A Review of the Enhancement of Solar Thermal Collectors using Nanofluids and Turbulators
暂无分享,去创建一个
A. Alazzam | O. Younis | Aissa Abderrahmane | Abed Mourad | H. Laidoudi | Naef A.A.Qasem | Kamel Guerdi
[1] Omar Z. Sharaf,et al. Micro/nano-encapsulated phase-change materials (ePCMs) for solar photothermal absorption and storage: Fundamentals, recent advances, and future directions , 2022, Progress in Energy and Combustion Science.
[2] A. Alazzam,et al. Artificial Intelligence-Aided Low Cost and Flexible Graphene Oxide-Based Paper Sensor for Ultraviolet and Sunlight Monitoring , 2022, Nanoscale Research Letters.
[3] O. Younis,et al. Enhancing the Melting Process of Shell-and-Tube PCM Thermal Energy Storage Unit Using Modified Tube Design , 2022, Nanomaterials.
[4] A. Aghaei,et al. Numerical analysis of heating aerosol carbon nanofluid flow in a power plant recupesrator with considering ash fouling: a deep learning approach , 2022, Engineering Analysis with Boundary Elements.
[5] M. Sharifpur,et al. Numerical study on performance of double-fluid parabolic trough solar collector occupied with hybrid non-Newtonian nanofluids: Investigation of effects of helical absorber tube using deep learning , 2022, Engineering Analysis with Boundary Elements.
[6] M. Najafzadeh,et al. Techno-economic estimation of a non-cover box solar still with thermoelectric and antiseptic nanofluid using machine learning models , 2022, Applied Thermal Engineering.
[7] Tengyu Ma,et al. Application of hybrid nanofluids in a novel combined photovoltaic/thermal and solar collector system , 2022, Solar Energy.
[8] B. Balakin,et al. Photothermal convection of a magnetic nanofluid in a direct absorption solar collector , 2022, Solar Energy.
[9] Z. Said,et al. Energy, exergy, economic and environmental (4E) analysis of a parabolic trough solar collector using MXene based silicone oil nanofluids , 2022, Solar Energy Materials and Solar Cells.
[10] N. M. Nor,et al. A Review of Recent Developments and Applications of Compound Parabolic Concentrator-Based Hybrid Solar Photovoltaic/Thermal Collectors , 2022, Sustainability.
[11] P. Kosinski,et al. Experimental investigation of erosion due to nanofluids , 2022, Wear.
[12] I. Mansir,et al. Heat transfer, pressure drop, and economic analysis of a tube with a constant temperature equipped with semi-circular and teardrop-shaped turbulators , 2022, Case Studies in Thermal Engineering.
[13] A. Alazzam,et al. Recent advances on the applications of phase change materials for solar collectors, practical limitations, and challenges: A critical review , 2022, Journal of Energy Storage.
[14] A. Abdel‐Rehim,et al. The performance response of a heat pipe evacuated tube solar collector using MgO/MWCNT hybrid nanofluid as a working fluid , 2022, Case Studies in Thermal Engineering.
[15] B. Mouliprasanth,et al. Heat transfer, pressure drop, and exergy analyses of a shot-peened tube in the tube heat exchanger using Al2O3 nanofluids for solar thermal applications , 2022, Powder Technology.
[16] Hwai Chyuan Ong,et al. Review on Aqueous Graphene Nanoplatelet Nanofluids: Preparation, Stability, Thermophysical Properties, and Applications in Heat Exchangers and Solar Thermal Collectors , 2022, Applied Thermal Engineering.
[17] O. Jahanian,et al. Increasing heat transfer in flat plate solar collectors using various forms of turbulence-inducing elements and CNTs-CuO hybrid nanofluids , 2022, Case Studies in Thermal Engineering.
[18] M. Sheikholeslami,et al. Nanoparticles transportation with turbulent regime through a solar collector with helical tapes , 2022, Advanced Powder Technology.
[19] Nehad Ali Shah,et al. MHD Hybrid Nanofluid Mixed Convection Heat Transfer and Entropy Generation in a 3-D Triangular Porous Cavity with Zigzag Wall and Rotating Cylinder , 2022, Mathematics.
