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Exploring the Pathway to High Efficiency IC Engines through Exergy Analysis of Heat Transfer Reduction

机译:通过高效IC发动机探索高效率IC发动机的路径分析

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Heat transfer is one of the largest causes of exergy destruction in modern engines. In this paper, exergy distribution modeling was used to determine the potential of reduced engine heat transfer to provide significant gains in engine efficiency. As known from prior work, of itself, reducing heat transfer creates only a small increase in efficiency-most of the exergy is redirected into the exhaust stream-requiring both mechanical and thermal recovery of the exhaust exergy. Mechanical regeneration, through turbocharging and over-expansion, can lead to efficiencies exceeding 50%. Adding thermal regeneration, through high enthalpy steam injection or a bottoming cycle, can increase the efficiency potential to approximately 60%. With implementation of both mechanical and thermal regeneration, the only remaining cause of substantial exergy destruction is the combustion process. Thus, efficiency gains significantly beyond 60% are only possible by reducing the entropy generated in the fuel conversion process.
机译:传热是现代发动机遭受毁灭的最大原因之一。在本文中,用于确定发动机热传递减少的潜力,以在发动机效率下提供显着提升。从现有工作中已知的,其自身来说,减少传热仅产生效率的少量增加 - 大多数驱动器被重定向到废气流中,要求排气管的机械和热回收。通过涡轮增压和过度膨胀,机械再生可以导致效率超过50%。通过高焓蒸汽喷射或底循环添加热再生,可以将效率电位增加到大约60%。通过实施机械和热再生,唯一的剩余原因是燃烧过程。因此,仅通过减少燃料转换过程中产生的熵,才能显着超过60%的效率。

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