Semi-analytical solutions of Newtonian fluid-FENE-P fluid core annular flow

IF 2.7 2区 工程技术 Q2 MECHANICS
Yuying Guo , Jiaqiang Jing , Jie Sun
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Abstract

Water-lubricated transportation of viscous oil is an important application of core annular flow (CAF), which significantly reduces friction pressure drop and saves pump power. However, the core oil floats up due to the density difference of oil and water, causing instability and even destruction of CAF, which restricts the application and development of the drag reduction technology. The viscoelastic fluid in the annular can inhibit the tendency of the core oil to float up and enhance the stability of the CAF. Nevertheless, theoretical studies related to the viscoelastic fluid CAF are currently missing. To make up for the lack of theoretical research, the solutions of laminar concentric viscous oil-viscoelastic fluid CAF in horizontal and inclined pipes are obtained in this work, and the annular fluid is regarded as viscoelastic fluid conforming to the FENE-P model. Based on the Navier–Stokes equation and FENE-P model, a non-dimensional CAF model is established, and the Newton–Raphson method is used to solve the model. The rheological behavior of annular fluid and the effects of viscoelastic fluid rheology and viscosity ratio on various CAF flow characteristics, including holdup, pressure gradient, slip ratio, and Ledinegg instability, are investigated. The results indicate that the shear-thinning effect of viscoelastic fluid has a significant effect on water holdup and expands the multi-solution region. Different from Newtonian fluid, when the annulus fluid is viscoelastic, the slip ratio can be less than 2. The most significant property is that the shear-thinning effect can transform the hydraulic characteristic curve in the multi-valued region into a single-valued curve, which helps to eliminate Ledinegg instability.

牛顿流体-FENE-P 流体核心环流的半解析解
水润滑输送粘性油是核心环流(CAF)的重要应用,可显著降低摩擦压降,节省泵功率。然而,由于油水密度差,核心油会上浮,造成 CAF 不稳定甚至破坏,制约了减阻技术的应用和发展。环流中的粘弹性流体可以抑制芯油上浮的趋势,增强 CAF 的稳定性。然而,目前还缺乏与粘弹性流体 CAF 相关的理论研究。为了弥补理论研究的不足,本文得到了水平和倾斜管道中层流同心粘性油-粘弹性流体 CAF 的解,并将环形流体视为符合 FENE-P 模型的粘弹性流体。基于 Navier-Stokes 方程和 FENE-P 模型,建立了非三维 CAF 模型,并采用 Newton-Raphson 方法对模型进行求解。研究了环形流体的流变行为以及粘弹性流体流变和粘度比对各种 CAF 流动特性的影响,包括滞留、压力梯度、滑移比和莱丁格不稳定性。结果表明,粘弹性流体的剪切稀化效应对持水量有显著影响,并扩大了多溶区。与牛顿流体不同,当环状流体为粘弹性流体时,滑移比可小于 2。最重要的特性是剪切稀化效应可将多值区的水力特性曲线转化为单值曲线,这有助于消除莱丁内格不稳定性。
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来源期刊
CiteScore
5.00
自引率
19.40%
发文量
109
审稿时长
61 days
期刊介绍: The Journal of Non-Newtonian Fluid Mechanics publishes research on flowing soft matter systems. Submissions in all areas of flowing complex fluids are welcomed, including polymer melts and solutions, suspensions, colloids, surfactant solutions, biological fluids, gels, liquid crystals and granular materials. Flow problems relevant to microfluidics, lab-on-a-chip, nanofluidics, biological flows, geophysical flows, industrial processes and other applications are of interest. Subjects considered suitable for the journal include the following (not necessarily in order of importance): Theoretical, computational and experimental studies of naturally or technologically relevant flow problems where the non-Newtonian nature of the fluid is important in determining the character of the flow. We seek in particular studies that lend mechanistic insight into flow behavior in complex fluids or highlight flow phenomena unique to complex fluids. Examples include Instabilities, unsteady and turbulent or chaotic flow characteristics in non-Newtonian fluids, Multiphase flows involving complex fluids, Problems involving transport phenomena such as heat and mass transfer and mixing, to the extent that the non-Newtonian flow behavior is central to the transport phenomena, Novel flow situations that suggest the need for further theoretical study, Practical situations of flow that are in need of systematic theoretical and experimental research. Such issues and developments commonly arise, for example, in the polymer processing, petroleum, pharmaceutical, biomedical and consumer product industries.
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