...
首页> 外文期刊>Flow Measurement and Instrumentation >Turbulent structures, integral length scale and turbulent kinetic energy (TKE) dissipation rate in compound channel flow
【24h】

Turbulent structures, integral length scale and turbulent kinetic energy (TKE) dissipation rate in compound channel flow

机译:湍流结构,复合通道流动中的整体长度和湍流动能(TKE)耗散速率

获取原文
获取原文并翻译 | 示例

摘要

In the present study, high data rate measurements were obtained for the streamwise and vertical velocity components using 2D Laser Doppler Velocimeter. The turbulent field in a straight compound-channel flow was characterized for three different uniform flow water depths, corresponding to "deep flows", "intermediate flows" and "shallow flows" conditions. Several methodologies were studied to process the data and to obtain autocorrelation functions, integral length scale and turbulence kinetic energy (TICE) dissipation rate. The Sample and Hold method was adopted to interpolate the unevenly spaced record and calculate the autocorrelation function; the integral-stop-value 1/e was used to estimate the integral length scale; and the TKE dissipation rate was estimated through the velocity energy spectrum. A double shear layer composed of two counter-rotating vertical oriented vortices, interacting with the secondary currents, is observed in the interface region for deep flow conditions. By decreasing the water depth, the interface region becomes dominated by a strong mixing layer of vertical oriented vortices with high TKE dissipation rate and large integral length scale, acting as a vertical wall to the weak secondary currents that develop at the main channel. The determination of the integral length scale permits to confirm the existence and the strength of these turbulence structures, unveiling the strong mixing layer as the origin of the largest integral length scales, even larger than the flow depth, and as the most efficient mechanism to redistribute turbulence generated at the bottom towards upper flow regions. Despite the high complexity of turbulence structures present M. the flow, for all water depths, a linear dependence is depicted between integral length scale, TKE dissipation rate, and streamwise turbulence intensity.
机译:在本研究中,使用2D激光多普勒速度计为流动和垂直速度分量获得高数据速率测量。直线化合物流动中的湍流场的特征在于三个不同的均匀流水深度,对应于“深流动”,“中间流动”和“浅流”条件。研究了几种方法来处理数据并获得自相关函数,整体长度和湍流动能(Tice)耗散率。采用样品和保持方法来插入不均匀间隔的记录并计算自相关函数;积分 - 止挡值1 / E用于估计积分长度;通过速度能谱估计TKE耗散速率。在接口区域中观察到与二次电流相互作用的两个反向旋转垂直定向涡流组成的双剪切层,用于深流量条件。通过降低水深,界面区域由具有高TKE耗散速率和大的整体长度尺度的垂直定向涡流的强的混合层来支配,其作为垂直墙体,以在主通道上发育的弱二次电流。积分长度尺度的确定允许确认这些湍流结构的存在和强度,揭示强混合层作为最大积分长度尺度的起源,甚至大于流动深度,以及作为重新分配的最有效的机制底部朝向上流区域产生的湍流。尽管存在湍流结构的高度复杂性,但是对于所有水深的流动,对于整体长度,TKE耗散率和流动湍流强度之间的线性依赖性。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号