A Comprehensive Review on Stability Analysis of Hybrid Energy System
Abstract
:1. Introduction
2. Hybrid Energy System and Its Characteristics
2.1. Different Configuration of Hybrid Energy System
2.2. HES Components
2.2.1. Conventional Energy
2.2.2. Renewable Energy
2.2.3. Energy Storage
2.2.4. Converters
2.2.5. Energy Consuming Devices
2.2.6. Controllers
3. Stability Analysis
3.1. Rotor Angle Stability
- H: Per-unit inertia constant of the machine (in seconds).
- : Synchronous angular velocity of the system (in radians per second), typically , where f is the system frequency (e.g., 50 Hz or 60 Hz).
- : Rotor angle of the synchronous machine (in radians), representing the angular displacement between the rotor and the synchronously rotating reference frame.
- : Mechanical input power to the generator (in per unit or MW).
- : Electrical output power of the generator (in per unit or MW).
- : Angular acceleration of the rotor (in radians per second squared).
- and : Voltages at the sending and receiving ends of the transmission line (in per unit or kV).
- X: Reactance of the transmission line (in per unit or ohms).
- : Rotor angle (in radians).
3.1.1. Transient Stability Analysis
3.1.2. Small Signal Stability Analysis
- x: State vector (e.g., rotor angle and speed ).
- A: State matrix, determines system eigenvalues.
- B: Input matrix.
- u: Input vector.
3.2. Voltage Stability
3.2.1. Static Analysis
3.2.2. Dynamic Analysis
3.3. Frequency Stability
- : Change in active power output.
- R: Droop coefficient or droop constant, given by:
- : Deviation of system frequency from the nominal frequency.
3.4. Converter-Driven Stability
4. Challenges in Stability Analysis
- Modelling and control design: Any system must have an accurate system model to do stability analysis, which is a challenging task. Due to the lack of very precise models for a few components, it is a tedious operation. Under some circumstances, the system modelling choice might not be appropriate in practical situations [76]. The system’s control portion is increasingly complicated as renewable energy sources proliferate [77]. It is challenging to consider every factor at once when doing stability analysis.
- Intermittency of Renewable Energy: Conventional generating units frequently find difficulties in adjusting during high-stress abrupt and frequent start-ups, along with quick net load fluctuations. It is because of RES’s intermittent and variable nature [78]. It is mostly dependent on weather parameters for generating power, and that’s why its prediction becomes difficult. This variability has varying effects on system operation and planning over different timescales. During long-term resource planning, changes in net load have little effect. In day-ahead operational planning, daily cycles become crucial. To preserve system stability and guarantee dependable grid operation, control systems must react quickly to sudden variations in RES production, which are sometimes measured in milliseconds.
- Lack of Inertia: There is a major role of inertia in the system to maintain flexibility and frequency stability. Due to the integration of more renewables, which are non-synchronous devices, the grid will face an overall decrease in conventional inertia. This will cause an increase in frequency fluctuations, and subsequently, major fluctuations cause major instability in the system. The study [79] examines the crucial role inertia plays in preserving grid flexibility and stability, emphasising the difficulties brought by low inertia as a result of the integration of renewable energy. There is also a discussion of suggested remedies to deal with these problems.
- Grid Integration and Load Balancing: One essential component of power system networks is the incorporation of renewable energy sources in islanding mode. Connecting these sources to power networks produces several difficulties because of their unpredictable and variable nature. The operation of grid-connected renewable energy sources during small voltage drops and inter-area oscillation is challenging and studied in [13]. It includes stability problems resulting from power transfers across various grid zones. Addressing these issues is essential in preserving overall grid stability and resiliency.
- Security Concern: Use of machine learning for energy forecasting of renewables such as solar and wind, and internet-of-things (IoT) devices for monitoring and data collection forms an interconnected web environment which generates a lot of data making it vulnerable to security breach [80]. Other important areas of risk include the communication networks, control systems, and research data. The overwhelming amount of data produced by these networked devices emphasises how urgently strong cybersecurity safeguards are needed. The stability, effectiveness, and resilience of contemporary power grid operations depend on safeguarding control systems, ensuring the security and integrity of data flows, and reducing cyber threats.
