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Nodal analysis of a Stirling engine with concentric piston and displacer

机译:具有同心活塞和活塞的斯特林发动机的节点分析

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To reduce the external volume of Stirling engines and to increase the specific power per unit volume, a novel mechanical arrangement is used where the power cylinder is concentrically situated inside the displacer cylinder. The inner heat transfer surface requirement and the thermodynamic performance characteristics are predicted preparing a nodal analysis in FORTRAN, where the inner volume of the engine is divided into 103 cells. Variation of the temperature in cells is calculated using the first law of thermodynamics, given for unsteady open systems, after arranging the enthalpy inflow and outflow terms. Volumes of cells are calculated using kinematic relations devised for the driving mechanism. The analysis indicates that the heats received from and delivered to the regenerator are not equal to each other. Therefore, the ends of the regenerator should be coupled with a heater and a cooler. The maximum thermal efficiency appears at the minimum mass of working fluid as the minimum thermal efficiency appears at the maximum mass of working fluid. The work increases up to a certain value of working fluid and then decreases. The thermal efficiency increases until a certain value of regenerator area and then decreases as well. Fluid temperature in the hot volume and cooler differs from the wall temperature at significant rates.
机译:为了减小斯特林发动机的外部体积并增加每单位体积的比功率,使用了一种新颖的机械装置,其中动力缸同心地位于置换缸内部。通过在FORTRAN中进行节点分析来预测内部传热表面需求和热力学性能特征,其中发动机的内部容积分为103个单元。在安排了焓流入和流出项之后,使用热力学第一定律(对不稳定的开放系统给出)来计算单元温度的变化。使用为驱动机构设计的运动关系来计算单元的体积。分析表明,从再生器接收和传递到再生器的热量彼此不相等。因此,回热器的两端应与加热器和冷却器相连。最大热效率出现在最小工作流体质量处,而最小热效率出现在最大工作流体质量处。功增加到一定值的工作流体,然后减少。热效率增加直到再生器面积的某个值,然后也降低。热容积和冷却器中的流体温度与壁温的变化率显着不同。

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