Safety Design and Engineering Solution of Fuel Cell Powered Ship in Inland Waterway of China
Abstract
:1. Introduction
2. Features of the Pilot Fuel Cell Powered Ship
2.1. Development of Fuel Cell Powered Ships
2.2. Safety Principles of International Codes and Features of the Pilot Fuel Cell Powered Ship
- The lithium battery output circuit is protected by a fast fuse in the lithium battery control box.
- When any power module (inverter, converter, or DC/DC) and its incoming line is short-circuited, all capacitors of other modules feed short-circuit current to the short-circuit point and blow the fuse of the faulty branch first.
- When the DC-bus has a short circuit fault, the solid-state circuit breaker can be cut off quickly to ensure the continuity of the power supply on the non-fault side of the DC-bus, and to ensure that half of the ship’s power will not be lost.
- All electrical apparatus in the fuel cell space (including the fuel cell itself) must be certified suitable for zone 1, which is almost impossible to do;
- In accordance with IEC 60092-502, any cabin with a door or similar access to the fuel cell space should also be considered as hazardous area zone 1;
- Ventilation inlets to the fuel cell space should also be considered as hazardous area zone 1 and should be located away from other ventilation inlets and outlets, which increases the difficulty of the arrangement.
3. Research on Explosion Protection Safety of Fuel Cell Space On-Board
3.1. Fuel Cell Module Leak Estimation
3.2. Leak Estimation of Other Release Sources in Fuel Cell Space
3.3. Hazardous Area Classification of Fuel Cell Space
3.4. Measures to Reduce the Hazard Level of the Fuel Cell Space
- The fuel cell modules are designed to be gas-tight, with internal ventilation and vents placed outside the fuel cell space.
- Increase the ventilation fan power.
- Install two sets of fans, and the power supply is independent of the main switchboard and emergency switchboard. When any fan fails, 100% ventilation capacity can be maintained to ensure adequate ventilation performance.
- Fuel cell spaces are designed to have an as simple geometrical shape as possible, with no obstructing structures in the upper part, and can be arranged with a smooth ceiling sloping up towards the ventilation outlet. Supporting structures such as girders and stiffeners were facing outwards (as shown in Figure 6.).
- We design a double-wall piping system to supply H2 fuel. All valves and connectors (except end connectors of fuel cell module) on the H2 supply line were arranged in a gas-tight valve box, as shown in Figure 7.
4. Results
5. Discussion
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Project | Function | Type of FC | Type of Fuel |
---|---|---|---|
FellowSHIP | Propulsion & Electric generation | 320 kW MCFC | LNG |
Viking Lady | Propulsion & Electric generation | 20 kW SOFC | Methanol |
E4Ships-PA-X-ell | Electric generation | 2 × 30 kW HT-PEM | Methanol |
E4Ships-SchIBz | Electric generation | 100 kW SOFC | Diesel |
ZemShip | Propulsion | 96 kW PEM | Hydrogen |
Nemo H2 | Propulsion | 60 kW PEM | Hydrogen |
US SSFC | Electric generation | 625 kW MCFC | Diesel |
Valves and Connectors | Type of Connection | Number of Release Sources | Suggested Hole Cross-Section |
---|---|---|---|
diaphragm valve | threaded joints | 16 | 0.025 mm2 |
filter | threaded joints | 16 | 0.025 mm2 |
cut-off valve | threaded joints | 24 | 0.025 mm2 |
end connector to FC | threaded joints | 8 | 0.025 mm2 |
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Chen, L.; Guan, W. Safety Design and Engineering Solution of Fuel Cell Powered Ship in Inland Waterway of China. World Electr. Veh. J. 2021, 12, 202. https://doi.org/10.3390/wevj12040202
Chen L, Guan W. Safety Design and Engineering Solution of Fuel Cell Powered Ship in Inland Waterway of China. World Electric Vehicle Journal. 2021; 12(4):202. https://doi.org/10.3390/wevj12040202
Chicago/Turabian StyleChen, Lijian, and Wenfeng Guan. 2021. "Safety Design and Engineering Solution of Fuel Cell Powered Ship in Inland Waterway of China" World Electric Vehicle Journal 12, no. 4: 202. https://doi.org/10.3390/wevj12040202
APA StyleChen, L., & Guan, W. (2021). Safety Design and Engineering Solution of Fuel Cell Powered Ship in Inland Waterway of China. World Electric Vehicle Journal, 12(4), 202. https://doi.org/10.3390/wevj12040202