- Power Quality: Renewable energy, along with conventional sources, has become a key contributor in balancing the load supply demand in modern society. There are some standards related to the power quality, which is being received by the consumers. Because of the intermittent nature of these sources, there are a lot of fluctuations in the voltage and frequency, leading to a decrease in power quality. The work in [81], is divided into two major sections, one reviews the literature in great detail on new issues related to power quality, and another recommends some solutions to deal with these power quality issues.
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Aspect Covered | [6] | [14] | [16] | [17] | [18] | [19] | Proposed Paper |
---|---|---|---|---|---|---|---|
HES Definition | × | ✓ | × | ✓ | ✓ | × | ✓ |
Stability Classification | × | × | ✓ | ✓ | × | × | ✓ |
Roto Angle & Transient | ✓ | × | ✓ | ✓ | ✓ | × | ✓ |
Voltage Stability | × | × | ✓ | ✓ | ✓ | ✓ | ✓ |
Frequency Stability | × | × | ✓ | ✓ | ✓ | ✓ | ✓ |
Converter-Based Stability | × | × | × | ✓ | ✓ | × | ✓ |
Renewable Component | ✓ | ✓ | ✓ | ✓ | ✓ | ✓ | ✓ |
Non-Renewable component | ✓ | ✓ | × | ✓ | ✓ | × | ✓ |
Stability Issues | ✓ | × | ✓ | ✓ | ✓ | ✓ | ✓ |
Stability Analysis Methodologies | ✓ | × | × | × | ✓ | ✓ | ✓ |
Method | Type of Analysis | Accuracy | Speed | References |
---|---|---|---|---|
Time-Domain Analysis | Numerical | High | Slow | [45] |
Equal Area Criteria | Graphical | Basic | Fast | [44] |
Direct Method | Analytical | Medium | Fast | [46] |
Hybrid Method | Analytical | High | Fast | [45] |
AI-based Methods | Data-Driven | Varies | Very Fast | [47] |
Probabilistic Method | Statistical | High | Medium | [48] |
Analysis Type | Focus | Application in HES | Advantages | Limitations |
---|---|---|---|---|
Static Stability | Small perturbations under steady-state | Voltage margin, loadability | Simple, fast | Ignores dynamics |
Dynamic Stability | System response over time | Time-domain response in microgrids | Captures transient effects | Computationally intensive |
Small-Signal Stability | Linear response near operating point | Inverter control, weak grid conditions | Useful for control design | Assumes linearity |
Large-Signal Stability | Nonlinear behavior under major disturbances | Fault ride-through, fault stability | Realistic for faults | Complex simulation |
Frequency Stability | Maintaining system frequency | Frequency support in islanded systems | Important for low-inertia HES | Sensitive to controller modeling |
Voltage Stability | Maintaining voltage levels | Voltage support from hybrid sources | Identifies weak nodes | May miss global impacts |
Converter-Based Stability | Power electronic control dynamics | Analysis of converter interactions | Captures fast dynamics | Requires detailed modeling |
Probabilistic Stability | Stability under uncertain scenarios | Uncertainty in load, renewables | Captures variability | High computational cost |
AI/Data-Driven Stability | Stability prediction using data | Real-time monitoring and control | Fast, scalable | Needs large datasets |
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Kumari, N.; Tran, B.; Sharma, A.; Alahakoon, D. A Comprehensive Review on Stability Analysis of Hybrid Energy System. Sensors 2025, 25, 2974. https://doi.org/10.3390/s25102974
Kumari N, Tran B, Sharma A, Alahakoon D. A Comprehensive Review on Stability Analysis of Hybrid Energy System. Sensors. 2025; 25(10):2974. https://doi.org/10.3390/s25102974
Chicago/Turabian StyleKumari, Namita, Binh Tran, Ankush Sharma, and Damminda Alahakoon. 2025. "A Comprehensive Review on Stability Analysis of Hybrid Energy System" Sensors 25, no. 10: 2974. https://doi.org/10.3390/s25102974
APA StyleKumari, N., Tran, B., Sharma, A., & Alahakoon, D. (2025). A Comprehensive Review on Stability Analysis of Hybrid Energy System. Sensors, 25(10), 2974. https://doi.org/10.3390/s25102974