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Flow development and interface sculpting in stable lubricated pipeline transport

机译:稳定润滑管道运输中的流动开发和界面雕刻

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In Sarmadi et al. (2017) [1] we introduced a novel methodology for efficient transport of heavy oil via a triple-layer core-annular flow. Pumping pressures are significantly reduced by concentrating high shear rates to a lubricating layer, while ideas from Visco-plastic lubrication are used to eliminate the possibility of interfacial instabilities. Specifically, we purposefully position a shaped unyielded skin of a visco-plastic fluid between the transported oil and the lubricating fluid layer. The shaping of the skin layer allows for lubrication forces to develop as the core settles under the action of transverse buoyancy forces: adopting an eccentric position where buoyancy and lubrication forces balance. In Sarmadi et al. (2017) [1] we focused on a steady periodic length of established flow, to establish feasibility for the pipelining application. Here we address the equally important issue of how in practice to develop a triple layer flow with a sculpted/shaped viscoplastic skin, all within a concentric inflow manifold. First, we use a simple 1D model to control layer thickness via flow rates of the individual fluids. This is used to give the input flow rates for an axisymmetric triple-layer computation using a finite element discretization with the augmented Lagrangian method to represent the yield surface behavior accurately and a Piecewise Linear Interface Calculation (PLIC) method to track the interface motion. This establishes that these flows may be stably established in a controlled way with a desired interface shape. The shaped interface induces extensional stresses in the skin layer. We study this directly by developing a long-wavelength/quasi-steady analysis of the extensional flow. This allows us to predict the minimal yield stress required to maintain the skin rigid, for a given shape, all while maintaining a constant flow rate of the transported oil.
机译:在Sarmadi等。 (2017)[1]我们介绍了一种新的方法,可通过三层芯环流动有效地运输重油。通过将高剪切速率集中到润滑层,泵送压力显着降低,而来自粘塑润滑的思想用于消除界面不稳定性的可能性。具体地,我们目的地定位在输送的油和润滑流体层之间的粘液塑料流体的形状的未粘性皮肤。皮肤层的成形允许在横向浮力力的作用下核心沉降的润滑力来发展:采用偏心位置,其中浮力和润滑力平衡。在Sarmadi等。 (2017)[1]我们专注于稳定的定期规定的流量,以建立流水线应用的可行性。在这里,我们解决了如何在实践中开发三层流动的同样重要的问题,其中包含雕刻/形粘性皮肤,全部在同心流入歧管内。首先,我们使用简单的1D模型通过各个流体的流速控制层厚度。这用于使用具有增强拉格朗日方法的有限元离散化来提供轴对称三层计算的输入流速,以代表屈服表面行为,准确地和分段线性接口计算(PLIC)方法来跟踪接口运动。这建立了这些流量可以以受控方式稳定地建立,具有所需的界面形状。该界面在皮肤层中引起延伸应力。我们通过开发对延伸流量的长波长/准稳态分析来直接来研究。这使我们可以预测将皮肤刚性保持所需的最小屈服应力,用于给定形状,同时保持输送的油的恒定流速。

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