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Thermodynamic analysis of the turbocharged marine two-stroke engine cycle with different scavenging air control technologies

机译:具有不同扫气控制技术的涡轮增压船用二冲程发动机循环的热力学分析

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摘要

Scavenging air control has been recognized as a practical approach to optimizing the marine two-stroke engine performance under off-design conditions. This paper aims at providing a comprehensive comparison of different tuning technologies from thermodynamic perspectives. A new theoretical model for the marine two-stroke diesel engine is first built with all assumptions of an air-standard cycle relaxed. Thermodynamic characteristics of the two-stroke engine cycle integrating the turbocharged scavenging process are then studied, followed by parametric studies of different scavenging air control methods. The results show that there exists an optimal exhaust valve closing timing to minimize the so-called "Miller loss" with the high-pressure tuning. Despite similar fuel saving potential of 2.5 g/kWh is observed at low to medium loads, the high-pressure tuning is superior to the exhaust gas bypass tuning because of a lower engine thermal load. The power turbine bypass appears to be the best solution when the engine frequently operates at loads higher than 60%, while the sequential turbocharging system shows better performance at engine loads lower than 50%. Thus, factors including the engine thermal and mechanical limitations, ship's operational profile, cost and package should be considered for selecting the optimal scavenging tuning method in a practical case.
机译:扫气控制已被认为是在非设计条件下优化船用二冲程发动机性能的实用方法。本文旨在从热力学角度全面比较不同的调节技术。首先,在放松空气标准循环的所有假设的前提下,为船用两冲程柴油发动机建立了新的理论模型。然后研究了集成了涡轮增压扫气过程的二冲程发动机循环的热力学特性,然后对不同的扫气控制方法进行了参数研究。结果表明,存在一个最佳的排气门关闭正时,以通过高压调节使所谓的“米勒损失”最小化。尽管在中低负荷下也可看到2.5 g / kWh的节油潜力,但由于发动机的热负荷较低,因此高压调节优于排气旁通调节。当发动机经常在高于60%的负载下运行时,动力涡轮旁通似乎是最佳解决方案,而顺序涡轮增压系统在发动机负载低于50%时表现出更好的性能。因此,在实际情况下,应考虑包括发动机热和机械限制,船舶的运行状况,成本和包装在内的因素,以选择最佳的扫气调整方法。

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