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Integrated gas dynamic computational modelling and thermodynamic combustion diagnostics of multicylinder four-stroke spark ignition engine using compressed natural gas as a fuel

机译:以压缩天然气为燃料的多缸四冲程火花点火发动机的集成气体动力学计算模型和热力学燃烧诊断

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摘要

A comprehensive computational simulation model has been developed to describe the performance, efficiency and emission characteristics of the four-stroke multi-cylinder spark ignition engine which uses compressed natural gas as a fuel. This model performs an integrated simulation of thermodynamic, gas dynamic, and chemical kinetics of the whole engine system coupling with intake and exhaust manifolds. The thermodynamic combustion process is modelled by using the turbulent flame propagation process with a two-zone chamber (burned and unburned). Gas dynamics in the manifold system are modelled by using unsteady compressible hyperbolic partial differential equations. These equations contain heat transfer, friction, area change in pipe and empirical constants, which are used to determine boundary conditions at pipe junctions, valves and open ends. These equations are transferred into a set of ordinary differential equations by applying the method of characteristics and are solved by the finite difference method. Regarding exhaust emissions, nitric oxide concentrations have been predicted by using the rate kinetic model in the power cycle and along the exhaust pipes. Carbon monoxide is computed under the chemical equilibrium condition and then the empirical adjustment is made for kinetic behaviours based upon experimental results. Finally, predicted results of this model have been compared with experimental results and are found to be compatible. The parametric studies have been conducted with the equivalence ratio and the engine RPM, to predict engine performance. Also, the variations of pressure, temperature, and gas compositions in the exhaust system have been studied.
机译:已经开发了一个综合的计算仿真模型来描述使用压缩天然气作为燃料的四冲程多缸火花点火发动机的性能,效率和排放特性。该模型对整个发动机系统以及进气和排气歧管进行热力学,气体动力学和化学动力学的综合仿真。通过使用带有两区燃烧室(燃烧的和未燃烧的)的湍流火焰传播过程来模拟热力学燃烧过程。使用非定常可压缩双曲偏微分方程对歧管系统中的气体动力学进行建模。这些方程包含传热,摩擦,管道面积变化和经验常数,这些经验常数用于确定管道连接处,阀门和开口端的边界条件。通过应用特征方法将这些方程转换为一组常微分方程,并通过有限差分法求解。关于废气排放,已经通过在功率循环中和沿排气管使用速率动力学模型预测了一氧化氮浓度。在化学平衡条件下计算一氧化碳,然后根据实验结果对动力学行为进行经验调整。最后,将该模型的预测结果与实验结果进行了比较,发现它们是兼容的。已经用当量比和发动机RPM进行了参数研究,以预测发动机性能。另外,还研究了排气系统中压力,温度和气体成分的变化。

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