Impact of Fixed/Variable Speed Hydro, Wind, and Photovoltaic on Sub-Synchronous Torsional Oscillation—A Review
Abstract
:1. Introduction
- This paper provides a comprehensive review on sub-synchronous oscillation (SSO) in wind, hydro (fixed and variable speed), and solar power plants;
- The SSO occurrence and analysis method are explained in detail;
- Summarizes the comparative analysis for impacts of series compensation on SSO;
- Furthermore, state-of-the-art SSO reduction methods are discussed with their benefits and drawbacks.
Year | Country/City | Frequency Components | Machines | Transmission Line |
---|---|---|---|---|
2017 | China | 37 Hz | Type 3 Wind Power Plant (WPP) | 220 kV |
2017 | California | 7 Hz | Solar Farm | - |
2019 | Australia | 7 Hz | Variable Speed | - |
2018 | Toronto | 5 Hz | Type-4 WPP | 230 kV |
2020 | Australia | 19 Hz | Variable Speed | - |
2021 | USA | 22 Hz | Solar Farm | 138 kV |
2. Classification of Sub-Synchronous Oscillation
2.1. Effects of SSO in Different Renewable Energy Systems
2.1.1. SSO in Wind System
2.1.2. SSO in Solar System
2.1.3. SSO in Fixed Speed Hydro System
3. SSO in Variable Speed Generators
4. Major Events of SSO in Worldwide
5. SSO Analysis Methods
5.1. Eigenvalue Analysis
5.2. Complex Torque Coefficient Method
5.3. Frequency Scanning Method
5.4. Impedance Network Model
5.5. Open-Loop Modal Analysis
5.6. Unit Interaction Factor
6. SSO Mitigation Approaches
6.1. Unified Power Flow Controller (UPFC)
6.2. Static Synchronous Compensator (STATCOM)
6.3. Supplementary Damping Controller (SDC)
6.4. Static Var Compensator (SVC)
6.5. Static Synchronous Series Compensator (SSSC)
6.6. Filtering Approaches
6.7. Converter Control Approaches
6.8. Controllers
7. SSO in Series-Compensated System
Impacts of Series Compensation
8. Development in Pumped Storage Power Plant (PSPP)
Recent Advancement in Pumped Storage Power Plant (PSPP)
- Renewable and sustainable;
- Total control of real and reactive powers;
- Improved energy efficiency;
- Limited power converter;
- Control of active and reactive power flow is decoupled;
- Reliable grid connection.
9. Challenges and Future Scopes
9.1. Challenges in SSO Mitigation
- The SSR phenomena might affect any WPP coupled with the series-compensated transmission line.
- The main demerit of the time-domain analysis is the huge computational overhead. As a result, time-domain evaluations are not utilized for grid compatibility and system impact assessments of huge power systems.
- The frequency scanning approach is unsuitable for analyzing the SSCI and SSTI because this approach does not include the controller’s dynamic characteristics. Additionally, the effectiveness of this approach is very low.
- When the series compensation level of the system becomes greater than 50%, there is a possibility for SSO occurrence, which leads to an increase in fault current.
- The slip power determines the size of the power converter. As a result, the slip power increases with increasing speed adjustment range relative to synchronous speed, increasing the size of the needed converter.
- Eigenvalue analysis approach is not suitable for complex nonlinear systems.
- Because of their huge generator-to-turbine inertia ratio and viscous damping torque, hydro systems are typically not susceptible to SSR and have a reduced vulnerability for torsional mode instability. As a result, prior research has yet to focus on the SSR analysis of hydropower facilities, even though the modern hydro system includes the DFIM with PEC for variable speed operation, which influences SSR.
- The impact of series compensation on DC link stabilization in terms of long-term and short-term stability needs to be identified with a proper damping controller.
9.2. Future Work
- The damping features of the power system, along with the traditional turbine generator and other kinds of wind farms, are to be scrutinized, including SSCI, IGE, and TI. As a result, an appropriate damping controller needs to be designed.
