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A study on pressure reactive piston for spark ignition engines.

机译:火花点火发动机的压力反应活塞的研究。

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摘要

The thrust toward improving vehicle fuel economy has stimulated the development of engine technologies including Variable Compression Ratio (VCR) piston designs. Pressure Reactive Piston (PRP) technology separates the piston into two pieces with a spring set located between the upper and lower pistons. The unique feature of PRP is that the upper piston reacts to the cylinder pressure during the power stroke, accommodating rapid engine load changes passively. This mechanism effectively limits the peak cylinder pressures at high loads without an additional control device, while allowing high compression ratio under low loads.; The maximum compression ratio without knocking was examined, and the preload and spring constant of spring set were obtained by using a quasi-dimensional simulation program. Belleville spring was selected as the spring set of the PRP because of its compactness and ability to carry high load with small deflection. Dynamic analysis of the piston crown was performed to calculate spring deflection and instantaneous chamber volume.; The baseline and PRP engine were tested on single cylinder SI engine. Dynamometer test results demonstrated that BSFC improvement of the PRP engine over the baseline ranged from 8 to 18% at part loads. Full load torque was developed with the PRP engine without knocking at a similar magnitude as the baseline. The PRP engine combustion is characterized by Reverse and Flattened Motion of piston crown near the Top Dead Center (TDC) and higher thermal efficiency.; An analytic model for the geometric interaction between the spherical flame and the combustion chamber was newly developed in order to calculate the flame entrainment rate of unburned charge. The program was modified for simulating PRP motion to investigate the effect of the spring set on engine performance and emissions over various operating conditions. It was found that BSFC improvement of the PRP engine increased with engine speed and fuel conversion efficiency was gradually increased with the increase of the spring set preload until the spring set could not be compressed any more due to high preload. However, NO emissions were increased at part loads compared to the baseline due to higher compression ratio.
机译:改善汽车燃油经济性的推动力刺激了包括可变压缩比(VCR)活塞设计在内的发动机技术的发展。压力反应活塞(PRP)技术将活塞分成两部分,并在上,下活塞之间装有弹簧组。 PRP的独特之处在于,在动力冲程期间,上活塞对气缸压力做出反应,从而可以被动地适应发动机的快速负荷变化。该机制无需额外的控制装置即可有效地限制高负荷下的峰值气缸压力,同时在低负荷下实现高压缩比。检查了没有爆震的最大压缩比,并使用准三维模拟程序获得了弹簧组的预紧力和弹簧常数。贝尔维尔弹簧被选作PRP的弹簧组,因为它的紧凑性和承受小变形的高负载能力。进行了活塞顶的动态分析,以计算弹簧挠度和瞬时腔体积。基准和PRP发动机在单缸SI发动机上进行了测试。测功机测试结果表明,在部分负载下,PRP发动机的BSFC在基线上的改进范围为8%到18%。使用PRP发动机可产生满负荷扭矩,而不会以与基线相似的爆震幅度。 PRP发动机燃烧的特点是,活塞顶在上止点(TDC)附近反向和展平运动,并且热效率更高。为了计算未燃烧装料的火焰夹带率,新建立了球形火焰与燃烧室之间几何相互作用的解析模型。对该程序进行了修改,以模拟PRP运动,以研究弹簧组对各种工况下发动机性能和排放的影响。发现随着发动机转速的提高,PRP发动机的BSFC改进也随之增加,并且随着弹簧组预紧力的增加,燃料转换效率逐渐提高,直到由于高预紧力而无法再压缩弹簧组。但是,由于较高的压缩比,与基线相比,部分负荷下NO排放量增加。

著录项

  • 作者

    Cho, Wooheum.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 164 p.
  • 总页数 164
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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