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Application of Electrohydrodynamic Atomization to Two-Phase Impingement Heat Transfer

机译:电流体雾化在两相碰撞传热中的应用

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The effect of electric fields applied to two-phase impingement heat transfer is explored for the first time. The electric field applied between a capillary tube and heated surface enhances the heat transfer by controlling the free boundary flow modes from discreet drops to jets, to sprays. Through an experimental study, the impingement heat transfer was evaluated over a range of operating conditions and geometrical parameters with subcooled ethanol used as the working fluid. The ability to change the mode of impinging mass did change the surface heat transfer. The characteristics of the impinging mass on heat transfer were dependent on flow rate, applied voltage, capillary tube to heated surface spacing, capillary tube geometry, heat flux, heater surface geometry, and capillary tube array configuration. Enhancement occurred primarily at low heat fluxes (below 30 W/ cm~2 ) under ramified spray conditions where the droplet momentum promoted thin films on the heated surface resulting in 1.7 times enhancement under certain conditions. Higher heat fluxes resulted in greater vapor momentum from the surface, minimizing the effect of different impingement modes. The use of capillary tube array allowed for elec-trohydrodynamics atomization enhancement and higher liquid flow rates, but electrostatic repulsive forces diverted the spray from the heater surface. This reduced the mass flux to the surface, leading to premature dryout under certain conditions.
机译:首次探讨了电场对两相碰撞传热的影响。施加在毛细管和加热表面之间的电场通过控制从离散液滴到射流再到喷雾的自由边界流动模式来增强热传递。通过实验研究,使用过冷乙醇作为工作流体,在一定范围的操作条件和几何参数下评估了碰撞传热。改变撞击质量模式的能力确实改变了表面传热。传热过程中撞击质量的特性取决于流速,施加的电压,毛细管至被加热表面的距离,毛细管几何形状,热通量,加热器表面几何形状和毛细管阵列配置。增强作用主要发生在分叉喷雾条件下的低热通量(低于30 W / cm〜2)下,在这种条件下,液滴的动量促进了加热表面上的薄膜,从而在某些条件下增强了1.7倍。较高的热通量会导致来自表面的较大蒸气动量,从而最大程度地减少了不同撞击方式的影响。毛细管阵列的使用可以增强电动流体力学的雾化效果,并提高液体流速,但是静电排斥力将喷雾从加热器表面转移出去。这减少了进入表面的质量通量,导致在某些条件下过早变干。

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