An updated review on application of nanofluids in heat exchangers for saving energy
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Somchai Wongwises | Omid Mahian | Masoud Afrand | B. Mahmoudi | M. Afrand | O. Mahian | S. Wongwises | Saeed Aghakhani | Ahmad Hajatzadeh Pordanjani | Ahmad Hajatzadeh Pordanjani | Saeed Aghakhani | Boshra Mahmoudi
[1] P. V. Walke,et al. Heat transfer characteristics in nanofluid—A review , 2017 .
[2] R. Velraj,et al. Experimental investigation of the thermo-physical properties of water–ethylene glycol mixture based CNT nanofluids , 2012 .
[3] Fuli Wang,et al. Modeling of plate heat exchanger based on sensitivity analysis and model updating , 2018, Chemical engineering research & design.
[4] Navid Nasajpour Esfahani,et al. A new correlation for predicting the thermal conductivity of ZnO–Ag (50%–50%)/water hybrid nanofluid: An experimental study , 2018 .
[5] Mohammad Hemmat Esfe,et al. An applicable study on the thermal conductivity of SWCNT-MgO hybrid nanofluid and price-performance analysis for energy management , 2017 .
[6] M. Khoshvaght-Aliabadi,et al. Turbulent flow of Al 2 O 3 -water nanofluid through plate-fin heat exchanger (PFHE) with offset-strip channels , 2018, Thermal Science and Engineering Progress.
[7] Bernard Bahaya,et al. On the Effect of Graphene Nanoplatelets on Water–Graphene Nanofluid Thermal Conductivity, Viscosity, and Heat Transfer Under Laminar External Flow Conditions , 2018 .
[8] H. Yoozbashizadeh,et al. Investigating the effects of pH, surfactant and ionic strength on the stability of alumina/water nanofluids using DLVO theory , 2018, Journal of Thermal Analysis and Calorimetry.
[9] M. Venkatesan,et al. Review on nanofluids characterization, heat transfer characteristics and applications , 2016 .
[10] Ali J. Chamkha,et al. Effects of two-phase nanofluid model and localized heat source/sink on natural convection in a square cavity with a solid circular cylinder , 2019, Computer Methods in Applied Mechanics and Engineering.
[11] S. Shehzad,et al. Water based nanofluid free convection heat transfer in a three dimensional porous cavity with hot sphere obstacle in existence of Lorenz forces , 2018, International Journal of Heat and Mass Transfer.
[12] Nishant Kumar,et al. Experimental study of thermal conductivity, heat transfer and friction factor of Al 2 O 3 based nanofluid , 2018 .
[13] A. Ahmadpour,et al. MHD mixed convection of nanofluids in the presence of multiple rotating cylinders in different configurations: A two-phase numerical study , 2019, International Journal of Mechanical Sciences.
[14] S. Murshed. Determination of effective specific heat of nanofluids , 2011 .
[15] Suhaib Umer Ilyas,et al. Stability, rheology and thermal analysis of functionalized alumina- thermal oil-based nanofluids for advanced cooling systems , 2017 .
[16] S. Etemad,et al. Heat transfer of nanofluids in a shell and tube heat exchanger , 2010 .
[17] J. Babu,et al. State-of-art review on hybrid nanofluids , 2017 .
[18] A. Rashidi,et al. Experimental investigation of turbulent flow and convective heat transfer characteristics of alumina water nanofluids in fully developed flow regime , 2012 .
[19] N. Rahim,et al. Effect of different nanoparticle shapes on shell and tube heat exchanger using different baffle angles and operated with nanofluid , 2014 .
[20] Cong Qi,et al. Influence of triangle tube structure with twisted tape on the thermo-hydraulic performance of nanofluids in heat-exchange system based on thermal and exergy efficiency , 2019, Energy Conversion and Management.
[21] Ravikanth S. Vajjha,et al. Numerical study of turbulent flow and heat transfer characteristics of nanofluids considering variable properties , 2009 .
[22] K. V. Sharma,et al. Experimental investigation of thermal conductivity and dynamic viscosity on nanoparticle mixture ratios of TiO2-SiO2 nanofluids , 2018 .
[23] Wayne R. Johnson,et al. Thermo-physical properties of diamond nanofluids: A review , 2019, International Journal of Heat and Mass Transfer.
[24] O. Tillement,et al. Rheological properties of nanofluids flowing through microchannels , 2007 .
[25] Yongping Yang,et al. On the Specific Heat Capacity of CuO Nanofluid , 2010 .
[26] O. Mahian,et al. Thermophysical properties, heat transfer and pressure drop of COOH-functionalized multi walled carbon nanotubes/water nanofluids , 2014 .
[27] Abbas Abbassi,et al. Experimental and numerical investigation of turbulent nanofluid flow in helically coiled tubes under constant wall heat flux using Eulerian–Lagrangian approach , 2015 .
[28] Mohsen Sheikholeslami,et al. Nanofluid MHD natural convection through a porous complex shaped cavity considering thermal radiation , 2018, Physics Letters A.
[29] Multiplicity of forced convective heat transfer of nanofluids in curved ducts , 2019, International Journal of Heat and Mass Transfer.
[30] Stephen U. S. Choi. Enhancing thermal conductivity of fluids with nano-particles , 1995 .
[31] A. H. Isfahani,et al. Effect of suspending hybrid nano-additives on rheological behavior of engine oil and pumping power , 2016 .
[32] A. Vinod,et al. Heat transfer enhancement using non-Newtonian nanofluids in a shell and helical coil heat exchanger , 2018 .
[33] S. M. Sohel Murshed,et al. Simultaneous Measurement of Thermal Conductivity, Thermal Diffusivity, and Specific Heat of Nanofluids , 2012 .
[34] Ahmad Ghozatloo,et al. Convective heat transfer enhancement of graphene nanofluids in shell and tube heat exchanger , 2014 .
[35] M. A. Delavar,et al. Improve the thermal performance of the pillow plate heat exchanger by using nanofluid: Numerical simulation , 2019, Advanced Powder Technology.
[36] Hafiz Muhammad Ali,et al. Preparation Techniques of TiO2 Nanofluids and Challenges: A Review , 2018 .
[37] O. Sow,et al. Comparison of the thermal performances of two nanofluids at low temperature in a plate heat exchanger , 2011 .