[20] Ahmed M. Daabo,et al. Solar parabolic dish collector for concentrated solar thermal systems: a review and recommendations , 2022, Environmental Science and Pollution Research.
[21] Z. Said,et al. Hydrothermal analysis for a parabolic solar unit with wavy absorber pipe and nanofluid , 2022, Renewable Energy.
[22] S. Anwar,et al. Thermal performance enhancement of nanofluids based parabolic trough solar collector (NPTSC) for sustainable environment , 2022, Alexandria Engineering Journal.
[23] J. Navas,et al. MoS2-based nanofluids as heat transfer fluid in parabolic trough collector technology , 2022, Renewable Energy.
[24] D. Toghraie,et al. Statistical review of studies on the estimation of thermophysical properties of nanofluids using artificial neural network (ANN) , 2022, Powder Technology.
[25] O. Samuel,et al. An overview on energy and exergy analysis of solar thermal collectors with passive performance enhancers , 2022, Alexandria Engineering Journal.
[26] A. Alavi,et al. Influence of novel turbulator on efficiency of solar collector system , 2022, Environmental Technology & Innovation.
[27] A. Alazzam,et al. Numerical Simulations of Magnetohydrodynamics Natural Convection and Entropy Production in a Porous Annulus Bounded by Wavy Cylinder and Koch Snowflake Loaded with Cu–Water Nanofluid , 2022, Micromachines.
[28] M. Kaleem,et al. Characterization and Performance Analysis of Non-Metallic Oxide Nano-Fluids in Compound Parabolic Trough Solar Collectors , 2022, Engineering Proceedings.
[29] K. Vafai,et al. Thermal, thermodynamic and exergoeconomic investigation of a parabolic trough collector utilizing nanofluids , 2022, Applied Thermal Engineering.
[30] W. Jamshed,et al. Solar water-pump thermal analysis utilizing copper–gold/engine oil hybrid nanofluid flowing in parabolic trough solar collector: Thermal case study , 2022, Case Studies in Thermal Engineering.
[31] A. Gupta,et al. End-of-life management of solar PV waste in India: Situation analysis and proposed policy framework , 2022, Renewable and Sustainable Energy Reviews.
[32] Shijo Thomas,et al. Energy, exergy and corrosion analysis of direct absorption solar collector employed with ultra-high stable carbon quantum dot nanofluid , 2022, Renewable Energy.
[33] M. Jamei,et al. Properties of water-based fly ash-copper hybrid nanofluid for solar energy applications: Optimization of the experimental data using RBF model , 2022, Solar Energy Materials and Solar Cells.
[34] Honghyun Cho,et al. Comparison of thermal performance between a surface and a volumetric absorption solar collector using water and Fe3O4 nanofluid , 2022, Energy.
[35] A. Alazzam,et al. Hemispherical solar still: Recent advances and development , 2022, Energy Reports.
[36] M. Gürdal,et al. Thermal performance of FeO/water nanofluid flow in a newly designed dimpled tube under the influence of non-uniform magnetic field , 2022, International Journal of Thermal Sciences.
[37] M. Bouazizi,et al. Galerkin finite element inspection of thermal distribution of renewable solar energy in presence of binary nanofluid in parabolic trough solar collector , 2022, Alexandria Engineering Journal.
[38] A. Aghaei,et al. Comparison of the effect of using helical strips and fines on the efficiency and thermal–hydraulic performance of parabolic solar collectors , 2022, Sustainable Energy Technologies and Assessments.
[39] Honghyun Cho,et al. Evaluation on the photothermal conversion performance of SiC nanofluid for a direct absorption solar collector , 2022, International Journal of Nanotechnology.
[40] M. Sheikholeslami,et al. Thermal improvement of linear Fresnel solar system utilizing Al2O3-water nanofluid and multi-way twisted tape , 2022, International Journal of Thermal Sciences.
[41] Abdullah K. Alanazi,et al. Thermal efficiency enhancement of solar aircraft by utilizing unsteady hybrid nanofluid: A single-phase optimized entropy analysis , 2022, Sustainable Energy Technologies and Assessments.
[42] H. Masjuki,et al. A review of recent advances in green nanofluids and their application in thermal systems , 2022, Chemical Engineering Journal.
[43] Wisam K. Hussam,et al. Enhanced Heat Transfer for NePCM-Melting-Based Thermal Energy of Finned Heat Pipe , 2021, Nanomaterials.
