Charging station for electric vehicles with fuel cell systems
The charging station uses liquefied hydrogen and fuel cells to address grid strain and environmental concerns, offering high-power, emission-free charging with autonomous operation and adaptability.
Patent Information
- Application Number
- JP2023568489
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-10-28
- Filing Date
- 2022-05-02
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2042-05-02
AI Technical Summary
The increasing demand for electric vehicle charging, particularly with larger batteries, strains the power grid, and existing solutions like fossil fuel generators and renewable energy infrastructure are inadequate or environmentally unfriendly, while remote and densely populated areas face infrastructure and climate challenges.
A charging station utilizing liquefied hydrogen storage and fuel cells to generate electrical energy, integrated underground with a battery system, enabling high-power, emission-free charging and autonomous operation, and optionally supported by renewable energy sources.
Provides high-power, emission-free charging capable of simultaneously charging multiple vehicles without grid dependency, with enhanced safety and efficiency, and adaptable to various environments.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a charging station for an electric vehicle, a charging system for an electric vehicle, the use of a charging station or system, and a method for charging an electric vehicle. [Background technology]
[0002] Electric vehicles, such as boats, cars, and airplanes, play an important role in reducing global greenhouse gas emissions. Driven by government incentives and low operating costs, the number of electric vehicles has steadily increased in recent years. However, as the number of electric vehicles increases, the demand on the power grid increases, as many vehicles may need to be charged simultaneously. Furthermore, many newer electric vehicles are equipped with larger batteries to extend their range or to power larger vehicles such as ferries and trucks. Charging these larger batteries further increases the demand on the power grid. In addition, there is a general demand for shorter charging times. Long charging times are considered one of the main drawbacks of electric vehicles. To shorten charging times, high-power chargers, typically 200 kW or more, are required. However, rapid charging using high-power chargers places even greater strain on the power grid. Therefore, charging a large number of electric vehicles simultaneously can create demand that exceeds the grid's capacity.
[0003] Further challenges with charging electric vehicles arise in remote areas, where the power infrastructure capable of supporting electric vehicle charging may be insufficient or non-existent. Furthermore, in densely populated areas with unstable power grids and electricity supplies, charging may be interrupted for long periods of time. These factors can severely impact electric vehicle travel and even completely prevent the use of electric vehicles, such as electric cars, in certain areas. Even in areas with well-developed power grids, increased demand from both electric vehicles and other power-intensive activities can lead to grid failures, which can adversely affect the ability to charge electric vehicles.
[0004] One solution is to rely on generators as backups to power charging stations for electric vehicles. However, generators typically run on fossil fuels such as diesel, which contributes to greenhouse gas emissions and ambient air pollution. Another solution is to directly produce renewable energy at the charging station site. However, typical means of directly producing renewable energy rely on wind or solar power. Both wind and solar power require significant investments in equipment and infrastructure to generate the required amount of electricity. Local communities may not have the space or funds to install such structures. Furthermore, these renewable energy sources are not suitable for all geographic locations and climates.
[0005] So there is a clear need for improved charging stations that can provide the high power needed to fast charge all types of electric vehicles, while being grid independent and emission-free.Furthermore, these charging stations need to overcome the shortcomings of fossil fuel, wind, and solar power generation. Summary of the Invention
[0006] The present invention relates to a charging station for electric vehicles according to claim 1 and to a charging system for electric vehicles according to claim 11. The present invention also relates to the use of a charging station or system according to claim 12 and to a method for charging an electric vehicle according to claim 13. [Brief explanation of the drawings]
[0007] [Figure 1] FIG. 1 shows a schematic diagram of a charging station according to a first embodiment of the present invention.
[0008] [Figure 2] FIG. 2 shows schematically further details of a charging station according to the invention.
[0009] [Figure 3]FIG. 3 shows a schematic diagram of an automatic charging system according to the present invention.
[0010] [Figure 4A] FIG. 4A shows a schematic diagram of a charging station according to a second embodiment of the present invention.
[0011] [Figure 4B] FIG. 4B shows a schematic top view of a charging station according to a second embodiment of the present invention.
