冷燃油喷射喷嘴内空化现象的大涡模拟

Stavros Bontitsopoulos, A. Hamzehloo, P. Aleiferis, R. Cracknell
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引用次数: 1

摘要

本文研究了冷燃料喷射的喷嘴内现象。大涡模拟(LES)使用阶梯喷油器的3D模型,以水和异辛烷作为工作流体,并在与发动机启动操作相关的温度范围内进行了测试。目的是阐明温度对喷嘴内空化机制的影响,这反过来又影响了初级雾化和下游新兴喷雾的结构。结果表明,注入燃料温度的降低导致喷嘴空隙率的降低和空化区沿流长度的缩小。这表明水动力空化特征的大小和强度在寒冷条件下趋于抑制。这一现象似乎是由注入流体的热物理性质(主要是蒸气压)对温度的依赖所驱动的,蒸气压较低会阻碍相变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Large Eddy Simulations of In-Nozzle Cavitation Phenomena for Cold Fuel Injection
The present work investigates the in-nozzle phenomenology of cold fuel injections. Large Eddy Simulations (LES) were performed using a 3D model of a step nozzle injector with water and iso-octane serving as working fluids and the examined cases spanning across a range of temperatures that is relevant to an engine’s start-up operation. The aim is to shed light on the influence exerted by temperature on the in-nozzle cavitation mechanism, which in turn affects the primary atomization and the structure of the downstream emerging spray. Results suggest that a decrease in the injected fuel’s temperature induces a reduction of the nozzle’s void fraction and a shrinkage in the streamwise length of the cavitation region. This suggests that the size and intensity of the hydrodynamic cavitation features tend to become suppressed in cold conditions. The phenomenon appears to be driven by the temperature dependence of the injected fluid’s thermophysical properties, primarily the vapour pressure, with lower values hindering phase change.
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