[44] Ankang Kan,et al. Optical Properties and Photothermal Conversion Performances of Graphene Based Nanofluids , 2021, Applied Thermal Engineering.
[45] A. Allouhi,et al. Recent advances on improved optical, thermal, and radiative characteristics of plasmonic nanofluids: Academic insights and perspectives , 2021, Solar Energy Materials and Solar Cells.
[46] D. Toghraie,et al. Heat transfer and entropy generation analysis of water-Fe3O4/CNT hybrid magnetic nanofluid flow in a trapezoidal wavy enclosure containing porous media with the Galerkin finite element method , 2021, The European Physical Journal Plus.
[47] A. El-Awady,et al. Numerical investigation on the thermal performance of a flat plate solar collector using ZnO & CuO water nanofluids under Egyptian weathering conditions , 2021, Energy.
[48] M. Hatami,et al. Non-Newtonian nanofluid natural convective heat transfer in an inclined Half-annulus porous enclosure using FEM , 2021, Alexandria Engineering Journal.
[49] Humphrey Adun,et al. Review of ternary hybrid nanofluid: Synthesis, stability, thermophysical properties, heat transfer applications, and environmental effects , 2021, Journal of Cleaner Production.
[50] A. Gharehghani,et al. Evaluation of thermo photovoltaic performance through aluminum-fueled combustor with partially porous medium and different geometric cross-sections , 2021, Energy Conversion and Management.
[51] R. Sahoo,et al. A review of solar air collectors about various modifications for performance enhancement , 2021, Solar Energy.
[52] S. Hosseini,et al. An experimental study on energetic performance evaluation of a parabolic trough solar collector operating with Al2O3/water and GO/water nanofluids , 2021 .
[53] H. Ali,et al. Thermodynamic analysis and comparison of different absorption cycles driven by evacuated tube solar collector utilizing hybrid nanofluids , 2021 .
[54] Nikhil Chander,et al. Progress, challenges and future prospects of plasmonic nanofluid based direct absorption solar collectors – A state-of-the-art review , 2021, Solar Energy.
[55] H. Khorasanizadeh,et al. Comparative energy, exergy and CO2 emission evaluations of a LS-2 parabolic trough solar collector using Al2O3/SiO2-Syltherm 800 hybrid nanofluid , 2021 .
[56] O. Bamisile,et al. Multi-objective optimization and energy/exergy analysis of a ternary nanofluid based parabolic trough solar collector integrated with kalina cycle , 2021 .
[57] G. Najafi,et al. Efficiency enhancement of a solar dish collector operating with a novel soybean oil-based-MXene nanofluid and different cavity receivers , 2021 .
[58] R. Sathyamurthy,et al. Effects of ultasonication and surfactant on the thermal and electrical conductivity of water – Solar glycol mixture based Al2O3 nanofluids for solar-thermal applications , 2021 .
[59] M. El-Shorbagy,et al. Improvement of the thermal and hydraulic performance of parabolic trough collectors using hybrid nanofluids and novel turbulators with holes and ribs , 2021 .
[60] Z. Said,et al. A comprehensive review analysis on advances of evacuated tube solar collector using nanofluids and PCM , 2021 .
[61] G. Najafi,et al. A review of solar-driven organic Rankine cycles: Recent challenges and future outlook , 2021 .
[62] Yuying Yan,et al. Thermo-physical properties prediction of carbon-based magnetic nanofluids based on an artificial neural network , 2021 .
[63] B. Habeebullah,et al. Numerical study of the effect of curved turbulators on the exergy efficiency of solar collector containing two-phase hybrid nanofluid , 2021 .
[64] T. Alam,et al. A critical review on the development and challenges of concentrated solar power technologies , 2021 .
[65] N. M. Mubarak,et al. Recent progress in solar water heaters and solar collectors: A comprehensive review , 2021 .
[66] J. Khan,et al. Nanoparticles size effect on thermophysical properties of ionic liquids based nanofluids , 2021, Journal of Molecular Liquids.
[67] T. K. Nandi,et al. Investigations on optical and photo-thermal conversion characteristics of BN-EG and BN/CB-EG hybrid nanofluids for applications in direct absorption solar collectors , 2021 .
