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首页> 外文期刊>Results in Physics >Mathematical model for thermal solar collectors by using magnetohydrodynamic Maxwell nanofluid with slip conditions, thermal radiation and variable thermal conductivity
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Mathematical model for thermal solar collectors by using magnetohydrodynamic Maxwell nanofluid with slip conditions, thermal radiation and variable thermal conductivity

机译:利用具有滑移条件,热辐射和可变热导率的磁流体动力学麦克斯韦纳米流体的热太阳能集热器的数学模型

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Solar energy is the cleanest, renewable and most abundant source of energy available on earth. The main use of solar energy is to heat and cool buildings, heat water and to generate electricity. There are two types of solar energy collection system, the photovoltaic systems and the solar thermal collectors. The efficiency of any solar thermal system depend on the thermophysical properties of the operating fluids and the geometry/length of the system in which fluid is flowing. In the present research a simplified mathematical model for the solar thermal collectors is considered in the form of non-uniform unsteady stretching surface. The flow is induced by a non-uniform stretching of the porous sheet and the uniform magnetic field is applied in the transverse direction to the flow. The non-Newtonian Maxwell fluid model is utilized for the working fluid along with slip boundary conditions. Moreover the high temperature effect of thermal radiation and temperature dependent thermal conductivity are also included in the present model. The mathematical formulation is carried out through a boundary layer approach and the numerical computations are carried out for cu -water and TiO 2 -water nanofluids. Results are presented for the velocity and temperature profiles as well as the skin friction coefficient and Nusselt number and the discussion is concluded on the effect of various governing parameters on the motion, temperature variation, velocity gradient and the rate of heat transfer at the boundary.
机译:太阳能是地球上最清洁,可再生和最丰富的能源。太阳能的主要用途是加热和冷却建筑物,加热水并发电。有两种类型的太阳能收集系统,即光伏系统和太阳能集热器。任何太阳能热系统的效率都取决于工作流体的热物理性质以及流体在其中流动的系统的几何形状/长度。在本研究中,太阳能集热器的简化数学模型被认为是非均匀,不稳定的拉伸表面。由于多孔片材的不均匀拉伸而引起流动,并且在横向上对该流动施加了均匀的磁场。非牛顿麦克斯韦流体模型与滑动边界条件一起用于工作流体。此外,本模型还包括热辐射的高温效应和与温度相关的热导率。通过边界层方法进行数学公式化,并对cu-water和TiO 2 -water纳米流体进行了数值计算。给出了速度和温度分布以及皮肤摩擦系数和Nusselt数的结果,并讨论了各种控制参数对边界处的运动,温度变化,速度梯度和热传递速率的影响。

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