کد مقاله کد نشریه سال انتشار مقاله انگلیسی نسخه تمام متن
6464814 438916 2016 9 صفحه PDF دانلود رایگان
عنوان انگلیسی مقاله ISI
Enhanced heat transfer in liquid thin film flow of non-Newtonian nanofluids embedded with graphene nanoparticles
ترجمه فارسی عنوان
انتقال حرارت پیشرفته در جریان فیلم نازک مایع نانولوله های غیر نیوتنی که با نانوذرات گرافن تعبیه شده اند
موضوعات مرتبط
مهندسی و علوم پایه مهندسی شیمی مهندسی شیمی (عمومی)
چکیده انگلیسی


- Mathematical model for thin film flow of non-Newtonian grapheme based nanofluid.
- Effects of electrical conductivity of nanofluid along with transverse magnetic field.
- Graphene nanoparticles markedly enhance the thermal conductivity of Jeffrey nanofluid.
- Oldroyd-B nanofluid shows the best heat transfer cooling fluid.

Recent days, graphene is emanating as one of the most encouraging nanomaterials due to its continuous electrical conducting behaviour even at zero carrier concentrations. Heat transfer in non-Newtonian fluids plays a major role in technology and in nature due to its stress relaxation, shear thinning and thickening properties. With this incentive, we investigate the flow and heat transfer characteristics of electrically conducting liquid film flow of water based non-Newtonian nanofluids dispensed with graphene nanoparticles. For this investigation, we proposed a mathematical model for the flow of Jeffrey, Maxwell and Oldroyd-B nanofluids past a stretching surface in the presence of transverse magnetic field and non-uniform heat source/sink. Numerical results are carried out by employing Runge-Kutta-Felhberg integration scheme. The influence of pertinent parameters on reduced Nusselt number, friction factor, flow and heat transfer is discussed with the assistance of graphs. Embedding the graphene nanoparticles effectively enhances the thermal conductivity of Jeffrey nanofluid when compared with the Oldroyd-B and Maxwell nanofluids. Deborah number in terms of relaxation time plays a major role in convective heat transfer.

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ناشر
Database: Elsevier - ScienceDirect (ساینس دایرکت)
Journal: Advanced Powder Technology - Volume 27, Issue 6, November 2016, Pages 2448-2456
نویسندگان
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