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Heat and mass transfer analysis in natural convection flow of nanofluid over a vertical cone with chemical reaction

机译:纳米锥在自然锥对流中自然对流中的化学反应与传热传质分析

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Purpose - In recent years, nanofluids are being widely used in many thermal systems because of their higher thermal conductivity and heat transfer rate. The higher thermal conductivity depends on many parameters such as size, shape and volume and the Brownian motion and thermophoresis of added nanoparticles. The purpose of this paper is to analyze the influence of the Brownian motion and thermophoresis on natural convection heat and mass transfer boundary layer flow of nanofluids over a vertical cone with radiation. Design/methodology/approach - Using similarity variables, the non-linear partial differential equations, which represent momentum, energy and diffusion, are transformed into ordinary differential equations. The transformed conservation equations are solved numerically subject to the boundary conditions by using versatile, extensively validated, variational finite-element method. Findings - The sway of significant parameters such as magnetic field (M), buoyancy ratio parameter (Nr), Brownian motion parameter (Nb), thermophoresis parameter (Nt), thermal radiation (R), Lewis number (Le) and chemical reaction parameter (Cr) on velocity, temperature and concentration evaluation in the boundary layer region is examined in detail. The results are compared with previously published work and are found to be in agreement. The velocity distributions are reduced, while temperature and concentration profiles elevate with a higher (M). With the improving values of (R), the velocity and temperature sketches improve, while concentration distributions are lowered in the boundary layer region. The temperature and concentration profiles are elevated in the boundary layer region for higher values of (Nt). With the increasing values of (Nb), temperature profiles are enhanced, whereas concentration profiles get depreciated in the flow region. Social implications - In recent years, it has been found that magneto-nanoftuids are significant in many areas of science and technology. It has applications in optical modulators, magnetooptical wavelength filters, tunable optical fiber filters and optical switches. Magnetic nanoparticles are especially useful in biomedicine, sink float separation, cancer therapy, etc. Specific biomedical applications involving nanofluids include hyperthermia, magnetic cell separation, drug delivery and contrast enhancement in magnetic resonance imaging. Originality/value - To the best of the authors' knowledge, no studies have assessed the impact of the two slip effects, namely, Brownian motion and thermophoresis, on the natural convection of electrically conducted heat and mass transfer to the nanofluid boundary layer flow over a vertical cone in the presence of radiation and chemical reaction; therefore, this problem has been addressed in this study.Comparison of the results of this study's with those of previously published work was found to be in good agreement.
机译:目的-近年来,纳米流体由于其较高的导热率和传热速率而被广泛用于许多热系统中。较高的导热率取决于许多参数,例如尺寸,形状和体积以及添加的纳米粒子的布朗运动和热泳。本文的目的是分析布朗运动和热泳对垂直对流辐射的纳米流体自然对流传热和传质边界层流的影响。设计/方法/方法-使用相似变量,将代表动量,能量和扩散的非线性偏微分方程转换为常微分方程。通过使用通用的,经过广泛验证的变分有限元方法,可以在边界条件下对变换的守恒方程进行数值求解。发现-诸如磁场(M),浮力比参数(Nr),布朗运动参数(Nb),热泳参数(Nt),热辐射(R),路易斯数(Le)和化学反应参数等重要参数的摇摆(Cr)对边界层区域中的速度,温度和浓度评估的详细信息。将结果与以前发表的作品进行比较,发现结果一致。速度分布减小,而温度和浓度曲线则以较高的(M)升高。随着(R)值的提高,速度和温度草图得以改善,而边界层区域中的浓度分布降低了。对于较高的(Nt)值,边界层区域中的温度和浓度曲线会升高。随着(Nb)值的增加,温度曲线会增强,而浓度曲线在流动区域会降低。社会意义-近年来,人们发现磁纳米在许多科学和技术领域都具有重要意义。它可用于光调制器,磁光波长滤波器,可调光纤滤波器和光开关。磁性纳米粒子在生物医学,水槽浮子分离,癌症治疗等方面尤其有用。涉及纳米流体的特定生物医学应用包括热疗,磁性细胞分离,药物递送和磁共振成像中的造影剂增强。原创性/价值-据作者所知,尚无研究评估两种滑动效应(布朗运动和热泳)对传导热的自然对流和传质到纳米流体边界层流动的影响。存在辐射和化学反应的垂直圆锥体;因此,本研究已经解决了这个问题。发现本研究结果与先前发表的研究结果相吻合。

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