- The comparison of DFIG converter controllers and FACTS devices is to mitigate the SSR, which needs to be researched in the form of cost, efficiency, and rating of converters.
- To satisfy the grid code demands, the design and investigation of robust DFIG converter controllers with SSR damping control and self-tuning need to be inspected.
- The solidarity of GSC control and RSC of DFIG control has to be inspected.
- The open challenge for a practical and effective SSCI mitigation strategy is the simultaneous monitoring of fundamental and sub-synchronous frequency components.
- Compared to the FSC, using GCSC and TCSC series compensation in the DFIG wind farms is more flexible. These solutions based on FACTS are observed to be more expensive comparatively. So, it is possible to dampen the SSR by using DFIG grid-side converter controllers if the FSC is utilized in the transmission network.
- By adopting a new auxiliary control in DFIM, the neighboring synchronous generator’s SSR difficulties and torsional oscillation would be prevented. The hydropower unit’s torsional mode durability margins must be examined to accomplish this.
10. Conclusions
- An investigation of SSR features with different FACTS devices in the multi-area system, which includes multi-machine as it might need variants of a FACTS device along with multiple converters with common DC link capacitors such as GUPFC, UPFC, and IPFC;
- Design a suitable SSDC for mitigating IGE and TI in power systems with wind power generation and turbine generators;
- Employing the appropriate and effective converter for a series-compensated transmission line system;
- Identification of the induction generator effect for variable speed pumped storage fed to an extra high-voltage series-compensated transmission line is a major concern;
- Converter controllers from DFIM were used to optimize the steady-state voltage profile, which was found to be a good way to reduce SSO.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
3L-NPC | Three-level diode clamped converter |
ADRC | Active disturbance rejection control |
BDF | Bypass damping filter |
BTB | Back to back power converter |
CHIL | Controller hardware in the loop |
COA | Chaotic optimization algorithm technique |
DFIM | Doubly fed induction machine |
DPC | Direct stator-power controller |
D-PMSG | Direct-drive permanent magnet synchronous generator |
DPWM | Discontinuous pulse width modulation |
DSC | Directed rotor-speed controller |
EMT | Electromagnetic transient simulation |
EMTP-RV | Electromagnetic transient RV program |
ESC | Energy-shaping controller |
FACTS | Flexible AC transmission system |
FCIM | Frequency-coupled impedance model |
FEA | Finite element analysis |
FFT | Fast furrier transform |
FLBDC | Fuzzy logic-based damping controller |
FLC | Fuzzy logic controller |
FLSMC | Feedback-linearized sliding mode controller |
FOSSO | Frequently over-threshold sub-synchronous oscillation |
GSC | Grid-side converter |
GWO | Grey wolf optimizer algorithm |
HFR | High-frequency resonance |
HPE | Hydrogen production equipment |
HPP-WPP | Hydroelectric power plants-wind power plants |
HTSG | Hydro turbine synchronous generator |
HVDC | High-voltage direct current |
IEEE FBM | IEEE first benchmark model |
IGE | Induction generator effect |
INM | Impedance network modelling |
LCC | Line-commutated current source converters |
LOE | Loss-of-excitation |
LQR | Linear-quadratic regulator |
LSM | Least-squares method |
MFAC | Model-free adaptive control |
MFO | Multi-frequency oscillation |
MIA | Motion-induction amplification |
MIC | Motion-induction compensation |
NSGA-III | Non-dominated sorting genetic algorithm |
NSOMR | Near strong open-loop modal resonance |