[38] M. Afrand,et al. An experimental study on rheological behavior of non-Newtonian hybrid nano-coolant for application in cooling and heating systems , 2016 .
[39] Sheng‐Qi Zhou,et al. Measurement of the specific heat capacity of water-based Al2O3 nanofluid , 2008 .
[40] A. Al-Rashed,et al. Two-phase Natural Convection Dusty Nanofluid Flow , 2018 .
[41] N. Abu‐Hamdeh,et al. Transient natural convection in a partially open trapezoidal cavity filled with a water-based nanofluid under the effects of Brownian diffusion and thermophoresis , 2018 .
[42] P. Ghosh,et al. A review on hybrid nanofluids: Recent research, development and applications , 2015 .
[43] M. Afrand,et al. Examination of rheological behavior of MWCNTs/ZnO-SAE40 hybrid nano-lubricants under various temperatures and solid volume fractions , 2017 .
[44] Zdravko Virag,et al. Optimization of an organic Rankine cycle constrained by the application of compact heat exchangers , 2019, Energy Conversion and Management.
[45] G. Peterson,et al. Experimental investigation of temperature and volume fraction variations on the effective thermal conductivity of nanoparticle suspensions (nanofluids) , 2006 .
[46] G. Vakili-Nezhaad,et al. Effect of single-walled carbon nanotube on the viscosity of lubricants , 2012 .
[47] H. Nowamooz,et al. Factors influencing the performance of shallow Borehole Heat Exchanger , 2019, Energy Conversion and Management.
[48] M. Jafaryar,et al. CuO-water nanofluid flow and heat transfer in a heat exchanger tube with twisted tape turbulator , 2018, Powder Technology.
[49] Somchai Wongwises,et al. Recent advances in preparation methods and thermophysical properties of oil-based nanofluids: A state-of-the-art review , 2019, Powder Technology.
[50] Saad Mekhilef,et al. Energy performance of an evacuated tube solar collector using single walled carbon nanotubes nanofluids , 2015 .
[51] G. Morini. Single-phase Convective Heat Transfer in Microchannels: a Review of Experimental Results , 2004 .
[52] M. Siavashi,et al. Nanofluid and porous fins effect on natural convection and entropy generation of flow inside a cavity , 2018 .
[53] W. Yan,et al. Experimental study on thermal conductivity of DWCNT-ZnO/water-EG nanofluids ☆ , 2015 .
[54] R. Saidur,et al. Experimental investigation on the thermo-physical properties of Al2O3 nanoparticles suspended in car radiator coolant , 2014 .
[55] I. Badruddin,et al. Numerical investigation on the thermohydraulic performance of a shell-and-double concentric tube heat exchanger using nanofluid under the turbulent flow regime , 2017 .
[56] Kevin Robbie,et al. Nanomaterials and nanoparticles: Sources and toxicity , 2007, Biointerphases.
[57] Rahul A. Bhogare,et al. A Review on applications and challenges of Nano-fluids as coolant in Automobile Radiator , 2013 .
[58] Young I Cho,et al. HYDRODYNAMIC AND HEAT TRANSFER STUDY OF DISPERSED FLUIDS WITH SUBMICRON METALLIC OXIDE PARTICLES , 1998 .
[59] Yulong Ding,et al. Experimental investigation into convective heat transfer of nanofluids at the entrance region under laminar flow conditions , 2004 .
[60] O. Mahian,et al. Experimental studies on the viscosity of TiO2 and Al2O3 nanoparticles suspended in a mixture of ethylene glycol and water for high temperature applications , 2013 .
[61] J. Noh,et al. Experimental investigation of heat transfer coefficient with Al2O3 nanofluid in small diameter tubes , 2019, Applied Thermal Engineering.
[62] D. Ganji,et al. Nanofluid convective heat transfer using semi analytical and numerical approaches: A review , 2016 .
[63] Ishak Hashim,et al. Entropy Generation Analysis and Natural Convection in a Nanofluid-Filled Square Cavity with a Concentric Solid Insert and Different Temperature Distributions , 2018, Entropy.
[64] Z. Chai,et al. Hybrid lattice Boltzmann-TVD simulation of natural convection of nanofluids in a partially heated square cavity using Buongiorno’s model , 2019, Applied Thermal Engineering.
[65] D. Das,et al. Specific Heat Measurement of Three Nanofluids and Development of New Correlations , 2009 .
[66] Bengt Sundén,et al. Effects of hybrid nanofluid mixture in plate heat exchangers , 2016 .
[67] P. Razi,et al. An experimental investigation on thermo-physical properties and overall performance of MWCNT/heat transfer oil nanofluid flow inside vertical helically coiled tubes , 2012 .
[68] H. Karataş,et al. Natural convection in differentially heated rectangular cavities with time periodic boundary condition on one side , 2019, International Journal of Heat and Mass Transfer.
[69] M. Sheikholeslami,et al. Double MRT Lattice Boltzmann simulation of 3-D MHD natural convection in a cubic cavity with sinusoidal temperature distribution utilizing nanofluid , 2018, International Journal of Heat and Mass Transfer.
[70] Saad Mekhilef,et al. Energy, economic and environmental analysis of metal oxides nanofluid for flat-plate solar collector , 2013 .
[71] Ahmet Selim Dalkılıç,et al. Numerical investigation on the single phase forced convection heat transfer characteristics of TiO2 nanofluids in a double-tube counter flow heat exchanger , 2011 .
[72] Liejin Guo,et al. Investigation on drag coefficient of super cirtical water cross-flow past cylinder biomass particel at low reynolds numbers , 2017 .
[73] A. Mosaffa,et al. Investigating the effects of geometric parameters on finned conical helical geothermal heat exchanger and its energy extraction capability , 2018, Geothermics.
[74] R. Ganguly,et al. Stability and thermophysical measurements of TiO2 (anatase) nanofluids with different surfactants , 2018 .
[75] Nader Vahdat Azad,et al. Application of nanofluids for the optimal design of shell and tube heat exchangers using genetic algorithm , 2016 .
[76] Bengt Sundén,et al. Pressure drop and convective heat transfer of water and nanofluids in a double-pipe helical heat exchanger , 2013 .
[77] E. Kenig,et al. An approach for pillow plate heat exchangers design for single-phase applications , 2019, Applied Thermal Engineering.
