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Numerical investigation of a thermosyphon MHD electrical power generator

机译:热虹吸MHD发电机的数值研究

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A conceptual design of a thermosyphonic Magnetohydrodynamic power generator is presented and its performance is numerically investigated. A simplified two-dimensional model of generator is considered. Liquid gallium is selected as working fluid. The left wall and right wall of thermosyphon are at constant temperature T-h and T-c, (T-h T-C) respectively. Other walls and baffle are insulated. A constant magnetic field is applied horizontally. Separate pairs of electrodes are considered to conduct the generated current. A proper magnetic field reference is introduced to nondimensionalize the governing equations. A numerical code based on the finite volume technique is developed to solve the unsteady governing equations for a laminar natural convection flow. The effects of the Rayleigh number (Ra), Hartmann number (Ha), aspect ratio (Ar) and electric efficiency (K) on the thermo-fluid behaviour throughout the thermosyphon, on the induced electric current density, and on the generated power are investigated. Increasing the aspect ratio and Hartmann number, causes to decrease the natural convection effects, and reduces the Nusselt number. While increasing the Rayleigh number augments the effect of natural convection and consequently the generated power (W*), electric current density (J*), and electric field (E*) increases. It is seen that for a given Rayleigh number, there is a Hartmann number, an aspect ratio, and an electric efficiency, for which the generated power, W*, becomes maximum. For a given Rayleigh number and aspect ratio, it is shown that the generated power does not monotonically varies with Ha. It decreases by increasing Ha from certain values.
机译:提出了一种热虹吸式磁流体动力发电机的概念设计,并对其性能进行了数值研究。考虑了发电机的简化二维模型。选择液态镓作为工作流体。热虹吸管的左壁和右壁分别处于恒定温度T-h和T-c(T-h> T-C)。其他墙壁和挡板是绝缘的。水平施加恒定磁场。分开的电极对被认为可以传导产生的电流。引入了适当的磁场参考以对控制方程进行无量纲化。开发了基于有限体积技术的数字代码来求解层流自然对流的非稳态控制方程。瑞利数(Ra),哈特曼数(Ha),纵横比(Ar)和电效率(K)对贯穿整个热虹吸管的热流体行为,感应电流密度和所产生的功率的影响为调查。增加长宽比和Hartmann数会降低自然对流效果,并减少Nusselt数。增加瑞利数可增强自然对流的效果,因此,产生的功率(W *),电流密度(J *)和电场(E *)增加。可以看出,对于给定的瑞利数,存在一个哈特曼数,一个长宽比和一个电效率,由此产生的功率W *变为最大。对于给定的瑞利数和长宽比,表明产生的功率不会随Ha单调变化。通过从某些值增加Ha来减小它。

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