[0012] [Figure 5] FIG. 5 shows a schematic diagram of a charging station according to a third embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0013] FIG. 1 schematically illustrates a charging station 1 according to a first embodiment of the present invention for charging an electric vehicle 6. Further details are shown schematically in FIGS. 2 and 3. Similar reference symbols refer to similar components in FIGS. 1, 2, 3, and all other figures. The charging station 1 includes a storage unit 2 for liquefied hydrogen and a conversion unit 3 for producing electrical energy from the liquefied hydrogen. Advantageously, the liquid hydrogen can be produced elsewhere and then transported to the charging station by a transport vehicle, similar to current fossil fuel charging stations. Furthermore, liquid hydrogen requires less storage volume than gaseous pressurized hydrogen. This achieves high efficiency in the supply chain and reduces the demand for storage volume at the charging station. The charging station 1 further includes a battery system 4 for storing electrical energy from the conversion unit 3. The charging station 1 then includes at least one charging pile 5 for charging the electric vehicle 6 with electrical energy from the battery system 4. In the first embodiment, the electric vehicle 6 may be any kind of electric vehicle, such as an electric car, an electric bus, an electric motorcycle, an electric truck, an electric scooter, or an electric bicycle.
[0014] The storage unit 2, the conversion unit 3, and the battery system 4 are preferably installed underground. Underground is understood to include the surface if the surface contains artificial structures. The dotted lines in Figures 1 and 2 indicate the ground surface level. The conversion unit 3 and the battery system may utilize only direct current, without inputting or outputting alternating current. Advantageously, avoiding AC-DC conversion improves the efficiency of the charging station. The charging station 1 may have a charging capacity of at least 200 kW, preferably at least 400 kW, more preferably at least 800 kW, and most preferably at least 1000 kW. Advantageously, the charging station has sufficient capacity to charge electric vehicles equipped with large-capacity batteries. Even more advantageously, the charging station has sufficient capacity to simultaneously charge multiple electric vehicles without experiencing the charging capacity degradation experienced by grid-based charging stations. This allows the charging station of the present invention to provide high-power, emission-free charging without relying on or placing a strain on the power grid.
[0015] The storage unit 2, the conversion unit 3, and the battery system 4 are preferably installed underground. This advantageously reduces the impact of ambient temperature changes on the cryogenic storage of liquid hydrogen. Furthermore, the underground installation better protects the storage unit 2, the conversion unit 3, and the battery system 4 from the elements. The underground installation also improves safety for charging station users and operators due to the flammability of hydrogen. The underground installation also reduces the need for aboveground space, which is particularly advantageous in locations with limited available space, such as densely populated areas or mountainous regions with steep terrain. Preferably, a room 9 may be provided underground to house the storage unit 2, the conversion unit 3, and the battery system 4. The room 9 may have walls, a floor, and possibly a roof, all of which are preferably formed of fire-resistant or fire-resistant materials, such as concrete or reinforced concrete. Preferably, the roof may have an access point to allow access to the room 9 for maintenance.
[0016] Referring to Figures 1 and 2, the storage unit 2 preferably comprises one or more tanks for liquefied hydrogen. The liquefied hydrogen is stored at temperatures below -252.9°C and a pressure of 1 bar. Each tank therefore comprises a multi-layer insulation structure comprising an inner tank suspended from an outer tank. The space between the inner and outer tanks may be evacuated. The space within the storage unit 2 around the one or more tanks may be filled with an inert gas, such as nitrogen, thereby preventing the formation of an explosive mixture of hydrogen and air in the event of a leak within the storage unit. The storage unit 2 further comprises a fill port through which the storage unit 2 can be filled with liquid hydrogen, as described in more detail below. The fill port may be connected to a first tank. Additional tanks may then be connected to the first tank so that all tanks are filled through a single fill port. Alternatively, each tank may have an individual fill port, allowing each tank of the storage unit 2 to be filled individually. The storage unit 2 further comprises a fill pipe 2a. The fill port, or each fill port of the multiple tanks, is connected to a fill pipe 2a extending from the storage unit 2. A vehicle 7, such as a liquid hydrogen transport truck, can be connected to the fill pipe 2a to supply liquid hydrogen to the storage unit 2.
