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A phenomenological base semi-physical thermodynamic model for the cylinder and exhaust manifold of a natural gas 2-megawatt four-stroke internal combustion engine

机译:2兆瓦天然气四冲程内燃机气缸和排气歧管的基于现象学的半物理热力学模型

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摘要

This paper presents the application of a systematic methodology to obtain a semi-physical model of phenomenological base for a 2 MW internal combustion engine to generate electric power operating with natural gas, as a function of the average thermodynamic value normally measured in industrial applications. Specifically, the application of the methodology is focused on the cylinders, exhaust manifold, and turbocharger turbine sections. The proposed model was validated with actual operating data, obtaining an error rate not exceeding 5%, which allow a thermal characterization of the Jenbacher JMS 612 GS-N based on the model. A parametric analysis is conducted; considering the volumetric efficiency, the output electric power, the effective efficiency, the exhaust gas temperature, the turbine mass flow, the specific fuel consumption under the nominal operation conditions, which is 1.16 bar in the gas pressure, 65 °C in the cooling water temperature, 35 °C in the average ambient temperature, and 1500 rpm. The results of this model can be used to evaluate the thermodynamic performance parameters of waste heat recovery systems. On the other hand, new control strategies and the implementation of state observers for the detection and diagnosis of failures can be developed based on the proposed model.
机译:本文介绍了一种系统方法学的应用,该模型为2 MW内燃机产生以天然气为燃料的发电的现象学基础的半物理模型,该模型是工业应用中通常测得的平均热力学值的函数。具体而言,该方法的应用集中在汽缸,排气歧管和涡轮增压器涡轮部分上。所提出的模型已通过实际操作数据进行了验证,错误率不超过5%,从而可以基于模型对Jenbacher JMS 612 GS-N进行热特性分析。进行参数分析;考虑到容积效率,输出功率,有效效率,排气温度,涡轮质量流量,标称工况下的单位燃料消耗,在气压下为1.16 bar,在冷却水中为65°C温度,平均环境温度35°C和1500 rpm。该模型的结果可用于评估废热回收系统的热力学性能参数。另一方面,可以基于提出的模型开发新的控制策略和状态观察器的实现,以用于故障的检测和诊断。

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