Comparative investigations of Ag/H2O nanofluid and Ag-CuO/H2O hybrid nanofluid with Darcy-Forchheimer flow over a curved surface

被引:5
作者
Lu, Wenjie [1 ]
Farooq, Umar [3 ]
Imran, Muhammad [3 ]
Chammam, Wathek [2 ]
El Din, Sayed M. [4 ]
Akgul, Ali [5 ,6 ,7 ]
机构
[1] Nanchang Inst Sci & Technol, Sch Educ, Nanchang 330108, Jiangxi, Peoples R China
[2] Majmaah Univ, Coll Sci Al Zulfi, Dept Math, POB 66, Al Majmaah 11952, Saudi Arabia
[3] Govt Coll Univ Faisalabad, Dept Math, Faisalabad 38000, Pakistan
[4] Future Univ Egypt, Fac Engn, Ctr Res, New Cairo 11835, Egypt
[5] Near East Univ, Math Res Ctr, Dept Math, Near East Blvd,Mersin 10, TR-99138 Nicosia, Turkiye
[6] Lebanese Amer Univ, Dept Comp Sci & Math, Byblos, Lebanon
[7] Siirt Univ, Art & Sci Fac, Dept Math, TR-56100 Siirt, Turkiye
关键词
hybrid nanofluid; Darcy-Forchheimer flow; Newtonian heating; heat source-sink; Cattaneo; Christov heat theory; curved stretching sheet; RKF-45; approach; BOUNDARY-LAYER-FLOW; HEAT-FLUX MODEL; NUMERICAL-SIMULATION; STRETCHING SHEET; ENHANCEMENT;
D O I
10.1515/ntrev-2023-0136
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Nanofluid performed well and produced good results in heat transport phenomena, attracting scientists to suspend other combinations of nanoparticles, called "hybrid nanofluid. Hybrid nanofluids are superior than nanofluids due to their thermal capabilities and emerging benefits that contribute to the boost in the rate of heat transmission. Applications for these nanoparticles, including sophisticated lubricants, are increasing in the fields of bioengineering and electricity. The main prospective of this research is to inquire about the water-based dual nature nanofluid stream numerical simulation through the irregular stretched sheet with heat transfer. In this perspective, silver with base fluid water is used as nanoparticles for nanofluid, and for making hybrid nanofluid, copper oxide and silver particles are used with water-based fluid. Modified Fourier and Fick's model for heat flux utilized the above phenomenon and observed the heat and mass transport. Similarity variables are needed to transform the partial differential equations into associated nonlinear ordinary differential equations, which are then computationally resolved by the technique of bvp4c which is a built-in function in MATLAB mathematical software. Based on the concurrent approximations, reformations are performed to determine the impact of various quantities on flow variables. The predicted outcomes are depicted in velocity, temperature, and concentration profiles through graphical depiction. The factors indicate that the hybrid nanofluid is more powerful in the transfer of heat than a basic nanofluid because of its superior thermal characteristics. The velocity profile decays for the increasing values of Darcy-Forchheimer parameter. The thermal profile increases for the higher magnitude of Darcy-Forchheimer parameter. The velocity distribution profile increases for the higher values of curvature parameter, while the thermal profile decreases. This unique work might benefit nanotechnology and related nanocomponents. This safe size-controlled biosynthesis of Ag and CuO nanoparticles has resulted in a low-cost nanotechnology that may be used in a variety of applications. Biosynthesized Ag and CuO particles have been used successfully in a variety of applications, including biomedical, antibacterial agents, biological, food safety, and biosensing, to mention a few.
引用
收藏
页数:11
相关论文
共 49 条
  • [1] A magneto-bioconvective and thermal conductivity enhancement in nanofluid flow containing gyrotactic microorganism
    Alhussain, Ziyad A.
    Renuka, A.
    Muthtamilselvan, M.
    [J]. CASE STUDIES IN THERMAL ENGINEERING, 2021, 23
  • [2] Latest developments in nanofluid flow and heat transfer between parallel surfaces: A critical review
    Amani, Mohammad
    Amani, Pouria
    Bahiraei, Mehdi
    Ghalambaz, Mohammad
    Ahmadi, Goodarz
    Wang, Lian-Ping
    Wongwises, Somchai
    Mahian, Omid
    [J]. ADVANCES IN COLLOID AND INTERFACE SCIENCE, 2021, 294
  • [3] Nanofluid flow and heat transfer due to a stretching cylinder in the presence of magnetic field
    Ashorynejad, H. R.
    Sheikholeslami, M.
    Pop, I.
    Ganji, D. D.
    [J]. HEAT AND MASS TRANSFER, 2013, 49 (03) : 427 - 436
  • [4] Nodal/saddle stagnation-point boundary layer flow of CuO-Ag/water hybrid nanofluid: a novel hybridity model
    Dinarvand, Saeed
    [J]. MICROSYSTEM TECHNOLOGIES-MICRO-AND NANOSYSTEMS-INFORMATION STORAGE AND PROCESSING SYSTEMS, 2019, 25 (07): : 2609 - 2623
  • [5] Thermal conductivity variation and heat generation effects on magneto-hybrid nanofluid flow in a porous medium with slip condition
    Eid, Mohamed R.
    Nafe, Mohamed A.
    [J]. WAVES IN RANDOM AND COMPLEX MEDIA, 2022, 32 (03) : 1103 - 1127
  • [6] Analytical and numerical investigation of Darcy-Forchheimer flow of a nonlinear-radiative non-Newtonian fluid over a Riga plate with entropy optimization
    Eswaramoorthi, S.
    Loganathan, K.
    Faisal, Muhammad
    Botmart, Thongchai
    Shah, Nehad Ali
    [J]. AIN SHAMS ENGINEERING JOURNAL, 2023, 14 (03)
  • [7] Effect of variable thermal conductivity and viscosity on Casson nanofluid flow with convective heating and velocity slip
    Gbadeyan, J. A.
    Titiloye, E. O.
    Adeosun, A. T.
    [J]. HELIYON, 2020, 6 (01)
  • [8] Numerical simulation of nanofluid flow inside a root canal
    Ghalandari, Mohammad
    Koohshahi, Elaheh Mirzadeh
    Mohamadian, Fatemeh
    Shannshirband, Shahabbodin
    Chau, Kwok Wing
    [J]. ENGINEERING APPLICATIONS OF COMPUTATIONAL FLUID MECHANICS, 2019, 13 (01) : 254 - 264
  • [9] Computational modelling of nanofluid flow over a curved stretching sheet using Koo?Kleinstreuer and Li (KKL) correlation and modified Fourier heat flux model
    Gowda, R. J. Punith
    Al-Mubaddel, Fahad S.
    Kumar, R. Naveen
    Prasannakumara, B. C.
    Issakhov, Alibek
    Rahimi-Gorji, Mohammad
    Al-Turki, Yusuf A.
    [J]. CHAOS SOLITONS & FRACTALS, 2021, 145
  • [10] Coupled flow and heat transfer in viscoelastic fluid with Cattaneo-Christov heat flux model
    Han, Shihao
    Zheng, Liancun
    Li, Chunrui
    Zhang, Xinxin
    [J]. APPLIED MATHEMATICS LETTERS, 2014, 38 : 87 - 93