Arctic Route Planning and Navigation Strategy: The Perspective of Ship Fuel Costs and Carbon Emissions
Abstract
:1. Introduction
- Application of route planning method based on superposition field environment
- 2.
- No-navigation zone setting and route adjustment considering ship safety
- 3.
- Arctic navigation strategy design considering navigation distance
2. Materials and Methods
2.1. Field of Ice Condition
2.2. Field of Energy Consumption and Emission
2.3. Directional Field
2.4. Gradient Descent Path Search Algorithm Based on Superposition Field
2.4.1. The Superposition of Fields
2.4.2. Path Search Algorithm Based on Superposition Field
Algorithm 1. Path planning |
Input: Gradient of field Output: Trajectory of the ship (x) 1: 2: 3: Calculate initial ice condition factor, fuel cost and emissions after normalization: , and 4: Calculate initial directional field energy after normalization: 5: Calculate initial superimposition field energy: = 6: Procedure: 7: for do 8: Calculate initial ice condition factor, fuel cost and emissions after normalization: , and 9: Calculate initial directional field energy after normalization: 10: Calculate initial superimposition field energy: = 11: = U; 12: while do 13: 14: end while 15: 16: 17: end for 18: Repeat procedure |
3. Results and Discussion
3.1. Experimental Design
- (1)
- Select the ice-resistant class of vessels and analyze their navigational environment in different months according to the research data;
- (2)
- Determine the navigational restrictions for the class of vessels and delineate their no-navigation zones;
- (3)
- Path planning based on the principle of decreasing gradient in the superposition field environment;
- (4)
- Statistics of the fuel consumption cost and emission of different routes.
3.2. Experimental Results and Analysis
3.3. Model Validation and Analysis
4. Shipping Strategy Design
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Ice Concentration | Description | Navigability |
---|---|---|
0/10 | Ice-free | Freely Navigable |
<1/10 | Open Water | |
1/10–3/10 | Very Open Drift | Cannot Navigate in the Scheduled Direction |
4/10–6/10 | Open Drift | Obstacles to Navigation |
7/10–8/10 | Close Pack | |
9/10 | Very Close Pack | Hard to Navigate Independently without Ice Breaker Support |
* 9/10 | Compact Ice | |
10/10 | Consolidated Ice |
Ice Class | Operating Capability |
---|---|
PC1 | Year-round Operation in all polar water |
PC2 | Year-round Operation in moderate multi-year ice |
PC3 | Year-round Operation in second-year ice which may include multi-year inclusions |
PC4 | Year-round Operation in thick first-year ice which may include old ice inclusions |
PC5 | Year-round Operation in medium first-year ice which may include old ice inclusions |
PC6 | Summer/Autumn Operation in medium first-year ice which may include old ice inclusions |
PC7 | Summer/Autumn Operation in thin first-year ice which may include old ice inclusions |
Stage of Development | Ice Thickness |
---|---|
Multi-Year Ice | 2~4 m |
Second-Year Ice | 2 m or more |
First-Year Ice | 30~120 cm |
Thin First-Year Ice | 30~70 cm |
Medium First-Year Ice | 70~120 cm |
Thick First-Year Ice | ≥120 cm |
Parameters | Meaning |
---|---|
Still water power | |
Water density | |
Still water drag coefficient | |
Wetted surface | |
Ship speed | |
Cargo on board the vessel | |
Cargo weight constant | |
Dead weight tonnage | |
Ship resistance induced by ice | |
Ice resistance coefficient | |
Ice density | |
Equivalent ice diameter of upper surface | |
Ship beam at waterline | |
Ship length between perpendiculars | |
Froude number |
Parameter | PC1 | PC2 | PC5 |
---|---|---|---|
(kts) | 11 | 8 | 5 |
DWT (t) | 1000 | 1000 | 1000 |
10 | 10 | 10 | |
1 | 1 | 1 | |
B | 30 | 31 | 32 |
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Share and Cite
Chen, A.; Chen, W.; Zheng, J. Arctic Route Planning and Navigation Strategy: The Perspective of Ship Fuel Costs and Carbon Emissions. J. Mar. Sci. Eng. 2023, 11, 1308. https://doi.org/10.3390/jmse11071308
Chen A, Chen W, Zheng J. Arctic Route Planning and Navigation Strategy: The Perspective of Ship Fuel Costs and Carbon Emissions. Journal of Marine Science and Engineering. 2023; 11(7):1308. https://doi.org/10.3390/jmse11071308
Chicago/Turabian StyleChen, Aowen, Weiqi Chen, and Jian Zheng. 2023. "Arctic Route Planning and Navigation Strategy: The Perspective of Ship Fuel Costs and Carbon Emissions" Journal of Marine Science and Engineering 11, no. 7: 1308. https://doi.org/10.3390/jmse11071308
APA StyleChen, A., Chen, W., & Zheng, J. (2023). Arctic Route Planning and Navigation Strategy: The Perspective of Ship Fuel Costs and Carbon Emissions. Journal of Marine Science and Engineering, 11(7), 1308. https://doi.org/10.3390/jmse11071308