The role of inertia for grid flexibility under high penetration of variable renewables - A review of challenges and solutions
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[1] Florian Dörfler,et al. Optimal Placement of Virtual Inertia in Power Grids , 2015, IEEE Transactions on Automatic Control.
[2] F. Gonzalez-Longatt,et al. Short-term Kinetic Energy Forecast using a Structural Time Series Model: Study Case of Nordic Power System , 2020, 2020 International Conference on Smart Systems and Technologies (SST).
[3] Goran Andersson,et al. Impact of Low Rotational Inertia on Power System Stability and Operation , 2013, 1312.6435.
[4] Ren. Renewables 2019 Global Status Report , 2012 .
[5] Ying Chen,et al. Static Synchronous Generator Model: A New Perspective to Investigate Dynamic Characteristics and Stability Issues of Grid-Tied PWM Inverter , 2016, IEEE Transactions on Power Electronics.
[6] Victor Lo,et al. Effect of solar PV on frequency management in New Zealand , 2017, 2017 IEEE Innovative Smart Grid Technologies - Asia (ISGT-Asia).
[7] Guowei Cai,et al. Online Inertia Estimation Using Electromechanical Oscillation Modal Extracted from Synchronized Ambient Data , 2020, Journal of Modern Power Systems and Clean Energy.
[8] M. Kezunovic,et al. Energy Function based Approach for Online Inertia Estimation Utilizing Synchrophasor Measurements , 2020, 2020 IEEE Texas Power and Energy Conference (TPEC).
[9] B. Francois,et al. Dynamic Frequency Control Support by Energy Storage to Reduce the Impact of Wind and Solar Generation on Isolated Power System's Inertia , 2012, IEEE Transactions on Sustainable Energy.
[10] Josep M. Guerrero,et al. A new hybrid virtual synchronous machine control structure combined with voltage source converters in islanded ac microgrids , 2021 .
[11] Gabriela Hug,et al. Droop vs. virtual inertia: Comparison from the perspective of converter operation mode , 2018, 2018 IEEE International Energy Conference (ENERGYCON).
[12] Dong Chen,et al. Integration of DC Microgrids as Virtual Synchronous Machines Into the AC Grid , 2017, IEEE Transactions on Industrial Electronics.
[13] Ju Lee,et al. AC-microgrids versus DC-microgrids with distributed energy resources: A review , 2013 .
[14] Yong Chen,et al. Improving the grid power quality using virtual synchronous machines , 2011, 2011 International Conference on Power Engineering, Energy and Electrical Drives.
[15] Lieven Vandevelde,et al. Droop Control as an Alternative Inertial Response Strategy for the Synthetic Inertia on Wind Turbines , 2016, IEEE Transactions on Power Systems.
[16] Saad Mekhilef,et al. Inertia response and frequency control techniques for renewable energy sources: A review , 2017 .
[17] B. Mathiesen,et al. A technical and economic analysis of one potential pathway to a 100% renewable energy system , 2014 .
[18] Mario Paolone,et al. A New Approach to the Online Estimation of the Loss of Generation Size in Power Systems , 2019, IEEE Transactions on Power Systems.
[19] Xu Rong,et al. A review on distributed energy resources and MicroGrid , 2008 .
[20] Federico Milano,et al. Stochastic Transient Stability Analysis of Transmission Systems With Inclusion of Energy Storage Devices , 2018, IEEE Transactions on Power Systems.
[21] Robert B. Bass,et al. Trends and challenges of grid-connected photovoltaic systems – A review , 2016 .
[22] James J. Q. Yu,et al. Development and Validation of Artificial Neural Network-Based Tools for Forecasting of Power System Inertia With Wind Farms Penetration , 2020, IEEE Systems Journal.
[23] Stijn Derammelaere,et al. Online Tracking of Varying Inertia using a SDFT Approach , 2020 .
[24] Michel Rezkalla,et al. Electric power system inertia: requirements, challenges and solutions , 2018, Electrical Engineering.