[78] A. Minea,et al. Experimental study on thermal conductivity of stabilized Al2O3 and SiO2 nanofluids and their hybrid , 2018, International Journal of Heat and Mass Transfer.
[79] S. Wongwises,et al. Experimental Investigation on the Thermal Conductivity and Viscosity of Silver-Deionized Water Nanofluid , 2010 .
[80] A. Rashidi,et al. Experimental study on the heat transfer enhancement of MWNT-water nanofluid in a shell and tube heat exchanger , 2012 .
[81] I. Pop,et al. Natural convection in an inclined cavity with time-periodic temperature boundary conditions using nanofluids: Application in solar collectors , 2018 .
[82] B. Raj,et al. Enhancement of thermal conductivity in magnetite based nanofluid due to chainlike structures , 2007 .
[83] T. Yousefi,et al. Thermal performance augmentation using water based Al2O3-gamma nanofluid in a horizontal shell and tube heat exchanger under forced circulation , 2017 .
[84] Saad Mekhilef,et al. Environmental and exergy benefit of nanofluid-based hybrid PV/T systems , 2016 .
[85] A. S. Dalkılıç,et al. Experimental study on the thermal conductivity of water-based CNT-SiO2 hybrid nanofluids , 2018, International Communications in Heat and Mass Transfer.
[86] S. Kazi,et al. The RSM approach to develop a new correlation for density of metal-oxide aqueous nanofluids , 2017 .
[87] J. Whitty,et al. A review on the two-phase heat transfer characteristics in helically coiled tube heat exchangers , 2016 .
[88] A. Sari,et al. Stability and thermal conductivity enhancement of aqueous nanofluid based on surfactant-modified TiO2 , 2020, Journal of Dispersion Science and Technology.
[89] W. Yan,et al. Experimental determination of thermal conductivity and dynamic viscosity of Ag–MgO/water hybrid nanofluid , 2015 .
[90] Ali J. Chamkha,et al. A numerical investigation of magneto-hydrodynamic natural convection of Cu–water nanofluid in a wavy cavity using CVFEM , 2019, Journal of Thermal Analysis and Calorimetry.
[91] Kaj-Mikael Björk,et al. Solving large-scale retrofit heat exchanger network synthesis problems with mathematical optimization methods , 2005 .
[92] D. Ganji,et al. Effect of electric field on hydrothermal behavior of nanofluid in a complex geometry , 2016 .
[93] A. Bejan. The Concept of Irreversibility in Heat Exchanger Design: Counterflow Heat Exchangers for Gas-to-Gas Applications , 1977 .
[94] M. Afrand,et al. Proposing new hybrid nano-engine oil for lubrication of internal combustion engines: Preventing cold start engine damages and saving energy , 2019, Energy.
[95] A. Khosravi,et al. The influence of magnetic field on heat transfer of magnetic nanofluid in a double pipe heat exchanger proposed in a small-scale CAES system , 2019, Applied Thermal Engineering.
[96] M. Afrand,et al. Effects of temperature and solid volume fraction on viscosity of SiO2-MWCNTs/SAE40 hybrid nanofluid as a coolant and lubricant in heat engines , 2016 .
[97] Lei Shi,et al. Thermophysical properties of Fe3O4@CNT nanofluid and controllable heat transfer performance under magnetic field , 2018, Energy Conversion and Management.
[98] S. Wongwises,et al. Thermal conductivity of Cu/TiO2–water/EG hybrid nanofluid: Experimental data and modeling using artificial neural network and correlation☆ , 2015 .
[99] J. A. Fitzpatrick,et al. A review of cross-flow induced vibrations in heat exchanger tube arrays , 1988 .
[100] H. Oztop,et al. Role of magnetic field and surface corrugation on natural convection in a nanofluid filled 3D trapezoidal cavity , 2018, International Communications in Heat and Mass Transfer.
[101] E. Languri,et al. Exergy analysis of a shell-and-tube heat exchanger using graphene oxide nanofluids , 2017 .
[102] Omid Ali Akbari,et al. Energy saving with using of elliptic pillows in turbulent flow of two-phase water-silver nanofluid in a spiral heat exchanger , 2019, International Journal of Numerical Methods for Heat & Fluid Flow.
[103] M. Safaei,et al. Effect of employing a new biological nanofluid containing functionalized graphene nanoplatelets on thermal and hydraulic characteristics of a spiral heat exchanger , 2019, Energy Conversion and Management.
[104] P. Bhramara,et al. Effect of twisted tape inserts on heat transfer, friction factor of Fe3O4 nanofluids flow in a double pipe U-bend heat exchanger , 2018, International Communications in Heat and Mass Transfer.
[105] K. Khanafer,et al. A critical synthesis of thermophysical characteristics of nanofluids , 2011 .
[106] M. Leena,et al. A comparative study on thermal conductivity of TiO2/ethylene glycol–water and TiO2/propylene glycol–water nanofluids , 2018, Journal of Thermal Analysis and Calorimetry.
[107] O. Mahian,et al. Heat transfer characteristics and pressure drop of COOH-functionalized DWCNTs/water nanofluid in turbulent flow at low concentrations , 2014 .
[108] A. Adam,et al. Combustion characteristics, engine performances and emissions of a diesel engine using nanoparticle-diesel fuel blends with aluminium oxide, carbon nanotubes and silicon oxide , 2018, Energy Conversion and Management.
[109] Fenghui Han,et al. Experimental comparative evaluation of a graphene nanofluid coolant in miniature plate heat exchanger , 2018, International Journal of Thermal Sciences.
[110] Upendra Bhandarkar,et al. An experimental investigation of thermo-physical properties and heat transfer performance of Al2O3-Aviation Turbine Fuel nanofluids , 2011 .
[111] S. Kakaç,et al. Enhanced thermal conductivity of nanofluids: a state-of-the-art review , 2010 .
[112] Cong Qi,et al. Experimental research on stabilities, thermophysical properties and heat transfer enhancement of nanofluids in heat exchanger systems , 2018, Chinese Journal of Chemical Engineering.
[113] W. Roetzel,et al. Conceptions for heat transfer correlation of nanofluids , 2000 .
[114] M. Afrand,et al. Measurement of thermal conductivity of ZnO–TiO2/EG hybrid nanofluid , 2016, Journal of Thermal Analysis and Calorimetry.
