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Hydrodynamics of Accumulators of Compressed Air for an UWCAES Plant

机译:UWCAES工厂压缩空气蓄能器的流体力学

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摘要

The present document is a manuscript-based dissertation covering Ahmadreza Vasel-Be-Haghu27s PhD research from September, 2011 to May, 2015. The research was particularly focused on studying hydrodynamics of underwater accumulators of compressed air for an underwater compressed air energy storage (UWCAES) plant. The accumulator units were floral configurations of droplet-shaped balloons installed close to the bed of deep water. The research was carried out in two major parts: water flow over the balloons and flow produced by the bursting of the balloons. In the first part, three-dimensional simulations were conducted to investigate water flow over accumulators. The simulation was carried out at a free stream Reynolds number of 230,000 using URANS k--omega and LES Dyna--SM turbulence models. The structure of the flow was investigated using iso-surfaces of the second invariant of the velocity gradient and three-dimensional path lines. Several shedding vortex tubes were identified downstream of the balloons. The dynamics of these vortex tubes was further illustrated through time series snapshots containing vorticity lines on two-dimensional planes perpendicular to the flow direction. The frequency of the shedding and the turbulent movements of the vortex tubes were studied through power spectrum analysis of the force coefficients. In the second part, the flow produced by the bursting of balloons was studied experimentally using photographs taken by three cameras with speed of 60 frames per second at a resolution of 1080P. It was observed that if a sufficiently large air-filled balloon quickly burst underwater, a vortex ring bubble was generated. The effect of dimensionless surface tension on general characteristics of the vortex ring bubble including rise velocity, rate of expansion, circulation and trajectory was investigated. It was observed that as the dimensionless surface tension increased, the rise velocity, the circulation and consequently the stability of the vortex ring bubble increased; however, the rate of expansion tends toward constant values. A semi-analytical model was also developed suggesting that the vortex ring expansion is essentially due to the buoyancy force. An expression was also obtained for the circulation in terms of the initial volume of the balloon and the depth at which balloon bursts. Extending from the mentioned semi-analytical model, a perturbation analysis was performed to find an expression for the radius of the buoyant vortex rings. The radius equation includes two terms; the zeroth-order solution representing the effect of buoyancy, and the first-order perturbation correction describing the influence of viscosity. The zeroth-order solution is an explicit function of time; the first-order perturbation modification, however, includes the drag coefficient which is unknown and of interest. Fitting the photographically measured radius into the modified equation yields the time history of the drag coefficient of the corresponding buoyant vortex ring.
机译:本文档是基于手稿的论文,涵盖了Ahmadreza Vasel-Be-Hagh u27在2011年9月至2015年5月的博士研究。该研究特别侧重于研究用于压缩空气的水下蓄能器的压缩空气的水下蓄能器的流体动力学。 (UWCAES)工厂。蓄能器单元是安装在深水床附近的水滴状气球的花艺配置。该研究分为两个主要部分:水在气球上的流动和气球破裂产生的水流。在第一部分中,进行了三维模拟,以研究蓄水器上的水流。使用URANSk-ω和LES Dyna-SM湍流模型在自由流雷诺数230,000下进行了仿真。使用速度梯度第二个不变式的等值面和三维路径线研究了流动的结构。在气球的下游发现了几个脱落的涡流管。通过在垂直于流动方向的二维平面上包含涡旋线的时间序列快照进一步说明了这些涡旋管的动力学。通过力系数的功率谱分析,研究了涡流管的脱落频率和湍流运动。在第二部分中,使用三台相机以每秒60帧的速度以1080P的分辨率拍摄的照片,对气球破裂产生的气流进行了实验研究。观察到,如果足够大的充气气球在水下迅速破裂,则会产生涡流环气泡。研究了无因次表面张力对涡流环气泡一般特性的影响,包括上升速度,膨胀率,循环和轨迹。观察到,随着无因次表面张力的增加,上升速度,循环以及涡流环气泡的稳定性均增加了。但是,膨胀率趋于恒定值。还开发了一个半分析模型,表明涡旋环膨胀主要是由于浮力引起的。还根据球囊的初始体积和球囊破裂的深度获得了用于循环的表达式。从上述的半分析模型扩展,进行了扰动分析,以找到浮涡环半径的表达式。半径方程包括两个项;表示浮力影响的零阶解和描述粘度影响的一阶扰动校正。零阶解是时间的显式函数。然而,一阶摄动修正包括未知的和有意义的阻力系数。将摄影测量的半径拟合到修改后的方程式中可得出相应浮力涡旋环的阻力系数的时间历程。

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    Vaselbehagh Ahmadreza;

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  • 年度 2015
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  • 原文格式 PDF
  • 正文语种 en
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