Department of Mathematics, National Institute of Technology Uttarakhand, Srinagar 246174, India.
Department of Mathematics, Avvaiyar Government College for Women, Karaikal 609 602, Puducherry-U.T., India.
Microvasc Res. 2020 Nov;132:104065. doi: 10.1016/j.mvr.2020.104065. Epub 2020 Aug 26.
A thermal analysis of Cu-CuO/ blood nanofluids flow in asymmetric microchannel propagating with wave velocity is presented in this study. For the blood, a micropolar fluid model is considered to investigate the microrotation effects of blood flow. Thermal radiation effects and the influence of nanoparticle shape, electric double layer thickness, and electromagnetic fields on the flow are studied. Three types of nanoparticles shapes namely cylinder, bricks and platelets are taken into account. Governing equations are solved under the approximations of long wavelength, low Reynolds number, and Debye-Hückel linearization. Numerical computations are performed for the axial pressure gradient, axial velocity, spin velocity and temperature distribution. The effects of various physical parameters on flow and thermal characteristics are computed and their physical interpretation is also discussed. The outcomes indicate that the axial velocity of Cu-CuO/blood nanoparticles strongly depends on applied electromagnetic field and microrotation. The model's finding will be applicable in designing the smart electromagnetic micro pumps for the hemodialysis and lungs-on-chip devices for the pumping of the blood.
本文研究了在具有波速的非对称微通道中传播的 Cu-CuO/血液纳米流体的传热分析。对于血液,采用微极流模型来研究血液流动的微旋转效应。研究了热辐射效应以及纳米颗粒形状、双电层厚度和电磁场对流动的影响。考虑了三种类型的纳米颗粒形状,即圆柱、砖和板。在长波长、低雷诺数和德拜-休克尔线性化的近似下求解控制方程。针对轴向压力梯度、轴向速度、自旋速度和温度分布进行了数值计算。计算了各种物理参数对流动和传热特性的影响,并对其物理解释进行了讨论。结果表明,施加电磁场和微旋转对 Cu-CuO/血液纳米颗粒的轴向速度有很大的影响。该模型的发现将适用于为血液透析和芯片上肺等设备的智能电磁微泵设计。