[115] Mohammad Mehdi Rashidi,et al. COMPARATIVE NUMERICAL STUDY OF SINGLE-PHASE AND TWO-PHASE MODELS FOR BIO-NANOFLUID TRANSPORT PHENOMENA , 2014 .
[116] Somchai Wongwises,et al. Experimental investigation and development of new correlations for thermal conductivity of CuO/EG–water nanofluid☆ , 2015 .
[117] S. Chakraborty. An investigation on the long-term stability of TiO2 nanofluid , 2019, Materials Today: Proceedings.
[118] Mojtaba Mamourian,et al. Experimental investigation on thermal performance and economic analysis of cosine wave tube structure in a shell and tube heat exchanger , 2018, Energy Conversion and Management.
[119] Clement Kleinstreuer,et al. Laminar nanofluid flow in microheat-sinks , 2005 .
[120] S. Bardakhanov,et al. Thermal conductivity, viscosity and rheology of a suspension based on Al2O3 nanoparticles and mixture of 90% ethylene glycol and 10% water , 2015 .
[121] M. Ghanbarpour,et al. Thermal properties and rheological behavior of water based Al2O3 nanofluid as a heat transfer fluid , 2014 .
[122] A. Zamzamian,et al. Experimental investigation of forced convective heat transfer coefficient in nanofluids of Al2O3/EG and CuO/EG in a double pipe and plate heat exchangers under turbulent flow , 2011 .
[123] A. Al-Rashed,et al. Numerical investigation of non-Newtonian water-CMC/CuO nanofluid flow in an offset strip-fin microchannel heat sink: Thermal performance and thermodynamic considerations , 2019, Applied Thermal Engineering.
[124] M. Afrand,et al. Using experimental data to estimate the heat transfer and pressure drop of non-Newtonian nanofluid flow through a circular tube: Applicable for use in heat exchangers , 2018 .
[125] Mohammad Ali Akhavan-Behabadi,et al. An empirical study on heat transfer and pressure drop characteristics of CuO–base oil nanofluid flow in a horizontal helically coiled tube under constant heat flux , 2012 .
[126] J. Sarkar,et al. Energy, exergy and economic assessments of shell and tube condenser using hybrid nanofluid as coolant , 2018, International Communications in Heat and Mass Transfer.
[127] S. Jang,et al. Effect of surfactants on the stability and solar thermal absorption characteristics of water-based nanofluids with multi-walled carbon nanotubes. , 2018, Solar energy.
[128] M. Afrand,et al. An experimental study on thermal conductivity of MgO nanoparticles suspended in a binary mixture of water and ethylene glycol , 2015 .
[129] M. Saffar-Avval,et al. Eulerian–Eulerian two-phase numerical simulation of nanofluid laminar forced convection in a microchannel , 2011 .
[130] Fredrik Haglind,et al. A review of heat transfer enhancement techniques in plate heat exchangers , 2019, Renewable and Sustainable Energy Reviews.
[131] P. Ganesan,et al. Numerical study of convective heat transfer of nanofluids: A review , 2016 .
[132] Shirish H. Sonawane,et al. Experimental investigation on intensified convective heat transfer coefficient of water based PANI nanofluid in vertical helical coiled heat exchanger , 2018 .
[133] S. Wongwises,et al. Measurement of temperature-dependent thermal conductivity and viscosity of TiO2-water nanofluids , 2009 .
[134] M. Talaie,et al. Numerical study of convective heat transfer of nanofluids in a circular tube two-phase model versus single-phase model , 2010 .
[135] Liu Yang,et al. A renovated Hamilton-Crosser model for the effective thermal conductivity of CNTs nanofluids , 2017 .
[136] Saeed Zeinali Heris,et al. Experimental study on thermal conductivity and electrical conductivity of diesel oil-based nanofluids of graphene nanoplatelets and carbon nanotubes , 2018, International Communications in Heat and Mass Transfer.
[137] M. Afrand,et al. Experimental and theoretical investigation of thermal conductivity of ethylene glycol containing functionalized single walled carbon nanotubes , 2018 .
[138] Arash Karimipour,et al. The investigation of thermal radiation and free convection heat transfer mechanisms of nanofluid inside a shallow cavity by lattice Boltzmann method , 2018, Physica A: Statistical Mechanics and its Applications.
[139] S. Paras,et al. Effect of nanofluids on the performance of a miniature plate heat exchanger with modulated surface , 2009 .
[140] Jung-Chang Wang,et al. Power generation and electric charge density with temperature effect of alumina nanofluids using dimensional analysis , 2019, Energy Conversion and Management.
[141] Yurong He,et al. Experimental investigation of thermal conductivity and viscosity of ethylene glycol based ZnO nanofluids , 2015 .
[142] Somchai Wongwises,et al. An experimental study on the effect of diameter on thermal conductivity and dynamic viscosity of Fe/water nanofluids , 2015, Journal of Thermal Analysis and Calorimetry.
[143] M. Yaghoubi,et al. Stability of nanofluids: Molecular dynamic approach and experimental study , 2016 .
[144] S. Wongwises,et al. An experimental study on the heat transfer performance and pressure drop of TiO2-water nanofluids flowing under a turbulent flow regime , 2010 .
[145] M. Khoshvaght-Aliabadi,et al. Performance of agitated-vessel U tube heat exchanger using spiky twisted tapes and water based metallic nanofluids , 2018 .
[146] M. Bayareh,et al. Numerical study of the effects of stator boundary conditions and blade geometry on the efficiency of a scraped surface heat exchanger , 2017 .
[147] Arif Hepbasli,et al. Heat transfer performance and exergy analyses of a corrugated plate heat exchanger using metal oxide nanofluids , 2014 .
[148] K. P. Venkitaraj,et al. An experimental investigation on heat transfer enhancement in the laminar flow of water/TiO2 nanofluid through a tube heat exchanger fitted with modified butterfly inserts , 2018 .
[149] B. Linnhoff,et al. The pinch design method for heat exchanger networks , 1983 .
[150] Amin Behzadmehr,et al. Comparative analysis of single and two-phase models for CFD studies of nanofluid heat transfer , 2011 .
[151] S. Paras,et al. INVESTIGATING THE EFFICACY OF NANOFLUIDS AS COOLANTS IN PLATE HEAT EXCHANGERS (PHE) , 2009 .