[68] Omar Z. Sharaf,et al. Thermal stability and plasmonic photothermal conversion of surface-modified solar nanofluids: Comparing prolonged and cyclic thermal treatments , 2021 .
[69] R. Saidur,et al. State-of-the-art review on water-based nanofluids for low temperature solar thermal collector application , 2021 .
[70] A. Kabeel,et al. Potential and challenges of improving solar still by micro/nano-particles and porous materials - A review , 2021 .
[71] M. Izadi,et al. State-of-the-art review of nanofluids in solar collectors: A review based on the type of the dispersed nanoparticles , 2021 .
[72] J.P. Meyer,et al. A review of linear Fresnel primary optical design methodologies , 2021, Solar Energy.
[73] A. W. Kandeal,et al. Improved thermo-economic performance of solar desalination via copper chips, nanofluid, and nano-based phase change material , 2021, Solar Energy.
[74] M. Hatami,et al. Effects of CuO nano powder on performance improvement and entropy production of double-pipe heat exchanger with innovative perforated turbulators , 2021, Advanced Powder Technology.
[75] Ali J. Chamkha,et al. Thermo-economic and entropy generation analyses of magnetic natural convective flow in a nanofluid-filled annular enclosure fitted with fins , 2021 .
[76] S. Saedodin,et al. Hydrothermal analysis of heat transfer and thermal performance characteristics in a parabolic trough solar collector with Turbulence-Inducing elements , 2021 .
[77] Omar Z. Sharaf,et al. Radiation stability and photothermal performance of surface-functionalized plasmonic nanofluids for direct-absorption solar applications , 2021 .
[78] M. Valipour,et al. An experimental investigation on the simultaneous effects of helically corrugated receiver and nanofluids in a parabolic trough collector , 2021, Journal of the Taiwan Institute of Chemical Engineers.
[79] Hicham Ben Sassi,et al. Solar technologies for electricity production: An updated review , 2021 .
[80] Z. Said,et al. Recent advances on the fundamental physical phenomena behind stability, dynamic motion, thermophysical properties, heat transport, applications, and challenges of nanofluids , 2021, Physics Reports.
[81] Xiaoke Li,et al. The MXene/water nanofluids with high stability and photo-thermal conversion for direct absorption solar collectors: A comparative study , 2021, Energy.
[82] Arun Kumar Pandey,et al. Real time experimental performance investigation of a NePCM based photovoltaic thermal system: An energetic and exergetic approach , 2021, Renewable Energy.
[83] Rahman Saidur,et al. A comprehensive review on advances of oil-based nanofluids for concentrating solar thermal collector application , 2021 .
[84] M. Amani,et al. Experimental investigations to evaluate surfactant role on absorption capacity of nanofluid for CO2 utilization in sustainable crude mobilization , 2021, Energy.
[85] M. Siavashi,et al. A numerical analysis of the effects of nanofluid and porous media utilization on the performance of parabolic trough solar collectors , 2021 .
[86] M. S. Nazir,et al. A comprehensive review of parabolic trough solar collectors equipped with turbulators and numerical evaluation of hydrothermal performance of a novel model , 2021 .
[87] M. Dzida,et al. Bio-Based Nanofluids of Extraordinary Stability and Enhanced Thermal Conductivity as Sustainable Green Heat Transfer Media , 2021 .
[88] Bader Alshuraiaan. Evaluation of the thermal performance of various nanofluids used to harvest solar energy , 2021, Energy, Ecology and Environment.
[89] Hegazy Rezk,et al. Thermophysical properties using ND/water nanofluids: An experimental study, ANFIS-based model and optimization , 2021, Journal of Molecular Liquids.
[90] A. Gürel,et al. A review of stability, thermophysical properties and impact of using nanofluids on the performance of refrigeration systems , 2021 .
[91] R. Senthil,et al. Heat transfer enhancement of concentrated solar absorber using hollow cylindrical fins filled with phase change material , 2021 .
[92] E. Bellos,et al. Recent advances on nanofluids for low to medium temperature solar collectors: energy, exergy, economic analysis and environmental impact , 2021 .
[93] I. Farkas,et al. The state of solar PV and performance analysis of different PV technologies grid-connected installations in Hungary , 2021 .