[0017] The storage unit 2 further includes an extraction system for delivering hydrogen gas from the storage unit 2 to the conversion unit 3. The extraction system includes at least one hydrogen gas inlet installed in at least one tank of the storage unit 2. The storage unit 2 further includes a storage control system 2c for controlling the temperature of each tank. The storage control system 2c may include at least one sensor and a central processing unit (CPU). The at least one sensor may include a temperature sensor and, optionally, a pressure sensor. By controlling the temperature of each tank, the vaporization of hydrogen gas is controlled, thereby controlling the supply of hydrogen gas from the storage unit 2 to the conversion unit 3. The storage unit 2 further includes at least one supply pipe 2b connecting the storage unit 2 and the conversion unit 3. Hydrogen gas is supplied from the storage unit 2 to the conversion unit 3 through the supply pipe 2b. The supply pipe 2b is provided with a shut-off valve for stopping the flow of hydrogen gas to the conversion unit 3.
[0018] The conversion unit 3 includes a housing. The housing is provided with at least one inlet 3a for introducing air from the atmosphere into the conversion unit 3. At least one compressor may be connected to the at least one inlet 3a for compressing the air. An additional compressor is connected to the supply pipe 2b to control the flow of hydrogen gas to and within the conversion unit 3. The conversion unit 3 further includes at least one fuel cell for converting hydrogen and oxygen into electrical energy. The fuel cell may include a fuel cell stack including a catalyst disposed between an anode and a cathode. The at least one fuel cell is connected to the supply pipe 2b and the at least one inlet 3a, thereby supplying hydrogen gas and air to the at least one fuel cell. The conversion unit 3 may further include a recirculation circuit for recirculating unconverted hydrogen gas from the fuel cell. The conversion unit 3 may further include at least one exhaust port 3b for discharging excess oxygen to the atmosphere. The conversion unit 3 may further include at least one cooling inlet 3c for allowing cooling air to enter the conversion unit 3, the storage unit 2, and / or the battery system 4. The conversion unit 3 may further include an outlet for discharging residual water from the fuel cell. The residual water results from the hydrogen conversion process. The conversion unit 3 may further include at least one DC-DC converter coupled to the at least one fuel cell and the battery system 4. The conversion unit 3 may further include a conversion control system 3d for controlling the operation of the conversion unit 3. The conversion control system 3d may include at least one sensor and a central processing unit (CPU). The at least one sensor may include a temperature sensor, a pressure sensor, an optical sensor, or any other suitable sensor. The energy required to power the conversion unit 3 may be provided by the battery system 4, directly by the fuel cell, or by an auxiliary power source 8, which will be described in more detail below.
[0019] The battery system 4 may include one or more batteries, preferably large-capacity batteries. The battery system 4 has a charging capacity of at least 100 kW, preferably at least 400 kW, more preferably at least 800 kW, and most preferably at least 1000 kW. The battery system 4 is connected to the converter unit 3 by one or more power cables 4a. The battery system 4 receives power from the converter unit 3. The battery system 4 is also connected to the charging pile 5 by one or more power cables 4b to supply power to at least one charging pile 5. The battery system 4 may include at least one, preferably at least two, and more preferably at least three batteries for each charging pile 5. Preferably, one battery supplies power to the charging pile 5, one battery provides reserve capacity for the charging pile 5, and one battery can be simultaneously charged by the converter unit 3. The battery system 4 may include one or more additional batteries for powering the converter unit 3, lighting for the charging station, and / or various control systems. The battery system 4 may further include a battery cooling system. The battery cooling system may receive cooling air from the cooling inlet 3c. The battery system 4 may also include a battery control system 4c for controlling the operation of the battery system 4. The battery control system 4c may include one or more sensors, such as a temperature sensor or an optical sensor. The battery control system may further include a DC-DC converter and a central processing unit (CPU).
