Supercapacitor Energy Storages in Hybrid Power Supplies for Frequency-Controlled Electric Drives: Review of Topologies and Automatic Control Systems †
Abstract
:1. Introduction
2. Topologies of Hybrid Power Supplies for Vehicle Electric Drives
2.1. Hybrid Power Supplies for Electric Drives of Electric Vehicles
2.1.1. Structures of Hybrid Power Supplies with an Internal Combustion Engine as the Main Energy Source
2.1.2. Structures of Hybrid Power Supplies with a Storage Battery as the Main Energy Source
2.1.3. Structures of Hybrid Power Supplies with a Fuel Cell as the Main Energy Source
- The fuel cell provides less current during transient operation;
- The fuel cell’s service life is increased;
- The energy autonomy of a hybrid vehicle is increased.
2.2. Hybrid Power Supplies for Public Transport Vehicles
2.3. Hybrid Power Supplies for Electric Drives of General Industrial Mechanisms
2.3.1. Hybrid Power Supplies for Crane Electric Drives
- The possibility of maintaining a continuous electric power supply to the system is improved;
- System functionality, including the braking ability, is not related to network reliability;
- The mains peak power can be regulated, and the influence of the drive on the network is greatly reduced. This is especially important in the case of a weak power supply [37].
2.3.2. Hybrid Power Supplies for Electric Drives of Lifts
- The existence of peak power, the ratio of which to average power can exceed a tenfold value [49];
- The reliability of lifts.
2.4. Discussion
- With appropriate management of the distribution of the energy flow of sources, smoothing the peaks of power consumption from the main energy source can be ensured;
- Stabilisation of the voltage level of the main source when the drive load changes;
- Lower operating costs;
- Energy quality problems, which arise if the regenerated energy is fed into the local grid, can be avoided.
3. Auxiliary Power Topologies
3.1. DC-to-DC Boost Converter Topology
3.2. Topologies of DC-DC Buck-Boost Converters with a Single-Phase Conversion Method
3.3. Topologies of Multiphase Up/Down Converters
3.4. Topologies of Up/Down DC-to-DC Converters with Voltage Level Adaptation via a Transformer
3.5. Discussion
4. Structures of Control Systems for Auxiliary Power Sources with Supercapacitors
4.1. Composition and Principles of Regulation of Variable Single-Circuit Automatic Control Systems
4.2. Composition and Principles of Regulation of Variable Two-Circuit Automatic Control Systems
- Charge/discharge of supercapacitors during engine braking/acceleration;
- Prohibition of charging supercapacitors if the voltage is higher than the maximum value, and prohibition of discharging supercapacitors if the voltage falls below the minimum value;
- Limiting the discharge/charge current of supercapacitors at the level of the highest allowable current;
- Stabilisation of the DC link voltage.
- Monitoring the voltage on the DC bus to avoid excessive voltage surge when the drive is decelerating;
- Use of the energy recovered during the braking phase to reduce the energy given off by the network and increase the electric drive’s overall efficiency.
- Charging mode, in which the main source supplies energy to the auxiliary source and the load;
- Discharge mode, in which both the main and auxiliary sources supply energy to the load;
- Recovery mode, in which the load supplies energy to the energy storage device.
4.3. Composition and Principles of Regulation of Variable Three-Loop Automatic Control Systems
- Mains power mode;
- Braking and driving modes from the supercapacitors;
- Ride-through mode.
4.4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Vladimir, P.; Iurii, P. Supercapacitor Energy Storages in Hybrid Power Supplies for Frequency-Controlled Electric Drives: Review of Topologies and Automatic Control Systems. Energies 2023, 16, 3287. https://doi.org/10.3390/en16073287
Vladimir P, Iurii P. Supercapacitor Energy Storages in Hybrid Power Supplies for Frequency-Controlled Electric Drives: Review of Topologies and Automatic Control Systems. Energies. 2023; 16(7):3287. https://doi.org/10.3390/en16073287
Chicago/Turabian StyleVladimir, Polyakov, and Plotnikov Iurii. 2023. "Supercapacitor Energy Storages in Hybrid Power Supplies for Frequency-Controlled Electric Drives: Review of Topologies and Automatic Control Systems" Energies 16, no. 7: 3287. https://doi.org/10.3390/en16073287
APA StyleVladimir, P., & Iurii, P. (2023). Supercapacitor Energy Storages in Hybrid Power Supplies for Frequency-Controlled Electric Drives: Review of Topologies and Automatic Control Systems. Energies, 16(7), 3287. https://doi.org/10.3390/en16073287