首页> 外文会议>SAE Commercial Vehicle Engineering Congress >Design Details of the Compression Ignition Rotating Liner Engine. Reducing Piston Assembly Friction and Ring/Liner Wear in Heavy-Duty Diesel Engines
【24h】

Design Details of the Compression Ignition Rotating Liner Engine. Reducing Piston Assembly Friction and Ring/Liner Wear in Heavy-Duty Diesel Engines

机译:压缩点火旋转衬垫发动机的设计细节。减少活塞组件摩擦和重型柴油发动机的摩擦/衬里磨损

获取原文

摘要

The Rotating Liner Engine (RLE) is an engine design concept where the cylinder liner rotates in order to reduce piston assembly friction and liner/ring wear. The reduction is achieved by the elimination of the mixed and boundary lubrication regimes that occur near TDC. Prior engines for aircraft developed during WW2 with partly rotating liners (Sleeve Valve Engines or SVE) have exhibited reduction of bore wear by factor of 10 for high BMEP operation, which supports the elimination of mixed lubrication near the TDC area via liner rotation. Our prior research on rotating liner engines experimentally proved that the boundary/mixed components near TDC are indeed eliminated, and a high friction reduction was quantified compared to a baseline engine. The added friction required to rotate the liner is hydrodynamic via a modest sliding speed, and is thus much smaller than the mixed and boundary friction that is eliminated. The magnitude of the friction reduction, especially for cases of high BMEP and/or low piston speeds, can be expected to be very high compared to conventional optimization approaches. The RLE applications are to conventional truck engines and downsized engines. For the case of a conventional engine, the fuel economy gain at full load is about 3.5%, but the overall fuel consumption benefit through the load cycle is estimated in the 7-10% range (with the larger benefit for high EGR engines). The efficiency benefit for downsized engines is expected to be lower, due to their expected increased load factor, and the consequent reduced importance of friction. However, downsized engines will likely suffer from accelerated wear, and the RLE characteristic of reduced bore and ring wear can be of great value. In this paper, we present the design details of a Rotating Liner Engine (RLE) conversion of a 3.9L Cummins B-Series engine. The design is such that the original bore size is maintained, and all cylinders can be converted, while the part count is reduced compared to a prior design proposal. A semi-external driving mechanism is proposed, such that existing engines can be readily converted without need to modify castings. The main technological challenge of the RLE is the face seal, which needs to contain the combustion gas at very high pressure, yet exhibit very low friction and wear. In this paper, we present the modeling, which indicates that a 172 bar (2,500 psi) peak cylinder pressure can be contained without metallic contact, and with 8-22 Watts viscous friction for a range of liner speeds of 300-600 rpm. Our model includes factors such as gas loading, mechanical and thermal distortions, hydrodynamic/squeeze film pressure, and hydrostatic pressure. Furthermore, a review of recent literature on engine friction is presented, which supports the developer's expectation that the RLE will give very favorable and long-lasting friction reductions compared to current techniques such as plateau honing and optimized piston ring profiles.
机译:旋转衬垫发动机(RLE)是发动机设计概念,气缸衬套旋转以减少活塞组件摩擦和衬里/环磨损。通过消除在TDC附近发生的混合和边界润滑制度来实现减少。在WW2期间开发的飞机发动机具有部分旋转衬垫(套筒阀发动机或SVE)的孔磨损的减小,对于高BMEP操作,通过衬里旋转来支持消除TDC区域附近的混合润滑。我们对旋转衬里发动机的先前研究实验证明了TDC附近的边界/混合组件确实被淘汰,并且与基线发动机相比,量化了高摩擦减少。旋转衬里所需的摩擦是通过适度的滑动速度的流体动力学,因此远小于消除的混合和边界摩擦。与传统的优化方法相比,可以预期摩擦减少的幅度,特别是对于高BMEP和/或低活塞速度的情况,可以非常高。 RLE应用是传统的卡车发动机和缩小的发动机。对于传统发动机的情况,满载的燃料经济性增益约为3.5%,但通过载荷周期的整体燃料消耗效益在7-10%的范围内(具有较大的高EGR发动机的较大效益)。由于其预期的负载系数增加,预计缩小发动机的效率受益预计将降低,因此导致摩擦的重要性降低。然而,缩小的发动机可能会遭受加速磨损,并且孔和戒指磨损的降低的RLE特征可以具有很大的价值。在本文中,我们介绍了3.9L康明斯B系列发动机的旋转衬里发动机(RLE)转换的设计细节。设计是保持原始孔径,并且可以转换所有气缸,而与先前的设计建议相比,部分计数减少。提出了一种半外部驱动机构,使得现有发动机可以容易地转换而不需要改变铸件。 RLE的主要技术挑战是面部密封,需要在非常高的压力下含有燃烧气体,但含有非常低的摩擦和磨损。在本文中,我们介绍了建模,表示172巴(2,500psi)峰值缸压力可以含有金属接触,并且8-22瓦粘性摩擦为300-600rpm的衬里速度范围。我们的型号包括燃气负荷,机械和热扭曲,流体动力/挤压膜压力和静液压等因素。此外,提出了对最近的发动机摩擦文献的综述,支持开发人员的期望,与电流珩磨和优化的活塞环型材等当前技术相比,RLE将提供非常有利和持久的摩擦降低。

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