Systematic review of diffuser-augmented horizontal-axis turbines

Renewable and Sustainable Energy Reviews - Tập 133 - Trang 110075 - 2020
Matheus M. Nunes1, Antonio C.P. Brasil Junior1, Taygoara F. Oliveira1
1University of Brasilia. Department of Mechanical Engineering, Energy and Environment Laboratory, 70910, Brasilia, DF, Brazil

Tài liệu tham khảo

Grant Ã, 2008, Urban wind energy conversion: the potential of ducted turbines, Renew Energy, 33, 1157, 10.1016/j.renene.2007.08.005 K Abe, 2006, An experimental study of tip-vortex structures behind a small wind turbine with a flanged diffuser. Wind and Structures, Int J, 9, 413 Abe, 2005, Experimental and numerical investigations of flow fields behind a small wind turbine with a flanged diffuser, J Wind Eng Ind Aerod, 93, 951, 10.1016/j.jweia.2005.09.003 Abe, 2004, An investigation of flow fields around flanged diffusers using CFD, J Wind Eng Ind Aerod, 92, 315, 10.1016/j.jweia.2003.12.003 Agha, 2018, Diffuser augmented wind turbine (DAWT) technologies: a review, Int J Renew Energy Resour, 8, 1369 Amer, 2013, Effect of diffuser configuration on the flow field pattern inside wind concentrator, 212 Anzai, 2004, Wind tunnel analysis of concentrators for augmented wind turbines, Wind Eng, 28, 605, 10.1260/0309524043028082 Aranake, 2017, Aerodynamic optimization of shrouded wind turbines, Wind Energy, 20, 877, 10.1002/we.2068 Aranake, 2013, Computational analysis of shrouded wind turbine configurations Aranake, 2015, Computational analysis of shrouded wind turbine configurations using a 3-dimensional RANS solver, Renew Energy, 75, 818, 10.1016/j.renene.2014.10.049 Avallone, 2019, On the effect of the tip clearance on the aerodynamic and aeroacoustics of a diffuser-augmented wind turbine, 1 Avallone, 2020, On the effect of the tip-clearance ratio on the aeroacoustics of a diffuser-augmented wind turbine, Renew Energy, 152, 1317, 10.1016/j.renene.2020.01.064 Bailey, 2012 Baratchi, 2019, A modified implementation of actuator line method for simulating ducted tidal turbines, Ocean Eng, 193, 10.1016/j.oceaneng.2019.106586 Baratchi, 2020, Assessment of blade element actuator disk method for simulations of ducted tidal turbines, Renew Energy, 154, 290, 10.1016/j.renene.2020.02.098 Albert, 1966 Bontempo, 2013, Solution of the flow over a non-uniform heavily loaded ducted actuator disk, J Fluid Mech, 728, 163, 10.1017/jfm.2013.257 Bontempo, 2014, Performance analysis of open and ducted wind turbines, Appl Energy, 136, 405, 10.1016/j.apenergy.2014.09.036 Bontempo, 2016, Effects of the duct thrust on the performance of ducted wind turbines, Energy, 99, 274, 10.1016/j.energy.2016.01.025 R. Bontempo and M. Manna. On the potential of the ideal diffuser augmented wind turbine: an investigation by means of a momentum theory approach and of a free-wake ring-vortex actuator disk model. Energy Convers Manag, 213, 2020. Buehrle, 2013, Computational modeling of ducted wind turbines for residential applications, 6 A, 1 Burton, 2011 Cardona-Mancilla, 2018, A numerical simulation of horizontal axis hydrokinetic turbine with and without augmented diffuser, Int J Renew Energy Resour, 8, 1833 Chaker, 2016, Vortices' characteristics to explain the flange height effects on the aerodynamic performances of a diffuser augmented wind turbine, Journal of Solar Energy Engineering, Transactions of the ASME, 138, 10.1115/1.4034906 Su Huei, 2015, Design of a wind energy