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Experimental and numerical investigation of heat transfer inside two-pass rib roughened duct (AR= 1:2) under rotating and stationary conditions

机译:旋转和静止条件下两通肋粗糙管(AR = 1:2)内部传热的实验和数值研究

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摘要

Heat transfer enhancement inside ribbed channels for turbine blades is a critical phenomenon that impacts overall performance and life of the gas turbine. Present study investigates heat and fluid flow in a rectangular duct with heat transfer enhancement features, under rotating and stationary conditions. The heat transfer data obtained experimentally has been explained using numerical prediction of flow features. Detailed heat transfer coefficients have been measured on the walls of two-pass rectangular duct (AR - 1:2) featuring V-shaped rib turbulators, using transient liquid crystal thermography (TLCT). The first pass and second pass featured nine V-shaped ribs each and the bend featured a 90° rib connecting the blade tip underside and the two-pass divider wall. The flow in the first pass was developing in nature. The rib-pitch to rib-height ratio (p/e) was 9.625 and the rib-height to channel hydraulic diameter (e/dh) was 0.125. The baseline case for the rib roughened duct was geometrically identical smooth duct (with no heat transfer enhancement features). Stationary experiments were carried out for Reynolds numbers ranging from 25000 to 75000. The rotation experiments were carried out at 400 RPM (Ro= 0.036) and 700 RPM (Ro=0.063), at Reynolds number of 25000 (Ro = Ωd_h/V,Re = Vd_h/v). Also, numerical simulations were performed for a similar test model under similar flow conditions, using realizable k - є turbulence model. Detailed discussion on rib induced secondary flows and rotational effects on heat transfer in smooth and rib roughened duct are presented in this paper using results obtained from detailed heat transfer measurements from experiments and fluid dynamics predictions from numerical simulations.
机译:涡轮叶片肋状通道内部的传热增强是影响燃气轮机整体性能和寿命的关键现象。本研究研究在旋转和静止条件下具有传热增强功能的矩形管道中的热量和流体流动。实验获得的传热数据已使用流动特征的数值预测进行了解释。详细的传热系数已使用瞬态液晶热成像(TLCT)在具有V型肋湍流器的两通矩形风管(AR-1:2)的壁上进行了测量。第一遍和第二遍均具有九个V形肋,弯头具有90°肋,可将叶片尖端下侧与两遍分隔壁相连。第一遍的流程自然在发展。肋距与肋高比(p / e)为9.625,肋高与通道水力直径(e / dh)为0.125。肋粗糙管的基线情况是几何上相同的光滑管(无传热增强功能)。对雷诺数在25000到75000之间进行了固定实验。在400 RPM(Ro = 0.036)和700 RPM(Ro = 0.063)时进行了旋转实验,在25000雷诺数(Ro =Ωd_h/ V,Re = Vd_h / v)。同样,使用可实现的k-湍流模型,在相似的流动条件下,对相似的测试模型进行了数值模拟。本文利用从实验进行的详细传热测量以及数值模拟的流体动力学预测中获得的结果,详细讨论了肋骨引起的二次流以及旋转对光滑和肋骨粗糙管中传热的影响。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2017年第10期|384-398|共15页
  • 作者单位

    Advanced Propulsion and Power Laboratory, Virginia Tech, Blacksburg, VA 24061, United States;

    Advanced Propulsion and Power Laboratory, Virginia Tech, Blacksburg, VA 24061, United States,Department of Thermal Engineering, Gas Turbine Institute, Tsinghua University, Beijing 100086, China;

    Advanced Propulsion and Power Laboratory, Virginia Tech, Blacksburg, VA 24061, United States;

    Department of Thermal Engineering, Gas Turbine Institute, Tsinghua University, Beijing 100086, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Rib turbulators; Transient liquid crystal thermography; Rotation; Heat transfer;

    机译:肋湍流器;瞬态液晶热成像;回转;传播热量;

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