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Automotive application of turbo-expansion.

机译:汽车在涡轮膨胀中的应用。

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摘要

This research project focuses on a charge-air cooling concept, Turbo-Expansion, which offers promise to bring the application of Variable Geometry Turbine (VGT) technology toward its original aim of improving gasoline internal combustion (IC) engine performance and efficiency.;In a conventional turbocharger, as the pressure increases, the exhaust gas bypasses the turbine through a wastegate. This represents a loss of energy since the exhaust gas goes directly to the ambient surroundings without performing any useful work within the system. The Turbo-Expansion concept can eliminate the need for the exhaust bypassing system by using a VGT as the exhaust turbine. It can also eliminate the turbo lag that exists in regular turbochargers by functioning as a "small turbo" at low engine speed and a "big turbo" at high engine speed.;In addition, due to reduced operating temperatures the application of the Turbo-Expansion cooling system to the gasoline engine will not lead to knocking, an abnormal and engine-damaging combustion phenomenon that plagues naturally aspirated and conventionally turbocharged engines. Normal operation of gasoline engines produces higher exhaust gas compared to Diesel engines where turbocharger application is common. These higher temperatures lead to turbocharger component failures, which can be eliminated by the application of Turbo-Expansion technology.;Engine performance modeling software, Gamma Technologies' GT-Suite, was previously used to prove the theoretical benefits of the new concept. The results of the investigation show that Turbo-Expansion will increase the power output of current gasoline engines. It will also save fuel costs and lower emissions by lowering intake airfuel mixture temperature below ambient. These changes will not require the use of advanced combustion technology, high-grade fuel, or advanced materials. Fuel economy will result from engine downsizing and higher compression ratios. Reliability and durability will increase as well, due to lower engine speeds.;Using expansion-cooling to attain these benefits has been questioned since it opposes the main idea of turbocharging, which is based on the compression of inlet air. In the present effort, an analysis of the components involved is presented along with theoretical calculations, which prove that the concept presents a certain potential. Suggestions are made on critical requirements concerning the effectiveness of the intercooler and the control system needed to realize that potential.
机译:该研究项目着重于增压空气冷却概念“涡轮膨胀”,它为将可变几何涡轮(VGT)技术的应用朝着提高汽油内燃(IC)发动机性能和效率的最初目标提供了希望。在传统的涡轮增压器中,随着压力的增加,废气通过废气门绕过涡轮机。这表示能量损失,因为废气直接流向周围环境,而没有在系统内执行任何有用的工作。通过使用VGT作为排气涡轮,涡轮膨胀概念可以消除对排气旁通系统的需求。它还可以通过在低发动机转速下充当“小涡轮”和在高发动机转速下充当“大涡轮”来消除常规涡轮增压器中存在的涡轮滞后。此外,由于降低了工作温度,涡轮增压器的应用汽油发动机的膨胀冷却系统不会导致爆震,这是困扰自然吸气和传统涡轮增压发动机的异常和破坏发动机的燃烧现象。与通常使用涡轮增压器的柴油发动机相比,汽油发动机的正常运行会产生更高的废气。这些较高的温度导致涡轮增压器部件故障,可以通过使用涡轮膨胀技术来消除。;发动机性能建模软件,Gamma Technologies的GT-Suite,以前曾被用来证明新概念的理论优势。调查结果表明,涡轮膨胀将增加当前汽油发动机的功率输出。通过将进气混合气温度降低到环境温度以下,还将节省燃料成本并降低排放。这些变化将不需要使用先进的燃烧技术,高级燃料或先进的材料。发动机的小型化和更高的压缩比将带来燃油经济性。由于较低的发动机转速,可靠性和耐用性也将提高。;由于它反对基于进气压缩的涡轮增压的主要思想,因此使用膨胀冷却来获得这些好处受到了质疑。在目前的工作中,对所涉及的组件进行了分析,并进行了理论计算,证明了该概念具有一定的潜力。提出了有关中冷器有效性和实现该潜力所需的控制系统的关键要求的建议。

著录项

  • 作者

    Brutus, Jean Christian.;

  • 作者单位

    State University of New York at Stony Brook.;

  • 授予单位 State University of New York at Stony Brook.;
  • 学科 Engineering Automotive.;Engineering Mechanical.;Energy.
  • 学位 M.S.
  • 年度 2010
  • 页码 61 p.
  • 总页数 61
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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