...
首页> 外文期刊>Fuel >Experimental and numerical characterization of a direct solenoid actuation injector for Diesel engine applications
【24h】

Experimental and numerical characterization of a direct solenoid actuation injector for Diesel engine applications

机译:柴油机直接电磁驱动喷油器的实验和数值表征

获取原文
获取原文并翻译 | 示例
           

摘要

In the present paper, a non-conventional Diesel injection system is analyzed by means of a detailed numerical and experimental investigation. The analyzed system, the Magneti Marelli DDI Diesel direct injection, is based on a direct-actuation solenoid injector. The DDI system operates up to 60.0 MPa injection pressure, with a multi-hole nozzle resulting in a conventional fuel spray plumes distribution inside the combustion chamber, which suites the requirements of small industrial and automotive Diesel applications. In the present research activity, the hydraulic behavior of the DDI system was analyzed in terms of injected volumes and injection rate time-histories varying the injection pressure from 30.0 MPa to 60.0 MPa with a back pressure of 2.0 MPa. The resulting injection process was also analyzed in terms of spray global shape evolution along with droplet sizing and velocity in a pressurized (1.0 MPa) test vessel in quiescent and room temperature conditions. In order to investigate and to validate the capability of adopted CFD models to reproduce the spray behavior at such non-conventional injection pressure levels for Diesel applications, an experimental and numerical comparison was performed, in terms of liquid spray morphology, tip penetration and droplet sizing. A numerical methodology, based on a preliminary Eulerian Steady Simulation of the nozzle, has been developed in order to gain correct flow rates and turbulence data at each of the nozzle holes exit. Then the Lagrangian spray simulations have been carried out by means of a new atomization approach able to take into account the cavitation phenomena and the turbulence effects. A tuning campaign has been performed in order to validate the secondary KH-RT breakup model, and a grid sensitivity analysis has been carried out.
机译:在本文中,通过详细的数值和实验研究来分析非常规柴油喷射系统。所分析的系统Magneti Marelli DDI柴油直接喷射是基于直接驱动电磁喷射器的。 DDI系统可在高达60.0 MPa的喷射压力下运行,并带有多孔喷嘴,可在燃烧室内分配常规的燃油喷雾羽流,从而满足小型工业和汽车柴油应用的需求。在当前的研究活动中,根据注入量和注入速率时程对DDI系统的水力行为进行了分析,注入量从30.0 MPa更改为60.0 MPa,背压为2.0 MPa。还根据静态和室温条件下在加压(1.0 MPa)测试容器中的喷雾总体形状演变,液滴大小和速度等方面分析了最终的注射过程。为了研究和验证采用的CFD模型在柴油机非常规喷射压力水平下重现喷雾行为的能力,在液体喷雾形态,尖端渗透和液滴尺寸方面进行了实验和数值比较。为了获得正确的流速和每个喷嘴孔出口处的湍流数据,已经开发了一种基于喷嘴的初步欧拉稳态模拟的数值方法。然后通过一种新的雾化方法进行了拉格朗日喷雾模拟,该方法能够考虑空化现象和湍流效应。为了验证次要KH-RT分解模型,已进行了一项调试活动,并进行了电网灵敏度分析。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号