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2000
Volume 18, Issue 9
  • ISSN: 2352-0965
  • E-ISSN: 2352-0973

Abstract

In hybrid renewable energy systems, it consists of various sources with their properties for power management is an essential responsibility. To maintain the system's dependability, stability, and efficiency, the power management strategy attempts to balance the power flow between the sources, load, and energy storage system. With an emphasis on the effects of source variation on system performance, the author examines different power management techniques for hybrid renewable energy systems that have been put out in the literature. In this paper, the author divides the strategies into four groups as intelligent, rule-based, filtration-based, and optimization-based. To demonstrate the benefits and drawbacks of each category, as well as the difficulties and potential paths forward for power management in the face of source fluctuation.

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2026-01-08
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References

  1. JiangJ. JiangQ. ChenJ. ZhouX. ZhuS. ChenT. Advanced power management and control for hybrid electric vehicles: Advanced survey.Wirel. Commun. Mob. Comput.202120211665203810.1155/2021/6652038
    [Google Scholar]
  2. dos Santos NetoP.J. BarrosT.A.S. SilveiraJ.P.C. Ruppert FilhoE. VasquezJ.C. GuerreroJ.M. Power management techniques for grid-connected DC microgrids: Advanced comparative evaluation.Appl. Energy202026911505710.1016/j.apenergy.2020.115057
    [Google Scholar]
  3. BakareM.S. AbdulkarimA. ZeeshanM. ShuaibuA.N. A comprehensive overview on demand side energy management towards smart grids: Challenges, solutions, and future direction.Energy Informatics202361410.1186/s42162‑023‑00262‑7
    [Google Scholar]
  4. TabarV.S. AbbasiV. Energy management in microgrid with considering high penetration of renewable resources and surplus power generation problem.Energy201918911626410.1016/j.energy.2019.116264
    [Google Scholar]
  5. AmirM. Zaheeruddin HaqueA. BakhshF.I. KurukuruV.S.B. SedighizadehM. Intelligent energy management scheme‐based coordinated control for reducing peak load in grid‐connected photovoltaic‐powered electric vehicle charging stations.IET Gener. Transm. Distrib.20241861205122210.1049/gtd2.12772
    [Google Scholar]
  6. YouL. MaH. Kumar SahaT. A CVaR-constrained optimal power flow model for wind integrated power systems considering Transmission-side flexibility.Int. J. Electr. Power Energy Syst.202315010908710.1016/j.ijepes.2023.109087
    [Google Scholar]
  7. Renewable Power Capacity 2020.2020Available from: https://www.irena.org/publications/2021/Mar/Renewable-Capacity-Statistics
  8. OlabiA.G. OnumaegbuC. WilberforceT. RamadanM. AbdelkareemM.A. Al - AlamiA.H. Critical review of energy storage systems.Energy202121411898710.1016/j.energy.2020.118987
    [Google Scholar]
  9. SinghM. YadavM.R. DhakedD.K. A review on various voltage boosting topology in DC-DC converter.Recent Adv. Electr. Electron. Eng.202417655457210.2174/2352096516666230901140600
    [Google Scholar]
  10. WangY. ZouR. LiuF. ZhangL. LiuQ. A review of wind speed and wind power forecasting with deep neural networks.Appl. Energy202130411776610.1016/j.apenergy.2021.117766
    [Google Scholar]