[0020] At least one charging pile 5 is coupled to the battery system 4 via one or more power cables 4b. When coupled to the charging pile 5, the electric vehicle 6 receives power from the battery system 4 via the charging pile 5. Each charging pile 5 can be coupled to at least two batteries of the battery system 4. The charging pile 5 includes at least one charging connection. Each charging connection is provided with a plug for connecting to the electric vehicle 6. At least one charging pile 5 can accommodate a charging capacity of up to 1000 kW or more. The charging connection may be a manual charging connection 5a. The manual charging connection 5a can be connected to the electric vehicle 6 by a user or operator. Alternatively or additionally, the charging station 1 may include an automatic charging system 5c, as schematically shown in FIG. 3. The automatic charging system 5c may include a central processing unit (CPU). The automatic charging system 5c may also include a user interface, such as an application running on a control panel, tablet, or smartphone. Advantageously, charging of the electric vehicle 6 may be performed autonomously or semi-autonomously by the automatic charging system 5c. The automatic charging system 5c may include a sensor assembly 5d for automatically recognizing the electric vehicle 6 and / or enabling remote operation of the charging station 1. The sensor assembly may include optical sensors, radar, lidar, or other suitable sensors for object recognition and monitoring. The automatic charging system 5c may also include a communication module 5e for wirelessly communicating with electric vehicles 6 approaching the charging station 1 and / or electric vehicles 6 positioned at the charging station 1. The automatic charging system 5c may, for example, communicate to the approaching electric vehicle 6 which charging piles 5 are available or will soon be available. Advantageously, this achieves efficient charging of the electric vehicle 6 while minimizing waiting times. The communication module 5e may wirelessly communicate with the electric vehicle 6 via Wi-Fi, Bluetooth, or short-range radio. The automatic charging system 5c may further include a robotic charging connection unit 5b for autonomously connecting the charging piles 5 to the electric vehicle 6.The robotic charging connection 5b may comprise a robotic arm. The robotic charging connection 5b may be driven and controlled by an automatic charging system. The automatic charging system 5c preferably controls the robotic charging connection 5b based on data provided by a machine vision assembly 5d and / or a communication module 5e. The automatic charging system 5c may be powered by at least one battery system 4, an auxiliary power source 8, and / or a power grid. The automatic charging system 5c may further control the storage control system 2c, the conversion control system 3d, the battery control system 4c, and / or the auxiliary power source 8.
[0021] In use, the robot charging connection 5b automatically connects the charging pile 5 to an electric vehicle 6 located in the vicinity of the charging pile 5. The electric vehicle 6 can be charged with electrical energy from the battery system 4. The communication module 5e can wirelessly receive data from the electric vehicle 6 indicating the required charge level. The automatic charging system 5c can then instruct the battery control system 4c to provide the required amount of power to the robot charging connection 5b. The automatic charging system 5c can also instruct the conversion control system 3d to charge or recharge the battery system 4 as needed. The automatic charging system 5c can then start or stop supplying power from the auxiliary power source 8. This advantageously allows for optimized operation of the charging station. Once charging is complete, the robot charging connection 5b automatically disconnects from the electric vehicle 6. Payment can be made wirelessly by the electric vehicle 6 to the automatic charging system or a remote payment facility via the communication module 5e.
[0022] The automatic charging system 5c may include machine-readable instructions for controlling the operation of the storage control system 2c, the conversion control system 3d, the battery control system 4c, the automatic charging system 5c, and / or the auxiliary power source 8. The machine-readable instructions may include a self-learning component, such as a neural network or artificial intelligence. The self-learning component may be configured to optimize the operation and efficiency of the charging station 1. To do so, the self-learning component may collect data by monitoring environmental variables, such as ambient temperature, ambient pressure, wind speed, and / or solar radiation. The self-learning component may also monitor charging variables, such as the number of vehicles and vehicle battery capacity, over time. Based on the data, the self-learning component may generate operating instructions utilized by the storage control system 2b, the conversion unit 3, the battery system 4, the automatic charging system 5c, and / or the auxiliary power source 8. Advantageously, optimal operation of the conversion unit and optimal charging cycles of the battery system are achieved. Further advantageously, optimized charging power and charging time may be achieved for electric vehicles charging at the charging station. Such optimized charging cycles and charging powers may vary over time, such as depending on the season, weekday, or time of day.
[0023] Charging station 1 may further include an auxiliary power source 8. Auxiliary power source 8 may preferably include a renewable energy source such as an array of solar panels or one or more wind turbines. Power from auxiliary power source 8 may serve as a backup for charging at least one battery system 4. Alternatively or additionally, power from auxiliary power source 8 may power non-charging functions of charging station 1, such as automatic charging system 5c, converter 3, storage control system 2c, conversion control system 3d, battery control system 4c, and / or charging station lighting.
