首页> 外文会议>SAE International Powertrains, Fuels and Lubricants Meeting >Investigation into the Optimized Heat Release Rate and Corresponding Variation of In-Cylinder Specific Heat Ratio for the Improvement in Thermal Efficiency by Utilizing Two-Zone Combustion Model Analysis
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Investigation into the Optimized Heat Release Rate and Corresponding Variation of In-Cylinder Specific Heat Ratio for the Improvement in Thermal Efficiency by Utilizing Two-Zone Combustion Model Analysis

机译:通过利用双区燃烧模型分析,研究了对热效率提高的优化热释放速率和缸内比热比的相应变化

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Improvement in heat loss could be an important factor to increase the brake thermal efficiency (BTE) of an internal combustion engine; however, the heat energy saved isn’t all converted to brake work. Theoretically, to increase the conversion efficiency of heat energy into indicated work, the compression (or expansion) ratio and specific heat ratio (γ) are important. Nevertheless, γ has not been well-studied thus far, since it can’t be easily controlled. This study utilized a two-zone model to calculate the time-resolved γ and local excess air ratio of the burned gas (λb), which varied with the heat release rate. The two-zone combustion model, in which the cylinder volume is simply separated into burned and unburned zones to simulate the overall diesel combustion phenomena, was developed to investigate the current status of heterogeneous (diesel) combustion compared to ideal homogeneous combustion. The study focused on the instantaneous variation in γ and resulting indicated thermal efficiency. The model results were also directly applied to analysis of experimental results through λb estimation. Engine experiments were carried out utilizing a single cylinder engine with multiple injectors. Initial zero-dimensional simulation with various combinations of excess air ratio for isochoric and subsequent isobaric burned zone suggested the potential of additional thermal efficiency improvement by further diluting and homogenizing the combustion zone, particularly during the isobaric combustion phase. Then by application of the model to experimental results, λb was estimated and a potential improvement in BTE (due to improved mixture formation during isobaric combustion) was identified.
机译:热损失的改善可能是增加内燃机的制动热效率(BTE)的重要因素;然而,节省的热能并非所有转换为制动工作。从理论上,为了将热能转化效率提高到所示的工作中,压缩(或膨胀)比和比热比(γ)是重要的。然而,到目前为止,γ尚未得到很好的研究,因为它不能容易地控制。该研究利用双区域模型来计算燃烧的气体(λb)的时间分辨γ和局部过量空气比,其随着热释放速率而变化。两区燃烧模型,其中,所述气缸容积简单地分离成燃烧和未燃烧的区域来模拟整个柴油燃烧的现象,被开发用于研究相比理想均匀燃烧异质(柴油)燃烧的当前状态。该研究专注于γ的瞬时变化并产生的热效率。模型结果也直接应用于通过λB估计分析实验结果。利用具有多个注射器的单个汽缸发动机进行发动机实验。具有异种和随后的异壳烧毁区的各种空气比的各种组合的初始零尺寸模拟表明通过进一步稀释和均化燃烧区均匀化,特别是在等异质燃烧相期间的额外热效率改善的潜力。然后通过将模型施用于实验结果,估计λB,并鉴定了BTE的潜在改善(由于在异燃烧中的改善的混合物形成)。

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