  11. ZhuZ. JiangT. AliM. MengY. JinY. CuiY. ChenW. Rechargeable batteries for grid scale energy storage.Chem. Rev.202212222166101675110.1021/acs.chemrev.2c0028936150378
    [Google Scholar]
  12. Koohi-FayeghS. RosenM.A. A review of energy storage types, applications and recent developments.J. Energy Storage20202710104710.1016/j.est.2019.101047
    [Google Scholar]
  13. SharmaM. DhundharaS. Singh SranR. Impact of hybrid electrical energy storage system on realistic deregulated power system having large-scale renewable generation.Sustain. Energy Technol. Assess.20235610302510.1016/j.seta.2023.103025
    [Google Scholar]
  14. RekiouaD. Energy storage systems for photovoltaic and wind systems: Advanced review.Energies2023169389310.3390/en16093893
    [Google Scholar]
  15. RanaM.M. UddinM. SarkarM.R. MerajS.T. ShafiullahG.M. MuyeenS.M. IslamM.A. JamalT. Applications of energy storage systems in power grids with and without renewable energy integration — A comprehensive review.J. Energy Storage20236810781110.1016/j.est.2023.107811
    [Google Scholar]
  16. AhmedA.A. AlsharifA. YasserN. Recent advances in energy storage technologies.Int. J. Electr. Eng. Sustain.2023917
    [Google Scholar]
  17. SepulvedaN.A. JenkinsJ.D. EdingtonA. MallapragadaD.S. LesterR.K. The design space for long-duration energy storage in decarbonized power systems.Nat. Energy20216550651610.1038/s41560‑021‑00796‑8
    [Google Scholar]
  18. SayedE. OlabiA. AlamiA. RadwanA. MdallalA. RezkA. AbdelkareemM. Renewable energy and energy storage systems.Energies2023163141510.3390/en16031415
    [Google Scholar]
  19. RahmanM.M. OniA.O. GemechuE. KumarA. Assessment of energy storage technologies: Advanced review.Energy Convers. Manage.202022311329510.1016/j.enconman.2020.113295
    [Google Scholar]
  20. AkhtarM.F. RaihanS.R.S. RahimN.A. AkhtarM.N. Abu BakarE. Recent developments in DC-DC converter topologies for light electric vehicle charging: Advanced critical review.Appl. Sci.2023133167610.3390/app13031676
    [Google Scholar]
  21. VenugopalR. ChandrasekarB. SavioA.D. NarayanamoorthiR. AborasK.M. KotbH. GhadiY.Y. ShouranM. ElgamliE. Review on unidirectional non-isolated high gain DC–DC converters for EV sustainable DC fast charging applications.IEEE Access202311782997833810.1109/ACCESS.2023.3276860
    [Google Scholar]
  22. ZhangP. VarakanthamP. Energy storage for mitigating the variability of renewable electricity sources: Advancedn updated review.Appl. Energy2015151417
    [Google Scholar]
  23. KundurP. BaluN.J. LaubyM.G. Power System Stability and Control.McGraw-Hill2004
    [Google Scholar]
  24. ZhangZ. DingT. ZhouQ. SunY. QuM. ZengZ. JuY. LiL. WangK. ChiF. A review of technologies and applications on versatile energy storage systems.Renew. Sustain. Energy Rev.202114811126310.1016/j.rser.2021.111263
    [Google Scholar]
  25. Hussaian BashaC.H. RafikiranS. SujathaS.S. FathimaF. PrashanthV. Srinivasa VarmaB. Design of GWO based fuzzy MPPT controller for fuel cell fed EV application with high voltage gain DC-DC converter.Mater. Today Proc.202392667210.1016/j.matpr.2023.03.727
    [Google Scholar]
  26. CobanH. LewickiW. Sendek-MatysiakE. ŁosiewiczZ. DrożdżW. MiśkiewiczR. Electric vehicles and vehicle–grid interaction in the turkish electricity system.Energies20221521821810.3390/en15218218
    [Google Scholar]
  27. CobanH.H. LewıckıW. Flexibility in power systems of integrating variable renewable energy sources.J. Adv. Res. Nat. Appl. Sci.20239119020410.28979/jarnas.1137363
