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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >A coupled thermodynamic and dynamic model of a three cylinder diesel engine: A novel approach for gas exchange process
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A coupled thermodynamic and dynamic model of a three cylinder diesel engine: A novel approach for gas exchange process

机译:三缸柴油机的耦合热力学和动态模型:一种新型气体交换过程方法

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In this study, a combined thermodynamic and dynamic analysis of diesel engines has been conducted and a simulation program has been prepared for a three-cylinder conceptual engine having 3 L swept volume. The dynamic model used in the analysis consists of motion equations of pistons, connecting rods and the crankshaft. The dynamic model involves the hydrodynamic and asperity frictions as well as the gas forces and moments. The thermodynamic aspect of the analysis has been modelled by replacing the idealized thermodynamic processes with more realistic processes. In this content, the gas pressure in the cylinder during compression and expansion periods was calculated at polytrophic conditions by means of the first law of the thermodynamics which comprises the heat generation in the cylinder and the heat loss to the cylinder walls. The gas pressures in the cylinder during the intake and exhaust periods have been mathematically modeled by setting a relation between mass variation of the gas in the cylinder and pressure difference in and out of the cylinder. Pressure, temperature and mass variations in the cylinder were found to be compatible with expectations. The numerical results of the mathematical model of intake and exhaust processes have also been compared with experimental data obtained from a test engine and found to be compatible as well. Via the prepared simulation program, the performance of the engine was tested at a constant throttling condition (constant heat input) and at a constant speed. Results obtained from simulation tests were found to be compatible with physical and practical situations. At constant heat input test conducted at 1460 J/cycle heat input, the optimum torque, power and total thermal efficiency of the conceptual engine were determined as 105 N m, 25.7 kW, and 30.15% respectively while the engine speed and intake manifold pressure were 244.5 rad/s and 1.3 bar. At constant speed testing conducted at about 250 rad/s, the optimum torque, power and the effective thermal efficiency of the conceptual engine were determined as 158 N m, 39.7 kW and 34% respectively while the intake manifold pressure is 1.6 bar. (C) 2017 Elsevier Ltd. All rights reserved.
机译:在该研究中,已经进行了柴油发动机的组合热力学和动态分析,并为三缸概念发动机制备了具有3L扫掠体积的三缸概念发动机的仿真程序。分析中使用的动态模型由活塞,连杆和曲轴的运动方程组成。动态模型涉及流体动力学和粗糙度摩擦以及气体力和时刻。分析的热力学方面是通过用更加现实的过程的理想化热力学过程来建模。在这种内容中,通过热力学的第一定律在多晶硅条件下计算压缩和膨胀时段期间的气体压力,该热力学的第一定律包括在气缸中的热量和气缸壁的热量损失。通过在气缸中气体中的气体的质量变化与气缸中的压力差之间的关系之间设置圆柱和排气时段期间,气缸中的气体压力已经在数学上建模。发现气缸中的压力,温度和质量变化与期望相容。还将摄入和排气过程的数学模型的数值结果与从测试发动机获得的实验数据进行了比较,并且发现也兼容。通过制备的仿真程序,在恒定的节流条件(恒定热输入)和恒定速度下测试发动机的性能。发现从仿真试验获得的结果与物理和实际情况兼容。在1460 J /循环热输入的恒定热输入测试中,概念发动机的最佳扭矩,功率和总热效率分别为105 n m,25.7kW和30.15%,而发动机速度和进气歧管压力244.5 rad / s和1.3 bar。在大约250 rad / s的恒定速度测试下,概念发动机的最佳扭矩,功率和有效热效率分别确定为158nm,39.7kW和34%,而进气歧管压力为1.6 bar。 (c)2017 Elsevier Ltd.保留所有权利。

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