Probability distribution function | |
PLL | Phase-locked loop |
PSO | Particle swarm optimization |
PSPP-WPP | Pumped-storage power plants-wind power plants |
PV | Photovoltaic system |
QSA | Quantitative stability analysis |
RSC | Rotor-side converter |
RSDC | Rotor side damping controller |
SCSEIG | Single cage self-excited induction generators |
SEDC | Supplementary excitation damping controller |
SHPP | Small hydro power plant |
SNFs | Sub-synchronous notch filters |
SPSG | Salient pole synchronous generator |
SPWM | Sinusoidal pulse width modulation |
SSDC | Supplementary sub-synchronous damping control |
SSI | Sub-synchronous interaction |
SSO | Sub-synchronous oscillation |
SSODS | Sub-synchronous oscillation dynamic suppressor |
SSR | Sub-synchronous resonance |
STO | Shafting torsional oscillation |
SVC | Static var compensator |
TA | Torque amplification |
TCSC | Thyristor-controlled series capacitor |
TI | Torsional interactions |
TLBO | Teaching–learning-based optimization |
T-PSH | Ternary-pumped storage hydropower |
UIF | Unit interaction factor |
VSWGs | Variable-speed wind generators |
WAMS | Wide area measurement system |
WOA | Whale optimization algorithm |
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---|---|---|---|
Jun Deng et al. [10] | 2020 | Permanent magnet synchronous generator (PMSG) and virtual synchronous generator | Hybrid H2/H∞ control method |
Shun Tao et al. [11] | 2019 | Direct-drive permanent magnet synchronous generator (D-PMSG) | SSO probability assessment method with the least-squares method of polynomial fitting |
Huakun Liu et al. [12] | 2018 | Doubly fed induction generator (DFIG) | Stability analysis |
Meng Wu et al. [6] | 2015 | DFIG | DFIG converter controller dynamics |
Xinshou Tian et al. [13] | 2019 | Static Var generator and DFIG | Optimized control parameter |
Bingbing Shao et al. [14] | 2020 | D-PMSG | Back-to-back converter model and system small-signal model |
Wenjuan Du et al. [15] | 2020 | D-PMSG | Open-loop modal proximity and NESMOR analysis |
Tong Wang et al. [16] | 2020 | DFIG | Mixed H2/H∞ control with regional pole placemen |
Yanhui Xu et al. [17] | 2019 | PMSG | Generalized Nyquist criterion |
Y. Han et al. [18] | 2022 | PMSG | Eigenvalue analysis, based on the small-signal state-space model |
Yanhui Xu et al. [19] | 2018 | PMSG | Small-signal analysis method |
Xiaorong Xie et al. [20] | 2019 | PMSG | MW-level HPE and supplementary sub-synchronous damping control |
D. H. R. Suriyaarachchi et al. [21] | 2012 | Type 3 wind turbine-generators | Frequency scan and small-signal analysis |
Gangui Yan et al. [22] | 2021 | D-PMSG | Impedance model |
Li Yunhong et al. [23] | 2015 | DFIG | Time-domain simulation and eigenvalue analysis |
Wenjuan Du et al. [24] | 2019 | DFIG and PMSG | Positive net damping analysis, impedance model-based analysis, and open-loop modal resonance analysis |
Babak Badrzadeh et al. [25] | 2012 | Type 3 turbines | Time-domain PSCAD/EMTDC simulation case studies |
Rajeev Kumar et al. [26] | 2021 | Type-2 WPP | Whale optimization algorithm |
Hossein Ali Mohammadpour et al. [27] | 2015 | Fixed speed wind turbine generator systems | Thyristor-controlled series capacitor and gate-controlled series capacitor |
Yuzhi Wang et al. [28] | 2020 | PMSG | Eigenvalue analysis |
Author | Year | Type of Machine | Method |
---|---|---|---|
Rasel Mahmud et al. [29] | 2020 | Synchronous generator | Aggregated PV method |
Shuqiang Zhao et al. [30] | 2019 | - | Impedance-based analysis method |
M. Khayyatzadeh et al. [31] | 2017 | PV generator | Conventional damping controller based on WAMS and TLBO algorithm |
Lin Yang et al. [32] | 2017 | Synchronous generator | System small-signal model, eigenvalue analysis and participation factor |