[25] Federico Milano,et al. On-Line Inertia Estimation for Synchronous and Non-Synchronous Devices , 2021, IEEE Transactions on Power Systems.
[26] Gabriela Hug,et al. Foundations and Challenges of Low-Inertia Systems (Invited Paper) , 2018, 2018 Power Systems Computation Conference (PSCC).
[27] Nadarajah Mithulananthan,et al. Stability of Renewable Energy based Microgrid in Autonomous Operation , 2017 .
[28] Balarko Chaudhuri,et al. Rapid Frequency Response From Smart Loads in Great Britain Power System , 2017, IEEE Transactions on Smart Grid.
[29] Ning Zhou,et al. Initial results in power system identification from injected probing signals using a subspace method , 2006, IEEE Transactions on Power Systems.
[30] Jayachandra N. Sakamuri,et al. Comparison of European Network Codes for AC- and HVDC-connected Renewable Energy Sources , 2019 .
[31] Guowei Cai,et al. Ambient-Data-Driven Modal-Identification-Based Approach to Estimate the Inertia of an Interconnected Power System , 2020, IEEE Access.
[32] C. Bradshaw,et al. Burden of proof: A comprehensive review of the feasibility of 100% renewable-electricity systems , 2017 .
[33] Y. Hirase,et al. A Grid Connected Inverter with Virtual Synchronous Generator Model of Algebraic Type , 2012 .
[34] Bo Wang,et al. PV-based virtual synchronous generator with variable inertia to enhance power system transient stability utilizing the energy storage system , 2017 .
[35] Vladimir Terzija. Adaptive underfrequency load shedding based on the magnitude of the disturbance estimation , 2006 .
[36] Qing-Chang Zhong,et al. Virtual Synchronous Machines: A unified interface for grid integration , 2016, IEEE Power Electronics Magazine.
[37] Innocent Kamwa,et al. Oscillatory stability assessment of microgrid in autonomous operation with uncertainties , 2017 .
[38] Lucas Frizera Encarnacao,et al. Virtual Inertia for Power Converter Control , 2018 .
[39] P. Kundur,et al. Power system stability and control , 1994 .
[40] Samuele Grillo,et al. Analysis of the Sensitivity of Extended Kalman Filter-Based Inertia Estimation Method to the Assumed Time of Disturbance , 2019 .
[41] Rengaraj Ramasubbu,et al. A real time pricing strategy for remote micro-grid with economic emission dispatch and stochastic renewable energy sources , 2018, Renewable Energy.
[42] Lennart Ljung,et al. System Identification: Theory for the User , 1987 .
[43] Emilio Gómez-Lázaro,et al. Power systems with high renewable energy sources: A review of inertia and frequency control strategies over time , 2019, Renewable & Sustainable Energy Reviews.
[44] Josep M. Guerrero,et al. Inducverters: PLL-Less Converters With Auto-Synchronization and Emulated Inertia Capability , 2016, IEEE Transactions on Smart Grid.
[45] Fei Wang,et al. An Adaptive Control Strategy for Virtual Synchronous Generator , 2018, IEEE Transactions on Industry Applications.
[46] Eng Gee Lim,et al. Forecasting Based Virtual Inertia Control of PV Systems for Islanded Micro-Grid , 2019, 2019 29th Australasian Universities Power Engineering Conference (AUPEC).
[47] Romeo Ortega,et al. Online Estimation of Power System Inertia Using Dynamic Regressor Extension and Mixing , 2018, IEEE Transactions on Power Systems.
[48] Kai Shi,et al. Virtual Inertia Control Strategy in Microgrid Based on Virtual Synchronous Generator Technology , 2018, IEEE Access.
[49] Zhen Ni,et al. Experimental verification of virtual inertia in diesel generator based microgrids , 2017, 2017 IEEE International Conference on Industrial Technology (ICIT).
[50] Iain MacGill,et al. Simulations of scenarios with 100% renewable electricity in the Australian National Electricity Market , 2012 .