capturing device for a vehicle Chen, 2012, Experimental study on aerodynamics of micro-wind turbines with large-tip non-twisted blades, Journal of Mechanics, 29, N15, 10.1017/jmech.2013.35 Chica, 2018, Influence of the diffusor angle and a damper opening angle on the performance of a hydrokinetic turbine, Environ Prog Sustain Energy, 37, 824, 10.1002/ep.12706 Chowdhury, 2013 Civalier, 2001, Comparative analysis of three concepts for Aerostat based electrical power generation system Coiro, 2017, Development, deployment and experimental test on the novel tethered system GEM for tidal current energy exploitation, Renew Energy, 114, 323, 10.1016/j.renene.2017.01.040 Coiro, 2016, Diffuser shape optimization for GEM, a tethered system based on two horizontal axis hydro turbines, International Journal of Marine Energy, 13, 169, 10.1016/j.ijome.2015.08.002 John, 1998, Conway. Exact actuator disk solutions for non-uniform heavy loading and slipstream contraction, J Fluid Mech, 365, 235, 10.1017/S0022112098001372 Cronin, 2008, Undertaking a literature review: a step-by-step approach, Br J Nurs, 17, 38, 10.12968/bjon.2008.17.1.28059 Daniele, 2013, Optimization of diffuser geometry for an horizontal axis shrouded hydro turbine, 240 Daniele, 2013, Horizontal axis hydroturbine shroud airfoil optimization, vol. 36, 241 O de Vries, 1979, Fluid dynamic aspects of wind energy conversion, AGARDograph, 148 Dighe, 2017, Effects of gurney flap on the performance of diffuser augmented wind turbines Dighe, 2019, Multi-element ducts for ducted wind turbines: a numerical study, Wind Energy Science, 4, 439, 10.5194/wes-4-439-2019 Dighe, 2016, Computational study of diffuser augmented wind turbine using actuator disc force method, International Journal of Computational Methods and Experimental Measurements, 4, 522, 10.2495/CMEM-V4-N4-522-531 Dighe, 2018, On the effects of the shape of the duct for ducted wind turbines Dighe, 2019, Effects of yawed inflow on the aerodynamic and aeroacoustic performance of ducted wind turbines, J Wind Eng Ind Aerod, 201, 104174 2014, An extension of the blade element momentum method applied to diffuser augmented wind turbines, Energy Convers Manag, 87, 1116, 10.1016/j.enconman.2014.03.064 El-Zahaby, 2017, CFD analysis of flow fields for shrouded wind turbine's diffuser model with different flange angles, Alexandria Engineering Journal, 56, 171, 10.1016/j.aej.2016.08.036 Elsevier 2004 Fletcher, 1981, Computational analysis of diffuser-augmented wind turbines, Energy Convers Manag, 21, 175, 10.1016/0196-8904(81)90012-1 Foote, 2012, Optimization of power generation from shrouded wind turbines, 1325 Foreman, 1978, Diffuser augmentation of wind turbines, Sol Energy, 20, 305, 10.1016/0038-092X(78)90122-6 Gaden, 2010, A numerical investigation into the effect of diffusers on the performance of hydro kinetic turbines using a validated momentum source turbine model, Renew Energy, 35, 1152, 10.1016/j.renene.2009.11.023 Gilbert, 1978, Fluid dynamics OF diffuser-augmented wind turbines, J Energy, 2, 368, 10.2514/3.47988 Gish, 2016, Experimental and numerical study on performance of shrouded hydrokinetic turbines Göltenbott, 2017, Aerodynamic interaction of diffuser augmented wind turbines in multi-rotor systems, Renew Energy, 112, 25, 10.1016/j.renene.2017.05.014 Grant, 2004, A ducted wind turbine model for building simulation, Build Serv Eng Technol, 25, 339, 10.1191/0143624404bt099oa Daniel