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RAPID EXPERIMENTATION IN COMPLEX INTERNAL FLOW PASSAGES USING SLA AND MRV

机译:使用SLA和MRV复杂内部流动通道的快速实验

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Designing complex internal cooling passages is extremely difficult without detailed information about the flow behavior due to the presence of separated flow zones and strong secondary flows. This paper describes a new approach to designing internal flow passages called Rapid Iterative Design Using Experimentation (RIDUE). RIDUE utilizes rapid prototyping (RP) manufacturing to quickly build an accurate model of a complex internal flow passage and magnetic resonance velocimetry (MRV) to measure the full three dimensional velocity field. Because both techniques offer very fast turnaround, it is feasible to conduct iterative design with a cycle time of 1-2 days. RIDUE is demonstrated using a generic turbine blade internal cooling passage with four serpentine channels. Two channels have rectangular cross-section and two are square. In each channel, two of the four walls have ribs (also called turbulators) angled at 45 degrees to the main flow direction. Two models based on the generic geometry are studied, each with different turbulator cross-sections, one square and one rounded. Both models were built using a stereo lithography apparatus. MRV provided three-component velocity vectors for flow at a Reynolds number of 10,000 based on the hydraulic diameter of the first passage. Sample vector fields are presented to illustrate the detail with which the flow can be investigated. Although little difference is seen in the flows between the two models, it is demonstrated that through its use of RP processes and the MRV measurement technique, RIDUE is a viable technique for modem internal passage design.
机译:设计复杂的内部冷却通道非常困难,没有关于存在分离的流量区和强次级流动的流动的详细信息。本文介绍了使用实验(Ripe)设计称为快速迭代设计的内部流动通道的新方法。 Ripeue利用快速原型设计(RP)制造,以快速构建复杂内部流动通道和磁共振测速(MRV)的精确模型,以测量全三维速度场。由于这两种技术都提供了非常快的转变,因此可以在1-2天的循环时间进行迭代设计是可行的。使用具有四个蛇形通道的仿制式涡轮叶片内冷却通道来证明示波器。两个通道具有矩形横截面,两个是正方形的。在每个通道中,四个壁中的两个具有肋(也称为湍流器)以45度成角度到主流量方向。研究了基于通用几何形状的两种模型,每个模型都有不同的湍流器横截面,一个正方形和一个圆形。两种模型都是使用立体声光刻设备构建的。 MRV基于第一通道的液压直径提供三个分量速度矢量,用于在雷诺数10,000的10,000。提出样本矢量字段以说明可以研究流程的细节。虽然两种模型之间的流量中看到的差异很小,但是通过使用RP工艺和MRV测量技术的使用,旨在是用于调制解调器内部通道设计的可行技术。

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