    [Google Scholar]
  28. RafikiranS. DevadasuG. BashaC.H.H. TomP.M. vP. CD. KumbharA. MuyeenS.M. Design and performance analysis of hybrid MPPT controllers for fuel cell fed DC-DC converter systems.Energy Rep.202395826584210.1016/j.egyr.2023.05.030
    [Google Scholar]
  29. ZaghbaL. BorniA. BenbitourM.K. FezzaniA. AlwabliA. BajajM. Dost MohammadiS.A. GhoneimS.S.M. Enhancing grid-connected photovoltaic system performance with novel hybrid MPPT technique in variable atmospheric conditions.Sci. Rep.2024141820510.1038/s41598‑024‑59024‑438589473
    [Google Scholar]
  30. Hussaian BashaC. PalatiM. DhanamjayuluC. MuyeenS.M. VenkatareddyP. A novel on design and implementation of hybrid MPPT controllers for solar PV systems under various partial shading conditions.Sci. Rep.2024141160910.1038/s41598‑023‑49278‑938238374
    [Google Scholar]
  31. VenkateshR.J. PriyaR. HemachanduP. ReddyC.V.K. An optimization approach control of EV solar charging system with step-up DC–DC converter.Analog Integr. Circuits Signal Process.2024119221523210.1007/s10470‑024‑02253‑4
    [Google Scholar]
  32. RagupathyP. BhatS.D. KalaiselviN. Electrochemical energy storage and conversion: Advancedn overview.Wiley Interdiscip. Rev. Energy Environ.2023122e46410.1002/wene.464
    [Google Scholar]
  33. Kumar ThakurA. SathyamurthyR. VelrajR. SaidurR. PandeyA.K. MaZ. SinghP. HazraS.K. Wafa SharshirS. PrabakaranR. KimS.C. PanchalS. AliH.M. A state-of-the art review on advancing battery thermal management systems for fast-charging.Appl. Therm. Eng.202322612030310.1016/j.applthermaleng.2023.120303
    [Google Scholar]
  34. ShahW.U.H. HaoG. YanH. ZhuN. YasmeenR. DincăG. Role of renewable, non-renewable energy consumption and carbon emission in energy efficiency and productivity change: Evidence from G20 economies.Geoscience Frontiers2023101631
    [Google Scholar]
  35. HeathG. RaugeiM. Harmonization and extension of the renewable 20 (R20) methodology for systematic sustainability assessment of renewable energy technologies.Energy201360377391
    [Google Scholar]
  36. ShekharH. Bhushan MahatoC. SumanS.K. SinghS. BhagyalakshmiL. Prasad SharmaM. Laxmi KanthaB. TH.V. AgraharamS.K. RajaramA. Demand side control for energy saving in renewable energy resources using deep learning optimization.Electr. Power Compon. Syst.202351192397241310.1080/15325008.2023.2246463
    [Google Scholar]
  37. WaziraliR. YaghoubiE. AbujazarM.S.S. AhmadR. VakiliA.H. State-of-the-art review on energy and load forecasting in microgrids using artificial neural networks, machine learning, and deep learning techniques.Electr. Power Syst. Res.202322510979210.1016/j.epsr.2023.109792
    [Google Scholar]
  38. ZhangJ. HodgeB.M. SongH. Wind power ramp event prediction using a deep learning framework.Appl. Energy2019238480492
    [Google Scholar]
  39. YingC. WangW. YuJ. LiQ. YuD. LiuJ. Deep learning for renewable energy forecasting: Advanced taxonomy, and systematic literature review.J. Clean. Prod.202338413541410.1016/j.jclepro.2022.135414
    [Google Scholar]
  40. ZhangC. YangS. ZhangX. YuB. Energy storage systems in grids for sustainable development: Advanced review.Appl. Energy201820511891204
    [Google Scholar]
  41. ShuklaR. SinghN. RoyS. Power electronics for solar photovoltaic system: Configuration, topologies, and control.Handbook of Renewable Energy Technology & Systemsworldscientific2021235253
