VSC-HVDC and Its Applications for Black Start Restoration Processes
Abstract
:1. Introduction
2. Black Start
- Hydroelectric units, which have fast response features.
- Diesel generators, which are useful, despite their small size, for supplying power for starting larger units.
- Aero-derivative gas turbine generators, thanks to their steep ramp rate, i.e., a fast increase in their power output.
- Larger gas turbines, even though they are not themselves capable of a black start, they can be coupled with diesel generators for this purpose.
3. Black Start Process Schemes
- Formation module: The power system starts an automatic black start search process through the local power distribution. Power plants which are on standby mode are identified, together with possible start routes. Every possible start scheme is generated automatically, conforming a database of initial schemes.
- Verification module: With the start schemes already proposed, analysis and simulation through software tools is done for verifying every proposed scheme. This simulation also takes into account characteristics such as self-excitation of some units, commutation under no-load conditions, and low frequency check [37].
- Optimization module: Aiming for the best possible performance, an optimal startup scheme is selected from the proposed options (this is done using decision-making methods). The selection of the final startup scheme is very important, as it plays a crucial role on the system’s performance.
- Generation capacity of each unit, as it determines the amount of energy that can be supplied to the system when it starts [38].
- Actual conditions of each unit: These conditions are determined by the temperature of their turbine cylinder. As a function of said temperature, the conditions of a unit can be divided into five categories: ultra-cold, cold, warm, hot, and ultra-hot [39].
- The ramp rate of each unit: During the restoration stage, the most important loads have to be restored first. Indeed, the units with the best ramp rate should be started first, due to their ability of quickly increasing their output. An example is shown in Figure 1.
- Operation commutation number: On black start processes, some units provide energy to the power system through restoration routes. The number of commutation operations has an impact on the system, like frequency power overcharge and commutation overcharge [42].
4. Evaluating a Black Start Scheme’s Performance
- is the efficiency of the black start scheme
- is the restarting state indication of the unit
- is the total time consumption of units
- is the time-stepping interval
- NG are the units to be restored
- is the MW output of the unit
- is the number of HVDC converter stations to be restored
- is the restarting state indication of the HVDC converter station
- is the transmission power of the HVDC converter station
5. High Voltage Direct Current
5.1. HVDC Configurations
5.2. HVDC Benefits
- Operational advantages
- The power carrying capability of a DC line is unaffected by its length due to the capacitance phenomena in cable only appearing when the cable is energized for the first time or when the value of voltage changes.
- As a DC line requires no reactive power, controlling the voltage at both ends is easier.
- Their technology does not need voltage compensation to overcome problems, such as line charging and stability limitations.
- A DC line can interconnect two grids as an asynchronous link rather easily thanks to its fast controllability of power flow.
- Whereas AC lines cannot operate on unbalanced conditions for more than a second, bipolar DC lines can operate on single pole configuration for extended periods of time.
- Economic advantages
- Right of Way (RoW) incorporates small towers in comparison with the towers used in AC transmission and requires less land for its installation, which translates into a reduction cost for the tower and its installation.
- DC lines can carry, with two conductors, as much power as an AC line using three conductors, which represents a reduction in cost for end users.
- The line cost is reduced since it considers less conductors and insulators per pole.
- As it has fewer conductors, power transmission losses along a DC line are inferior to those of an AC equivalent after a certain length, as shown in Figure 4.
6. HVDC Converters
6.1. Operational Advantages of VSC
- Minimal environmental impact.
- Ability to connect to weak AC networks and dead networks.
- Rapid development in power electronics technology.
- Ongoing development in the availability of various types of semiconductor switches.
- Integration of renewable energy resources and storage systems in electric power grids.
6.2. System Restorations with VSC-HVDC
7. Black Start Capabilities through HVDC
7.1. Frequency Support through MMC-VSC Overload
- Frequency-power droop controller, in which the converters’ support is proportional to the frequency deviation, given by= Power response= Gain= Frequency deviation= Nominal frequency= Measured frequency
- Maximum power release controller, in which the converter provides the maximum support available, expressed as follows:= Power response= Maximum power support available= Rated power output
7.2. Fast Frequency Support within Safe Limits
- , which is the ratio between the maximum permissible DC voltage variation and the maximum drop expected in the frequency.
