。尽管技术上取得了进步,但所有这些发电系统中的大多数都仅进行了微调:发动机效率可能有所提高,但基本的热力学原理尚未修改以实现大幅改进。结果是,当今使用中的大多数发动机都存在两个主要问题:低燃油效率和废气中高浓度的废气排放。推进发动机或使用热力发动机的分布式发电技术的当前状态显示平均效率在20%到40%之间。高成本能源市场中的这些低效率表明了对更高效技术的巨大需求。本文介绍了一种实现极高效率的新方法,即优化热力学过程的每个阶段-布雷顿循环。等温压缩和回热等两种改进方法使常规布雷顿循环的效率提高了约35%,使改进布雷顿循环的效率提高了60%。通过使用容积排量的压缩机和膨胀机以及新型涡流燃烧室和涡流换热器,可以实现高效率,低排放和低噪音。已经制造出具有低RPM和高扭矩的原型发动机,该发动机在恒定压力下使用不同燃料的连续燃烧。介绍了发动机部件测试的初步结果。

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