[51] Rohit Bhakar,et al. System Inertia Prediction for Primary Frequency Response Adequacy Under Uncertain Wind Generation , 2018, 2018 8th IEEE India International Conference on Power Electronics (IICPE).
[52] Junbo Zhang,et al. Online Estimation of Power System Inertia Constant Under Normal Operating Conditions , 2020, IEEE Access.
[53] Reinaldo Tonkoski,et al. Operation of datacenter as virtual power plant , 2015, 2015 IEEE Energy Conversion Congress and Exposition (ECCE).
[54] C. W. Taylor,et al. Model validation for the August 10, 1996 WSCC system outage , 1999 .
[55] Clemens Jauch,et al. Design of a System Substituting Today’s Inherent Inertia in the European Continental Synchronous Area , 2016 .
[56] Hedayat Saboori,et al. Stochastic planning and scheduling of energy storage systems for congestion management in electric power systems including renewable energy resources , 2017 .
[57] Mohammad Yusri Hassan,et al. Virtual inertial support extraction using a super-capacitor for a wind-PMSG application , 2019 .
[58] M. Webber,et al. Understanding the impact of non-synchronous wind and solar generation on grid stability and identifying mitigation pathways , 2020 .
[59] K. Uhlen,et al. Estimation of Power System Inertia From Ambient Wide Area Measurements , 2018, IEEE Transactions on Power Systems.
[60] Eduard Petlenkov,et al. A New Virtual Synchronous Generator Design Based on the SMES System for Frequency Stability of Low-Inertia Power Grids , 2020, Energies.
[61] Jon Are Suul,et al. Virtual synchronous machines — Classification of implementations and analysis of equivalence to droop controllers for microgrids , 2013, 2013 IEEE Grenoble Conference.
[62] K. Visscher,et al. Grid tied converter with virtual kinetic storage , 2009, 2009 IEEE Bucharest PowerTech.
[63] Jon Are Suul,et al. Small-signal modeling and parametric sensitivity of a virtual synchronous machine in islanded operation , 2015 .
[64] Vladimir Terzija,et al. Simultaneous Estimation of the Time of Disturbance and Inertia in Power Systems , 2014, IEEE Transactions on Power Delivery.
[65] Modelling and Analysis of Load Frequency Control in Small Power Systems: a Case Study of New Zealand Network , 2020, 2020 Australasian Universities Power Engineering Conference (AUPEC).
[66] K. Palanisamy,et al. Future low-inertia power systems: Requirements, issues, and solutions - A review , 2020 .
[67] Osamu Noro,et al. Virtual Synchronous Generator control with Double Decoupled Synchronous Reference Frame for single-phase inverter , 2014, 2014 International Power Electronics Conference (IPEC-Hiroshima 2014 - ECCE ASIA).
[68] P. Tielens,et al. Grid Inertia and Frequency Control in Power Systems with High Penetration of Renewables , 2012 .
[69] Jörg Winkelmann,et al. Continuous provision of synthetic inertia with wind turbines: implications for the wind turbine and for the grid , 2019, IET Renewable Power Generation.
[70] Mohamad Esmail Hamedani Golshan,et al. Determining optimal virtual inertia and frequency control parameters to preserve the frequency stability in islanded microgrids with high penetration of renewables , 2018 .
[71] David Connolly,et al. The first step towards a 100% renewable energy-system for Ireland , 2011 .
[72] Bakari M. M. Mwinyiwiwa,et al. On the Viability Analysis of HVDC Light for Electrification of Mafia Island by National Grid , 2015 .
[73] Baosen Zhang,et al. Optimal Design of Virtual Inertia and Damping Coefficients for Virtual Synchronous Machines , 2018, 2018 IEEE Power & Energy Society General Meeting (PESGM).
[74] Pasi Peltoniemi,et al. Compensating the rotating mass kinetic energy in grids including high shares of renewable , 2017, 2017 19th European Conference on Power Electronics and Applications (EPE'17 ECCE Europe).