Ming Yi et al. [33] | 2020 | - | Small-signal model |
Rajiv K et al. [34] | 2017 | Synchronous generator | STATCOM |
Author | Year | Type of Generator | Method |
---|---|---|---|
Johan Bladh et al. [35] | 2013 | Hydropower generator | Time-domain simulations |
Yin Chin Choo et al. [36] | 2008 | Hydro-turbine-generator (TG) unit | Sub-synchronous damping controller |
Yin Chin Choo et al. [37] | 2013 | Hydro-TG units | Sensitivity analysis |
Author | Year | Type of Generator | Method |
---|---|---|---|
Yunjie Gu et al. [38] | 2019 | Doubly Fed Induction Generators (DFIG) | Motion-induction compensation |
Chao Gao et al. [39] | 2017 | DFIG | Time-domain analysis |
Liang Yuan et al. [40] | 2020 | DFIG | Small-signal analysis |
Fan Yang et al. [41] | 2017 | DFIG | System state matrix and eigenvalue analysis |
Yanhui Xu et al. [42] | 2019 | DFIG | Active disturbance rejection control |
Andres E. Leon et al. [43] | 2014 | DFIG | Damping control |
Sherif Omar Faried et al. [44] | 2012 | DFIG | Supplemental control and time-domain simulation analysis |
Ulas Karaagac et al. [45] | 2014 | DFIG | Supplemental control |
Jing Li et al. [46] | 2016 | DFIG | EVA Method |
Bin Zhao et al. [47] | 2015 | DFIG | Auxiliary damping control strategy |
X.Y. Bian et al. [48] | 2018 | DFIG | Power system stabilizer and probabilistic sensitivity indices |
Javad Taherahmad et al. [49] | 2017 | DFIG | Adaptive control and supplementary control loop |
M. Ghafouri et al. [50] | 2017 | DFIG | Linear-quadratic regulator |
Junjie Ma et al. [51] | 2019 | DFIG | Impedance model |
Wenjuan Du et al. [52] | 2017 | DFIG | - |
F. Bizzarri et al. [53] | 2018 | Induction machines | Stability analysis |
Liang Wang et al. [54] | 2015 | Induction generator | Sub-synchronous damper |
Penghan Li et al. [55] | 2021 | DFIG | Fractional order sliding mode controller |
Xi Wu et al. [56] | 2018 | DFIG | Sub-synchronous damping controller |
Liang Wang et al. [57] | 2017 | DFIG | Direct stator-power controller |
Wenjuan Du et al. [58] | 2017 | Variable-speed wind generators (VSWGs) | Open-loop modal analysis |
Yanhui Xu et al. [59] | 2019 | DFIG | STATCOM |
Author | Year | Occurrence Year | Occurred Region | Country | Findings |
---|---|---|---|---|---|
D.N. Walker et al. [60] | 1975 | 1970 | Mohave generating station | USA | A sub-synchronous-based resonance test was executed. At different loads, simulations were run to look at the mode shapes, natural torsional frequencies, and damping for each torsional mode. |
R.G. Farmer et al. [61] | 1977 | 1975 | Arizona–Nevada–Southern California EHV transmission system (Navajo project) | USA | Filters were being utilized for the natural modes. On the other hand, a frequency scanning program was implemented for torsional interaction analysis. |
Xiaorong Xie et al. [62] | 2011 | 2011 | Shangdu power plant | China | To mitigate the SSR, supplementary excitation damping control and torsional stress relay were utilized. |
John Adams et al. [63] | 2012 | 2009 | ERCOT system | USA | The screening approach utilized the electromagnetic modelling level analysis for the SSR. |
M. Bahrman et al. [64] | 1980 | 1977 | Square butte | US | A transfer function was utilized to reduce the TI between the generator and the turbine. |
D.C. Lee et al. [65] | 1985 | 1985 | Ontario hydro unit | Ontario, Canada | Valve linearization circuits and the filtering of shaft torsional components in the speed signal were utilized. |
Liang Wang et al. [66] | 2015 | 2012 | Wind farm | North China | Eigenvalue analysis and the time-domain simulation with the equal circuit were employed to examine the consequences of the SSR features. |
