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Numerical Heat Transfer, Part A: Applications
An International Journal of Computation and Methodology
Volume 63, 2013 - Issue 10
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Original Articles

A Comparative Analysis of Single and Two-Phase Models of Turbulent Convective Heat Transfer in a Tube for TiO2 Nanofluid with CFD

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Pages 795-806 | Received 12 Jun 2012, Accepted 17 Nov 2012, Published online: 28 Feb 2013

Keep up to date with the latest research on this topic with citation updates for this article.

Read on this site (18)

Suaib Al Mahmud, Mazbahur Rahman Khan, Wazed Ibne Noor, Ahmad Faris Ismail, Md. Abdul Momin & Jamirul Habib Bappy. (2023) Turbulent convective heat transfer enhancement modeling of water-Al2O3 nanofluid using CFD mixture model and adaptive neural fuzzy inference system. Numerical Heat Transfer, Part B: Fundamentals 83:3, pages 120-138.
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Budi Kristiawan, Koji Enoki, Wibawa Endra Juwana, Rendy Adhi Rachmanto, Agung Tri Wijayanta & Takahiko Miyazaki. (2022) Simulation-based assessment of the thermal-hydraulic performance of titania-based nanofluids in a circular-mini-channel tube. International Journal of Ambient Energy 43:1, pages 8022-8035.
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Lal Kundan & M. B. Darshan. (2022) Performance investigation of a concentric double tube heat exchanger using twisted tape inserts and nanofluid. Particulate Science and Technology 40:3, pages 307-324.
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Mehdi Mehrabi, Seyyed Mohammad Ali Noori Rahim Abadi & Josua Petrus Meyer. (2020) Heat Transfer and Fluid Flow Optimization of Titanium Dioxide–Water Nanofluids in a Turbulent Flow Regime. Heat Transfer Engineering 41:1, pages 36-49.
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Morteza Khoshvaght-Aliabadi. (2017) Thermal–Hydraulic Characteristics of Novel Configurations of Wavy Channel: Nanofluid as Working Fluid. Heat Transfer Engineering 38:16, pages 1382-1395.
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Mohammad Mehdi Rashidi, Mohammad Nasiri, Mostafa Safdari Shadloo & Zhighang Yang. (2017) Entropy Generation in a Circular Tube Heat Exchanger Using Nanofluids: Effects of Different Modeling Approaches. Heat Transfer Engineering 38:9, pages 853-866.
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Yue-Tzu Yang, Hsiang-Wen Tang, Bo-Yan Zeng & Mau-Hung Jian. (2016) Numerical simulation and optimization of turbulent nanofluids in a three-dimensional arc rib-grooved channel. Numerical Heat Transfer, Part A: Applications 70:8, pages 831-846.
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Yue-Tzu Yang, Hsiang-Wen Tang & Kuan-Yu Chou. (2016) Numerical simulation and optimization of nanofluid in a C-shaped chaotic channel. Numerical Heat Transfer, Part A: Applications 70:4, pages 366-383.
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Yue-Tzu Yang, Hsiang-Wen Tang & Shih-Jie Jian. (2016) Numerical simulation and optimization of turbulent nanofluids in a three-dimensional wavy channel. Numerical Heat Transfer, Part A: Applications 69:10, pages 1169-1185.
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P. Ganesan, I. Behroyan, S. He, S. Sivasankaran & Shanti C. Sandaran. (2016) Turbulent forced convection of Cu–water nanofluid in a heated tube: Improvement of the two-phase model. Numerical Heat Transfer, Part A: Applications 69:4, pages 401-420.
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Xiao Wei Zhu, Yun Han Fu, Jing Quan Zhao & Lei Zhu. (2016) Three-dimensional numerical study of the laminar flow and heat transfer in a wavy-finned heat sink filled with Al2O3/ethylene glycol-water nanofluid. Numerical Heat Transfer, Part A: Applications 69:2, pages 195-208.
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Shuangling Dong, Bingyang Cao & Zengyuan Guo. (2015) Numerical Investigation of Nanofluid Flow and Heat Transfer Around a Calabash-Shaped Body. Numerical Heat Transfer, Part A: Applications 68:5, pages 548-565.
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Alireza Beheshti, Mostafa Keshavarz Moraveji & Majid Hejazian. (2015) Comparative Numerical Study of Nanofluid Heat Transfer through an Annular Channel. Numerical Heat Transfer, Part A: Applications 67:1, pages 100-117.
