Optimum Operating Strategies for Gas Engines Using Variable Intake Valve Train

J. Zelenka, C. Hoff, A. Wimmer, C. Christen, R. Böwing, J. Thalhauser
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引用次数: 1

Abstract

The present publication describes investigations on a lean burn gas engine equipped with a variable intake valve train and demonstrates how steady state engine performance can be improved in comparison to a conventional state-of-the-art application with constant Miller timing. As the knock border represents a significant limitation of the operating range of gas engines, the engine specific knock limit was derived from measurements on a single cylinder research engine and transferred to a 1D simulation model of the corresponding multicylinder engine; a large bore, two stage turbocharged gas engine in the 5 MW power range with a variable intake valve train. Special attention was given to the setup of the simulation model to improve prediction quality and reduce simulation effort. An optimal strategy using the flexibility of a variable intake valve train for engine operation is presented that is capable of accommodating fluctuating gas qualities, which are described by the methane number. The operating strategy was derived from the 1D simulation model. The better performance than with a state-of-the-art strategy will be quantified in terms of engine efficiency while knocking combustion caused by low methane numbers is prevented. Since ambient temperatures in certain regions where the engine is operated do not remain stable throughout the year and ambient pressure varies depending on sea level, these issues must also be addressed. The temperature and density of the intake air have a large influence on the performance of the turbocharging unit and thus overall engine efficiency. The simulation results show the engine’s behavior under varying ambient conditions and outline potential strategies for improvement made possible by using variable valve timing on the intake side.
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采用可变进气门机构的燃气发动机的最佳运行策略
本出版物描述了对配备可变进气气门机构的稀薄燃烧燃气发动机的调查,并演示了与具有恒定米勒正时的传统最先进应用相比,稳态发动机性能如何得到改善。由于爆震边界代表了燃气发动机工作范围的重要限制,因此发动机的特定爆震极限是从单缸研究发动机的测量结果中得出的,并转移到相应的多缸发动机的一维仿真模型中;5兆瓦功率范围的大缸径两级涡轮增压燃气发动机,采用可变进气气门系统。特别注意模拟模型的建立,以提高预测质量,减少模拟工作量。提出了一种利用可变进气气门系统的灵活性来适应由甲烷数描述的气体质量波动的优化策略。操作策略由一维仿真模型推导。与最先进的策略相比,更好的性能将在发动机效率方面进行量化,同时避免了由低甲烷含量引起的爆燃。由于发动机运行的某些地区的环境温度并不是全年保持稳定,环境压力也会随着海平面的变化而变化,因此这些问题也必须得到解决。进气的温度和密度对涡轮增压装置的性能有很大的影响,因此对发动机的整体效率也有很大的影响。仿真结果显示了发动机在不同环境条件下的性能,并概述了通过在进气侧使用可变气门正时来实现改进的潜在策略。
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