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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >The Effects of Intake Plenum Volume on the Performance of a Small Naturally Aspirated Restricted Engine
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The Effects of Intake Plenum Volume on the Performance of a Small Naturally Aspirated Restricted Engine

机译:进气量对小型自然吸气受限发动机性能的影响

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Intake tuning is a widely recognized method for optimizing the performance of a naturally aspirated engine for motorsports applications. Wave resonance and Helmholtz theories are useful for predicting the impact of intake runner length on engine performance. However, there is very little information in the literature regarding the effects of intake plenum volume. The goal of this study was to determine the effects of intake plenum volume on steady state and transient engine performance for a restricted naturally aspirated engine for Formula Society of Automotive Engineers (FSAE) vehicle use. Testing was conducted on a four cylinder 600 cc motorcycle engine fitted with a 20 mm restrictor in compliance with FSAE competition rules. Plenum sizes were varied from 2 to JO times engine displacement (1.2-6.0 l) and engine speeds were varied from 3000 rpm to 12,500 rpm. Performance metrics including volumetric efficiency, torque, and power were recorded at steady state conditions. Experimental results showed that engine performance increased modestly as plenum volume was increased from 2 to 8 times engine displacement (4.8 l). Increasing plenum volume beyond 4.8 l resulted in significant improvement in performance parameters. Overall, peak power was shown to increase from 54 kW to 63 kW over the range of plenums tested. Additionally, transient engine performance was evaluated using extremely fast (60 ms) throttle opening times for the full range of plenum sizes tested. In-cylinder pressure was used to calculate cycle-resolved gross indicated mean effective pressure (IMEPg) development during these transients. Interestingly, the cases with the largest plenum sizes only took 1 to 2 extra cycles (30-60 ms) to achieve maximum IMEPg levels when compared with the smaller volumes. In fact, the differences were so minor that it would be doubtful that a driver would notice the lag. Additional metrics included time for the plenums to fill and an analysis of manifold absolute pressure and peak in-cylinder pressure development during and after the throttle transient. Plenums below 4.8 l completely filled even before the transient was completed.
机译:进气调节是一种广泛认可的方法,用于优化赛车应用中自然吸气发动机的性能。波共振和亥姆霍兹理论对于预测进气流道长度对发动机性能的影响很有用。但是,文献中关于进气室容积影响的信息很少。这项研究的目的是确定用于汽车工程师协会(FSAE)的受限自然吸气发动机的进气室容积对稳态和瞬态发动机性能的影响。测试是在装有20 mm限流器的四缸600 cc摩托车发动机上进行的,符合FSAE竞赛规则。全体尺寸从2到JO乘以发动机排量(1.2-6.0 l)不等,发动机转速从3000 rpm到12,500 rpm不等。在稳态条件下记录了性能指标,包括体积效率,扭矩和功率。实验结果表明,随着增压体积从2到8倍发动机排量(4.8 l)增加,发动机性能适度提高。将气室容积增加到4.8升以上会显着改善性能参数。总体而言,在测试的通风系统范围内,峰值功率从54 kW增加到63 kW。此外,在整个测试气室尺寸范围内,使用极快的(60 ms)节气门打开时间评估了瞬态发动机性能。在这些瞬变期间,缸内压力用于计算周期解析的总指示平均有效压力(IMEPg)。有趣的是,与较小的风量相比,最大气室尺寸的情况仅需花费1-2个额外的周期(30-60毫秒)即可达到最大IMEPg水平。实际上,差异是如此之小,以至于驾驶员是否会注意到时滞是值得怀疑的。其他指标包括充气室充气时间,以及在节气门瞬变期间和之后对歧管绝对压力和气缸内峰值压力发展的分析。低于4.8 l的脾脏甚至在过渡过程完成之前就已完全充满。

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