Gysling and Ercan Dumlupinar. Mixer-ejector turbine with annular airfoils, June 2014. Flodesign Wind Turbine Corp. Han, 2015, Design of wind turbines with shroud and lobed ejectors for efficient utilization of low-grade wind energy, Energy, 89, 687, 10.1016/j.energy.2015.06.024 Hashem, 2017 Heikal, 2018, On the actual power coefficient by theoretical developing of the diffuser flange of wind-lens turbine, Renew Energy, 125, 295, 10.1016/j.renene.2018.02.100 Heo, 2016, CFD study on aerodynamic power output of a 110 kW building augmented wind turbine, Energy Build, 129, 162, 10.1016/j.enbuild.2016.08.004 Hermawan, 2018, Experimental study effect of flange addition on mechanical power of diffuser augmented counter rotating wind turbine Hu, 2015, Upgrading a shrouded wind turbine with a self-adaptive flanged diffuser, Energies, 8, 5319, 10.3390/en8065319 Igra, 1981, Research and development for shrouded wind turbines, Energy Convers Manag, 21, 13, 10.1016/0196-8904(81)90005-4 Igra, 1981, Shrouded wind turbine research in Israel, Int J Ambient Energy, 2, 85, 10.1080/01430750.1981.9675760 Ozer, 1977, The shrouded aerogenerator, Energy, 2, 429, 10.1016/0360-5442(77)90006-8 Jafari, 2014, Flow analysis of shrouded small wind turbine with a simple frustum diffuser with computational fluid dynamics simulations, J Wind Eng Ind Aerod, 125, 102, 10.1016/j.jweia.2013.12.001 Jamieson, 2008, Generalized limits for energy extraction in a linear constant velocity flow field, Wind Energy, 11, 445, 10.1002/we.268 Peter, 2009, Jamieson. Beating Betz: energy extraction limits in a constrained flow field, Journal of Solar Energy Engineering-transactions of The Asme - J SOL ENERGY ENG, 131, 310081 Kale, 2013, CFD analysis for optimization of diffuser for a micro wind turbine, 257 Kanya, 2018 Kardous, 2016, Locations of vortices and their impacts on the aerodynamic performances of a diffuser and a DAWT Kardous, 2013, On the dependence of an empty flanged diffuser performance on flange height: numerical simulations and PIV visualizations, Renew Energy, 56, 123, 10.1016/j.renene.2012.09.061 S Ke, W Wen-Quan, and Y Yan. The hydrodynamic performance of a tidal-stream turbine in shear flow. Ocean Eng, 199, 2020. Najafi, 2020, An innovative variable shroud for micro wind turbines, Renew Energy, 145, 1061, 10.1016/j.renene.2019.06.098 Khamlaj, 2018, Analysis and optimization study of shrouded horizontal axis wind turbines Rumpfkeil, 2017, Theoretical analysis of shrouded horizontal axis wind turbines, Energies, 10, 1 Rumpfkeil, 2018, Analysis and optimization of ducted wind turbines, Energy, 162, 1234, 10.1016/j.energy.2018.08.106 Koç, 2019, Effect of flap on the wind turbine-concentrator combination, Int J Renew Energy Resour, 9, 551 Kosasih, 2012, Experimental study of shrouded micro-wind turbine, vol. 49, 92 Kosasih, 2016, Influence of inflow turbulence intensity on the performance of bare and diffuser-augmented micro wind turbine model, Renew Energy, 87, 154, 10.1016/j.renene.2015.10.013 Kulak, 2016, CFD analysis of Diffuser Augmented Wind Turbine model for wind tunnel investigation, 5538 Kumar, 2019, Theoretical performance estimation of shrouded-twin-rotor wind turbines using the actuator disk theory, Renew Energy, 134, 961, 10.1016/j.renene.2018.11.077 Kuo, 2016, Wind farm layout optimization on complex terrains – Integrating a CFD wake model with mixed-integer programming, Appl Energy, 178, 404, 