Flywheel Energy Storage for Automotive Applications
<p>The number of cycles to failure as a function of strain. The fatigue limit for composite flywheels is directly related to the strain in the matrix [<a href="#B22-energies-08-10636" class="html-bibr">22</a>].</p> "> Figure 2
<p>Cycle life of a battery as a function of depth-of-discharge in a low-power application [<a href="#B27-energies-08-10636" class="html-bibr">27</a>]. The end of usable life is assumed to be 70% capacity.</p> "> Figure 3
<p>Flybrid Systems Formula 1 flywheel for the 2009 season. Note that the power requirements are quite high, and the mechanical power transfer system (a continuously-variable transmission) is a large part of the machine. Reprinted with permission from the copyright holder.</p> "> Figure 4
<p>Jaguar hybrid car flywheel. Reprinted with permission from the copyright holder.</p> "> Figure 5
<p>GKN Hybrid Power Flywheel. Reprinted with permission from the copyright holder.</p> ">
Abstract
:1. Introduction
1.1. Rotor: Mass vs. Speed
1.2. Bearings: Magnetic vs. Mechanical
Mechanical bearings | Magnetic bearings |
---|---|
High stiffness per volume | Larger footprint for a given stiffness |
Known technology | Industrial standards not yet mature |
Must be rated for unbalance forces at high speeds | Can allow the rotor to spin around the natural axis at high speeds |
Higher standby losses at high speeds | Very low standby losses |
Lubricants evaporates during vacuum operation | Good for vacuum operation |
May require active cooling systems | Practical full magnetic levitation requires active control |
1.3. Power Transfer: Electric vs. Mechanical
1.3.1. Mechanical Power Transfer
1.3.2. Electric Power Transfer
Permanent Magnet Synchronous Machines
Induction Machines
Reluctance Machines, Switched or Synchronous
1.4. Materials, Containment and Safety
1.5. Cycle Life Time
1.6. Future Potential
Material | Ultimate tensile stress (MPa) | Density (kg · m) | Rotor energy density (Wh/kg) |
---|---|---|---|
Aluminum 7075 | 572 | 2810 | 28 |
17-7 PH Stainless steel | 1650 | 7800 | 29 |
Titanium Ti-15V-3Cr-3Al-3Sn ST 790 °C | 1380 | 4760 | 40 |
Advantex E-glass (glass fiber) | ∼1400 | 2146 | 90 |
Toray T1000G composite | 3040 | 1800 | 234 |
Toray T1000G fiber | 6370 | 1800 | 491 |
Vapor grown carbon nanofibers [25] | 2920 | 2000 | 202 |
Single wall carbon nanotube (low end) [25] | 50,000 | 1300 | 5341 |
Single wall carbon nanotube (high end) [25] | 500,000 | 1300 | 53,418 |
Multi-walled carbon nanotubes (low end) [25] | 10,000 | 1750 | 793 |
Multi-walled carbon Nnanotubes (high end) [25] | 60,000 | 1750 | 4761 |
2. Understanding the Flywheel Niche
- High power density;
- Long cycle life;
- No degradation over time and;
- Easily estimated state-of-charge.
2.1. Depth-of-Discharge
2.1.1. High Variations on the Required Cycle Energy
2.1.2. Few Variations on the Required Cycle Energy
- Power buffers in drive lines where the power density is low in the prime energy carrier, such as:
- −
- Low-power, high-energy batteries (such as Li-air);
- −
- Fuel cells (slow response times, low power density);
- Power buffers in drive lines where a steady (~constant) power flow from the primary energy source is advantageous, such as hybrid drive lines with combustion engines (higher efficiency, higher torque and less emissions with constant power outtake);
- Car ferries with short predefined trips (e.g., ~10 min, 50 times a day);
- Cranes lifting containers of roughly the same weight every time;
- Garbage trucks, which accelerate and decelerate in front of every house and frequently compress the garbage;
- Train station energy storage, which captures the energy of a braking train.
Type | Flywheel system | EDLC system | Li-ion battery system |
---|---|---|---|
Manufacturer | GKN | Maxwell Boostcap | A123Systems |
Rated power | 120 kW | 120 kW | 120 kW |
Energy capacity | 456 Wh | 647 Wh | 26,400 Wh |
Cycle life time | |||
Specific energy | 8.3 Wh/kg | 1.75 Wh/kg | 110 Wh/kg |
Specific power | 2200 W/kg | 320 W/kg | 500 W/kg |
System weight | 55 kg | 370 kg | 240 kg |
2.2. Flywheel Costs
Parameter | Flybrid system | Electric hybrid |
---|---|---|
Round trip efficiency | 74% | 34% |
Weight | 35 kg | 85 kg |
Volume | 20 liters | 50 liters |
Cost per unit (200k units) | 2000 USD | 8000 USD |
2.3. Flywheels vs. Supercapacitors
Flywheel system | Flywheel system | Flywheel system | EDLC system |
---|---|---|---|
GKN hybrid power Porsche GT3R [21] | GKN hybrid power Audi e-tron [21] | Flybrid Formula 1 2009 [3] | Maxwell Technologies BMOD0063 P125 [35] |
180 kW | 150 kW | 60 kW | 103 kW |
375 Wh | 97 Wh | 111 Wh | 150 Wh |
>1,000,000 cycles | >1,000,000 cycles | N/A | ~1,000,000 cycles |
6.4 Wh/kg | 3.5 Wh/kg | 4.4 Wh/kg | 2.3 Wh/kg |
3.15 kW/kg | 5.55 kW/kg | 2.4 kW/kg | 1.7 kW/kg |
57 kg | 27 kg | 25 kg | 61 kg |
2.4. Flywheels vs. Batteries
2.4.1. Specific Power
2.4.2. Usable Life
2.4.3. Environmental Footprint
2.4.4. Temperature Sensitivity
2.4.5. State-of-Charge Estimation
- Energy density;
- Self discharge;
- Steady output voltage;
- Cost per kWh.