[75] Peter Wolfs,et al. A review of high PV penetrations in LV distribution networks: Present status, impacts and mitigation measures , 2016 .
[76] Hassan Bevrani,et al. A novel control approach for virtual synchronous generators to suppress frequency and voltage fluctuations in microgrids , 2018 .
[77] Christian Rehtanz,et al. A Virtual Synchronous Generator Control Strategy for VSC-MTDC Systems , 2018, IEEE Transactions on Energy Conversion.
[78] Jia Liu,et al. Comparison of Dynamic Characteristics Between Virtual Synchronous Generator and Droop Control in Inverter-Based Distributed Generators , 2016, IEEE Transactions on Power Electronics.
[79] Luiz A. C. Lopes,et al. Self-Tuning Virtual Synchronous Machine: A Control Strategy for Energy Storage Systems to Support Dynamic Frequency Control , 2014, IEEE Transactions on Energy Conversion.
[80] M. C. Chandorkar,et al. Improvement of Transient Response in Microgrids Using Virtual Inertia , 2013, IEEE Transactions on Power Delivery.
[81] Frede Blaabjerg,et al. Virtual Inertia and Mechanical Power-Based Control Strategy to Provide Stable Grid Operation under High Renewables Penetration , 2019 .
[82] A. M. Carter,et al. Application of phasor measurement units to estimate power system inertial frequency response , 2013, 2013 IEEE Power & Energy Society General Meeting.
[83] Ramon Zamora,et al. Data-driven inertia estimation based on frequency gradient for power systems with high penetration of renewable energy sources , 2021, Electric Power Systems Research.
[84] Brian B. Johnson,et al. Synchronization of Parallel Single-Phase Inverters With Virtual Oscillator Control , 2014, IEEE Transactions on Power Electronics.
[85] Matthew J. Reno,et al. Sharing Transient Loads : Causes of Unequal Transient Load Sharing in Islanded Microgrid Operation , 2014, IEEE Industry Applications Magazine.
[86] Matthew K. Donnelly,et al. Overview of System Identification for Power Systems from Measured Responses1 , 2012 .
[87] Timothy M. Hansen,et al. Virtual Inertia: Current Trends and Future Directions , 2017 .
[88] K. Nakamura,et al. Power Modulation of Photovoltaic Generator for Frequency Control of Power System , 2009, IEEE Transactions on Energy Conversion.
[89] Yasunori Mitani,et al. Robust Virtual Inertia Control of an Islanded Microgrid Considering High Penetration of Renewable Energy , 2018, IEEE Access.
[90] W. Winiwarter,et al. EU Reference Scenario 2016 - Energy, transport and GHG emissions Trends to 2050. , 2016 .
[91] Hanchen Xu,et al. Online Identification of Power System Equivalent Inertia Constant , 2017, IEEE Transactions on Industrial Electronics.
[92] Xiangwu Yan,et al. VSG Stability and Coordination Enhancement under Emergency Condition , 2018 .
[93] Yushi Miura,et al. Power System Stabilization Using Virtual Synchronous Generator With Alternating Moment of Inertia , 2015, IEEE Journal of Emerging and Selected Topics in Power Electronics.
[94] Mukesh Singh,et al. Frequency support in a micro‐grid using virtual synchronous generator based charging station , 2018, IET Renewable Power Generation.
[95] Robert Eriksson,et al. Synthetic inertia versus fast frequency response: a definition , 2018 .
[96] Abheejeet Mohapatra,et al. Online Estimation of System Inertia in a Power Network Utilizing Synchrophasor Measurements , 2020, IEEE Transactions on Power Systems.
[97] T. Inoue,et al. Estimation of power system inertia constant and capacity of spinning-reserve support generators using measured frequency transients , 1997 .
[98] C. Breyer,et al. Global energy storage demand for a 100% renewable electricity supply , 2014 .
[99] P. Mancarella,et al. The Fragile Grid: The Physics and Economics of Security Services in Low-Carbon Power Systems , 2021, IEEE Power and Energy Magazine.