[94] Abdulwahab A. Alnaqi,et al. Thermo-hydraulic and economic performance of a parabolic trough solar collector equipped with finned rod turbulator and filled with oil-based hybrid nanofluid , 2021, Journal of the Taiwan Institute of Chemical Engineers.
[95] Abdulwahab A. Alnaqi,et al. Numerical investigation of hydrothermal efficiency of a parabolic dish solar collector filled with oil based hybrid nanofluid , 2021, Journal of the Taiwan Institute of Chemical Engineers.
[96] Bong Jae Lee,et al. Recent advances in using nanofluids in renewable energy systems and the environmental implications of their uptake , 2021 .
[97] Z. Said,et al. Recent progress on flat plate solar collectors and photovoltaic systems in the presence of nanofluid: A review , 2021, Journal of Cleaner Production.
[98] C. Cruickshank,et al. Energy analysis of heat pump water heaters coupled with air-based solar thermal collectors in Canada and the United States , 2021 .
[99] Saeed Alqaed,et al. Challenging of using CuO nanoparticles in a flat plate solar collector- Energy saving in a solar-assisted hot process stream , 2021, Journal of the Taiwan Institute of Chemical Engineers.
[100] Vijay Kumar,et al. A review on the application of hybrid nanofluids for parabolic trough collector: Recent progress and outlook , 2021 .
[101] Z. Said,et al. Analyzing entropy and thermal behavior of nanomaterial through solar collector involving new tapes , 2021 .
[102] G. Najafi,et al. Nanofluids for flat plate solar collectors: Fundamentals and applications , 2021 .
[103] Wei Peng,et al. Thermal performance enhancement of direct absorption solar collector using nanoparticle in sunray trap , 2021 .
[104] M. R. Muhammad,et al. Experimental investigations of the performance of a flat-plate solar collector using carbon and metal oxides based nanofluids , 2021, Energy.
[105] B. Stalin,et al. Comprehensive review on various parameters that influence the performance of parabolic trough collector , 2021, Environmental Science and Pollution Research.
[106] T. Mackuľak,et al. Environmental risk of nanomaterials and nanoparticles and EPR technique as an effective tool to study them—a review , 2021, Environmental Science and Pollution Research.
[107] R. E. Araujo,et al. Numerical assessment of transition metal nitrides nanofluids for improved performance of direct absorption solar collectors , 2021 .
[108] M. Dehaj,et al. Efficiency of the parabolic through solar collector using NiFe2O4/Water nanofluid and U-tube , 2021 .
[109] A. Abdel‐Rehim,et al. A comparison between flat-plate and evacuated tube solar collectors in terms of energy and exergy analysis by using nanofluid , 2021 .
[110] M. Sheikholeslami,et al. Investigation of solar collector system with turbulator considering hybrid nanoparticles , 2021 .
[111] Hadi Rostamzadeh,et al. Simultaneous energy storage enhancement and pressure drop reduction in flat plate solar collectors using rotary pipes with nanofluid , 2021 .
[112] A. Rashidi,et al. Investigation and optimization of the behavior of heat transfer and flow of MWCNT-CuO hybrid nanofluid in a brazed plate heat exchanger using response surface methodology , 2021 .
[113] D. Banerjee,et al. One-step synthesis of molten salt nanofluid for thermal energy storage application – a comprehensive analysis on thermophysical property, corrosion behavior, and economic benefit , 2021 .
[114] T.C. Manjunath,et al. A brief overview of maximum power point tracking algorithm for solar PV system , 2021 .
[115] M. S. Nazir,et al. Numerical simulation of the performance of a novel parabolic solar receiver filled with nanofluid , 2021, Journal of Thermal Analysis and Calorimetry.
[116] Yingying Fu,et al. Additive and High-Temperature Processing Boost the Photovoltaic Performance of Nonfullerene Organic Solar Cells Fabricated with Blade Coating and Nonhalogenated Solvents. , 2021, ACS applied materials & interfaces.
[117] M. Sheikholeslami,et al. Intensification of nanofluid thermal performance with install of turbulator in a LFR system , 2021 .
[118] K. Ravi Kumar,et al. Solar thermal energy technologies and its applications for process heating and power generation – A review , 2021 .
