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Experimental study on kinematics and dynamics of breaking waves in deep water.

机译:深水中破碎波的运动学和动力学的实验研究。

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摘要

A new measurement technique called fiber optic reflectometer (FOR) was developed to investigate multiphase flows. The principle and setup of the FOR technique were introduced and applied to various experiments. Based on the coherently mixed signal between the Fresnel reflection off the fiber-liquid interface and the scattered signal off the object, such as a gas bubble, and a solid particle, this single probe technique is capable of simultaneously measuring the velocity of the object with a high accuracy and the phase of the fluid. In addition, bubble diameter, velocity, and void fraction were measured directly.;By means of a simple modification of the FOR technique, solute concentration and refractive index change were measured with a greatly improved accuracy. This modified technique was used for measuring of a NaCl concentration in deionized water to validate a new normalization technique.;In the second part of this thesis, a plunging breaking wave in deep water has been studied. Using the wave focusing method, a strong plunging breaker was generated with accuracy in the deep water condition in a two-dimensional wave tank. It was possible to describe the breaking process in detail using a high speed camera with a frame rate of 500 or 1000 fps.;Four kinds of experimental techniques were employed or developed to investigate the plunging breaker. Bubble image velocimetry (BIV) and particle image velocimetry (PIV) were used to measure the velocity fields. The velocity fields of the highly aerated region were obtained from the BIV measurements. In addition, the modified PIV technique is capable of measuring the velocities in the entire flow field including the aerated region. Mean and turbulent properties were obtained by the ensemble average. The mean velocity, mean vorticity, and mean kinetic energy were examined over the entire flow field. In addition, the Reynolds stresses and turbulent kinetic energy were calculated with high temporal and spatial resolutions. Free surface elevation was obtained from wave gauge measurements. BIV and PIV images were also used to obtain the free surface elevation and the boundary of the aerated region for more accurate results.;The FOR technique was used to obtain the void ratio at each splash-up region. Compressibility of the plunging breaker was considered. Mass flux, momentum flux, kinetic energy, and Reynolds stresses at each FOR station were recalculated using the void ratio obtained from the FOR measurements. All terms at the first splash-up region were highly overestimated more than 100% unless the void ratio was applied to the calculation of fluxes and energies. Compared with the fully developed first splash-up region, the overestimation at the second and third splash-up was less significant. However, most terms were overestimated by 20∼30% when the void ratio was not considered.
机译:开发了一种称为光纤反射仪(FOR)的新测量技术来研究多相流。介绍了FOR技术的原理和设置,并将其应用于各种实验。基于光纤-液体界面处的菲涅耳反射与物体(例如气泡)和固体颗粒之间的散射信号之间的相干混合信号,这种单探针技术能够同时测量物体的速度高精度和流体相位。此外,直接测量气泡的直径,速度和空隙率。通过对FOR技术的简单修改,可以测量溶质浓度和折射率变化,从而大大提高了测量精度。该改进的技术用于测量去离子水中的NaCl浓度,以验证一种新的归一化技术。本论文的第二部分,研究了深水中的突波冲击波。使用波聚焦方法,在二维波箱中的深水条件下,可以精确地产生坚固的插入式破碎锤。可以使用帧率为500或1000 fps的高速相机详细描述破碎过程。采用或开发了四种实验技术来研究破碎锤。气泡图像测速(BIV)和颗粒图像测速(PIV)用于测量速度场。高充气区域的速度场是从BIV测量获得的。另外,改进的PIV技术能够测量包括充气区域在内的整个流场中的速度。通过集合平均获得均值和湍流特性。在整个流场中检查了平均速度,平均涡度和平均动能。此外,雷诺应力和湍动能的计算具有很高的时空分辨率。自由表面高程是通过波表测量获得的。 BIV和PIV图像还用于获得自由表面高程和充气区域的边界,以获得更准确的结果。; FOR技术用于获得每个飞溅区域的空隙率。考虑了插入式破碎锤的可压缩性。使用从FOR测量获得的空隙率,重新计算每个FOR站的质量通量,动量通量,动能和雷诺应力。除非将空隙率应用于通量和能量的计算,否则在第一个飞溅区域的所有项都被高估了超过100%。与完全开发的第一个飞溅区域相比,第二个和第三个飞溅区域的高估不那么重要。但是,当不考虑空隙率时,大多数术语被高估了20%到30%。

著录项

  • 作者

    Lim, Ho Joon.;

  • 作者单位

    Texas A&M University.;

  • 授予单位 Texas A&M University.;
  • 学科 Physical Oceanography.;Engineering Marine and Ocean.;Physics Optics.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 639 p.
  • 总页数 639
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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