10.1016/j.apenergy.2016.06.085 Lawn, 2003, Optimization of the power output from ducted turbines, Proc IME J Power Energy, 217, 107, 10.1243/095765003321148754 Leloudas, 2020, A robust methodology for the design optimization of diffuser augmented wind turbine shrouds, Renew Energy, 150, 722, 10.1016/j.renene.2019.12.098 Lilley, 1956 Lipian, 2019, Small wind turbine augmentation: experimental investigations of shrouded- and twin-rotor wind turbine systems, Energy, 186, 10.1016/j.energy.2019.115855 M. Lipian, I. Dobrev, F. Massouh, and K. Jozwik. Small wind turbine augmentation: numerical investigations of shrouded- and twin-rotor wind turbines. Energy, 201, 2020. Lipian, 2015, Sensitivity study of diffuser angle and brim height parameters for the design of 3 kW Diffuser Augmented Wind Turbine, Open Eng, 5, 280, 10.1515/eng-2015-0034 Liu, 2015, An extension of the Generalized Actuator Disc Theory for aerodynamic analysis of the diffuser-augmented wind turbines, Energy, 93, 1852, 10.1016/j.energy.2015.09.114 Loeffler, 1981, Flow field analysis and performance of wind turbines employing slotted diffusers, Journal of Solar Energy Engineering, Transactions of the ASME, 103, 17, 10.1115/1.3266198 Mariotti, 2015, Use of multiple local recirculations to increase the efficiency in diffusers, Eur J Mech B Fluid, 50, 27, 10.1016/j.euromechflu.2014.11.004 Masukume, 2018, Optimization of the power output of a bare wind turbine by the use of a plain conical diffuser, Sustainability, 10, 10.3390/su10082647 Matsushima, 2006, Characteristics of a highly efficient propeller type small wind turbine with a diffuser, Renew Energy, 31, 1343, 10.1016/j.renene.2005.07.008 Mehmood, 2012, Diffuser augmented horizontal axis tidal current turbines, Res J Appl Sci Eng Technol, 4, 3522 Mehmood, 2012, CFD study of NACA 0018 for diffuser design of tidal current turbines, Res J Appl Sci Eng Technol, 4, 4552 Mertens, 2002, Wind energy in urban areas: concentrator effects for wind turbines close to buildings, Refocus, 3, 22, 10.1016/S1471-0846(02)80023-3 Michal, 2016, Analysis and comparison of numerical methods for design and development of small Diffuser-Augmented Wind Turbine (DAWT), 5525 Michał, 2016, Numerical simulation methodologies for design and development of Diffuser-Augmented Wind Turbines-analysis and comparison, Open Eng, 6, 235 Nasution, 2011, Optimized curvature interior profile for Diffuser Augmented Wind Turbine (DAWT) to increase its energy-conversion performance, 315 Nunes, 2019, An experimental study on the diffuser-enhanced propeller hydrokinetic turbines, Renew Energy, 133, 840, 10.1016/j.renene.2018.10.056 Ohya, 2010, A shrouded wind turbine generating high output power with wind-lens technology, Energies, 3, 634, 10.3390/en3040634 Ohya, 2012, Numerical studies of flow around a wind turbine equipped with a flanged-diffuser shroud using an actuator-disk model, Wind Eng, 36, 455, 10.1260/0309-524X.36.4.455 Ohya, 2014, Bluff body flow and vortex - its application to wind turbines, Fluid Dynam Res, 46, 61423, 10.1088/0169-5983/46/6/061423 Ohya, 2006, Development of a high-performance wind turbine equipped with a brimmed diffuser shroud, Trans Jpn Soc Aeronaut Space Sci, 49, 18, 10.2322/tjsass.49.18 Ohya, 2017, Power augmentation of shrouded wind turbines in a multirotor system, Journal of Energy Resources Technology, Transactions of the ASME, 139, 10.1115/1.4035754 N Oka, M Furukawa, K Yamada, K