[119] Sourav Khanna,et al. Effect of Soiling on Solar Photovoltaic Performance under Desert Climatic Conditions , 2021, Energies.
[120] S. Azizian,et al. Super-stable carbon quantum dots nanofluid for efficient solar-thermal conversion , 2021 .
[121] Huaqing Xie,et al. Experimental optimization of nanofluids based direct absorption solar collector by optical boundary conditions , 2021 .
[122] D. K. Rabha,et al. Flat Plate Solar Thermal Collectors—A Review , 2021 .
[123] A. Sousa,et al. Solar energy absorbed thermosyphon flat plate collector analysis using Cu/H2O nanofluid – An experimental study , 2021 .
[124] A. M. Alklaibi,et al. Experimental analysis of exergy efficiency and entropy generation of diamond/water nanofluids flow in a thermosyphon flat plate solar collector , 2021 .
[125] M. Sheikholeslami,et al. Performance of solar collector with turbulator involving nanomaterial turbulent regime , 2021 .
[126] A. Sachdeva,et al. Time-based analysis of stability and thermal efficiency of flat plate solar collector using iron oxide nanofluid , 2021 .
[127] D. Zhao,et al. Visible‐Light Responsive TiO2‐Based Materials for Efficient Solar Energy Utilization , 2020, Advanced Energy Materials.
[128] Yanming Zhang,et al. Insights into the rheological behavior of ethanol-based metal oxide nanofluids , 2020, Journal of Molecular Liquids.
[129] N. Abu‐Hamdeh,et al. Effects of ribs on thermal performance of curved absorber tube used in cylindrical solar collectors , 2020 .
[130] Liu Yang,et al. Thermo-economic analysis of a novel parabolic trough solar collector equipped with preheating system and canopy , 2020 .
[131] M. Afrand,et al. Effect of U-shaped absorber tube on thermal-hydraulic performance and efficiency of two-fluid parabolic solar collector containing two-phase hybrid non-Newtonian nanofluids , 2020 .
[132] Ting Ma,et al. Recent trends on nanofluid heat transfer machine learning research applied to renewable energy , 2020 .
[133] Rajat Gupta,et al. Experimental study on thermal conductivity of mono and hybrid Al2O3–TiO2 nanofluids for concentrating solar collectors , 2020, International Journal of Energy Research.
[134] Azim Doğuş Tuncer,et al. Effect of turbulator modifications on the thermal performance of cost-effective alternative solar air heater , 2020 .
[135] H. Alawadhi,et al. Evaluation of the nanofluid-assisted desalination through solar stills in the last decade. , 2020, Journal of environmental management.
[136] M. Valipour,et al. Thermal performance analysis of a flat plate solar collector by utilizing helically corrugated risers: An experimental study , 2020 .
[137] Mostafa Safdari Shadloo,et al. Applications of nanofluids containing carbon nanotubes in solar energy systems: A review , 2020 .
[138] M. Sheikholeslami,et al. Influence of Al2O3 nano powder on performance of solar collector considering turbulent flow , 2020 .
[139] M. Bozorgi,et al. Effect of design and operating parameters on thermal performance of low-temperature direct absorption solar collectors: a review , 2020, Journal of Thermal Analysis and Calorimetry.
[140] A. Sousa,et al. Energy, efficiency, economic impact, and heat transfer aspects of solar flat plate collector with Al2O3 nanofluids and wire coil with core rod inserts , 2020 .
[141] M. Sheikholeslami,et al. Numerical examination for entropy generation of turbulent nanomaterial flow using complex turbulator in a solar collector , 2020 .
[142] Mostafa Safdari Shadloo,et al. A review on the properties, preparation, models and stability of hybrid nanofluids to optimize energy consumption , 2020, Journal of Thermal Analysis and Calorimetry.
[143] S. Zubair,et al. A comprehensive thermal-hydraulic assessment of solar flat-plate air heaters , 2020 .
[144] R. Saidur,et al. Thermal performance enhancement of a flat plate solar collector using hybrid nanofluid , 2020, Solar Energy.
[145] Arvind Kumar,et al. An up-to-date review on evacuated tube solar collectors , 2020, Journal of Thermal Analysis and Calorimetry.
[146] M. Jafaryar,et al. CuO nanomaterial two-phase simulation within a tube with enhanced turbulator , 2020 .
