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Performance Optimization Of Screw Compressors Based On Numerical Investigation Of The Flow Behaviour In The Discharge Chamber

机译:基于出料室内流动特性数值研究的螺杆压缩机性能优化

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摘要

In the field of screw compressors, although the basic operation of such flow systems is well known and the analytical methods for their performance prediction are well established, only few attempts of investigating the flow in screw compressors by means of CFD can be identified in the available literature. The present paper aims at contributing to this field by establishing CFD as permanent tool for compressor design and optimization during the new product development process at a screw compressor manufacturer.The major challenges during this process related to the implementation of a valid meshing technique, as this is a far more unconventional process in the case of screw compressors than any other meshing techniques available within the commercial solvers, due to the very tight interlobe clearances. The definition of an optimum meshing procedure and, subsequently, of appropriate boundary conditions, allowed the successful setup of flow simulations in an oilfree screw compressor and the prediction of the compressor performance, with a good degree of confidence. Within the scope of the present paper, the CFD analysis focused on two main objectives. Firstly, a baseline model for the optimization exercise was determined: the discharge chamber (discharge port, pipe and flanges) of the modular casing of the single-wall/ rolling-element bearing/ compressor, characterized by a rotor diameter of 127 mm. Secondly, the performance of the baseline was assessed against that of several new designs which aimed at improving the gas flow in the discharge chamber.At the comparison stage, the correct definition of accurate performance indicators was very important, as these indicators had to capture the overall flow improvements achieved by the new designs. The flow analysis included both qualitative and quantitative evaluations of parameters like the variation of the pressure and temperature in the discharge chamber, torque, power, and entropy variation. This detailed analysis allowed for design improvements of the discharge chamber to be implemented and “virtually” tested in order to determine an optimized compressor geometry, which will be subsequently incorporated in the actual modular casing of the compressor.
机译:在螺杆压缩机领域,尽管这种流动系统的基本操作是众所周知的,并且已经很好地建立了其性能预测的分析方法,但是在现有技术中,只有很少的尝试可以通过CFD研究螺杆压缩机中的流动。文献。本文旨在通过将CFD建立为螺杆压缩机制造商在新产品开发过程中进行压缩机设计和优化的永久性工具,为这一领域做出贡献。在此过程中的主要挑战与有效啮合技术的实施有关。在螺杆式压缩机中,由于叶片间隙非常小,因此与商用解算器中可用的任何其他啮合技术相比,它是一个非常规的过程。最佳啮合程序的定义,以及随后适当边界条件的定义,使得在无油螺杆压缩机中成功建立了流量模拟,并以高度的可信度预测了压缩机的性能。在本文的范围内,CFD分析集中在两个主要目标上。首先,确定了优化练习的基线模型:单壁/滚动轴承/压缩机的模块化壳体的排放腔(排放口,管道和法兰),其转子直径为127 mm。其次,针对几种旨在改善排气室气体流动的新设计,评估了基线的性能。在比较阶段,正确定义准确的性能指标非常重要,因为这些指标必须捕捉到新设计实现了整体流程的改善。流量分析包括定性和定量评估参数,例如排放室中压力和温度的变化,扭矩,功率和熵的变化。这种详细的分析允许对排气室进行设计改进,并进行“虚拟”测试,以确定最佳的压缩机几何形状,然后将其合并到压缩机的实际模块化外壳中。

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