[152] P. Meakin,et al. Effect of aggregation on thermal conduction in colloidal nanofluids , 2006 .
[153] M. Afrand,et al. Numerical investigation of heat transfer in a power-law non-Newtonian fluid in a C-Shaped cavity with magnetic field effect using finite difference lattice Boltzmann method , 2018, Computers & Fluids.
[154] B. Michel,et al. On the thermal conductivity of gold nanoparticle colloids. , 2010, Langmuir : the ACS journal of surfaces and colloids.
[155] Hwai Chyuan Ong,et al. Synthesis and thermal conductivity characteristic of hybrid nanofluids – A review , 2017 .
[156] Antonio C. M. Sousa,et al. Hybrid nanofluids preparation, thermal properties, heat transfer and friction factor – A review , 2017 .
[157] Ali J. Chamkha,et al. Conjugate natural convection of Al2O3–water nanofluid in a square cavity with a concentric solid insert using Buongiorno's two-phase model , 2018 .
[158] A. Sousa,et al. Viscosity of low volume concentrations of magnetic Fe3O4 nanoparticles dispersed in ethylene glycol and water mixture , 2012 .
[159] C. T. Nguyen,et al. Heat transfer enhancement and pumping power in confined radial flows using nanoparticle suspensions (nanofluids) , 2011 .
[160] W. Liu,et al. Natural convection heat transfer of alumina-water nanofluid in vertical square enclosures: An experimental study , 2010 .
[161] V. K. Nema,et al. Experimental analysis of heat transfer and friction factor of nanofluid as a coolant in a corrugated plate heat exchanger , 2012 .
[162] J. Eastman,et al. Measuring Thermal Conductivity of Fluids Containing Oxide Nanoparticles , 1999 .
[163] S. Saha,et al. Experimental study on discharging performance of vertical multitube shell and tube latent heat thermal energy storage , 2018, Journal of Energy Storage.
[164] Elena V. Timofeeva,et al. Comparative review of turbulent heat transfer of nanofluids , 2012 .
[165] S. H. Pourhoseini,et al. Effect of silver-water nanofluid on heat transfer performance of a plate heat exchanger: An experimental and theoretical study , 2018, Powder Technology.
[166] Siyuan Mei,et al. Effects of magnetic field on thermo-hydraulic performance of Fe3O4-water nanofluids in a corrugated tube , 2019, International Journal of Heat and Mass Transfer.
[167] A. Mohebbi. Prediction of specific heat and thermal conductivity of nanofluids by a combined equilibrium and non-equilibrium molecular dynamics simulation , 2012 .
[168] Yuying Yan,et al. Effect of corrugation pitch on thermo-hydraulic performance of nanofluids in corrugated tubes of heat exchanger system based on exergy efficiency , 2019, Energy Conversion and Management.
[169] Nurullah Kayaci,et al. Experimental and numerical investigation of ground heat exchangers in the building foundation , 2019, Energy Conversion and Management.
[170] Cong Qi,et al. Effects of screw pitches and rotation angles on flow and heat transfer characteristics of nanofluids in spiral tubes , 2019, International Journal of Heat and Mass Transfer.
[171] R. Davarnejad,et al. CFD modeling of heat transfer performance of MgO-water nanofluid under turbulent flow , 2015 .
[172] A. Karimipour,et al. A new correlation for estimating the thermal conductivity and dynamic viscosity of CuO/liquid paraffin nanofluid using neural network method , 2018 .
[173] M. Afrand,et al. Experimental study on thermal conductivity of water-based Fe3O4 nanofluid: Development of a new correlation and modeled by artificial neural network , 2016 .
[174] Davood Toghraie,et al. Numerical simulation of heat transfer enhancement in a plate-fin heat exchanger using a new type of vortex generators , 2018 .
[175] H. Chang,et al. Process optimization and material properties for nanofluid manufacturing , 2007 .
[176] Arash Karimipour,et al. Mixed convection of copper-water nanofluid in a shallow inclined lid driven cavity using the lattice Boltzmann method , 2014 .
[177] Mohamad Jafari,et al. A comprehensive review on double pipe heat exchangers , 2017 .
[178] D. Das,et al. A review and analysis on influence of temperature and concentration of nanofluids on thermophysical properties, heat transfer and pumping power , 2012 .
[179] T. Mckrell,et al. Measurement and Model Validation of Nanofluid Specific Heat Capacity with Differential Scanning Calorimetry , 2011 .
[180] M. T. Al-Asadi,et al. Heat transfer through heat exchanger using Al2O3 nanofluid at different concentrations , 2013 .
[181] Thirumalachari Sundararajan,et al. An experimental investigation into the thermal conductivity enhancement in oxide and metallic nanofluids , 2010 .
[182] Ali J. Chamkha,et al. Factorial experimental design for the thermal performance of a double pipe heat exchanger using Al2O3-TiO2 hybrid nanofluid , 2018, International Communications in Heat and Mass Transfer.
[183] P. Ghosh,et al. Energetic and Exergetic Performances of Plate Heat Exchanger Using Brine-Based Hybrid Nanofluid for Milk Chilling Application , 2019, Heat Transfer Engineering.
[184] Roghayyeh Motallebzadeh,et al. Investigation of the Velocity Field and Nanoparticle Concentration Distribution of Nanofluid Using Lagrangian-Eulerian Approach , 2012 .
[185] Hua Li,et al. Thermal conductivity enhancement dependent pH and chemical surfactant for Cu-H2O nanofluids , 2008 .
[186] D. Banerjee,et al. Enhancement of specific heat capacity of high-temperature silica-nanofluids synthesized in alkali chloride salt eutectics for solar thermal-energy storage applications , 2011 .
[187] M. Afrand,et al. Numerical study on thermal performance of an air-cooled heat exchanger: Effects of hybrid nanofluid, pipe arrangement and cross section , 2018 .
[188] C. T. Nguyen,et al. Heat transfer performance and hydrodynamic behavior of turbulent nanofluid radial flows , 2012 .
[189] E. Grulke,et al. Heat transfer properties of nanoparticle-in-fluid dispersions (nanofluids) in laminar flow , 2005 .
[190] S. Suresh,et al. Performance study of conical strip inserts in tube heat exchanger using water based titanium oxide nanofluid , 2016 .
