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Finite-Time Thermodynamic Modeling and a Comparative Performance Analysis for Irreversible Otto, Miller and Atkinson Cycles

机译:不可逆的奥托,米勒和阿特金森循环的有限时间热力学建模和比较性能分析

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Finite-time thermodynamic models for an Otto cycle, an Atkinson cycle, an over-expansion Miller cycle (M1), an LIVC Miller cycle through late intake valve closure (M2) and an LIVC Miller cycle with constant compression ratio (M3) have been established. The models for the two LIVC Miller cycles are first developed; and the heat-transfer and friction losses are considered with the effects of real engine parameters. A comparative analysis for the energy losses and performances has been conducted. The optimum compression-ratio ranges for the efficiency and effective power are different. The comparative results of cycle performances are influenced together by the ratios of the energy losses and the cycle types. The Atkinson cycle has the maximum peak power and efficiency, but the minimum power density; and the M1 cycle can achieve the optimum comprehensive performances. The less net fuel amount and the high peak cylinder pressure (M3 cycle) have a significantly adverse effect on the loss ratios of the heat-transfer and friction of the M2 and M3 cycles; and the effective power and energy efficiency are always lower than the M1 and Atkinson cycles. When greatly reducing the weights of the heat-transfer and friction, the M3 cycle has significant advantage in the energy efficiency. The results obtained can provide guidance for selecting the cycle type and optimizing the performances of a real engine.
机译:对于奥托循环,阿特金森循环,过度膨胀的米勒循环(M1),通过进气门后期关闭的LIVC Miller循环(M2)和具有恒定压缩比的LIVC Miller循环(M3)的有限时间热力学模型成立。首先开发了两个LIVC Miller循环的模型;在考虑实际发动机参数的情况下,考虑了传热和摩擦损失。对能量损失和性能进行了比较分析。效率和有效功率的最佳压缩比范围不同。循环性能的比较结果受能量损失和循环类型之比的共同影响。阿特金森循环具有最大的峰值功率和效率,但是具有最小的功率密度。 M1循环可以达到最佳的综合性能。较少的净燃料量和较高的峰值气缸压力(M3循环)会对M2和M3循环的传热损耗比和摩擦产生不利影响;并且有效功率和能量效率始终低于M1和Atkinson周期。当大大减少传热和摩擦的重量时,M3循环在能源效率方面具有明显优势。获得的结果可以为选择循环类型和优化实际发动机的性能提供指导。

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