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MHD radiative blood flow embracing gold particles via a slippery sheet through an erratic heat sink/source

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dc.contributor.author Khan, Umair
dc.contributor.author Shafiq, Anum
dc.contributor.author Zaib, Aurang
dc.contributor.author Sherif, El-Sayed M.
dc.contributor.author Baleanu, Dumitru
dc.date.accessioned 2022-06-17T12:18:25Z
dc.date.available 2022-06-17T12:18:25Z
dc.date.issued 2020-09
dc.identifier.citation Khan, Umair...et al. (2020). "MHD radiative blood flow embracing gold particles via a slippery sheet through an erratic heat sink/source", Mathematics, Vol. 8, No. 9. tr_TR
dc.identifier.issn 2227-7390
dc.identifier.uri http://hdl.handle.net/20.500.12416/5661
dc.description.abstract Cancer remains one of the world's leading healthcare issues, and attempts continue not only to find new medicines but also to find better ways of distributing medications. It is harmful and lethal to most of its patients. The need to selectively deliver cytotoxic agents to cancer cells, to enhance protection and efficacy, has prompted the implementation of nanotechnology in medicine. The latest findings have found that gold nanomaterials can heal and conquer it because the material is studied such as gold (atomic number 79) which produces a large amount of heat and contribute to the therapy of malignant tumors. The purpose of the present study is to research the consequence of heat transport through blood flow (Casson model) that contains gold particles in a slippery shrinking/stretching curved surface. The mathematical modeling of Casson nanofluid containing gold nanomaterials towards the slippery curved shrinking/stretching surface is simplified by utilizing suitable transformation. Numerical dual solutions for the temperature and velocity fields are calculated by using bvp4c methodology in MATLAB. Impacts of related parameters are investigated in the temperature and velocity distribution. The results indicate that the suction parameter accelerates the velocity in the upper branch solution and decelerates it in the lower branch solution, while the temperature diminishes in both solutions. In addition, the Casson parameter shrinks the thickness of the velocity boundary-layer owing to rapid enhancement in the plastic dynamics' viscosity. Moreover, the nanoparticle volume fraction accelerates the viscosity of blood as well as the thermal conductivity. Thus, findings suggested that gold nanomaterials are useful for drug moving and delivery mechanisms since the velocity boundary is regulated by the volume fraction parameter. Gold nanomaterials also raise the temperature field, so that cancer cells can be destroyed. © 2020 by the authors. tr_TR
dc.language.iso eng tr_TR
dc.relation.isversionof 10.3390/math8091597 tr_TR
dc.rights info:eu-repo/semantics/openAccess tr_TR
dc.subject Casson Fluid tr_TR
dc.subject Dual Solutions tr_TR
dc.subject Gold Particle tr_TR
dc.subject MHD (Magnetohydrodynamics) Blood Flow tr_TR
dc.subject Non-Uniform Heat Source/Sink tr_TR
dc.subject Thermal Radiation tr_TR
dc.title MHD radiative blood flow embracing gold particles via a slippery sheet through an erratic heat sink/source tr_TR
dc.type article tr_TR
dc.relation.journal Mathematics tr_TR
dc.contributor.authorID 56389 tr_TR
dc.identifier.volume 8 tr_TR
dc.identifier.issue 9 tr_TR
dc.contributor.department Çankaya Üniversitesi, Fen - Edebiyat Fakültesi, Matematik Bölümü tr_TR


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