Dewu Shu et al. [67] | 2017 | - | China southern grid | South China | EMT simulations and IM-based method were implemented. |
Y.-H. Wan [68] | 2013 | 2011 | Oklahoma Gas and Electric Company | US | Spectrum-based analysis method was executed. |
Meng Wu et al. [69] | 2014 | 2013 | Jibei power grid | China | Eigenvalue adjustment-based sensitivity analysis and parameter tuning are carried out. |
Xiangning Xiao et al. [70] | 2016 | - | Hulunbuir power plant | China | To reduce the FOSSO (frequently over-threshold SSO), an SSO dynamic suppressor was implemented. |
Doan Duc Tung et al. [71] | 2019 | 2015 | Vietnamese Vungang thermal plant | Vietnam | To reduce the SSR, FACTS devices were considered. |
Huakun Liu et al. [72] | 2017 | 2015 | Xinjiang Uygur Autonomous Region | China | Time-domain simulation, small-signal Eigen analysis, and impedance of model analysis were accomplished. |
Xiaorong Xie et al. [73] | 2017 | 2012 | Power station in Hebei | China | IM-based feature analysis was considered. |
Author | Year | Analysis Method | Findings |
---|---|---|---|
Dong-Joon Kim et al. [74] | 2007 | Eigenvalue analysis (EVA) | State matrix of multi-machine power systems was constructed to analyze the SSR. |
Dan Zhang et al. [75] | 2012 | EVA | HVDC system’s linearized model was formulated to analyze the SSO with and without the use of SSDC. |
Gao Feng et al. [76] | 2016 | EVA | D-PMSG wind system’s electromagnetic transient model was formulated for examining the SSO. |
Peng Zhang et al. [77] | 2014 | EVA | Coefficient of torsional mechanical damping for the parallel-coupled generator was obtained to analyze the SSO. |
Biyue Huang et al. [84] | 2019 | EVA | SSO in between D-PMSG and grid was analyzed. |
Chengbing He et al. [85] | 2019 | EVA | SSR in 70% series-compensated system was analyzed. |
Sujit Purushothaman et al. [86] | 2010 | EVA | Linearized model for shaft system was constructed to obtain the occurrence of SSR. |
Kun Xu et al. [78] | 2011 | Complex torque coefficient (CTC) | SSO in multiple generator system was analyzed by constructing equivalent model of the system. |
Shiwu Xiao et al. [87] | 2013 | CTC | SSO influencing parameters of the Suizhong system was analyzed. |
Benfeng Gao et al. [88] | 2014 | CTC | Electrical damping characteristics was analyzed. |
Wei Li et al. [89] | 2017 | CTC | AC/DC grid sub-synchronous damping characteristics were examined. |
Ahmadreza Tabesh et al. [90] | 2005 | CTC and frequency response approach | Torsional interaction among turbine generator units was examined. |
Hanhua Zhang et al. [91] | 2019 | CTC | HVDC caused SSO was analyzed by constructing the mathematical computation model. |
Xinyao Zhu et al. [92] | 2014 | CTC | In frequency domain, the contact between terminal current and voltage was analyzed for SSR analysis. |
Yijun Wang et al. [93] | 2019 | CTC | Series-compensated DFIG incorporated transmission system’s small-signal model was constructed to analyze the SSO. |
Nicklas Johansson et al. [79] | 2010 | Frequency scanning approach (FSA) | Damping level of the system was obtained. |
Malsha et al. [94] | 2015 | FSA | By the radiality factor, the torsional interaction was analyzed. |
Wei Ren et al. [95] | 2015 | FSA | Sub-synchronous control interaction was analyzed. |
John Adams et al. [96] | 2012 | FSA | Sub-synchronous control interaction (SSCI) was analyzed. |
Yunzhi Cheng et al. [97] | 2019 | Series capacitor-based FSA | Generator effect (IGE) was analyzed. |
M. Sahni et al. [98] | 2012 | FSA based on the current injection approach | SSTI and SSCI were examined. |
Hwanhee Cho et al. [99] | 2018 | FSA-based time series analysis and nonlinear dynamic originated approaches | SSO in wind system were analyzed. |