[191] N. Sidik,et al. A review on preparation methods, stability and applications of hybrid nanofluids , 2017 .
[192] Chi-Chuan Wang,et al. Enhancement of thermal conductivity with Cu for nanofluids using chemical reduction method , 2006 .
[193] M. Fazilati,et al. Surface Scraped Heat Exchanger for cooling Newtonian fluids and enhancing its heat transfer characteristics, a review and a numerical approach , 2015 .
[194] M. Chandrasekar,et al. Effect of Al2O3–Cu/water hybrid nanofluid in heat transfer , 2012 .
[195] Jahar Sarkar,et al. A critical review on convective heat transfer correlations of nanofluids , 2011 .
[196] A. D'Orazio,et al. An experimental study on thermal conductivity of F-MWCNTs–Fe3O4/EG hybrid nanofluid: Effects of temperature and concentration , 2016 .
[197] K. Leong,et al. Thermophysical and electrokinetic properties of nanofluids – A critical review , 2008 .
[198] Somchai Wongwises,et al. A critical review of convective heat transfer of nanofluids , 2007 .
[199] M. Farhadi,et al. Turbulent heat transfer and fluid flow of alumina nanofluid inside three-lobed twisted tube , 2019, Journal of Thermal Analysis and Calorimetry.
[200] N. Sidik,et al. Recent progress on hybrid nanofluids in heat transfer applications: A comprehensive review , 2016 .
[201] Ravikanth S. Vajjha,et al. Development of new correlations for convective heat transfer and friction factor in turbulent regime for nanofluids , 2010 .
[202] C. T. Nguyen,et al. Heat transfer behaviours of nanofluids in a uniformly heated tube , 2004 .
[203] W. Li,et al. Laminar mixed convection of large-Prandtl-number in-tube nanofluid flow, Part I: Experimental study , 2013 .
[204] Fahad A. Al-Sulaiman,et al. Experimental and numerical performance analysis of a converging channel heat exchanger for PV cooling , 2015 .
[205] Shuangfeng Wang,et al. Experimental investigation on photothermal properties of nanofluids for direct absorption solar thermal energy systems , 2013 .
[206] A. H. Isfahani,et al. Experimental investigation of surface vibration effects on increasing the stability and heat transfer coeffcient of MWCNTs-water nanofluid in a flexible double pipe heat exchanger , 2018 .
[207] M. Farbod,et al. The noble effect of aging on the thermal conductivity of modified CNTs-ethylene glycol nanofluids , 2018 .
[208] Ali J. Chamkha,et al. Entropy generation and MHD natural convection of a nanofluid in an inclined square porous cavity: Effects of a heat sink and source size and location , 2018 .
[209] Nasrudin Abd Rahim,et al. Analyses of exergy efficiency and pumping power for a conventional flat plate solar collector using SWCNTs based nanofluid , 2014 .
[210] Vikas Kumar,et al. Application of nanofluids in plate heat exchanger: A review , 2015 .
[211] Saeed Zeinali Heris,et al. Heat Transfer Properties of Nanodiamond–Engine Oil Nanofluid in Laminar Flow , 2009 .
[212] Xianfan Xu,et al. Thermal Conductivity of Nanoparticle -Fluid Mixture , 1999 .
[213] M. Afrand,et al. A novel applicable experimental study on the thermal behavior of SWCNTs(60%)-MgO(40%)/EG hybrid nanofluid by focusing on the thermal conductivity , 2019, Powder Technology.
[214] M. Hemmat Esfe,et al. ANN modeling, cost performance and sensitivity analyzing of thermal conductivity of DWCNT–SiO2/EG hybrid nanofluid for higher heat transfer , 2018, Journal of Thermal Analysis and Calorimetry.
[215] M. Afrand,et al. Effects of temperature and concentration on the viscosity of nanofluids made of single-wall carbon nanotubes in ethylene glycol , 2016 .
[216] Mansoo Choi,et al. Nanofluids containing multiwalled carbon nanotubes and their enhanced thermal conductivities , 2003 .
[217] G. Huminic,et al. Heat transfer and entropy generation analyses of nanofluids in helically coiled tube-in-tube heat exchangers , 2016 .
[218] K. V. Sharma,et al. Study of viscosity and specific heat capacity characteristics of water-based Al2O3 nanofluids at low particle concentrations , 2015 .
[219] Nima Mazaheri,et al. Efficacy of a new graphene–platinum nanofluid in tubes fitted with single and twin twisted tapes regarding counter and co-swirling flows for efficient use of energy , 2019, International Journal of Mechanical Sciences.
[220] A. Rahimi,et al. Analysis of natural convection in nanofluid-filled H-shaped cavity by entropy generation and heatline visualization using lattice Boltzmann method , 2018 .
[221] Jung-Chang Wang,et al. Intelligent dimensional and thermal performance analysis of Al2O3 nanofluid , 2017 .
[222] Mehdi Bahiraei,et al. A Comprehensive Review on Different Numerical Approaches for Simulation in Nanofluids: Traditional and Novel Techniques , 2014 .
[223] H. Weng,et al. Electrostatically Stabilized Nanofluid Preparation by Chemical Co-Precipitation and the Effect of Particle Size on Nanofluid Viscosity , 2018 .
[224] A. Amiri,et al. Stability and thermophysical properties of non-covalently functionalized graphene nanoplatelets nanofluids , 2016 .
[225] K. Lee,et al. Enhancement of thermal conductivity of ethylene glycol based silver nanofluids , 2011 .
[226] C. Chon,et al. Empirical correlation finding the role of temperature and particle size for nanofluid (Al2O3) thermal conductivity enhancement , 2005 .
[227] G. Żyła,et al. Viscosity, thermal and electrical conductivity of silicon dioxide–ethylene glycol transparent nanofluids: An experimental studies , 2017 .
[228] Zhaohong Fang,et al. Study on the efficiency of single and double U-tube heat exchangers , 2017 .
[229] Lei Shi,et al. Recyclable photo-thermal conversion and purification systems via Fe3O4@TiO2 nanoparticles , 2018, Energy Conversion and Management.
[230] Emad Sadeghinezhad,et al. Numerical simulation of laminar to turbulent nanofluid flow and heat transfer over a backward-facing step , 2014, Appl. Math. Comput..