- , defined as the ratio between the extra active power that can still be delivered (difference between measured and nominal values) and the maximum permissible DC voltage variation.
7.3. Transient Stability Improvement
- A global control method, using as a reference the weighted average of the frequencies measured on the terminals of the AC system. This set point is determined as:= Frequency reference= Frequency of the AC bus of converter
- 2.
- A local frequency control strategy. Here, the injection of each converter is proportional to its local frequency deviation with respect to the nominal frequency of the system. This method reduces communication complications.
7.4. Power Oscillation Damping
7.5. Power Oscillation Damping through MMC Overload Capability
7.6. Soft-Start Capacity Using VSC-HVDC
7.7. Renewable Energy Used as Power System Source for Black Start
8. Rising Applications and Future Challenges
9. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Type | Description |
---|---|
Point to Point | Connection between two substations (point to point) when the HVDC alternative is better than HVAC. Each of the substations works as a rectifier or inverter, depending on the direction of the power flow. This is the most common type of HVDC link. |
Back to Back | Connection of two different frequency systems inside a substation. |
Multiterminal | Used when three or more substations are connected to a HVDC system. |
Unitary | Used when the DC transmission is performed directly at the power generation point. Mainly used in hydroelectric or wind power plants. |
Paper | Problem | Solution | Results |
---|---|---|---|
[29] | Traditional VSC frequency control techniques are not appropriate for high harmonic distortion conditions. | A controller based on frequency self-adaptation tracking algorithm (FATA) is proposed for replacing Phase-Locked Loop (PLL) methods. | Better harmonic suppression, even for severe operating conditions, appropriate for both dynamic and steady state. |
[26] | Conventional black start strategies require periodical tests to the equipment. Harmful phenomena related to transmission lines and transformers occur during abrupt start strategies. | This paper includes field test results of VSC HVDC performance as a black start source, with an overview of its control mechanisms and characteristics. | A comparison between traditional and VSC black start show that the latter offers reduced restoration time, safer and smoother restoration, and lower investment and maintenance costs. |
[31] | Inrush currents and transient over-voltages can cause failure in a black start restoration. | Method for soft-energizing major power systems through VSC-HVDC. | No over-voltage or surge at all during the restoration. |
[57] | Traditional black start problems such as: generator’s self-excitation, switching surge and over-voltage while powering long no-load lines and ferromagnetic resonance while charging transformers. | Overview process similar to the previous paper, for using VSC HVDC terminals for soft starting transmission lines, later energizing assistance equipment for a generator and switching it on for restoring load. | This process, considering the changes of control modes of VSC and energization of auxiliary components, speeds up the restoration and proves VSC-HVDC an excellent black start source. |
[58] | Traditional black start strategies are limited due to small power supply capacity, slow recovery process, slow recovery process, and weak power adjustment. | A method for supplying passive AC networks through VSC HVDC is proposed, using constant AC voltage control for enabling the system to operate normally under disturbance conditions. | Improved system stability during the recovery process, while also shortening the recovery time of the system. |
[59] | System restorations on passive networks using Line Commutated Converter (LCC) HVDC is very hard. System restorations on passive networks using Line Commutated Converter (LCC) HVDC is very hard. | This paper explores the possibility to black start a passive AC grid without the need of telecommunication systems or external power electronics, controlling the AC voltage locally. | Through controlled capacitors, a successful method for providing black start capability with this alternate converter technology is presented. |
[60] | Power oscillation, especially on weak or passive AC grids, adds to the difficulty of restoration processes. | Method for damping power oscillation both through active and reactive power supplied by VSC. | Transient stability and dynamic performance of power systems are considerably enhanced. |
[61] | Transient stability of huge hybrid AC/DC systems is a great obstacle for their development. | Through independent P and Q injections from VSC, a method is proposed for increasing stability based on frequency deviations. | This method increases the ease with which a power system can be dynamically controlled. |