3. Applications
3.1. Buses
3.2. Cars
Property | Value |
---|---|
Usable energy | 111 Wh |
Power capability | 60 kW |
Max rotor speed | 64,500 rpm |
Rotor weight | 5 kg |
System weight | 25 kg |
Specific energy (rotor) | 22.2 Wh/kg |
Specific energy (system) | 4.4 Wh/kg |
Energy density | 8.5 Wh/L |
3.3. Container Cranes/Straddle Carriers
3.4. Construction Machines
3.5. Garbage Trucks
3.6. Charging Stations
3.7. Cable Ferries
3.8. Train Stations
3.9. Trams
3.10. Frequency Regulation
3.11. Micro-Grid Stabilization
3.12. Power Quality
4. Manufacturers and Research Groups
Manufacturer | End application |
---|---|
ABB | Micro-grid stabilization [88] |
Active Power | UPS for data centers, hospitals, broadcasting, industries, etc. |
AFS Trinity | Formula 1 [89] |
Alstom | Citadis/Rotterdam tram |
Amber Kinetics | Micro-grids |
ATZ | Transportation [90] |
Beacon Power | Grid frequency regulation |
Boeing | Mobile power inside factories |
Caterpillar | UPS |
CCM | Buses, cranes |
Flybrid Systems | Formula 1 |
Flybus | Bus power buffers |
Flywheel Energy Systems | Several |
Kinetic Traction Systems | Train stations, Power quality |
LaunchPoint Technologies | UPS, Train stations, Military |
Lockheed Martin (Sandia Laboratories) | Research |
NASA | Attitude control for satellites Optimal Energy Systems |
PowerThru | UPS |
Ricardo | Excavators |
Satcon Technology Corporation | Space applications |
Seakeeper | Active stabilization of boats up to 140 tons |
Texas Bus | Bus power buffers |
Traxler, mecos | UPS |
U.S. Flywheel Systems | Cars |
Vox Solaris | UPS |
Vycon & Calnetix | Train stations, cranes [4] |
GKN Hybrid Power | Racing and buses |
University | End application | Recent reference |
---|---|---|
Austin, Texas, U.S. | Buses, cranes | [91] |
Beihang University, China | Space applications | [92] |
Beijing University of Aeronautics and Astronautics | Space applications | [93] |
Bialystok University of Technology, Poland | [94] | |
Chiba University | Electric vehicles | [95,96,97,98] |
National Chung Cheng University, Taiwan | [99,100] | |
Chungnam National University, Korea | Grid | [101] |
CIEMAT, Spain | Train, tram | Spin off company Elytt [102] |
National University of Defense Technology, Changsha, China | Space applications | [103,104] |
Darmstads, Germany | [105] | |
Technical University of Dresden, Germany | [106] | |
Technical University of Eindhoven, TU/e, Netherlands | [56] | |
Hanyang University, Korea | [107] | |
Harbin Engineering University, China | [108] | |
Kyushu Institute of Technology | Superconductive suspension | [109,110] |
Nanjing University of Aeronautics and Astronautics, Nanjing, China | Space applications | [111] |
Universidade Federal do Rio de Janeiro, Brazil | [112] | |
Saxony, Germany | [113] | |
Texas A&M, USA | Space Applications | [114] |
Tsinghua University, China | Oil drills | [115] |
Turin, Italy | [116] | |
Uppsala, Sweden | Cars, ferries and grid | |
University of Virgina, U.S. | [14] | |
University of Windsor, ON, Canada | Electric vehicles | [117] |
Vienna University, Austria | [118] | |
Wuhan University of Technology, Hubei, China | Electric vehicles | [14,119] |
Zhejiang University, Hangzhou, China | [120] | |
ETH, Zurich |
Acknowledgments
Author Contributions
Conflicts of Interest
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Hedlund, M.; Lundin, J.; De Santiago, J.; Abrahamsson, J.; Bernhoff, H. Flywheel Energy Storage for Automotive Applications. Energies 2015, 8, 10636-10663. https://doi.org/10.3390/en81010636
Hedlund M, Lundin J, De Santiago J, Abrahamsson J, Bernhoff H. Flywheel Energy Storage for Automotive Applications. Energies. 2015; 8(10):10636-10663. https://doi.org/10.3390/en81010636
Chicago/Turabian StyleHedlund, Magnus, Johan Lundin, Juan De Santiago, Johan Abrahamsson, and Hans Bernhoff. 2015. "Flywheel Energy Storage for Automotive Applications" Energies 8, no. 10: 10636-10663. https://doi.org/10.3390/en81010636