[147] M. Jafaryar,et al. Energy and entropy evaluation and two-phase simulation of nanoparticles within a solar unit with impose of new turbulator , 2020 .
[148] E. Bellos,et al. A systematic parametric thermal analysis of nanofluid-based parabolic trough solar collectors , 2020, Sustainable Energy Technologies and Assessments.
[149] Shijo Thomas,et al. Development of a low cost nanofluid based direct absorption solar collector , 2020 .
[150] A. Yurddaş. Optimization and thermal performance of evacuated tube solar collector with various nanofluids , 2020 .
[151] T. Al‐Ansari,et al. An experimental study on stability and thermal conductivity of water/CNTs nanofluids using different surfactants: A comparison study , 2020 .
[152] A. Arabkoohsar,et al. Numerical simulation for turbulent flow in a tube with combined swirl flow device considering nanofluid exergy loss , 2020 .
[153] Shijo Thomas,et al. Investigation on influence of antimony tin oxide/silver nanofluid on direct absorption parabolic solar collector , 2020, Journal of Cleaner Production.
[154] B. Yilbas,et al. Performance enhancement of solar energy systems using nanofluids: An updated review , 2020, Renewable Energy.
[155] Omar Z. Sharaf,et al. Ultrastable plasmonic nanofluids in optimized direct absorption solar collectors , 2019, Energy Conversion and Management.
[156] Yen Chean Soo Too,et al. Effect of short cloud shading on the performance of parabolic trough solar power plants: motorized vs manual valves , 2019, Renewable Energy.
[157] M. Sheikholeslami,et al. Nanofluid flow inside a solar collector utilizing twisted tape considering exergy and entropy analysis , 2019, Renewable Energy.
[158] M. Sheikholeslami,et al. FVM modeling of nanofluid forced convection through a solar unit involving MCTT , 2019, International Journal of Mechanical Sciences.
[159] Mohsen Sheikholeslami,et al. Simulation of nanoparticles second law treatment inside a solar collector considering turbulent flow , 2019, Physica A: Statistical Mechanics and its Applications.
[160] S. Iniyan,et al. Enhancing the optical and thermal efficiency of a parabolic trough collector – A review , 2019, Applied Energy.
[161] S. Jafarmadar,et al. Experimental investigations on the effect of geometrical properties of helical wire turbulators on thermal performance of a helically coiled tube , 2019, Applied Thermal Engineering.
[162] İbrahim Halil Yılmaz,et al. Modeling, simulation and performance analysis of parabolic trough solar collectors: A comprehensive review , 2018, Applied Energy.
[163] E. Bellos,et al. Enhancing the performance of parabolic trough collectors using nanofluids and turbulators , 2018, Renewable and Sustainable Energy Reviews.
[164] Yuan Yuan,et al. Progress in concentrated solar power technology with parabolic trough collector system: A comprehensive review , 2017 .
[165] D. D. Col,et al. Investigation of a single wall carbon nanohorn-based nanofluid in a full-scale direct absorption parabolic trough solar collector , 2017 .
[166] K. H. Solangi,et al. A bio-based, facile approach for the preparation of covalently functionalized carbon nanotubes aqueous suspensions and their potential as heat transfer fluids. , 2017, Journal of colloid and interface science.
[167] A. Alazzam,et al. Adapting Steady-State Solar Power Models to Include Transients , 2017 .
[168] Nathan S Lewis,et al. Research opportunities to advance solar energy utilization , 2016, Science.
[169] Jens K Nørskov,et al. Materials for solar fuels and chemicals. , 2016, Nature materials.
[170] M. I. Ahmed,et al. Heat transfer enhancement in a triangular duct using compound nanofluids and turbulators , 2015 .
[171] B. El-Khasawneh,et al. Optimizing thermal energy storage operation , 2015 .
[172] Mohd. Kaleem Khan,et al. Performance enhancement of solar collectors—A review , 2015 .
[173] Anas Alazzam,et al. Balancing heat transfer fluid flow in solar fields , 2014 .
[174] Elias K. Stefanakos,et al. Solar thermal power plant simulation , 2013 .
[175] Saad Mekhilef,et al. A review on solar energy use in industries , 2011 .