[231] O. Mahian,et al. Performance enhancement of heat exchangers using eccentric tape inserts and nanofluids , 2019, Journal of Thermal Analysis and Calorimetry.
[232] Mi Sandar Mon,et al. Heat Exchanger Design , 2008 .
[233] M. Afrand. Experimental study on thermal conductivity of ethylene glycol containing hybrid nano-additives and development of a new correlation , 2017 .
[234] A. Allouhi,et al. Energy and exergy analyses of a parabolic trough collector operated with nanofluids for medium and high temperature applications , 2018 .
[235] Diego A. Vasco,et al. Effect of temperature and CuO-nanoparticle concentration on the thermal conductivity and viscosity of an organic phase-change material , 2018 .
[236] Ruzhu Wang,et al. Investigation on energy consumption of desiccant coated heat exchanger based heat pump: Limitation of adsorption heat of desiccant , 2019, Energy Conversion and Management.
[238] L. Naess,et al. The synthesis of cost optimal heat exchanger networks. An industrial review of the state of the art , 1988 .
[239] Tae-Keun Hong,et al. Thermal conductivity of Fe nanofluids depending on the cluster size of nanoparticles , 2006 .
[240] T. K. Dey,et al. Effect of aggregation on the viscosity of copper oxide–gear oil nanofluids , 2011 .
[241] Oguz Emrah Turgut,et al. Ensemble Shuffled Population Algorithm for multi-objective thermal design optimization of a plate frame heat exchanger operated with Al2O3/water nanofluid , 2018, Appl. Soft Comput..
[242] Jongwook Choi,et al. Numerical simulation of laminar forced convection heat transfer of Al2O3–water nanofluid in a pipe with return bend , 2012 .
[243] J. A. Esfahani,et al. Effect of volumetric radiation on natural convection in a cavity with a horizontal fin using the lattice Boltzmann method , 2018 .
[244] Ravikanth S. Vajjha,et al. Application of aluminum oxide nanofluids in diesel electric generator as jacket water coolant , 2008 .
[245] S. Ghosh,et al. Characterization and performance of nanofluids in plate heat exchanger , 2017 .
[246] G. Huminic,et al. The influence of hybrid nanofluids on the performances of elliptical tube: Recent research and numerical study , 2019, International Journal of Heat and Mass Transfer.
[247] Hakan F. Öztop,et al. Corrugated conductive partition effects on MHD free convection of CNT-water nanofluid in a cavity , 2019, International Journal of Heat and Mass Transfer.
[248] S. Saha,et al. Transition to a chaotic flow in a V-shaped triangular cavity heated from below , 2019, International Journal of Heat and Mass Transfer.
[249] T. Venkateswararao,et al. A CFD Investigation of Heat Transfer Enhancement of Shell and Tube Heat Exchanger Using Al 2 o 3 -Water Nanofluid , 2018 .
[250] M. Farhadi,et al. Turbulent heat transfer in tubular heat exchangers with twisted tape , 2018, Journal of Thermal Analysis and Calorimetry.
[251] S. Saedodin,et al. Experimental studies on the convective heat transfer performance and thermophysical properties of MgO–water nanofluid under turbulent flow , 2014 .
[252] M. Siavashi,et al. Optimization of heat transfer enhancement and pumping power of a heat exchanger tube using nanofluid with gradient and multi-layered porous foams , 2018, Applied Thermal Engineering.
[253] Rahman Saidur,et al. A REVIEW ON APPLICATIONS AND CHALLENGES OF NANOFLUIDS , 2011 .
[254] A. Jafarimoghaddam. Two-phase modeling of magnetic nanofluids jets over a Stretching/shrinking wall , 2018, Thermal Science and Engineering Progress.
[255] R. K. Duchaniya,et al. Synthesis, characterization, thermal conductivity and sensitivity of CuO nanofluids , 2016 .
[256] Seyfolah Saedodin,et al. An experimental investigation and new correlation of viscosity of ZnO–EG nanofluid at various temperatures and different solid volume fractions , 2014 .
[257] S. Kakaç,et al. Review of convective heat transfer enhancement with nanofluids , 2009 .
[258] J. Buongiorno,et al. Experimental Investigation of Turbulent Convective Heat Transfer and Pressure Loss of Alumina/Water and Zirconia/Water Nanoparticle Colloids (Nanofluids) in Horizontal Tubes , 2008 .
[259] D. Wen,et al. Ultrasonic-aided fabrication of gold nanofluids , 2011, Nanoscale research letters.
[260] A. Raju,et al. Heat transfer enhancement and pressure drop of Fe3O4 -water nanofluid in a double tube counter flow heat exchanger with internal longitudinal fins , 2018, Case Studies in Thermal Engineering.
[261] I. Mudawar,et al. Assessment of the effectiveness of nanofluids for single-phase and two-phase heat transfer in micro-channels , 2007 .
[262] K. Sopian,et al. Evaluation and analysis of nanofluid and surfactant impact on photovoltaic-thermal systems , 2019, Case Studies in Thermal Engineering.
[263] Hyomin Jeong,et al. Comparison of CFD simulations to experiment for heat transfer characteristics with aqueous Al2O3 nanofluid in heat exchanger tube , 2018, International Communications in Heat and Mass Transfer.
[264] Hongwei Xie,et al. Thermal Conductivity of Suspensions Containing Nanosized SiC Particles , 2002 .
[265] A. Behzadmehr,et al. Effects of multi walled carbon nanotubes shape and size on thermal conductivity and viscosity of nanofluids , 2019, Diamond and Related Materials.
[266] T. Kiatsiriroat,et al. Heat transfer characteristics of deionized water-based graphene nanofluids in helical coiled heat exchanger for waste heat recovery of combustion stack gas , 2018, Heat and Mass Transfer.
[267] Saman Rashidi,et al. A sensitivity analysis on thermal and pumping power for the flow of nanofluid inside a wavy channel , 2016 .
[268] Georgios A. Florides,et al. Ground heat exchangers—A review of systems, models and applications , 2007 .
[269] Amin Behzadmehr,et al. Prediction of turbulent forced convection of a nanofluid in a tube with uniform heat flux using a two phase approach , 2007 .
[270] J. C. Gomez,et al. Nanofluid heat capacities , 2011 .
[271] Smith Eiamsa-ard,et al. Heat transfer enhancement by using CuO/water nanofluid in corrugated tube equipped with twisted tape ☆ , 2012 .