[0024] According to a second embodiment of the present invention, as shown schematically in FIG. 4A, the charging station 1 is installed at an airfield. The airfield may be a runway, an airfield, an airport, or a military base. The electric vehicle 6 may be an electric airplane, an electric drone, or an electric helicopter. In the second embodiment, the chamber 9 may comprise a first chamber 9a for holding the storage unit 2 and the converter unit 3. The chamber 9 may further comprise a second chamber 9b for holding the battery 4. The chamber may further comprise a third chamber 9c for holding the charging pile 5. Preferably, the first chamber 9a, the second chamber 9b, and the third chamber 9c are installed underground. The third chamber 9c can be closed by a hatch 9d. Installing the charging pile 5 in an underground chamber does not affect the maneuverability of the electric vehicle at the airfield. The first chamber 9a, the second chamber 9b, and the third chamber 9c are preferably positioned at a certain distance from each other, as shown schematically in FIG. 4B from above. Advantageously, a higher level of operational safety is thereby achieved and risks relating to leakage and fire are reduced. Alternatively, two or more of the first chamber 9a, the second chamber 9b and the third chamber 9c are combined into one chamber.
[0025] According to a third embodiment of the present invention, as shown schematically in FIG. 5, the electric charging station 1 according to the present invention is installed at a mooring. The mooring may be a pier, a floating dock, a wharf, a pier, or a dock. In the third embodiment, the electric vehicle 6 may be an electric ship, an electric underwater drone, an electric submarine, an electric hovercraft, or an electric seaplane. The chamber 9 may be integrated into the mooring, as shown schematically in FIG. 5. The chamber 9 may comprise a first chamber 9a housing the storage unit 2 and the conversion unit 3. The chamber 9 may further comprise a second chamber 9b housing the battery 4. Each of the first chamber 9a and the second chamber 9b may be located underground. The first chamber 9a and the second chamber 9b may be integrated into respective portions of a floating dock, for example, as shown schematically in FIG. 5. This advantageously improves temperature control and cooling, further reducing the impact of ambient temperature changes on the storage of liquid hydrogen.
[0026] The system for charging electric vehicles comprises a liquid hydrogen production facility and at least one charging station 1 according to the present invention. The system further comprises at least one transport vehicle 7, such as a cryogenic truck. The production facility produces hydrogen and liquefies the produced hydrogen. The transport vehicle 7 is filled with liquid hydrogen. The transport vehicle 7 transports the liquid hydrogen from the production facility to the at least one charging station 1. At the charging station 1, the transport vehicle 7 unloads the liquid hydrogen into a storage unit 2. The liquefied hydrogen is supplied to the storage unit 2 through a filling pipe 2a.
[0027] A method for charging an electric vehicle 6 according to the present invention includes providing a charging station 1 and storing liquefied hydrogen in a storage unit 2. The method further includes converting the liquefied hydrogen from the storage unit 2 into electrical energy in a conversion unit 3 and storing the electrical energy in a battery system 4. The method also includes charging the electric vehicle 6 with electrical energy from the battery 4 at a charging pile 5. The step of converting the liquefied hydrogen into electrical energy includes boiling hydrogen gas from the liquefied hydrogen in the storage unit 2 and supplying the hydrogen gas to the conversion unit 3. The hydrogen gas is supplied from the storage unit 2 through a supply pipe 2b to the conversion unit 3. The hydrogen gas is converted into electrical energy in a fuel cell in the conversion unit 3. The hydrogen gas is mixed with oxygen in the fuel cell to generate electrical energy. The step of charging the electric vehicle 6 may further include autonomously charging the electric vehicle 6 using an automatic charging system 5c. The automated charging system 5c may utilize the robotic charging connector 5b to automatically connect the charging pile 5 to the electric vehicle 6, providing autonomous or semi-autonomous charging for the electric vehicle 6. Autonomous charging requires no human interaction. Semi-autonomous charging requires some human interaction and may be controlled or partially controlled by a user or an operator. The operator may be located remotely from the charging station 1. Alternatively or additionally, manual charging may be performed. The electric vehicle may be a road vehicle such as an electric car, electric bus, electric motorcycle, electric truck, electric scooter, or electric bicycle. Alternatively, the electric vehicle may be an electric airplane, electric drone, or electric helicopter. Alternatively, the electric vehicle 6 may be an electric ship, electric underwater drone, electric submarine, electric hovercraft, or electric seaplane. [Explanation of symbols]