[100] Atul K. Raturi,et al. Modelling and analysis of grid integration for high shares of solar PV in small isolated systems – A case of Kiribati , 2017 .
[101] Ralf Hesse,et al. Micro grid stabilization using the virtual synchronous machine (VISMA) , 2009 .
[102] Khadija Ben Kilani,et al. Synchronverter-Based Emulation and Control of HVDC Transmission , 2016, IEEE Transactions on Power Systems.
[103] Brian B. Johnson,et al. Achieving a 100% Renewable Grid: Operating Electric Power Systems with Extremely High Levels of Variable Renewable Energy , 2017, IEEE Power and Energy Magazine.
[104] G. Lightbody,et al. Virtual synchronous-machine control of voltage-source converters in a low-voltage microgrid , 2016, 2016 18th European Conference on Power Electronics and Applications (EPE'16 ECCE Europe).
[105] Vladimir Terzija,et al. On-line power system inertia calculation using wide area measurements , 2019, International Journal of Electrical Power & Energy Systems.
[106] Anurag K. Srivastava,et al. Controls for microgrids with storage: Review, challenges, and research needs , 2010 .
[107] Wanxing Sheng,et al. Self-Synchronized Synchronverters: Inverters Without a Dedicated Synchronization Unit , 2014, IEEE Transactions on Power Electronics.
[108] P. Rodriguez,et al. Control of PV generation systems using the synchronous power controller , 2013, 2013 IEEE Energy Conversion Congress and Exposition.
[109] Javier Contreras,et al. Joint Distribution Network and Renewable Energy Expansion Planning Considering Demand Response and Energy Storage—Part I: Stochastic Programming Model , 2018, IEEE Transactions on Smart Grid.
[110] Goran Strbac,et al. Challenges and opportunities of inertia estimation and forecasting in low-inertia power systems , 2020, ArXiv.
[111] Goran Strbac,et al. Stochastic Scheduling With Inertia-Dependent Fast Frequency Response Requirements , 2016, IEEE Transactions on Power Systems.
[112] Dongdong Li,et al. A Self-Adaptive Inertia and Damping Combination Control of VSG to Support Frequency Stability , 2017, IEEE Transactions on Energy Conversion.
[113] Hugues Garnier,et al. Numerical illustrations of the relevance of direct continuous-time model identification , 2002 .
[114] Juan C. Vasquez,et al. Adaptive Droop Control Applied to Voltage-Source Inverters Operating in Grid-Connected and Islanded Modes , 2009, IEEE Transactions on Industrial Electronics.
[115] Zhe Chen,et al. Data-Driven Estimation of Inertia for Multiarea Interconnected Power Systems Using Dynamic Mode Decomposition , 2021, IEEE Transactions on Industrial Informatics.
[116] Gregor Verbic,et al. A Framework for Frequency Stability Assessment of Future Power Systems: An Australian Case Study , 2017, ArXiv.
[117] Jon Are Suul,et al. A Virtual synchronous machine implementation for distributed control of power transformers in SmartGrids , 2015 .
[118] Ding Ming,et al. Control strategy for virtual synchronous generator in microgrid , 2011, 2011 4th International Conference on Electric Utility Deregulation and Restructuring and Power Technologies (DRPT).
[119] George Weiss,et al. Synchronverters With Better Stability Due to Virtual Inductors, Virtual Capacitors, and Anti-Windup , 2017, IEEE Transactions on Industrial Electronics.
[120] Ramon Zamora,et al. Fault Ride Through Technique for DFIG-based Wind Turbines Under Grid Three-phase Faults , 2018, 2018 Australasian Universities Power Engineering Conference (AUPEC).
[121] Ernst Worrell,et al. Identifying barriers to large-scale integration of variable renewable electricity into the electricity market : A literature review of market design , 2018 .
[122] Ramon Zamora,et al. Energy management and control algorithms for integration of energy storage within microgrid , 2014, 2014 IEEE 23rd International Symposium on Industrial Electronics (ISIE).