    [Google Scholar]
  42. LiuB. ZhouJ. GuoW. LiM. A many-objective optimization strategy for unified optimal operation of pumped storage hydropower station under multiple load rejection conditions.Energy Sustain. Dev.202374344910.1016/j.esd.2023.03.011
    [Google Scholar]
  43. SinghN. YadavM. Power quality issue, solution and analysis: DFIG.Recent Adv. Electr. Electron. Eng.2023164334346
    [Google Scholar]
  44. JohannsenR.M. MathiesenB.V. KermeliK. Crijns-GrausW. ØstergaardP.A. Exploring pathways to 100% renewable energy in European industry.Energy202326812668710.1016/j.energy.2023.126687
    [Google Scholar]
  45. SrivastavaD. SinghN. Bounded region for tracking by two fuzzy rules-based perturb and observe technique with fractional order-based proportional integral controller for a photovoltaic conversion system.Int. J. Ambient Energy.2024451226757710.1080/01430750.2023.2267577
    [Google Scholar]
  46. MurugeswariP. SelvaperumalS. NagalakshmiS. Design analysis of hybrid solar-wind renewable energy systems using water strider optimization.Phys. Scr.2024
    [Google Scholar]
  47. KumarS. KumarR. SinghN. Performance of closed loop SEPIC converter with DC-DC converter for solar energy system.2017 4th International Conference on Power, Control & Embedded Systems (ICPCES), Allahabad, India, 09-11 March 2017, pp. 1-6.10.1109/ICPCES.2017.8117668
    [Google Scholar]
  48. Reveles-MirandaM. Ramirez-RiveraV. Pacheco-CatalánD. Hybrid energy storage: Features, applications, and ancillary benefits.Renew. Sustain. Energy Rev.202419211419610.1016/j.rser.2023.114196
    [Google Scholar]
  49. Mohsenian-RadA.H. WongV.W.S. JatskevichJ. SchoberR. Leon-GarciaA. Autonomous demand-side management based on game-theoretic energy consumption scheduling for the future smart grid.IEEE Trans. Smart Grid20101332033110.1109/TSG.2010.2089069
    [Google Scholar]
  50. SinghN. AgarwalA. AgarwalV. Power control in centralized distributed AC load for wind energy system.J. Renew. Sustain. Energy20179303330310.1063/1.4982956
    [Google Scholar]
  51. PandiarajV. KalaiselvamS. Optimal operation and control strategies for hybrid energy storage systems.Sustain. Energy Technol. Assess.201724113
    [Google Scholar]
  52. YadavM.R. SinghN. Impact of negative solar resistance on DC microgrid stability: virtual damping voltage and current solar droop emulated controller.J. Circuits Syst. Comput.2023328235012610.1142/S0218126623501268
    [Google Scholar]
  53. AlizadehM.I. YassamiH. ZareK. Demand response program in smart grid: Advanced review.Renew. Sustain. Energy Rev.201779551568
    [Google Scholar]
  54. SianoP. Demand response and smart grids—A survey.Renew. Sustain. Energy Rev.20143046147810.1016/j.rser.2013.10.022
    [Google Scholar]
  55. GuptaR. SinghN. Fuzzy logic feed-forward impedance shaping of DAB converter in DC microgrid with CPL load.J. Power Elect.202323101576158410.1007/s43236‑023‑00641‑z
    [Google Scholar]
  56. ZhangH. WeiW. KangC. Smart grids in China—A review.Renew. Sustain. Energy Rev.201550625632
    [Google Scholar]
  57. FarhangiH. The path of the smart grid.IEEE Power Energy Mag.201081182810.1109/MPE.2009.934876
    [Google Scholar]
  58. BazdarE. SametiM. NasiriF. HaghighatF. Compressed air energy storage in integrated energy systems: Advanced review.Renew. Sustain. Energy Rev.202216711270110.1016/j.rser.2022.112701
