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首页> 外文期刊>International journal of engine research >Analysis of the effects of wall temperature swing on reciprocating internal combustion engine processes
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Analysis of the effects of wall temperature swing on reciprocating internal combustion engine processes

机译:壁温摆动对往复式内燃机工艺效果的分析

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A thermal wall temperature swing model was built to capture the transient effects of various material properties and coating layers on the intra-cycle wall temperature of an internal combustion engine. This model was used with a thermodynamic engine simulation to predict and analyze the effects of different types of in-cylinder insulation on engine performance. Coatings that allow the surface temperature to swing in response to the gas' cyclical heat flux enable approximately 1/3 of the energy that was prevented from leaving the gas during expansion to be recovered while improving volumetric efficiency. Reductions in compression work due to better volumetric efficiency and less heat transfer from the walls to the gas accounted for half of the improvements, while additional work extraction during combustion and expansion accounted for the other half. As load increases, the temperature swing and benefits derived from it also increase. NSFC improvements of 0.5% to 1% were seen with a highly swinging coating in the throttled regime for a realistic engine geometry and coating area, up to 2.5% at high loads.
机译:建立了热壁温度摆幅模型,以捕获各种材料特性和涂层对内燃机的内部壁温度的瞬态效应。该模型与热力学发动机仿真一起使用,以预测和分析不同类型缸内绝缘对发动机性能的影响。允许响应于气体的环状热通量摆动的表面温度的涂层能够在提高容积效率的同时在膨胀期间防止在膨胀期间离开气体的大约1/3。由于更好的体积效率和从墙壁到气体的较少的传热较少减少压缩工作占改进的一半,而燃烧和扩展期间的额外工作提取占了另一半。随着负荷增加,温度摆幅和源于它的益处也增加。在逼真的机构几何和涂层面积的节流制度中具有高度摆动的涂层,可以看到0.5%至1%的NSFC改善,高负荷高达2.5%。

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