• 제목/요약/키워드: Reynolds Shear Stress

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Bora wind characteristics for engineering applications

  • Lepri, Petra;Vecenaj, Zeljko;Kozmar, Hrvoje;Grisogono, Branko
    • Wind and Structures
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    • 제24권6호
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    • pp.579-611
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    • 2017
  • Bora is a strong, usually dry temporally and spatially transient wind that is common at the eastern Adriatic Coast and many other dynamically similar regions around the world. One of the Bora main characteristics is its gustiness, when wind velocities can reach up to five times the mean velocity. Bora often creates significant problems to traffic, structures and human life in general. In this study, Bora velocity and near-ground turbulence are studied using the results of three-level high-frequency Bora field measurements carried out on a meteorological tower near the city of Split, Croatia. These measurements are analyzed for a period from April 2010 until June 2011. This rather long period allows for making quite robust and reliable conclusions. The focus is on mean Bora velocity, turbulence intensity, Reynolds shear stress and turbulence length scale profiles, as well as on Bora velocity power spectra and thermal stratification. The results are compared with commonly used empirical laws and recommendations provided in the ESDU 85020 wind engineering standard to question its applicability to Bora. The obtained results report some interesting findings. In particular, the empirical power- and logarithmic laws proved to fit mean Bora velocity profiles well. With decreasing Bora velocity there is an increase in the power-law exponent and aerodynamic surface roughness length, and simultaneously a decrease in friction velocity. This indicates an urban-like velocity profile for smaller wind velocities and a rural-like velocity profile for larger wind velocities. Bora proved to be near-neutral thermally stratified. Turbulence intensity and lateral component of turbulence length scales agree well with ESDU 85020 for this particular terrain type. Longitudinal and vertical turbulence length scales, Reynolds shear stress and velocity power spectra differ considerably from ESDU 85020. This may have significant implications on calculations of Bora wind loads on structures.

가진 펌프에 연결된 곡관 출구의 직관에서 난류진동유동의 속도분포와 전단응력분포 (Velocity Profile and Wall Shear Stress Distributions of Developing Turbulent Oscillatory Flows in an Oscillator Connected to Straight Duct Located in Exit Region of a Curved Duct)

  • 손현철;이행남;박길문
    • 대한기계학회논문집B
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    • 제26권10호
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    • pp.1378-1386
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    • 2002
  • In the present study, velocity profile and wall shear stress distributions of developing turbulent oscillatory flows in an oscillator connected to straight duct located in exit region of a curved duct was investigated experimentally. The experimental study for air flows was conducted to measure axial velocity profiles, shear stress distributions by using the Laser Doppler Velocimetry(LDV) system with the data acquisition and processing system of Rotating Machinery Resolver(R.M.R) and PHASE software. The results obtained from experimental studies are summarized as follows. The critical Reynolds number for a change from transitional oscillatory flow to turbulent flow was about 7500, in the 60region of dimensionless axial position which was considered as a fully developed flow region. The turbulent oscillatory flow, velocity profiles of the inflow period in the entrance region were gradually developed, but those of the outflow period were not changed nearly. Velocity profiles of inflow and outflow were shown as a symmetric form in a fully developed flow region. The wall shear stress distributions of turbulent oscillatory flow increase rapidly as the flow proceeds to downstream and flow was in good agreement with the theoretically.

사행수로의 흐름구조 및 난류특성 (Flow Structure and Turbulence Characteristics in Meandering Channel)

  • 서일원;이규환;백경오
    • 대한토목학회논문집
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    • 제26권5B호
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    • pp.469-479
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    • 2006
  • 본 연구에서는 사행수로에서 주 흐름과 이차류의 특성을 정량적으로 분석하고자 중심각이 $150^{\circ}$이고 사행도 1.52인 S자형 사행수로에서 실험을 수행하였다. 평균수심과 유량을 달리하여 다양한 실험 조건 하에서 수행한 실험을 통해 다중 만곡부를 갖는 사행수로에서 이차류의 공간적 변화양상을 관찰하였다. 실험결과, 주 흐름은 실험조건에 관계없이 직선구간에서 좌우 대칭적인 유속분포를 보였고, 만곡부에서는 내안쪽에 최대유속이 발생하고 외안쪽에 최소유속이 발생하는 현상을 발견 할 수 있었다. 이렇게 주 흐름이 최단노선을 따라 발생하는 현상은 기존 연구자들의 결과와 일치하는 것이다. 이차류의 거동은 첫번째 만곡부보다 두 번째 만곡부에서 더욱 활발하게 발달하고 외안 회전류가 뚜렷히 나타남을 발견하였다. 이차류의 강도는 직선구간에서는 낮게 나타나고 만곡부에서는 증가하는 주기적인 현상을 보였으며, 만곡부의 이차류 강도가 직선구간보다 2~3배 크게 나타났다. 또한, 두 번째 만곡부에서 이차류 강도의 최대값이 발생했다. 주 흐름방향의 난류 강도와 Reynolds 전단응력을 분석한 결과, 주 흐름 난류 강도는 주 흐름의 유속편차가 클수록 증가하는 것으로 나타났고 Reynolds 전단응력은 주 흐름방향 유속의 편차가 크게 벌어지는 동시에 이차류가 활발히 생성되는 지점에서 크게 나타나는 경향을 보였다.