    [Google Scholar]
  59. MorthorstP.E. Wind power in systems with 50–100% electricity from wind: Denmark, Ireland and Germany.Wind Eng.2000244277288
    [Google Scholar]
  60. YadavM. JaiswalP. SinghN. Fuzzy logic-based droop controller for parallel inverter in autonomous microgrid using vectored controlled feed-forward for unequal impedance.J. Inst. Eng. India Ser. B2021102469170510.1007/s40031‑021‑00588‑4
    [Google Scholar]
  61. SinghM. AgrawalS. Performance analysis of pv system with quasi z-source switched inductor/capacitor voltage gain converter.2021 Asian Conference on Innovation in Technology (ASIANCON), PUNE, India, 27-29 August 2021, pp. 1-4.10.1109/ASIANCON51346.2021.9544963
    [Google Scholar]
  62. NarayanaswamyJ. MandavaS. Non-isolated multiport converter for renewable energy sources: Advanced comprehensive review.Energies2023164183410.3390/en16041834
    [Google Scholar]
  63. YangY. BremnerS. MenictasC. KayM. Modelling and optimal energy management for battery energy storage systems in renewable energy systems: Advanced review.Renew. Sustain. Energy Rev.202216711267110.1016/j.rser.2022.112671
    [Google Scholar]
  64. RahimiI. NikooM.R. GandomiA.H. Techno-economic analysis for using hybrid wind and solar energies in Australia.Energy Strategy Reviews20234710109210.1016/j.esr.2023.101092
    [Google Scholar]
  65. NemetG.F. Solving the technology S‐curve diffusion of residential solar photovoltaic systems in the United States.Res. Policy2012413524538
    [Google Scholar]
  66. ShawP. SiddiqueM.D. MekhilefS. IqbalA. A new family of high gain boost DC‐DC converters with reduced switch voltage stress for renewable energy sources.Int. J. Circuit Theory Appl.20235131265128510.1002/cta.3464
    [Google Scholar]
  67. AlgamluoliA.F. WuX. MahmoodM.F. Optimized DC–DC converter based on new interleaved switched inductor capacitor for verifying high voltage gain in renewable energy applications.Sci. Rep.20231311643610.1038/s41598‑023‑42638‑537777533
    [Google Scholar]
  68. GuptaR. SinghN. ANFIS-based FOPID controller to enhanced stability of cascaded converter for electric vehicle (EV) charger.Engineering Research Express20246101505910.1088/2631‑8695/ad1f11
    [Google Scholar]
  69. MauryaA.K. PaswanS. YadavM.R. SinghN. Hybrid modulation technique for improvement of power factor and harmonic distortion in 24 pulse AC-DC converter.2020 International Conference on Electrical and Electronics Engineering (ICE3), Gorakhpur, India, 14-15 February 2020, pp. 291-296.10.1109/ICE348803.2020.9122799
    [Google Scholar]
  70. MonteiroJ. PiresV.F. FoitoD. CordeiroA. SilvaJ.F. PintoS. A buck-boost converter with extended duty-cycle range in the buck voltage region for renewable energy sources.Electronics202312358410.3390/electronics12030584
    [Google Scholar]
  71. SharmaA. SinghN. Load frequency control of a two-area using virtual inertia and a PSO-PID controller with integrated electric vehicles.Int. J. Ambient Energy.2024451232210110.1080/01430750.2024.2322101
    [Google Scholar]
  72. DhakedD.K. SinghM. BirlaD. Designing of DC microgrid with fast charging converter and control for solar PV, fuel cell and battery-integrated charging station. In Sustainable Energy and Technological Advancements.Proceedings of ISSETA20222021647659[Singapore: Springer Singapore.].
