K. Madiha Takreem, B. Venkateswarlu, A. Misra, P. V. Satya Narayana, D. Harish Babu
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引用次数: 0
Abstract
Research on non-Newtonian fluids has received significant attention in recent years due to its wide-ranging applications in a few engineering fields and applied sciences. Casson fluid, a non-Newtonian fluid characterized by a finite yield stress, finds application in biomedical engineering such as the drug delivery systems, tissue engineering processes, medical devices, etc. Motivated by its applications, the current research work extensively examines the flow behavior of a blood-based Casson hybrid nanofluid with silver and gold nanoparticles over an exponentially elongating sheet. Heat transmission in the Casson hybrid nanofluid is driven by convective, joule, and viscous dissipation, with significant influence from the presence of multiple slips, the porous medium, and magnetic forces. A dimensionless form of the governing equations is obtained through the implementation of a similarity approach and are solved numerically by the utilization of bvp4c package in MATLAB. The current research introduces a novel aspect by optimizing the thermal transport rate employing the Response Surface Methodology (RSM) based Box-Behnken Design (BBD). The outcomes elucidate that the phenomena of viscous dissipation and thermal radiation effectively contribute to enhancing the temperature profile, while the presence of a chemical reaction minimizes the concentration profile. The strengthening of the porous medium and the velocity slip substantially boosts the skin friction and the heat transfer rate. Stronger thermal radiation in the absence of velocity slip tends to enlarge the heat transfer rate of Ag-Au/blood. Additionally, Ag-Au/blood achieves an improvement of approximately 3.25–5.73% in thermal transfer rate surpassing Au/blood across a wide range of porosity parameter. Also, the proposed model demonstrates a remarkable precision with an \(R^{2}\) value of 99.73% for the Nusselt number suggesting the exceptional fit of the model.
近年来,由于非牛顿流体在一些工程领域和应用科学领域的广泛应用,其研究受到了极大的关注。卡森流体是一种以有限屈服应力为特征的非牛顿流体,在生物医学工程中有广泛的应用,如药物输送系统、组织工程过程、医疗设备等。受其应用的激励,目前的研究工作广泛地研究了以血液为基础的卡森混合纳米流体与银和金纳米颗粒在指数细长薄片上的流动行为。卡森混合纳米流体中的传热由对流、焦耳和粘性耗散驱动,并受到多重卡瓦、多孔介质和磁力的显著影响。采用相似法得到了控制方程的无因次形式,并利用MATLAB中的bvp4c包对其进行了数值求解。目前的研究采用基于Box-Behnken设计(BBD)的响应面方法(RSM)来优化热输运率,从而引入了一个新的方面。结果表明,粘性耗散和热辐射现象有效地提高了温度分布,而化学反应的存在使浓度分布最小化。多孔介质的强化和速度滑移大大提高了表面摩擦和传热速率。在没有速度滑移的情况下,较强的热辐射会增大银金/血的换热速率。此外,Ag-Au/血达到约3.25-5.73的改善% in thermal transfer rate surpassing Au/blood across a wide range of porosity parameter. Also, the proposed model demonstrates a remarkable precision with an \(R^{2}\) value of 99.73% for the Nusselt number suggesting the exceptional fit of the model.
期刊介绍:
Journal of Thermal Analysis and Calorimetry is a fully peer reviewed journal publishing high quality papers covering all aspects of thermal analysis, calorimetry, and experimental thermodynamics. The journal publishes regular and special issues in twelve issues every year. The following types of papers are published: Original Research Papers, Short Communications, Reviews, Modern Instruments, Events and Book reviews.
The subjects covered are: thermogravimetry, derivative thermogravimetry, differential thermal analysis, thermodilatometry, differential scanning calorimetry of all types, non-scanning calorimetry of all types, thermometry, evolved gas analysis, thermomechanical analysis, emanation thermal analysis, thermal conductivity, multiple techniques, and miscellaneous thermal methods (including the combination of the thermal method with various instrumental techniques), theory and instrumentation for thermal analysis and calorimetry.