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CFD SIMULATION OF AN ALFA-STIRLING ENGINE TO STUDY THE GEOMETRICAL PARAMETERS ON THE ENGINE PERFORMANCE

机译:阿尔法发动机的CFD模拟研究发动机性能的几何参数

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An alpha-Stirling configuration was modelled using a Computational Fluid Dynamic (CFD), using ANSYS® software. A Stirling engine is an externally heated engine which has the advantage of working with several heat sources with high efficiencies. The working gas flows between compression and expansion spaces by alternate crossing of, a low-temperature heat exchanger (cooler), a regenerator and a high-temperature heat exchanger (heater). Two pistons positioned at a phase angle of 90 degrees were designed and the heater and cooler were placed on the top of the pistons. The motion of the boundary conditions with displacement was defined through a User Defined Function (UDF) routine, providing the motion for the expansion and compression piston, respectively. In order to define the temperature differential between the engine hot and the cold sources, the walls of the heater and cooler were defined as constant temperatures, whereas the remaining are adiabatic. The objective is to study the thermal behavior of the working fluid considering the piston motion between the hot and cold sources and investigate the effect of operating conditions on engine performance. The influence of regenerator matrix porosity, hot and cold temperatures on the engine performance was investigated through predicting the PV diagram of the engine. The CFD simulation of the thermal engine's performance provided a Stirling engine with 760W of power output. It was verified that the Stirling engine can be optimized when the best design parameters combination are applied, mostly the regenerator porosity and cylinders volume, which variation directly affect the power output.
机译:使用计算流体动力学(CFD)和ANSYS®软件对alpha-斯特林构型进行建模。斯特林发动机是外部加热的发动机,其优点是可以高效地利用多种热源。工作气体通过低温热交换器(冷却器),蓄热器和高温热交换器(加热器)的交替交叉而在压缩空间和膨胀空间之间流动。设计了两个以90度相角定位的活塞,并将加热器和冷却器放置在活塞的顶部。边界条件随位移的运动是通过用户定义函数(UDF)例程定义的,分别为膨胀和压缩活塞提供运动。为了定义发动机热源和冷源之间的温差,将加热器和冷却器的壁定义为恒定温度,而其余的则是绝热的。目的是研究考虑到热源和冷源之间的活塞运动的工作流体的热行为,并研究工况对发动机性能的影响。通过预测发动机的PV图,研究了再生器基质的孔隙率,冷热温度对发动机性能的影响。热力发动机性能的CFD模拟为斯特林发动机提供了760W的输出功率。事实证明,采用最佳设计参数组合(主要是蓄热室孔隙率和汽缸容积)可以优化斯特林发动机,其变化直接影响动力输出。

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