An Anchoring Capacity Study Focused on a Wheel’s Curvature Geometry for an Autonomous Underwater Vehicle with a Traveling Function during Contact with Loose Ground Containing Water
Abstract
:1. Introduction
- First, lower the robot with a robotic arm and camera from the ship.
- Second, use the robot’s camera to recognize scallops.
- Third, navigate the robot to the location of the scallop until the robot arm reaches the scallop.
- Fourth, instruct the robot to seize the scallop and measure its physical quantity.
- Fifth, instruct the robot to release the scallop and begin to recognize other scallops.
2. Problems of Scallop Measurement with Wheeled Robots on the Seabed
3. Experiments to Confirm the Effect of Water on Wheel Anchoring Capacity
3.1. Experimental Procedure
- First, carefully set the wheels on the water-containing sand (Figure 4a). The sinkage at this time must be set to 0 mm (static sinkage). When the wheels are on the soil, they sink into the soil due to their weight. This form of sinkage is defined as static sinkage.
- Second, rotate the wheels (number of rotations: 0, 0.5, 1, 1.5, or 2) to increase the degree of sinkage (Figure 4b,c).
- Third, measure the degree of sinkage. The measured sinkage degree is taken as the initial sinkage.
- Fourth, the linear actuator tows the wheel unit, and the force sensor measures the resistance force acting on the wheel (Figure 4d).
3.2. Experimental Conditions and Environment
3.3. Experimental Results and Considerations
4. Conclusions
- The anchoring capacity of the same wheel at the same sinkage level tends to be lower on water-containing sand. This fact suggests that water weakens the ground strength, and the wheeled robot’s ability to maintain its posture on water-containing sand decreases.
- An increase in the sinkage level is effective at increasing the anchoring capacity of the wheel even underwater. The greater the degree of initial sinkage, the greater the anchoring capacity, even on water-containing sand.
- The wheel shape affects the wheel’s anchoring capacity in water. Wheeled robots require appropriate wheel shapes for high posture maintenance performance and mobility efficiency.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Name | Model | Role | |
---|---|---|---|
Liner actuator | Concens A/S Linear actuator con35(con350100–141220+449900) | Wheel towing | |
Force sensor | PFS055YA251U6 | Measuring anchoring capacity | |
Name | Parameter | Numerical value | |
Testing machine unit | Mass of testing machine (kg) | 6.4 | |
Wheel distance (mm) | 450 | ||
Tank | Width (mm) | 847 | |
Length (mm) | 847 | ||
Height (mm) | 341 | ||
Water | Type | Freshwater | |
Depth (mm) | 80 | ||
Sand | Type | Silica sand No. 5 | |
Depth (mm) | 50 | ||
Wheeled type | Radius (mm) | Width (mm) | Length of lug (mm) |
A | 120 | 70 | 0 |
B | 100 | 70 | 0 |
C | 120 | 70 | 20 |
D | 120 | 30 | 0 |
Wheel Type | Sand State | Number of Rotations | Initial Sinkage (mm) | Maximum Anchoring Capacity (N) |
---|---|---|---|---|
A (Base wheel) | Non-water-containing sand | 0 | 0 (static sinkage) | 14.7 |
0.5 | 7 | 16.7 | ||
1 | 10 | 22.2 | ||
1.5 | 13 | 30.6 | ||
2 | 16 | 36.6 | ||
Water-containing sand | 0 | 0 | 22.7 | |
0.5 | 5 | 18.4 | ||
1 | 9.5 | 22.0 | ||
1.5 | 15 | 24.4 | ||
2 | 20 | 27.5 | ||
B (Small radius) | Non-water-containing sand | 0 | 0 (static sinkage) | 14.8 |
0.5 | 4 | 16.9 | ||
1 | 8 | 18.6 | ||
1.5 | 12.5 | 22.2 | ||
2 | 15.5 | 36.6 | ||
Water-containing sand | 0 | 0 | 22.7 | |
0.5 | 9 | 24.1 | ||
1 | 15.5 | 26.9 | ||
1.5 | 17 | 28.4 | ||
2 | 24 | 32.9 | ||
C (With lugs) | Non-water-containing sand | 0 | 0 (static sinkage) | 17.8 |
0.5 | 19 | 20.3 | ||
1 | 31.5 | 71.3 | ||
1.5 | 42 | 80.3 | ||
2 | 42.5 | 81.3 | ||
Water-containing sand | 0 | 0 | 25.6 | |
0.5 | 22 | 53.7 | ||
1 | 40 | 67.2 | ||
1.5 | 45 | 70.7 | ||
2 | 45 | 68.7 | ||
D (Small width) | Non-water-containing sand | 0 | 0 (static sinkage) | 15.0 |
0.5 | 8.5 | 16.8 | ||
1 | 13.5 | 19.8 | ||
1.5 | 16.5 | 20.8 | ||
2 | 20 | 24.2 | ||
Water-containing sand | 0 | 0 | 20.2 | |
0.5 | 11 | 21.7 | ||
1 | 15 | 21.9 | ||
1.5 | 21 | 23.2 | ||
2 | 23 | 26.8 |
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Ofuchi, A.; Fujiwara, D.; Iizuka, K. An Anchoring Capacity Study Focused on a Wheel’s Curvature Geometry for an Autonomous Underwater Vehicle with a Traveling Function during Contact with Loose Ground Containing Water. Geotechnics 2024, 4, 350-361. https://doi.org/10.3390/geotechnics4020019
Ofuchi A, Fujiwara D, Iizuka K. An Anchoring Capacity Study Focused on a Wheel’s Curvature Geometry for an Autonomous Underwater Vehicle with a Traveling Function during Contact with Loose Ground Containing Water. Geotechnics. 2024; 4(2):350-361. https://doi.org/10.3390/geotechnics4020019
Chicago/Turabian StyleOfuchi, Akira, Daisuke Fujiwara, and Kojiro Iizuka. 2024. "An Anchoring Capacity Study Focused on a Wheel’s Curvature Geometry for an Autonomous Underwater Vehicle with a Traveling Function during Contact with Loose Ground Containing Water" Geotechnics 4, no. 2: 350-361. https://doi.org/10.3390/geotechnics4020019