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Numerical investigation of thermal radiation effects on chemical reactive flow of microbes in hybrid nanofluid over a rotating disk

Mouloud AoudiaDepartment of Industrial Engineering, College of Engineering, Northern Border University, P.O. Box 1321, Arar, 91431, Saudi ArabiaFaiza BenabdallahDepartment of Industrial and Systems Engineering, College of Engineering, Princess Nourah bint Abdulrahman University, P.O. Box 84428, Riyadh, 11671, Saudi ArabiaAnsar AbbasDepartment of Chemistry, Gomal University, Dear Ismail Khan, 29111, PakistanDana Mohammad KhidhirDennis Ling Chuan ChingFundamental and Applied Sciences Department, Universiti Teknologi PETRONAS, Perak, 32610, MalaysiaAbid Ali MemonFundamental and Applied Sciences Department, Universiti Teknologi PETRONAS, Perak, 32610, MalaysiaMunawar AbbasDepartment of Mathematics, Saveetha School of Engineering, Saveetha Institute of Medical and Technical Sciences, Saveetha University, Chennai, 602105, Tamil Nadu, IndiaIlyas KhanDepartment of Mathematics, College of Science, Al-Zulfi Majmaah University, Al-Majmaah, 11952, Saudi ArabiaSaba LiaqatInstitute of Physics, The Islamia University of Bahawalpur, Bahawalpur, 63100, PakistanAhmed M. GalalDepartment of Mechanical Engineering, College of Engineering in Wadi Alddawasir, Prince Sattam bin Abdulaziz University, Saudi Arabia
2025en
ABI

Аннотация

This study employs numerical modelling to investigate the outcome of thermal radiation on chemical reactive flow of a hybrid nanofluid along a disk with oxytactic and gyrotactic microbes are examined. The heat generation and Stefan blowing impacts are taken into account. The hybrid (Diamond − C o 3 O 4 / H 2 O ) nanofluid flow model contains of nanoparticles of diamond ( N D ) , Cobalt oxide ( C o 3 O 4 ) dissolved in water. The constitutive equations, encompassing the solutal, energy, momentum, and gyrotactic microbes’ equations, are formulated and converted using the similarity approximation into a system of partial differential equations (PDEs). These resulting equations are then mathematically solved utilizing the Bvp4c method. There are many uses for the proposed model in the domains of engineering, biomedicine, and industry. Increased heat transmission is essential in the design of thermal management systems, such as cooling mechanisms in microelectronics. The study helps to understand fluid flow dynamics in lab-on-a-chip devices and biosensors in the biomedical industry. Microorganisms in the hybrid nanofluid flow also provide information about bioconvection processes, which is pertinent to microbial fuel cells and wastewater treatment. Additionally, the rotating disk configuration and Marangoni convection principles ensure accuracy and efficiency in industrial operations like coating technologies, thin-film deposition, and crystal growth.

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