Tuomas Rauhala et al. [100] | 2015 | FSA and CTC | Estimated the sub-synchronous torsional frequencies. |
Tuomas Rauhala et al. [101] | 2010 | FSA and LCC converter | Sub-synchronous damping oscillation were analyzed at different frequencies. |
Wei Liu et al. [80] | 2019 | Frequency-coupled impedance model (FCIM) | Sub-synchronous oscillation was analyzed between weak AC grids and direct-drive wind turbines. |
Liang Yuan et al. [81] | 2019 | Sequence-domain impedance, polar coordinates impedance, and dq-domain impedance | Analyzed the SSO. |
Saijun Yuan et al. [102] | 2019 | Harmonic linearization concept-based impedance network model (INM) | Sub-synchronous oscillation of grid-integrated D-PMSG was examined. |
Dengke Qiao et al. [103] | 2019 | INM | SSO in offshore wind system-integrated VSC-HVDC was analyzed and electromagnetic transient model of the system was constructed. |
Huakun Liu et al. [104] | 2017 | INM | SSR in wind farm was analyzed. |
Ram Nath et al. [105] | 2012 | Time-domain simulation and frequency-domain impedance scanning | SSCI in DFIG-integrated wind system was analyzed. |
Xu Zhang et al. [106] | 2019 | INM | Sub-synchronous damping calculator (SSDC) and the subharmonic voltage source converter (SVSC) were developed to analyze the SSO. |
Shun Tao et al. [11] | 2019 | INM | SSO in D-PMSG-integrated wind system was analyzed. |
Wenjuan Du et al. [82] | 2019 | Open-loop modal analysis | SSO in grid interlinked wind turbine generators was examined. |
Wenjuan Du et al. [107] | 2019 | Open-loop sub system with respect to the near strong open-loop modal resonance (NSOMR). | SSO in grid interlinked PMSG system was analyzed. |
Wenjuan Du et al. [108] | 2018 | Open-loop modal coupling approach | Analyzed the frequency drift of sub-synchronous oscillation in DFIG-integrated wind system. |
Wenjuan Du et al. [109] | 2017 | Open-loop modal analysis | Sub-synchronous interactions in AC grid connected multi-terminal DC (MTDC) network was analyzed. |
Wenjuan Du et al. [110] | 2018 | Open-loop modal analysis | Phase-locked loop-caused sub-synchronous interactions (SSIs) in grid coupled PMSG was examined. |
Z. Li et al. [111] | 2010 | Unit interaction factor (UIF) analysis approach | SSO in seven node hybrid AC-DC system with distinct working modes was analyzed. |
Yang Yu et al. [83] | 2012 | UIF approach | Alleviated Sub-synchronous oscillation in the huge turbine-generated integrated thermal generation unit is analyzed. |
Jibo Sun et al. [112] | 2011 | UIF analysis approach | Damping characteristics of sub-synchronous damping Control (SSDC) compensation were analyzed. |
Author | Year | Type of Converter | Position of Converter |
---|---|---|---|
Lennart Harnefors et al. [139] | 2007 | Current-controlled voltage-source converter (VSC) | Grid side |
Khaled Alawasa et al. [140] | 2013 | Pulse-width-modulated (PWM) VSCs | Grid side |
Aikang Chen et al. [141] | 2018 | AC-DC and DC-AC converter | Rotor and grid side |
Tianshu Bi et al. [142] | 2017 | DC-AC converter | Grid side |
P. Fischer de Toledo et al. [143] | 2010 | line-commutated current source converters | Rotor side |
Jian Zuo et al. [144] | 2017 | AC-DC and DC-AC converter | Rotor and grid side |
Lin Zhu et al. [145] | 2020 | AC-DC converter | Rotor side |
Author | Year | Transmission Line | Series Compensation Level | Power Plant | Impacts |
---|---|---|---|---|---|
North American electronic reliability corporation (NERC) [163] | 2011 | 345 kV 80 miles long | 50% | Type 3 wind farm (485 MW) | Voltage and significant current waveform distortion. |
Muhammad Taha Ali et al. [164] | 2019 | Transmission line connected with 7.5 KW, 311 V system | 35% to 90% for 2.5 s | DFIG-based power system | The SUB mode’s damping proportion is reduced and becomes negative when the compensation level is increased. |
