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首页> 外文期刊>International journal of numerical methods for heat & fluid flow >Hartmann Newtonian radiating MHD flow for a rotating vertical porous channel immersed in a Darcian Porous Regime: An exact solution
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Hartmann Newtonian radiating MHD flow for a rotating vertical porous channel immersed in a Darcian Porous Regime: An exact solution

机译:哈特曼牛顿辐射的MHD流量,用于浸没在Darcian多孔介质中的旋转垂直多孔通道:一种精确的解决方案

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摘要

Purpose - The purpose of this paper is to develop and correct the problem studied by Makinde and Mhone (2005) to a rotating vertical porous channel immersed in a Darcian porous regime in presence of a strong transverse magnetic filled and with the application of thermal radiation. In this investigation, the fluid is considered to be of viscous, electrically conducting, Newtonian and radiating and is optically thin with a relatively low density. Excellent agreement is obtained for exact solutions with those of previously published works. Design/methodology/approach - In this investigation, a closed form analytical method based on the complex notations for the velocity, temperature and the pressure is developed to solve the governing coupled, non-linear partial differential equations. The accuracy and effectiveness of the method are demonstrated. Findings - Interestingly observed that, the Lorentizian body force is not act as a drag force as in conventional MHD flows, but as an aiding body force and this will serve to accelerate the flow and boost the primary velocities. Due to the large rotation of the channel, the primary velocities are become flattered and shift towards the walls of the channel. With a rise in Darcian drag force, flow velocity and shear stress are found to reduce. Moreover, increasing thermal radiation and rotation of the channel strongly depress the shear stress, and maximum flow reversal, i.e. back flow is observed due to large Darcian resistance, thermal radiation and rotation. Research limitations/implications - The analysis is valid for unsteady, two-dimensional laminar flow of an optically thick no-gray gas, electrically conducting, and Newtonian fluid past an isothermal vertical surface adjacent to the Darcian regime with variable surface temperature. An extension to three-dimensional flow case is left for future work. Practical implications - Practical interest of such study includes applications in magnetic control of molten iron flow in the steel industry, liquid metal cooling in nuclear reactors, magnetic suppression of molten semi-conducting materials and meteorology and in many branches of engineering and science. It is well known that the effect of thermal radiation is important in space technology and high-temperature processes. Thermal radiation also plays an important role in controlling heat transfer process in polymer processing industry. Originality/value - The paper presents useful conclusions with the help of graphical results obtained from studying exact solutions based on complex notations for Darcian drag force, rotation of the channel and conduction-radiation heat transfer interaction by unsteady rotational flow in a vertical porous channel embedded in a Darcian porous regime under the application hydromagnetic force. The results of this study may be of interest to engineers for heat transfer augmentation and drag reduction in heat exchangers as well as MHD boundary layer control of re-entry vehicles, etc.
机译:目的-本文的目的是开发和纠正Makinde和Mhone(2005)研究的问题,该问题是在强横向磁填充和热辐射作用下浸没在Darcian多孔体系中的旋转垂直多孔通道中。在这项研究中,流体被认为是粘性的,导电的,牛顿的和辐射的,并且是光学稀薄的,具有相对较低的密度。与先前发表的作品的精确解决方案之间获得了极好的协议。设计/方法/方法-在这项研究中,开发了一种基于速度,温度和压力的复数形式的闭式分析方法,以求解控制耦合的非线性偏微分方程。证明了该方法的准确性和有效性。研究结果-有趣的是,洛伦兹体力不像传统的MHD流动那样起拖曳力的作用,而是作为辅助体力,这将有助于加速流动并提高初速。由于通道的大旋转,主要速度变得更平坦并且朝通道壁移动。随着Darcian拖曳力的增加,流速和剪切应力会降低。此外,增加的热辐射和通道的旋转强烈地降低了剪切应力,并且由于大的达西阻力,热辐射和旋转而观察到最大的逆流,即逆流。研究的局限性/意义-该分析适用于光学厚度较厚的无灰色气体,导电性流体和牛顿流体的非恒定二维层流,这些流体流经与Darcian体制相邻的等温垂直表面,且表面温度可变。三维流动情况的扩展留给以后的工作。实际意义-此类研究的实际兴趣包括在钢铁工业中对铁水流进行磁控制,在核反应堆中进行液态金属冷却,对熔融半导体材料和气象学进行磁抑制以及在工程和科学的许多分支中的应用。众所周知,热辐射的影响在航天技术和高温过程中很重要。在聚合物加工工业中,热辐射在控制传热过程中也起着重要作用。独创性/价值-本文通过研究基于复杂符号的精确解来获得有用的结论,这些精确解基于达尔卡阻力,通道旋转以及垂直多孔通道中非稳定旋转流的传导-辐射传热相互作用在施加水电磁力的情况下,在达西多孔状态下进行。这项研究的结果可能对工程师提高换热器的传热和减阻以及再入车辆的MHD边界层控制等感兴趣。

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