首页> 外文会议>ASME International Conference on Ocean, Offshore and Arctic Engineering >EXPERIMENTAL INVESTIGATION OF FLOW FIELD PAST A SPHERICAL PARTICLE SETTLING IN VISCOELASTIC FLUIDS USING PARTICLE IMAGE VELOCIMETRY TECHNIQUE
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EXPERIMENTAL INVESTIGATION OF FLOW FIELD PAST A SPHERICAL PARTICLE SETTLING IN VISCOELASTIC FLUIDS USING PARTICLE IMAGE VELOCIMETRY TECHNIQUE

机译:粒子图像速度技术粘弹性液体流动场堆积的实验研究

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Experimental investigation of flow field past a spherical particle settling in viscoelastic fluids using particle image shadowgraphy techniques studies have shown that the settling velocity of particles in viscoelastic fluids decreased significantly with the increasing elasticity of the fluids. However, our understanding of how and why the change in fluid elasticity influences the particle settling velocity are not yet fully developed. An experimental study, therefore, has been conducted to understand the reasons behind why the settling velocity of the particles decrease with the increasing fluid elasticity. The main objectives were: (i) to investigate the fluid flow field behind the settling particle by using particle image velocity (PIV) technique; (ii) to understand the changes caused by the elasticity of the fluid on the flow field past the settling particle; (iii) more specifically, to determine how the fluid velocity profile and the resultant drag forces acting on the settling particle change with the increasing fluid elasticity. Two different viscoelastic fluids were formulated by mixing 3 grades of HPAM polymer (MWs: 500,000; 8,000,000; 20,000,000; concentrations: 0.09% and 0.1%wt). The fluids were designed to have almost identical shear viscosity but significantly different elastic properties. The shear viscosity and elasticity of the fluids were determined by performing shear viscosity and frequency sweep oscillatory measurements, respectively. The settling velocities of the spherical particles in viscoelastic polymer fluids were measured by using particle image shadowgraph technique. The fluid flow field behind the settling particle was determined by using the PIV technique. Results of the PIV measurements demonstrated that negative wakes were present in viscoelastic fluids. The stagnation point (i.e. the point where the velocity becomes zero and above that the fluid starts moving in the direction opposite to the particle movement) was closer to the particle settling in the higher elasticity fluid than that in the lower elasticity fluid. The velocity of the fluid in the recirculation region was higher for the flow of the fluid with higher elasticity. The presence of negative wakes having fast moving fluid in the reverse direction near the settling particle possibly creates an additional drag force (acting on the particle in the direction opposite the particle movement), which would eventually slow down the settling particle. Knowledge of the settling behavior of particles is indispensable to design and optimize numerous industrial operations such as cuttings transport in oil and gas well drilling and proppant transport in hydraulic fracturing. In this study, by conducting experiments under controlled conditions, we were able to show how the change in fluid elasticity influenced the particle settling velocity. The results from this fundamental study can be used for development of optimum drilling and fracturing fluid formulations for effective transport of cuttings and proppants.
机译:使用粒子图像影像技术研究的粘弹性流体中的球场对流场的实验研究表明,粘弹性液中颗粒的沉降速度随着流体的增加而显着降低。然而,我们对流体弹性变化的理解如何以及为何影响颗粒沉降速度尚未完全开发。因此,已经进行了实验研究以了解粒子的沉降速度随着流体弹性的增加而降低的原因。主要目标是:(i)通过使用粒子图像速度(PIV)技术来研究沉降颗粒后面的流体流场; (ii)了解流体对流场的弹性引起的变化,通过沉降粒子; (iii)更具体地,为了确定流体速度曲线和所得的牵引力如何随着流体弹性的增加而变化。通过混合3级HPAM聚合物(MWS:500,000; 8,000,000;浓度:0.09%和0.1%WT)来配制两种不同的粘弹性液体。流体设计成具有几乎相同的剪切粘度,但具有显着不同的弹性性能。通过分别进行剪切粘度和频率扫描振荡测量来确定流体的剪切粘度和弹性。通过使用颗粒图像影子图技术测量粘弹性聚合物流体中的球形颗粒的沉降速度。通过使用PIV技术确定沉降颗粒后面的流体流场。 PIV测量结果表明,粘弹性液中存在负奶。停滞点(即速度变为零及更高的点,上述流体在与颗粒运动相反的方向上移动)更靠近较高弹性流体中的颗粒沉降,而不是下弹性流体中的颗粒沉降。再循环区域中的流体的速度较高,用于具有更高弹性的流体流动。在沉降粒子附近的反向移动流体的负唤醒的存在可能产生额外的拖动力(在与颗粒运动相反的方向上作用在颗粒上),这最终将减慢沉降粒子。知识颗粒的沉降行为是必不可少的,设计和优化众多工业运营,如油气井钻孔和液压压裂中的支撑剂运输。在本研究中,通过在受控条件下进行实验,我们能够展示流体弹性的变化如何影响颗粒稳定速度。该基础研究的结果可用于开发用于有效运输切屑和支撑剂的最佳钻孔和压裂流体配方。

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