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CO-ROTATING SCROLL MACHINERY APPLIED TO VAPOR POWER AND VAPOR COMPRESSION CYCLES

机译:适用于蒸汽电源和蒸汽压缩循环的共旋转涡旋机械

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Novel scroll machinery based on co-rotating technology allows to work without internal lubrication both in compression and expansion mode. The main difference between co-rotating and orbiting technology is the presence of two mobile spirals working in synchronized co-rotation instead of having an orbiting and a fixed spiral. As a consequence the co-rotating concept allows to avoid the orbiting inertial forces. This in turn provides higher rotor speeds, thus increased power density and improved volumetric efficiency. This new type of machinery has been designed and tested to be used in the frame of an air energy storage application. In order to demonstrate the machine’s working principle and characterize its preliminary performance an experimental investigation has been performed. A simplified semi-empirical, reduced order model is proposed to predict the performance. This model uses geometrical (displacement and volume ratio) and experimental (electro-mechanical power losses and leak area) parameters and has been calibrated by using experimental data obtained with air as working fluid. Literature proposes different compressor/expander models, however, they are limited by the interaction between oil and working fluid. In oil-free machinery, internal leakages are related only to the leak area, which hardly changes with its operational conditions, hence the leak area is used as fixed parameter to determine the machine’s performance with other working fluids. In this article the prediction of the oil-free machinery performance working as compressor (for vapor compression heat pumps) and as expander (for vapor power cycles) with typical working fluids is presented.
机译:基于共旋转技术的新型涡旋机械允许在压缩和扩展模式下没有内部润滑的情况下工作。共旋转和轨道技术之间的主要区别是在同步的共旋转中工作的两个移动螺旋,而不是具有轨道和固定的螺旋。结果,共旋转概念允许避免轨道惯性力。这又提供了更高的转子速度,从而提高功率密度和提高的体积效率。这种新型机器设计并测试用于空气能量存储应用的框架。为了展示机器的工作原理并表征其初步性能,已经进行了实验调查。提出了一种简化的半经验,减少阶模型来预测性能。该模型使用几何(位移和体积比)和实验(机电功率损耗和泄漏面积)参数,并通过使用空气作为工作流体获得的实验数据来校准。文献提出了不同的压缩机/扩展器模型,但它们受油和工作流体之间的相互作用的限制。在无油机械中,内部泄漏仅适用于泄漏区域,这几乎没有改变其运行条件,因此泄漏区域用作固定参数,以确定机器与其他工作流体的性能。在本文中,提出了一种预测作为压缩机(用于蒸汽压缩热泵)的无油机械性能和具有典型工作流体的膨胀机(用于蒸汽功率循环)。

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