    [Google Scholar]
  73. HoppockD.C. The spanish feed-in tariff bubble.Energy Policy201251351356
    [Google Scholar]
  74. SovacoolB.K. DrupadyI.M. Examining the consistency of uk renewable energy policy and practice: The case of the low carbon building programme.Energy Policy201139954015410
    [Google Scholar]
  75. GoodenoughJ.B. ParkK.S. The Li-ion rechargeable battery: Advanced perspective.J. Am. Chem. Soc.201313541167117610.1021/ja309143823294028
    [Google Scholar]
  76. YadavM. SinghN. Impact of variable negative solar resistance: modified virtual feed forwarded with feedback emulated inertia controller.Int. J. Ambient Energy.20224316511652310.1080/01430750.2022.2029561
    [Google Scholar]
  77. ManthiramA. YuX. WangS. Lithium battery chemistries enabled by solid-state electrolytes.Nat. Rev. Mater.2017241610310.1038/natrevmats.2016.103
    [Google Scholar]
  78. ZhengJ. ArcherL.A. Controlling electrochemical growth of metallic zinc electrodes: Toward affordable rechargeable energy storage systems.Sci. Adv.202172eabe021910.1126/sciadv.abe021933523975
    [Google Scholar]
  79. CabezaL.F. CastellA. BarrenecheC. de GraciaA. FernándezA.I. Materials used as PCM in thermal energy storage in buildings: Advanced review.Renew. Sustain. Energy Rev.201721575591
    [Google Scholar]
  80. PriyadarshiN. BhaskarM.S. AzamF. SinghM. DhakedD.K. TahaI.B.M. HussienM.G. Performance evaluation of solar-PV-based non-isolated switched-inductor and switched-capacitor high-step-up cuk converter.Electronics2022119138110.3390/electronics11091381
    [Google Scholar]
  81. ChenY. WuD. HeH. GaoY. LiuX. Energy management in smart grids based on internet of things: Advanced review.IEEE Access201861659716605
    [Google Scholar]
  82. UddinM. MoH. DongD. ElsawahS. ZhuJ. GuerreroJ.M. Microgrids: Advanced review, outstanding issues and future trends.Energy Strategy Reviews20234910112710.1016/j.esr.2023.101127
    [Google Scholar]
  83. ShuklaA. YadavM. SinghN. Design and control of DC/AC microgrid with H-bridge multi-level inverter for unbalance loading.Proceedings of the International Conference on Advances in Electronics, Electrical & Computational Intelligence (ICAEEC) April 14, 2020.
    [Google Scholar]
  84. DorriA. KanhereS.S. JurdakR. GauravaramP. Blockchain for iot security and privacy: The case study of a smart home.2017 IEEE International Conference on Pervasive Computing and Communications Workshops (PerCom Workshops), Kona, HI, USA, 13-17 March 2017, pp. 618-623.10.1109/PERCOMW.2017.7917634
    [Google Scholar]
  85. FischerC. NewellR.G. Environmental and technology policies for climate mitigation.J. Environ. Econ. Manage.200855214216210.1016/j.jeem.2007.11.001
    [Google Scholar]
  86. AliS. ZhengZ. AillerieM. SawickiJ.P. PéraM.C. HisselD. A review of DC Microgrid energy management systems dedicated to residential applications.Energies20211414430810.3390/en14144308
    [Google Scholar]
  87. YadavM.R. SinghN. Dual virtual series–parallel emulation with inertial voltage feedforward controller for DC microgrid.J. Inst. Electron. Telecommun. Eng.202411510.1080/03772063.2024.2353340
    [Google Scholar]
  88. Al-IsmailF.S. DC microgrid planning, operation, and control: Advanced comprehensive review.IEEE Access20219361543617210.1109/ACCESS.2021.3062840
    [Google Scholar]
  89. AliA.M. MoulikB. On the role of intelligent power management strategies for electrified vehicles: Advanced review of predictive and cognitive methods.IEEE Trans. Transp. Electrif.20228136838310.1109/TTE.2021.3115985
    [Google Scholar]
  90. VásquezL.O.P. RamírezV.M. ThanapalanK. A comparison of energy management system for a DC microgrid.Appl. Sci.2020103107110.3390/app10031071