Kawamitsu, K Kido, and A Oka. Simultaneous optimization of rotor blade and wind-lens for aerodynamic design of wind-lens turbine. In ASME turbo expo 2014: turbine technical conference and exposition, GT 2014, volume 3B, Department of Mechanical Engineering, Kyushu University, Fukuoka, Japan, 2014. [American Society of Mechanical Engineers (ASME)]. Oka, 2013, Aerodynamic design for wind-lens turbine using optimization technique, 1 A Oka, 2015, Aerodynamic performances and flow fields of pareto optimal solutions in an aerodynamic design of a wind-lens turbine, vol. 9 Okhio, 1983, Effects of swirl on flow separation and performance of wide angle diffusers, Int J Heat Fluid Flow, 4, 199, 10.1016/0142-727X(83)90039-5 Olasek, 2016, Wind tunnel experimental investigations of a diffuser augmented wind turbine model, Int J Numer Methods Heat Fluid Flow, 26, 2033, 10.1108/HFF-06-2015-0246 Oman, 1977 Negri Pagani, 2015, Methodi Ordinatio: a proposed methodology to select and rank relevant scientific papers encompassing the impact factor, number of citation, and year of publication, Scientometrics, 105, 2109, 10.1007/s11192-015-1744-x Petković, 2014, Adaptive neuro-fuzzy estimation of building augmentation of wind turbine power, Comput Fluid, 97, 188, 10.1016/j.compfluid.2014.04.016 Phillips, 1999, Aerodynamic analysis and monitoring of the Vortec 7 diffuser-augmented wind turbine. Transactions of the Institution of Professional Engineers New Zealand, Electrical, Mechanical, and Chemical Engineering Section, 26, 13 Phillips, 1999, Computational fluid dynamic and wind tunnel modelling of a Diffuser Augmented Wind Turbine, Wind Eng, 23, 7 Prabhu, 2019, CFD analysis of shrouded diffuser wind turbine, Int J Eng Adv Technol, 8, 2100, 10.35940/ijeat.F1400.0986S319 Walter M. Presz Jr and Michael J. Werle. Wind turbine with mixers and ejectors, September 2011. Flodesign Wind Turbine Corp. Presz, 2011 Ranjbar, 2017, Optimization of a flanged DAWT using a CFD actuator disc method, vol. 259, 219 Riglin, 2015, Design and characteristics of a micro-hydrokinetic turbine system Riglin, 2014, Diffuser optimization for a micro-hydrokinetic turbine, vol. 7 Jacob, 2015, Numerical analysis of a shrouded micro-hydrokinetic turbine unit, J Hydraul Res, 53, 525, 10.1080/00221686.2015.1032375 Rowell, 2013, Experimental evaluation of a mixer-ejector marine hydrokinetic turbine at two open-water tidal energy test sites in NH and MA, Mar Technol Soc J, 47, 67, 10.4031/MTSJ.47.4.15 A Saleem and M.-H. Kim. Effect of rotor tip clearance on the aerodynamic performance of an aerofoil-based ducted wind turbine. Energy Convers Manag, 201, 2019. Scherillo, 2011, Numerical and experimental analysis of a shrouded hydroturbine, 216 Setoguchi, 2004, Development of two-way diffuser for fluid energy conversion system, Renew Energy, 29, 1757, 10.1016/j.renene.2004.02.007 Shahsavarifard, 2015, Effect of shroud on the performance of horizontal axis hydrokinetic turbines, Ocean Eng, 96, 215, 10.1016/j.oceaneng.2014.12.006 Shahsavarifard, 2015, Yaw operation of a shrouded horizontal axis hydrokinetic turbine Mohxammad Shahsavarifard and Eric Louis Bibeau. Performance characteristics of shrouded horizontal axis hydrokinetic turbines in yawed conditions. Ocean Eng, 197, 2020. Shi, 2015, Optimal design of a thin-wall diffuser for performance improvement of a tidal energy system for an AUV, Ocean Eng, 108, 1, 10.1016/j.oceaneng.2015.07.064 M Shives