Benefits of Higher-Temperature Operation in Boosted SI Engines Enabled by Advanced Materials

Z. Mills, C. Finney, K. Edwards, J. Haynes
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Abstract

To meet the demand for greater fuel efficiency in passenger vehicles, various strategies are employed to increase the power density of light-duty SI engines, with attendant thermal or system efficiency increases. One approach is to incorporate higher-performance alloys for critical engine components. These alloys can have advantageous thermal or mechanical properties at higher temperatures, allowing for components constructed from these materials to meet more severe pressure and temperature demands, while maintaining durability. Advanced alloys could reduce the need for charge enrichment to protect certain gas-path components at high speed and load conditions, permit more selective cooling to reduce heat-transfer losses, and allow engine downsizing, while maintaining performance, by achieving higher cylinder temperatures and pressures. As a first step in investigating downsizing strategies made possible through high-performance alloys, a GT-Power model of a 4-cylinder 1.6L turbocharged direct-injection SI engine was developed. The model was tuned and validated against experimental dynamometer data collected from a corresponding engine. The model was then used to investigate various operating strategies for increasing power density. Results from these investigations will provide valuable insight into how new materials might be utilized to meet the needs of future light-duty engines and will serve as the basis for a more comprehensive investigation using more-detailed thermo-mechanical modeling.
由先进材料实现的增压SI发动机高温运行的好处
为了满足乘用车对更高燃油效率的需求,采用了各种策略来提高轻型SI发动机的功率密度,从而提高热效率或系统效率。一种方法是将高性能合金用于发动机的关键部件。这些合金在较高的温度下具有有利的热性能或机械性能,使这些材料制成的部件能够满足更苛刻的压力和温度要求,同时保持耐用性。先进的合金可以减少在高速和负载条件下保护某些气路部件的电荷富集需求,允许更多的选择性冷却以减少传热损失,并通过实现更高的气缸温度和压力来实现发动机小型化,同时保持性能。作为研究通过高性能合金实现小型化策略的第一步,研发了一款GT-Power型号的4缸1.6L涡轮增压直喷SI发动机。对模型进行了调整,并根据从相应发动机上收集的实验测功机数据进行了验证。然后利用该模型研究了提高功率密度的各种操作策略。这些研究的结果将为如何利用新材料来满足未来轻型发动机的需求提供有价值的见解,并将作为使用更详细的热机械建模进行更全面研究的基础。
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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