    [Google Scholar]
  91. RaniP. ParkashV. SharmaN.K. Technological aspects, utilization and impact on power system for distributed generation: Advanced comprehensive survey.Renew. Sustain. Energy Rev.202419211425710.1016/j.rser.2023.114257
    [Google Scholar]
  92. SarwarS. KirliD. MerlinM.M.C. KiprakisA.E. Major challenges towards energy management and power sharing in a hybrid AC/DC microgrid: Advanced review.Energies20221523885110.3390/en15238851
    [Google Scholar]
  93. BhargaviK.M. JayalakshmiN.S. GaonkarD.N. ShrivastavaA. JadounV.K. A comprehensive review on control techniques for power management of isolated DC microgrid system operation.IEEE Access20219321963222810.1109/ACCESS.2021.3060504
    [Google Scholar]
  94. ArariaR. BerkaniA. NegadiK. MarignettiF. BoudiafM. Performance analysis of DC-DC converter and DTC based fuzzy logic control for power management in electric vehicle application.J. Eur. Syst. Autom.20205311910.18280/jesa.530101
    [Google Scholar]
  95. LiuX. SuoY. ZhangZ. SongX. ZhouJ. A new model predictive current control strategy for hybrid energy storage system considering the SOC of the supercapacitor.IEEE J. Emerg. Sel. Top. Power Electron.202311132533810.1109/JESTPE.2022.3159665
    [Google Scholar]
  96. BenadliR. KhiariB. MemniM. BjaouiM. SellamiA. An improved super-twisting sliding mode control for standalone hybrid wind/photovoltaic/fuel cell system based on energy management of battery/hydrogen.J. Sol. Energy Eng.2022144303100310.1115/1.4053748
    [Google Scholar]
  97. BabuT.S. VasudevanK.R. RamachandaramurthyV.K. SaniS.B. ChemudS. LajimR.M. A comprehensive review of hybrid energy storage systems: Converter topologies, control strategies and future prospects.IEEE Access2020814870214872110.1109/ACCESS.2020.3015919
    [Google Scholar]
  98. MbunguN.T. IsmailA.A. AlShabiM. BansalR.C. ElnadyA. HamidA.K. Control and estimation techniques applied to smart microgrids: Advanced review.Renew. Sustain. Energy Rev.202317911325110.1016/j.rser.2023.113251
    [Google Scholar]
  99. SharmaP. Dutt MathurH. MishraP. BansalR.C. A critical and comparative review of energy management strategies for microgrids.Appl. Energy202232712002810.1016/j.apenergy.2022.120028
    [Google Scholar]
  100. ModuB. AbdullahM.P. SanusiM.A. HamzaM.F. DC-based microgrid: Topologies, control schemes, and implementations.Alex. Eng. J.202370619210.1016/j.aej.2023.02.021
    [Google Scholar]
  101. KumarJ. AgarwalA. AgarwalV. A review on overall control of DC microgrids.J. Energy Storage20192111313810.1016/j.est.2018.11.013
    [Google Scholar]
  102. AbhishekA. RanjanA. DevassyS. Kumar VermaB. RamS.K. DhakarA.K. Review of hierarchical control strategies for DC microgrid.IET Renew. Power Gener.202014101631164010.1049/iet‑rpg.2019.1136
    [Google Scholar]
  103. RajasekaranR. RaniP.U. Bidirectional DC-DC converter for microgrid in energy management system.Int. J. Electron.2021108232234310.1080/00207217.2020.1793418
    [Google Scholar]
  104. YadavM. SinghN. Optimized virtual impedance solar restoration droop emulated SEPIC controller under low irradiation.Engineering Research Express20246202532910.1088/2631‑8695/ad431a
    [Google Scholar]
  105. BradburyK. SovacoolB.K. A hybrid approach for addressing energy security and climate change: Green industrial policy.Energy Policy201139848654874
    [Google Scholar]
  106. WalkerE. RaymanS. WhiteR.E. Comparison of a particle filter and other state estimation methods for prognostics of lithium-ion batteries.J. Power Sources201528711210.1016/j.jpowsour.2015.04.020
    [Google Scholar]
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