and C Crawford. Ducted turbine blade optimization using numerical simulation. In 21st international offshore and polar engineering conference, ISOPE-2011, pages 407–413, Department of Mechanical Engineering, University of Victoria, Victoria, BC, Canada, 2011. Shives, 2012, Developing an empirical model for ducted tidal turbine performance using numerical simulation results, Proc IME J Power Energy, 226, 112, 10.1177/0957650911417958 Song, 2018, Numerical and experimental analysis of a diffuser-augmented micro-hydro turbine, Ocean Eng, 171, 590 Sorribes-Palmer, 2017, Aerodynamic design of a wind turbine diffuser with OpenFOAM Sorribes-Palmer, 2017, Mixed CFD-1D wind turbine diffuser design optimization, Renew Energy, 105, 386, 10.1016/j.renene.2016.12.065 Sun, 2012, Analysis of performances of a shrouded horizontal axis tidal turbine Takahashi, 2012, Behavior of the blade tip vortices of a wind turbine equipped with a brimmed-diffuser shroud, Energies, 5, 5229, 10.3390/en5125229 Tampier, 2017, Numerical analysis of a diffuser-augmented hydrokinetic turbine, Ocean Eng, 145, 138, 10.1016/j.oceaneng.2017.09.004 Ten Hoopen, 2009 Toshimitsu, 2008, PIV measurements of flows around the wind turbines with a flanged-diffuser shroud, J Therm Sci, 17, 375, 10.1007/s11630-008-0375-4 Van Bussel, 2007, The science of making more torque from wind: diffuser experiments and theory revisited, J Phys Conf, 75, 7 van Dorst, 2011 Vaz, 2016, Aerodynamic optimization of the blades of diffuser-augmented wind turbines, Energy Convers Manag, 123, 35, 10.1016/j.enconman.2016.06.015 Venters, 2013, A numerical investigation of high lift coefficient airfoils near regions of stall, 1 A Vermillion, 2012, Modeling and control design for a prototype lighter-than-air wind energy system, 5813 Vermillion, 2014, Model-based plant design and hierarchical control of a prototype lighter-than-air wind energy system, with experimental flight test results, IEEE Trans Contr Syst Technol, 22, 531, 10.1109/TCST.2013.2263505 Wang, 2019, Influence of interaction between the diffuser and rotor on energy harvesting performance of a micro-diffuser-augmented hydrokinetic turbine, Ocean Eng, 189, 10.1016/j.oceaneng.2019.106293 Wang, 2015, Experimental investigation into the in fl uence of the fl anged diffuser on the dynamic behavior of CFRP blade of a shrouded wind turbine, Renew Energy, 78, 386, 10.1016/j.renene.2015.01.028 Watanabe, 2019, Multi-rotor systems using ducted wind turbines for power output increase (Multi lens turbine), 816 Watanabe, 2019, Multirotor systems using three shrouded wind turbines for power output increase, Journal of Energy Resources Technology, Transactions of the ASME, 141, 10.1115/1.4042971 Watanabe, 2019, Power output enhancement of a ducted wind turbine by stabilizing vortices around the duct, Energies, 12, 10.3390/en12163171 Watson, 2007, Modelling of the performance of a building-mounted ducted wind turbine, J Phys Conf, 75 Weng, 2012, Model predictive longitudinal control of a lighter-than-air wind energy system, vol. 2, 275 Wood, 2017 Yuji, 2019, A new approach toward power output enhancement using multirotor systems with shrouded wind turbines, Journal of Energy Resources Technology, Transactions of the ASME, 141, 10.1115/1.4042235 Zitzler, 1999, Multiobjective evolutionary algorithms: a comparative case study and the strength pareto approach, IEEE Trans Evol Comput, 3, 257, 10.1109/4235.797969