[0028] 1 charging station 2 Storage section 2a filling tube 2b Supply pipe 2c Storage Control System 3. Conversion section 3a entrance 3b Exhaust port 3c cooling inlet 3D Conversion Control System 4 Battery System 4a power cable 4b power cable 4c Battery Control System 5 Charging Pile 5a Manual charging connection 5b Robot charging connector 5c Automatic Charging System 5d Sensor Assembly 5e communication module 6 Electric vehicles 7 Transport Vehicles 8 Auxiliary power supply 9 rooms 9a Room 1 9b Room 2 9c Room 3
Claims
1. A charging station (1) for electric vehicles, comprising: A storage unit (2) for liquefied hydrogen; a conversion unit (3) that generates electrical energy using hydrogen from the storage unit (2); a battery system (4) for storing the electrical energy generated by the conversion unit (3); at least one charging pile (5) for charging an electric vehicle (6) with electrical energy from the battery system (4); The conversion unit (3) a housing provided with at least one inlet (3a) for taking in air from the atmosphere; - at least one fuel cell that converts hydrogen and oxygen into electrical energy; the storage unit (2) includes a supply pipe (2b) that connects the storage unit (2) and the conversion unit (3) and supplies hydrogen gas from the storage unit (2) to the conversion unit (3); At least one fuel cell is coupled to said supply pipe (2b) and to at least one inlet (3a); The charging station (1), wherein the storage unit (2), the conversion unit (3), and the battery system (4) are installed underground.
2. A charging station (1) as described in claim 1, characterized in that at least one charging pile (5) is installed underground.
3. Charging station (1) according to claim 1, wherein the converter (3) comprises at least one fuel cell.
4. Charging station (1) according to claim 1, wherein the battery system (4) comprises a plurality of batteries, each charging pile (5) being connected to at least two batteries.
5. Charging station (1) according to any one of claims 1 to 4, further comprising an auxiliary power source (8), said auxiliary power source (8) preferably comprising an array of solar panels and / or one or more wind turbines.
6. Charging station (1) according to any one of claims 1 to 4, further comprising an automatic charging system (5c) for autonomous or semi-autonomous charging of an electric vehicle (6).
7. 7. The charging station (1) according to claim 6, wherein the charging pile (5) comprises a robotic charging connection (5b) for automatically connecting the charging pile (5) to an electric vehicle (6), the robotic charging connection being controlled by the automatic charging system (5c).
8. 7. The charging station (1) of claim 6, wherein the automatic charging system (5c) comprises machine-readable instructions including a self-learning component configured to optimize the operation and efficiency of the charging station (1).
9. An airfield for electric vehicles, comprising a charging station (1) according to any one of claims 1 to 4, wherein the electric vehicles (6) are electric airplanes, electric drones and / or electric helicopters.
10. A mooring for electric vehicles, comprising a charging station (1) according to any one of claims 1 to 4, wherein the electric vehicles (6) are electric ships, electric underwater drones, electric submarines, electric hovercraft and / or electric seaplanes.
11. A system for charging an electric vehicle (6), comprising: a manufacturing facility to generate and liquefy hydrogen; At least one charging station (1) according to any one of claims 1 to 4, a transport vehicle (7) for transporting liquefied hydrogen from said production facility to said at least one charging station (1).
12. Use of the charging station (1) according to any one of claims 1 to 4 for charging an electric vehicle (6), wherein the electric vehicle (6) is an electric car, an electric bus, an electric motorcycle, an electric truck, an electric scooter, an electric bicycle, an electric airplane, an electric drone, an electric helicopter, an electric ship, an electric underwater drone, an electric submarine, an electric hovercraft, or an electric seaplane.
13. A method of charging an electric vehicle (6), comprising: Providing a charging station (1) according to any one of claims 1 to 4, storing liquefied hydrogen in the storage unit (2); Converting liquefied hydrogen into electrical energy in the conversion unit (3); storing said electrical energy in said battery system (4); and charging an electric vehicle (6) at the charging pile (5) using electrical energy from the battery (4).
14. The step of converting liquid hydrogen into electrical energy in the conversion unit (3) includes: Vaporizing the liquefied hydrogen in the storage unit (2) into hydrogen gas; Supplying the hydrogen gas to the conversion unit (3); and converting the hydrogen gas into electrical energy in a fuel cell in the conversion section (3).
15. 14. The method of claim 13, wherein the step of charging the electric vehicle (6) is performed autonomously or semi-autonomously.
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