Underwater Wireless Charging System of Unmanned Surface Vehicles with High Power, Large Misalignment Tolerance and Light Weight: Analysis, Design and Optimization
Abstract
:1. Introduction
2. System Configuration
3. Design of Coupling Coils for Large Misalignment Tolerance
3.1. Technical Challenges
- The medium of power transmission is changed from air to water. Accordingly, the physical properties, such as permeability and conductivity, also change, which may very likely weaken the coupling between Tx and Rx coils. Moreover, this problem becomes especially deteriorated in seawater, yet out of the scope of this paper since USV usually works in a freshwater lake.
- The components of UWCSs may not be sufficiently high-pressure-tolerant, including both the electronics and structural parts. For example, under a 4-km underwater condition, the pressure reaches 40 Mpa, and the permeability of magnetic core is reduced by more than 40%, which therefore jeopardizes the efficiency of UWCSs significantly [30]. Obviously, this problem can also be reasonably neglected for USV with its depth of immersion of less than one meter.
- The spatial relationship between Tx and Rx coils becomes complicated. In addition to horizontal misalignment, angular misalignment and the variation of Tx-Rx distance also exist in practice. What is worse, these misalignments are not stationary due to the water flow, which makes the stable output power even more difficult. Fortunately, in this paper, the type of misalignments is limited to a single direction, and the USV stability can be guaranteed owing to the Rx limiter.
- 4.
- Commonly used flat coils can hardly adapt to the curved shape of USV properly. For one thing, the magnetic coupling for power transmission is weakened inevitably due to the increased distance between Tx and Rx coils compared with double-sided curved coils. For another, flat coils require larger assembly space than curved coils, which is undesirable considering the compact structure of USV.
- 5.
- Equipping the original USV with a charging device will definitely expand its payload, which therefore influences its endurance and speed adversely. In this regard, the lightweight design of UWCS becomes an engineering challenge.
- 6.
- The output characteristics of UWCSs with small transmission distance remain unclear, especially in misaligned conditions. As explained in Section 2, the Tx and Rx coils are distanced at merely 20 mm, the thickness of epoxy resin layer on both sides together. Tight coupling is conducive to high output power yet misalignment-sensitive. In addition, resultant frequency splitting might cause the degradation of efficiency and power capacity and even unstable operation of UWCSs.
3.2. Comparison of Two Multi-Rx Coil Structures
4. Optimization of Coupling Coils Considering USV Endurance
4.1. Optimization Process
4.2. Curved Coils for USV-Shaped Adaption
4.3. Bar-Shaped Core for Lightweight Rx Assembly
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Parameter | Value 1 | Parameter | Value 1 | Parameter | Value 1 |
---|---|---|---|---|---|
lUSV | 1000 | dRx12 (nRx = 1) | 0 | lRx3 (nRx = 1) | 960 |
wRx | 180 | dRx1 (nRx = 2) | 40 | lRx (nRx = 2) | 480 |
dRx2 | 200 | dRx1 (nRx = 3) | 20 | lRx (nRx = 3) | 320 |
dTR | 20 | dRx1 (nRx = 4) | 13.33 | lRx (nRx = 4) | 240 |
dmis | 0–100 | dRx1 (nRx = 5) | 10 | lRx (nRx = 5) | 192 |
θ (deg.) | MTR (μH) | θ (deg.) | MTR (μH) |
---|---|---|---|
0 | 65.76 | 20 | 60.14 |
4 | 64.95 | 24 | 58.38 |
8 | 63.91 | 28 | 56.46 |
12 | 62.92 | 32 | 54.71 |
16 | 61.57 | 36 | 51.53 |
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Niu, S.; Zhao, Q.; Chen, H.; Yu, H.; Niu, S.; Jian, L. Underwater Wireless Charging System of Unmanned Surface Vehicles with High Power, Large Misalignment Tolerance and Light Weight: Analysis, Design and Optimization. Energies 2022, 15, 9529. https://doi.org/10.3390/en15249529
Niu S, Zhao Q, Chen H, Yu H, Niu S, Jian L. Underwater Wireless Charging System of Unmanned Surface Vehicles with High Power, Large Misalignment Tolerance and Light Weight: Analysis, Design and Optimization. Energies. 2022; 15(24):9529. https://doi.org/10.3390/en15249529
Chicago/Turabian StyleNiu, Songyan, Qingyu Zhao, Haibiao Chen, Hang Yu, Shuangxia Niu, and Linni Jian. 2022. "Underwater Wireless Charging System of Unmanned Surface Vehicles with High Power, Large Misalignment Tolerance and Light Weight: Analysis, Design and Optimization" Energies 15, no. 24: 9529. https://doi.org/10.3390/en15249529
APA StyleNiu, S., Zhao, Q., Chen, H., Yu, H., Niu, S., & Jian, L. (2022). Underwater Wireless Charging System of Unmanned Surface Vehicles with High Power, Large Misalignment Tolerance and Light Weight: Analysis, Design and Optimization. Energies, 15(24), 9529. https://doi.org/10.3390/en15249529