[272] Omid Ali Akbari,et al. Numerical study of turbulent nanofluid heat transfer in a tubular heat exchanger with twin twisted-tape inserts , 2018, Journal of Thermal Analysis and Calorimetry.
[273] N. Zhang,et al. Design and optimization of plate heat exchanger networks , 2017 .
[274] A. Raisi. The effect of conductive baffles on natural convection in a power-law fluid-filled square cavity , 2018 .
[275] A. Sözen,et al. Simulation and experimental analysis of heat transfer characteristics in the plate type heat exchangers using TiO2/water nanofluid , 2019, International Journal of Numerical Methods for Heat & Fluid Flow.
[276] M. Sheikholeslami. Numerical investigation of nanofluid free convection under the influence of electric field in a porous enclosure , 2018 .
[277] Jahar Sarkar,et al. Discrete phase numerical model and experimental study of hybrid nanofluid heat transfer and pressure drop in plate heat exchanger , 2018 .
[278] Emmanuel C. Nsofor,et al. Simultaneous energy storage and recovery in the triplex-tube heat exchanger with PCM, copper fins and Al2O3 nanoparticles , 2019, Energy Conversion and Management.
[279] M. Sharifpur,et al. CFD modelling of heat transfer and pressure drops for nanofluids through vertical tubes in laminar flow by Lagrangian and Eulerian approaches , 2015 .
[280] B. T. Chew,et al. Numerical study of turbulent heat transfer of nanofluids containing eco-friendly treated carbon nanotubes through a concentric annular heat exchanger , 2018, International Journal of Heat and Mass Transfer.
[281] M. Farhadi,et al. Numerical study of heat transfer on using lobed cross sections in helical coil heat exchangers: Effect of physical and geometrical parameters , 2018, Energy Conversion and Management.
[282] Tae-Keun Hong,et al. Study of the enhanced thermal conductivity of Fe nanofluids , 2005 .
[283] N. Karimi,et al. First and second laws of thermodynamics analysis of nanofluid flow inside a heat exchanger duct with wavy walls and a porous insert , 2018, Journal of Thermal Analysis and Calorimetry.
[284] Kai-Long Hsiao,et al. Stagnation electrical MHD nanofluid mixed convection with slip boundary on a stretching sheet , 2016 .
[285] N. Agrawal,et al. Sensitivity of thermal conductivity for Al2O3 nanofluids , 2017 .
[286] D. Banerjee,et al. Specific heat of nanofluids synthesized by dispersing alumina nanoparticles in alkali salt eutectic , 2014 .
[287] N. Shahidzadeh,et al. Morphological transformations during drying of surfactant-nanofluid droplets , 2018, Journal of Industrial and Engineering Chemistry.
[288] M. Afrand,et al. Effect of two isothermal obstacles on the natural convection of nanofluid in the presence of magnetic field inside an enclosure with sinusoidal wall temperature distribution , 2018, International Journal of Heat and Mass Transfer.
[289] P. Lettieri,et al. An introduction to heat transfer , 2007 .
[290] P. Jawahar,et al. Experimental Studies on the Effect of Enhanced Thermal Conductivity of SiC+Water Nanofluid in the Performance of Small Scale Solar Parabolic Dish Receiver , 2018 .
[291] D. P. Sekulic,et al. Fundamentals of Heat Exchanger Design , 2003 .
[292] T. Teng,et al. Characteristics of carbon-based nanofluids and their application in a brazed plate heat exchanger under laminar flow , 2019, Applied Thermal Engineering.
[293] Davood Toghraie,et al. Effects of temperature and nanoparticles concentration on rheological behavior of Fe3O4–Ag/EG hybrid nanofluid: An experimental study , 2016 .
[294] Yujin Hwang,et al. Convective heat transfer characteristics of nanofluids under laminar and turbulent flow conditions , 2009 .
[295] M. Seyednezhad,et al. Simulation of nanofluid flow and natural convection in a porous media under the influence of electric field using CVFEM , 2018 .
[296] Jie Liu,et al. Shear-rate dependent effective thermal conductivity of H2O+SiO2 nanofluids , 2013 .
[297] Zhiqiang Liu,et al. Investigation on flow and heat transfer characteristics of ice slurry without additives in a plate heat exchanger , 2018, International Journal of Heat and Mass Transfer.
[298] R. Moradi,et al. Nanofluid turbulent flow in a pipe under the effect of twisted tape with alternate axis , 2018, Journal of Thermal Analysis and Calorimetry.
[299] J. M. McCloskey,et al. Thermal conductivity and particle agglomeration in alumina nanofluids: experiment and theory. , 2007, Physical review. E, Statistical, nonlinear, and soft matter physics.
[300] J. Chiou,et al. Review of various Types of Flow Maldistribution in Heat Exchangers , 1988 .
[301] T. Teng,et al. The effect of alumina/water nanofluid particle size on thermal conductivity , 2010 .
[302] Mazlan Abdul Wahid,et al. Heat transfer enhancement of nanofluids in a double pipe heat exchanger with louvered strip inserts , 2013 .
[303] Anil Kumar,et al. Experimental and analytical studies of earth–air heat exchanger (EAHE) systems in India: A review , 2013 .
[304] A. Abd,et al. Performance analysis of shell and tube heat exchanger: Parametric study , 2018, Case Studies in Thermal Engineering.
[305] Li He,et al. Numerical investigation on double tube-pass shell-and-tube heat exchangers with different baffle configurations , 2018, Applied Thermal Engineering.
[306] S. K. Pabi,et al. Diversity in thermal conductivity of aqueous Al2O3- and Ag-nanofluids measured by transient hot-wire and laser flash methods , 2018, Experimental Thermal and Fluid Science.
[307] Kuppan Thulukkanam. Heat Exchanger Design Handbook , 2013 .
[308] Wei-Mon Yan,et al. Experimental study on thermal conductivity of ethylene glycol based nanofluids containing Al 2 O 3 nanoparticles , 2015 .
[309] D. Wen,et al. A comparative study of direct absorption nanofluids for solar thermal applications , 2018 .
[310] Bodo Linnhoff,et al. Understanding heat exchanger networks , 1979 .
[311] Angel Huminic,et al. Application of nanofluids in heat exchangers: A review , 2012 .