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Mostafa Keshavarz Moraveji & Majid Hejazian. (2014) CFD Examination of Convective Heat Transfer and Pressure Drop in a Horizontal Helically Coiled Tube with CuO/Oil Base Nanofluid. Numerical Heat Transfer, Part A: Applications 66:3, pages 315-329.
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I.M. Shahrul, I.M. Mahbubul, R. Saidur, S.S. Khaleduzzaman, M.F. M. Sabri & M.M. Rahman. (2014) Effectiveness Study of a Shell and Tube Heat Exchanger Operated with Nanofluids at Different Mass Flow Rates. Numerical Heat Transfer, Part A: Applications 65:7, pages 699-713.
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M.M. Rahman, S. Saha, S. Mojumder, S. Mekhilef & R. Saidur. (2014) Numerical Simulation of Unsteady Heat Transfer in a Half-Moon Shape Enclosure with Variable Thermal Boundary Condition for Different Nanofluids. Numerical Heat Transfer, Part B: Fundamentals 65:3, pages 282-301.
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Meisam Habibi Matin & Ioan Pop. (2014) Numerical Study of Mixed Convection Heat Transfer of a Nanofluid in an Eccentric Annulus. Numerical Heat Transfer, Part A: Applications 65:1, pages 84-105.
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Suaib Al Mahmud, Ahmad Faris Ismail, Jamirul Habib Bappy & Wazed Ibne Noor. (2023) A Study on Accuracy Range of Multiphase Mixture Model for Turbulent Convective Heat Transfer Enhancement Simulation of Water-Al 2 O 3 Nanofluid . Journal of Nanofluids 12:2, pages 438-447.
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Hamed Eshgarf, Afshin Ahmadi Nadooshan & Afrasiab Raisi. (2023) A review of multi-phase and single-phase models in the numerical simulation of nanofluid flow in heat exchangers. Engineering Analysis with Boundary Elements 146, pages 910-927.
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Janusz T. Cieśliński. (2022) Numerical Modelling of Forced Convection of Nanofluids in Smooth, Round Tubes: A Review. Energies 15:20, pages 7586.
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Asif Khan, Mohammad Hunain Latif, Muddassir Ali, Zulfiqar Khattak, Ahmed Adnan, Ferial Ghaemi, Dumitru Baleanu & T. Mohamed. (2022) A survey study of the correlations developed for single-phase heat transfer and pressure drop using nanofluids. Journal of Thermal Analysis and Calorimetry 147:19, pages 10533-10567.
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Juwel C. Mojumder, Saiied M. Aminossadati & Christopher R. Leonardi. (2022) Comparative performance analysis of a SF-CPV/T collector under Australian climatic conditions using CFD and radiation modelling techniques. Energy and Buildings 271, pages 112297.
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Ahmed S. Habeeb, Abdulhassan A. Karamallah & Sattar Aljabair. (2022) Review of computational multi-phase approaches of nano-fluids filled systems. Thermal Science and Engineering Progress 28, pages 101175.
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Praveen Kanti, K.V. Sharma, C.G. Ramachandra & M Gurumurthy. (2020) A CFD Study on fly ash nanofluid heat transfer behavior in a circular tube. IOP Conference Series: Materials Science and Engineering 1013:1, pages 012030.
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Vipin Nair, A. D. Parekh & P. R. Tailor. (2020) Performance analysis of Al2O3–R718 nanorefrigerant turbulent flow through a flooded chiller tube: a numerical investigation. Journal of the Brazilian Society of Mechanical Sciences and Engineering 42:6.
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Samina Javed, Hafiz Muhammad Ali, Hamza Babar, Muhammad Sajid Khan, Muhammad Mansoor Janjua & Muhammad Anser Bashir. (2020) Internal convective heat transfer of nanofluids in different flow regimes: A comprehensive review. Physica A: Statistical Mechanics and its Applications 538, pages 122783.
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Orhan Keklikcioglu, Toygun Dagdevir & Veysel Ozceyhan. (2019) Heat transfer and pressure drop investigation of graphene nanoplatelet-water and titanium dioxide-water nanofluids in a horizontal tube. Applied Thermal Engineering 162, pages 114256.
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Parth P. Prajapati & Vivek K. Patel. (2019) Comparative analysis of nanofluid-based Organic Rankine Cycle through thermoeconomic optimization. Heat Transfer-Asian Research 48:7, pages 3013-3038.