[123] Suryanarayana Doolla,et al. Measurement-Based Estimation of Inertia in AC Microgrids , 2020, IEEE Transactions on Sustainable Energy.
[124] Mihai Anitescu,et al. A Bayesian Approach for Parameter Estimation With Uncertainty for Dynamic Power Systems , 2016, IEEE Transactions on Power Systems.
[125] R. V. D. Veen,et al. The electricity balancing market: Exploring the design challenge , 2016 .
[126] Yide Wang,et al. A Virtual Synchronous Generator Based Hierarchical Control Scheme of Distributed Generation Systems , 2017 .
[127] Pengwei Du,et al. Forecast System Inertia Condition and Its Impact to Integrate More Renewables , 2018, IEEE Transactions on Smart Grid.
[128] Taher Niknam,et al. Stochastic scheduling of local distribution systems considering high penetration of plug-in electric vehicles and renewable energy sources , 2017 .
[129] Yan Du,et al. Modeling, analysis, and design of a frequency-droop-based virtual synchronous generator for microgrid applications , 2013, 2013 IEEE ECCE Asia Downunder.
[130] S. Sharma,et al. Proposed future Ancillary Services in Electric Reliability Council of Texas , 2015, 2015 IEEE Eindhoven PowerTech.
[131] F. Gonzalez-Longatt,et al. Estimation of generator inertia available during a disturbance , 2012, 2012 IEEE Power and Energy Society General Meeting.
[132] H.-P. Beck,et al. Virtual synchronous machine , 2007, 2007 9th International Conference on Electrical Power Quality and Utilisation.
[133] Ivan Zelinka,et al. Synthetic inertia control based on fuzzy adaptive differential evolution , 2019, International Journal of Electrical Power & Energy Systems.
[134] Ning Zhou,et al. Robust RLS Methods for Online Estimation of Power System Electromechanical Modes , 2007, IEEE Transactions on Power Systems.
[135] Yi Tang,et al. Robust Online Estimation of Power System Center of Inertia Frequency , 2019, IEEE Transactions on Power Systems.
[136] Frede Blaabjerg,et al. Overview of Control and Grid Synchronization for Distributed Power Generation Systems , 2006, IEEE Transactions on Industrial Electronics.
[137] E. Hobman,et al. Uptake and usage of cost-reflective electricity pricing: Insights from psychology and behavioural economics , 2016 .
[138] M.R. Iravani,et al. A Control Strategy for a Distributed Generation Unit in Grid-Connected and Autonomous Modes of Operation , 2008, IEEE Transactions on Power Delivery.
[139] Brian Vad Mathiesen,et al. Energy system analysis of 100% renewable energy systems-The case of Denmark in years 2030 and 2050 , 2009 .
[140] Josep M. Guerrero,et al. A Virtual Inertia Control Strategy for DC Microgrids Analogized With Virtual Synchronous Machines , 2017, IEEE Transactions on Industrial Electronics.
[141] Daniel J. Trudnowski,et al. Initial results in electromechanical mode identification from ambient data , 1997 .
[142] Fangxing Li,et al. Coordinated Microgrid Frequency Regulation Based on DFIG Variable Coefficient Using Virtual Inertia and Primary Frequency Control , 2016, IEEE Transactions on Energy Conversion.
[143] Hassan Bevrani,et al. Robust Frequency Control of Microgrids Using an Extended Virtual Synchronous Generator , 2018, IEEE Transactions on Power Systems.
[144] Soenke Engelken,et al. Operational experiences with inertial response provided by type 4 wind turbines , 2016 .
[145] K. Blok,et al. Response to ‘Burden of proof: A comprehensive review of the feasibility of 100% renewable-electricity systems’ , 2017, Renewable and Sustainable Energy Reviews.
[146] B. Mathiesen,et al. 100% Renewable energy systems, climate mitigation and economic growth , 2011 .
