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Numerical study of surface tension driven convection in thermal magnetic fluids

机译:热磁流体表面张力驱动对流的数值研究

摘要

Microgravity conditions pose unique challenges for fluid handling and heat transfer applications. By controlling (curtailing or augmenting) the buoyant and thermocapillary convection, the latter being the dominant convective flow in a microgravity environment, significant advantages can be achieved in space based processing. The control of this surface tension gradient driven flow is sought using a magnetic field, and the effects of these are studied computationally. A two-fluid layer system, with the lower fluid being a non-conducting ferrofluid, is considered under the influence of a horizontal temperature gradient. To capture the deformable interface, a numerical method to solve the Navier???Stokes equations, heat equations, and Maxwell???s equations was developed using a hybrid level set/ volume-of-fluid technique. The convective velocities and heat fluxes were studied under various regimes of the thermal Marangoni number Ma, the external field represented by the magnetic Bond number Bom, and various gravity levels, Fr. Regimes where the convection were either curtailed or augmented were identified. It was found that the surface force due to the step change in the magnetic permeability at the interface could be suitably utilized to control the instability at the interface.
机译:微重力条件对流体处理和传热应用提出了独特的挑战。通过控制(缩小或增大)浮力和热毛细对流,后者是微重力环境中的主要对流,可以在基于空间的处理中获得显着的优势。使用磁场来控制该表面张力梯度驱动的流量,并通过计算研究其影响。考虑到在水平温度梯度的影响下,下部流体为非导电铁磁流体的两流体层系统。为了捕获可变形的界面,使用混合水平集/流体体积技术开发了求解Navier·斯托克斯方程,热方程和麦克斯韦方程的数值方法。在热马兰戈尼数Ma,磁键数Bom代表的外场以及各种重力水平Fr的各种情况下,研究了对流速度和热通量。确定了减少或增加对流的体制。已经发现,由于界面处的磁导率的阶跃变化而引起的表面力可以适当地用于控制界面处的不稳定性。

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