K. Narendra et al. [165] | 2011 | 54-mile-long 345 kV line | 60% (240 MVAR series capacitor) | 150-MW type 3 wind farm | Sub-harmonic oscillations were investigated, with the higher usage of wind generators which fed EHV and HV utility networks with series-compensated lines along with the nearer vicinity |
Carlos E. Ugalde-Loo et al. [166] | 2013 | 500 kV operating at 60 Hz | 20, 50, 80% | Wind farm (892.4 MVA generator) | SSR might be raised due to the interaction between the natural modes of oscillation of turbo generators and network natural frequency when the series compensation is not carefully executed |
Mohammad Reza Alizadeh Pahlavani et al. [167] | 2011 | 500 kV compensated transmission line | Reactance of fixed capacitor for three cases such as 0.318, 0.236, and 0.152 (p.u.) | 892.4 MVA synchronous generator | The dynamic results showed that GCSC devices operated in the open-loop control method which damped the SSR. |
Akshaya Moharana et al. [117] | 2014 | 892.4 MVA | 50–60% | 500-MW double-cage IG-based wind farm | The STATCOM had prevented a larger overshoot in the shaft torque, and it also stabilized the generator speed, electromagnetic torque, and PCC voltage. |
Chao Gao et al. [39] | 2017 | 500kV line | 1.97% | DFIG wind farm (3000 MVA) | The SSO is mitigated by increasing the wind pace, only when the series compensation degree is increased. |
Akshaya Moharana et al. [168] | 2012 | - | 55% | 700 MW type 1 wind farm | No SSR transactions were observed when the wind farm was associated with the LCC HVDC transmission system and the series compensation line. There were no discovered relationships between the current regulator and the rectifier station. |
Akshaya Moharana et al. [169] | 2014 | 400 MW transmission line | 50 to 90% | 700 MW IG-based (type 1) wind farm | No interaction between a rectifier station current regulator and torsional system is found. |
Garth D. Irwin et al. [170] | 2011 | 345 kV line | 50% | DFIG (type 3) wind farm | - |
Yang Wu et al. [171] | 2018 | 220 kV and 500 kV transmission line | 25% | 220 MVA wind farm | The resonance frequency from the original system of 4.9 Hz is diminished to 4.3 Hz and 4.8 Hz and the resonant frequency is reduced. |
Tang Yi et al. [172] | 2011 | Series-compensated capacitor is 12.35 µF | 500 MW wind power system | Only when the power reaches a certain degree, will the series compensation level have a role on SSR. | |
C. Zhu et al. [173] | 2012 | Infinite bus (constant voltage source) | 10 to 90% | 2 MW DFIG system | System unstable due to high series compensations. |
Huakun Liu et al. [174] | 2016 | 500 KV | 40% | 1.5 MW DFIG-based wind farm | The frequency and damping of SSR are exactly calculated through the circuit parameters. |
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Mohale, V.; Chelliah, T.R. Impact of Fixed/Variable Speed Hydro, Wind, and Photovoltaic on Sub-Synchronous Torsional Oscillation—A Review. Sustainability 2023, 15, 113. https://doi.org/10.3390/su15010113
Mohale V, Chelliah TR. Impact of Fixed/Variable Speed Hydro, Wind, and Photovoltaic on Sub-Synchronous Torsional Oscillation—A Review. Sustainability. 2023; 15(1):113. https://doi.org/10.3390/su15010113
Chicago/Turabian StyleMohale, Vijay, and Thanga Raj Chelliah. 2023. "Impact of Fixed/Variable Speed Hydro, Wind, and Photovoltaic on Sub-Synchronous Torsional Oscillation—A Review" Sustainability 15, no. 1: 113. https://doi.org/10.3390/su15010113
APA StyleMohale, V., & Chelliah, T. R. (2023). Impact of Fixed/Variable Speed Hydro, Wind, and Photovoltaic on Sub-Synchronous Torsional Oscillation—A Review. Sustainability, 15(1), 113. https://doi.org/10.3390/su15010113