[147] Peter Markolo. Wind Generator Co-Simulation with Fault Case Analysis , 2013 .
[148] Xiaodong Liang. Emerging Power Quality Challenges Due to Integration of Renewable Energy Sources , 2017 .
[149] Qi Li,et al. Synthetic Inertia Control Strategy for Doubly Fed Induction Generator Wind Turbine Generators Using Lithium-Ion Supercapacitors , 2018, IEEE Transactions on Energy Conversion.
[150] Davide Lauria,et al. On-Line Estimation Assessment of Power Systems Inertia With High Penetration of Renewable Generation , 2020, IEEE Access.
[151] Yasser Abdel-Rady I. Mohamed,et al. Novel Comprehensive Control Framework for Incorporating VSCs to Smart Power Grids Using Bidirectional Synchronous-VSC , 2014, IEEE Transactions on Power Systems.
[152] Xiangning Xiao,et al. Stable Operation and Small-Signal Analysis of Multiple Parallel DG Inverters Based on a Virtual Synchronous Generator Scheme , 2018 .
[153] Ramadan El-Shatshat,et al. Comprehensive assessment of virtual synchronous machine based voltage source converter controllers , 2017 .
[154] Gareth Taylor,et al. Inertia Estimation of the GB Power System Using Synchrophasor Measurements , 2015, IEEE Transactions on Power Systems.
[155] Robert Eriksson,et al. Power system inertia estimation: Utilization of frequency and voltage response after a disturbance , 2018, Electric Power Systems Research.
[156] Osamu Noro,et al. Decentralised and interlink-less power interchange among residences in microgrids using virtual synchronous generator control , 2018 .
[157] O.P. Malik,et al. Identification of physical parameters of a synchronous Generator from online measurements , 2004, IEEE Transactions on Energy Conversion.
[158] D.P. Chassin,et al. Estimation of WECC system inertia using observed frequency transients , 2004, IEEE Transactions on Power Systems.
[159] Liuping Wang,et al. Identification of Continuous-time Models from Sampled Data , 2008 .
[160] Toshifumi Ise,et al. Virtual synchronous generators: A survey and new perspectives , 2014 .
[161] Tao Liu,et al. Effects of rotational Inertia on power system damping and frequency transients , 2015, 2015 54th IEEE Conference on Decision and Control (CDC).
[162] Shun-Hsien Huang,et al. System Inertial Frequency Response estimation and impact of renewable resources in ERCOT interconnection , 2011, 2011 IEEE Power and Energy Society General Meeting.
[163] Frede Blaabjerg,et al. Distributed Power System Virtual Inertia Implemented by Grid-Connected Power Converters , 2018, IEEE Transactions on Power Electronics.
[164] M A Awal,et al. Unified Virtual Oscillator Control for Grid-Forming and Grid-Following Converters , 2020, IEEE Journal of Emerging and Selected Topics in Power Electronics.
[165] Ehab F. El-Saadany,et al. Implementing Virtual Inertia in DFIG-Based Wind Power Generation , 2013, IEEE Transactions on Power Systems.
[166] Yan Li,et al. Adaptation virtual inertia control strategy of DFIG and assessment of equivalent virtual inertia time constant of connected power system , 2009 .
[167] Ramon Zamora,et al. Heuristic Inertia Estimation Technique for Power Networks with High Penetration of RES , 2020, 2020 2nd International Conference on Smart Power & Internet Energy Systems (SPIES).
[168] Lennart Söder,et al. Review of European Grid Codes for Wind Farms and Their Implications for Wind Power Curtailments , 2018 .
[169] H. Garnier,et al. Time-domain approaches to continuous-time model identification of dynamical systems from sampled data , 2004, Proceedings of the 2004 American Control Conference.
[170] Yong Chen,et al. Dynamic properties of the virtual synchronous machine (VISMA) , 2011 .
[171] Qing-Chang Zhong,et al. Synchronverters: Inverters That Mimic Synchronous Generators , 2011, IEEE Transactions on Industrial Electronics.