PIV를 이용한 직렬배열에서의 두 정사각기둥 주위의 유동특성에 관한 연구 (A Study on Characteristics of the Flow Around Two Square Cylinders in a Tandem Arrangement Using Particle Image Velocimetry)

  • 김동건;이종민;성승학;윤순현
    • 대한기계학회논문집B
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    • 제29권11호
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    • pp.1199-1208
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    • 2005
  • The flow fields including velocities, turbulence intensities, Reynolds shear stress and turbulent kinetic energy were investigated using particle image velocimetry(PIV) to study the flow characteristics around two square cylinders in a tandem arrangement. The experiments were carried out in the range of the spacing from 1.0 to 4.0 widths of cylinder, Reynolds number of 5.3$\times$10$^{3}$ and 1.6$\times$10$^{4}$ respectively. Discontinuous jumping at the drag coefficient variation was found for two cylinders simultaneously when the spacing between two cylinders is varied. This phenomenon is attributed to a sudden change of the flow pattern which depends on the reattachment of the shear layer separated from the upstream cylinder. Near such a critical spacing, the changes of the flow fields as well as the effect of Reynolds number were studied in detail.

복부대동맥/장골동맥 분기혈관내 정상 및 박동성 유동의 속도와 전단응력분포 (Velocity and Shear Stress Distributions for Steady and Physiological Flows in the Abdominal Aorta/lLIAC Artery Bifurcation)

  • 서상호
    • 대한의용생체공학회:의공학회지
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    • 제18권2호
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    • pp.179-186
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    • 1997
  • Steady and physiological flows of a Newtonian fluid and blood in the abdominal gorta/iliac artery bifurcation are numerically simulated to understand the etiology and pathogenesis of atherosclerosis. Distributions of velocity, pressure, and wall shear stress in the bifurcated arterial vessel model are calculated to investigate the differences of flow characteristics between steady and physiological flows and to compare flow characteristics of blood with that of a Newtonian fluid For the given Reynolds number the flow characteristics of physiological flows for a Newtonian fluid and blood in the bifurcated arterial vessel are quite different from thcse of steady flows. No flow separation or flow reversal in the bifurcated region appears downstream of a stenosis during the acceleration phase. However, during the deceleration phase the flow exhibits flow separation in the outer walls of daugtlter branches, which extends to the entire wall region.

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화학기계적연마 공정의 윤활역학적 압력 및 전단응력 분포 해석 (Hydrodynamic Pressure and Shear Stress in Chemical Mechanical Polishing)

  • 조철호;박상신;안유민
    • 한국정밀공학회지
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    • 제17권1호
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    • pp.179-184
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    • 2000
  • Chemical Mechanical Polishing (CMP) refers to a material removal process done by rubbing a work piece against a polishing pad under load in the presence of chemically active and abrasive containing slurry. CMP process is a combination of chemical dissolution and mechanical action. The mechanical action of CMP involves hydrodynamic behavior. The liquid slurry is trapped between the work piece and pad forming a hydrodynamic film. For the first step to understand material removal mechanism of the CMP process, the hydrodynamic analysis is done with semiconductor wafer. Three-dimensional Reynolds equation is applied to get pressure distribution of the slurry film. Shear stress distributions on the wafer surface are also analyzed

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수평원통관에서 선회유동의 후류에 관한 실험적 연구 (An Experimental Study on the Wake with Swirling Flow in a Horizontal Circular Tube)

  • 강창수;장태현
    • 한국가시화정보학회:학술대회논문집
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    • 한국가시화정보학회 2004년도 추계학술대회 논문집
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    • pp.5-9
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    • 2004
  • An experimental study is performed turbulent swirling flow behind a crcular cylinder using 2-D PIV technique. The Reynolds number investigated is 15,000. The mean velocity vector, time mean axial velocity, turbulence intensity, kinetic energy and Reynolds shear stress behind the cylinder are measured before and behind the cylinder along the test tube.

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2차원 분류특성에 관한 연구 (A Study on The Characteristics of the 2-Dimensional Jet)

  • 김경훈;박상규
    • 한국정밀공학회지
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    • 제6권4호
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    • pp.43-51
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    • 1989
  • Free jet was investigated experimentally and numerically in range of Reynolds number from 9900 to 21000. The working fluid was air; the mean velocity components and turbulent quantities were measured by a hot-wire anemometer. In numerical computations, the governing partial differential equations of elliptic type were solved with conventional k- ${\epsilon}$ turbulence model. The measurements show that the jet increased linearly in flow direction, and that similarity for each turbulent quantity such as Reynolds shear stress, or turbulent kinetic energy was revealed in the fully developed region. The computational results show good agreements with experiments.

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PIV기법을 이용한 정사각 실린더의 후류에 관한 실험적 연구 (An Experimental Study on the Wake of a Square Cylinder Using PIV Technique)

  • 이종붕;장태현
    • Journal of Advanced Marine Engineering and Technology
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    • 제28권1호
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    • pp.124-135
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    • 2004
  • An experimental study is performed turbulent flow behind a square cylinder by using 2-D PIV technique. The Reynolds number investigated are 10.000. 30.000 and 50,000. The mean velocity vector, time mean axial velocity turbulence intensity. kinetic energy and Reynolds shear stress behind the cylinder are measured, The numerical method used this study is a CFD code, STAR-CD. The numerical results are compared with these of experimental.

An Experimental Study on Swirling Flow behind a Round Cylinder in the Horizontal Circular Tube

  • Chang Tae-Hyun;Lee Hae Soo
    • Journal of Mechanical Science and Technology
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    • 제19권12호
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    • pp.2270-2280
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    • 2005
  • An experimental study is performed for turbulent swirling flow behind a circular cylinder using 2-D PIV technique. The Reynolds number investigated are 10,000, 15,000, 20,000 and 25,000. The mean velocity vector, time mean axial velocity, turbulence intensity, kinetic energy and Reynolds shear stress behind the cylinder are measured before and behind the round cylinder along the test tube. A comparison is included with non swirl flow behind a circular and square cylinder. The recirculation zones are showed asymmetric profiles.