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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Mathematical and Engineering Aspects of Chemically Reactive Tangent Hyperbolic Nanofluid over a Cone and Plate with Mixed Convection
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Mathematical and Engineering Aspects of Chemically Reactive Tangent Hyperbolic Nanofluid over a Cone and Plate with Mixed Convection

机译:混合对流锥板上化学反应性切线双曲纳米流体的数学和工程方面

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Current disquisition is expressed to elucidate the mathematical and engineering aspects of tangent hyperbolic liquid over a cone and plate which has valuable applications in industrial technological instruments such as cone and plate viscometer, spinning column technology, and biomass pyrolysis processing. The role of mixed convection and chemical reaction on physical features of fluid is considered. The attained coupled system is scrutinized by the aid of self-coded shooting method. In order to produce accuracy and refinement in the consequences, the coefficients of Runge-Kutta scheme are obliged. To get complete intellect about the current pagination, the impact of flow controlling variables on pertinent profiles are evaluated in quantitative and qualitative manner. The computations of wall drag force and heat and mass fluxes are presented pictorially and tabularly. From the thorough analysis, it is deduced that surface drag and convective thermal coefficient for cone is more in magnitude compared with those of plate. Similarly, dominance in thermal field is noted for cone compare with that in plate. Increment of velocity profile is revealed with enhancement in mixed convection parameter, whereas contrasting behavior is observed by varying Williamson and magnetic field parameters. Declining aptitude in thermal profile is exhibited against Prandtl number, whereas temperature of fluid mounts by changing the Brownian movement and thermophoresis parameters.
机译:目前的研究旨在阐明锥板上切线双曲液体的数学和工程方面,这在锥板粘度计、旋转塔技术和生物质热解处理等工业技术仪器中具有有价值的应用。考虑了混合对流和化学反应对流体物理特性的作用。借助自编码射击方法对得到的耦合系统进行了仔细检查。为了产生结果的准确性和细化性,Runge-Kutta 方案的系数是强制性的。为了全面了解当前分页,以定量和定性的方式评估流量控制变量对相关配置文件的影响。壁面阻力以及热和质量通量的计算以图形和表格形式呈现。通过分析,可以推断出锥体的表面阻力和对流热系数比板块更大。同样,与平板相比,锥体在热场中占主导地位。随着混合对流参数的增加,速度剖面的增加被揭示出来,而通过改变威廉姆森和磁场参数观察到对比行为。热分布能力下降与普朗特数相反,而流体温度通过改变布朗运动和热泳参数而上升。

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    Air Univ, Dept Math, Sect E-9 AIR Complex,PO 44000, Islamabad, Pakistan;

    King Mongkuts Univ Technol Thonburi KMUTT, SCL Fixed Point Lab 802, Ctr Excellence Theoret & Computat Sci TaCS CoE, Sci Lab Bldg 126, Bangkok, Thailand;

    King Mongkuts Univ Technol Thonburi KMUTT, KMUTT Fixed Point Res Lab, Dept Math, Fac Sci, Room SCL 802 Fixed Point Lab,Sci Lab Bldg, Bangkok 10140, Thailand|King Mongkuts Univ Technol Thonburi KMUTT, Theoret & Computat Sci Ctr TaCS, KMUTT Fixed Point TheoKing Mongkuts Univ Technol North Bangkok, Fac Tech Educ, Dept Teacher Training Elect Engn, Renewable Energy Res Ctr, 1518 Pracharat 1 Rd, Bangkok 10800, Thailand;

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