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Sina Nabati Shoghl, Zakaria Loloei & Mostafa Keshavarz Moraveji. (2018) Three-dimensional multiphase CFD modeling of thermal–hydraulic characteristics of nanofluid flow in helical microchannels. Journal of Thermal Analysis and Calorimetry 136:4, pages 1831-1846.
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Raheem K. Ajeel, W. S.-I. W. Salim & Khalid Hasnan. (2019) Comparative Study of the Thermal Performance of Corrugated Channels Using ZnO–Water Nanofluid. Journal of Thermophysics and Heat Transfer 33:2, pages 508-516.
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Omid Mahian, Lioua Kolsi, Mohammad Amani, Patrice Estellé, Goodarz Ahmadi, Clement Kleinstreuer, Jeffrey S. Marshall, Majid Siavashi, Robert A. Taylor, Hamid Niazmand, Somchai Wongwises, Tasawar Hayat, Arun Kolanjiyil, Alibakhsh Kasaeian & Ioan Pop. (2019) Recent advances in modeling and simulation of nanofluid flows-Part I: Fundamentals and theory. Physics Reports 790, pages 1-48.
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Raheem K. Ajeel, W.S-I. W. Salim & Khalid Hasnan. (2018) Thermal and hydraulic characteristics of turbulent nanofluids flow in trapezoidal-corrugated channel: Symmetry and zigzag shaped. Case Studies in Thermal Engineering 12, pages 620-635.
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Mohamed Benkhedda, Toufik Boufendi & S. Touahri. (2018) Laminar mixed convective heat transfer enhancement by using Ag-TiO2-water hybrid Nanofluid in a heated horizontal annulus. Heat and Mass Transfer 54:9, pages 2799-2814.
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José Jaime Taha-Tijerina. 2018. Microfluidics and Nanofluidics. Microfluidics and Nanofluidics.
Tehmina Ambreen & Man-Hoe Kim. (2018) Heat transfer and pressure drop correlations of nanofluids: A state of art review. Renewable and Sustainable Energy Reviews 91, pages 564-583.
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Farzad Bazdidi-Tehrani, Seyed Iman Vasefi & Arash Khabazipur. (2017) Scale-adaptive simulation of turbulent mixed convection of nanofluids in a vertical duct. Journal of Thermal Analysis and Calorimetry 131:3, pages 3011-3023.
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Tehmina Ambreen & Man-Hoe Kim. (2017) Comparative assessment of numerical models for nanofluids’ laminar forced convection in micro and mini channels. International Journal of Heat and Mass Transfer 115, pages 513-523.
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H.W. Chiam, W.H. Azmi, N.M. Adam & M.K.A.M. Ariffin. (2017) Numerical study of nanofluid heat transfer for different tube geometries – A comprehensive review on performance. International Communications in Heat and Mass Transfer 86, pages 60-70.
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Liu Yang & Kai Du. (2017) A comprehensive review on heat transfer characteristics of TiO2 nanofluids. International Journal of Heat and Mass Transfer 108, pages 11-31.
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Hossein Hadi Najafabadi & Mostafa Keshavarz Moraveji. (2017) CFD investigation of local properties of Al 2 O 3 /water nanofluid in a converging microchannel under imposed pressure difference. Advanced Powder Technology 28:3, pages 763-774.
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Nor Azwadi Che Sidik, Muhammad Noor Afiq Witri Muhammad Yazid, Syahrullail Samion, Mohamad Nor Musa & Rizalman Mamat. (2016) Latest development on computational approaches for nanofluid flow modeling: Navier–Stokes based multiphase models. International Communications in Heat and Mass Transfer 74, pages 114-124.
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Nor Azwadi Che Sidik, Syahrullail Samion, Mohamad Nor Musa, Mahmud Jamil Muhammad, Adamu Isa Muhammad, Muhammad Noor Afiq Witri Mohd Yazid & Rizalman Mamat. (2016) The significant effect of turbulence characteristics on heat transfer enhancement using nanofluids: A comprehensive review. International Communications in Heat and Mass Transfer 72, pages 39-47.
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Abdolreza Moghadassi, Ehsan Ghomi & Fahime Parvizian. (2015) A numerical study of water based Al2O3 and Al2O3?Cu hybrid nanofluid effect on forced convective heat transfer. International Journal of Thermal Sciences 92, pages 50-57.
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