[27] | Conventional grids are showing a decrease in their levels of inertia because of the replacement of conventional generators with low-carbon technologies. | A control method is proposed and tested for supplying the grid with fast frequency assistance, without risking the operation of the VSC. | A robust response to voltage and frequency drops is achieved, the designed scheme is autoregulated and enhances the transient performance of the grid safely. |
[30] | Further inclusion of low-inertia generation on grids will make frequency control more challenging. | Method for providing frequency support for a system through the use of MMS VSC HVDC. | Significantly reduced spinning reserve requirements thanks to this alternative frequency support. |
[11] | In decentralized and independent control wind power and energy storage systems, the high variability generated by charging and discharging of energy storage produces an unbalanced system power which leads to the failure of black start. | A method based on a coordinated control strategy of multi-energy storage supporting blackstart based on dynamic power distribution divided into two layers is proposed to deal with the disorder of charging and discharge of energy storage. | The power balance and stable voltage frequency in black start of the power grid is carried out by a coordinated control strategy. At the same time, the adaptive dynamic distributions deal with the critical operation of overcharged and discharged energy storage systems. |
[13] | Renewable energy cannot provide inertia response or frequency response as traditional synchronous generators; at lower inertia situations, the frequency changes faster. | A hierarchical predictive control method of wind farm with an energy storage system for frequency regulation. | In order to deal with the low and high wind conditions, two modes of control are implemented which are based on frequency regulation and reserve recovery mode. |
[62] | The black start capability on conventional power plans is characterized by long start-up times due to their slow dynamics. | HVDC connected offshore wind power plants (OWPPs) provide fast and environmentally friendly solutions for power system restoration. | OWPPs can provide fast solution to power system restoration as long as the wind turbines are equipped with the black start capability. |
[63] | Traditional case studies have been widely applied to two terminal hybrid systems which are used in a black start power provided by a single healthy AC grid. | The dynamic changes related to AC grid and converters are considered. In this sense, multi-terminal direct current systems facing the dynamic changes in a feasibility and effectiveness manner. | A new strategy based on an optimal power allocation to perform black start in the VSC based on multi-terminal direct current systems. |
[64] | The faster recovery and controllability of black start capability during fault and maintenance. | A phase-locked loop (PLL) control scheme based on intelligent adaptable control to effectively achieve real power control is proposed. | An improvement in the black start rate of HVDC links. |
[65] | The classical VSC-HVDC controller is load-dependent and has to be adjusted according to each operation condition. | A robust controller design that increases the robustness until operation conditions experience continuous variations. | A global stabilization and enhanced dynamic performance of the VSC-HVDC system. |
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Sanchez Garciarivas, R.; Rasilla Gonzalez, D.; Navarro, J.A.; Soriano, L.A.; Rubio, J.d.J.; Gomez, M.V.; Garcia, V.; Pacheco, J. VSC-HVDC and Its Applications for Black Start Restoration Processes. Appl. Sci. 2021, 11, 5648. https://doi.org/10.3390/app11125648
Sanchez Garciarivas R, Rasilla Gonzalez D, Navarro JA, Soriano LA, Rubio JdJ, Gomez MV, Garcia V, Pacheco J. VSC-HVDC and Its Applications for Black Start Restoration Processes. Applied Sciences. 2021; 11(12):5648. https://doi.org/10.3390/app11125648
Chicago/Turabian StyleSanchez Garciarivas, Rafael, Diego Rasilla Gonzalez, Javier Agustin Navarro, Luis Arturo Soriano, José de Jesús Rubio, Maria Victoria Gomez, Victor Garcia, and Jaime Pacheco. 2021. "VSC-HVDC and Its Applications for Black Start Restoration Processes" Applied Sciences 11, no. 12: 5648. https://doi.org/10.3390/app11125648
APA StyleSanchez Garciarivas, R., Rasilla Gonzalez, D., Navarro, J. A., Soriano, L. A., Rubio, J. d. J., Gomez, M. V., Garcia, V., & Pacheco, J. (2021). VSC-HVDC and Its Applications for Black Start Restoration Processes. Applied Sciences, 11(12), 5648. https://doi.org/10.3390/app11125648