A Novel Squid-Inspired AUV Design: Revolutionizing Coral Reef Preservation Through CFD and Experimental Insights into Drag and Maneuverability
DOI:
https://doi.org/10.61173/5jgtw752Keywords:
Computational fluid dynamics(CFD), Autonomous underwater vehicle(AUV), Coral reef preservation, Navier-Stokes equations, Hydrodynamic analysis, Biomechanics, Squid, Drag reductionAbstract
This study focuses on conceptualizing and optimizing an advanced bionic robotic solution to surmount the limitations of current observational vehicles in coral reef conservation. Human divers are traditionally subjected to physiological challenges, while current robotic alternatives grapple with operational impediments, including anthropogenic marine disturbances. Utilizing advanced robotics tailored for marine ecosystems with intricate topologies and fragile corals, this study aims to enhance conservation precision in the face of climatic shifts and marine pollution from anthropogenic activities.
This paper develops a squid-inspired Autonomous Underwater Vehicle (AUV), whose behavior is then examined and improved utilizing both experiments and Computational Fluid Dynamics.
(CFD). The governing equations considered here are the incompressible Reynolds-Averaged Navier-Stokes (RANS) with an iterative solver for both the pressure-Poisson and momentum equations. Apart from CFD analysis, a prototype was assembled and experimentally tested to validate the CFD outcomes and assess the lift from its bionic rudders. The maneuverability is optimized through careful designs and parameter studies of several features.
A head length is determined to balance viscous and pressure drag while achieving the least total drag in the AUV design. Additionally, a disk is introduced at the AUV’s front, which reduces fluid contact, thereby decreasing the viscous drag. While this modification slightly increased pressure drag, it yielded an overall reduction in total drag. Experimental observations confirmed a propulsion speed and underscored the necessity for maximizing rudder extension.
The developed AUV’s squid-like design, optimized via CFD, ensures drag reduction by 5.34% and energy efficiency. By mimicking squid dynamics, disturbances to marine biota are minimized. The incorporation of bionic fins, empirically fine-tuned, enhances the AUV’s agility. These attributes establish it as an exceptional prototype, setting a precedent for future coral reef monitoring systems and augmenting conservation strategies.
References
[1] CK-12. 12.1 Fluid Pressure. 2019. URL: https://flexbooks. ck12.org/cbook/ck-12-middle-schoolphysical-science-flexbook-2.0/section/12.1/primary/lesson/ pressure-in-fluids-ms-ps/ (visited on 07/07/2019).
[2] Gautham Anne. The Physics of Water Wakes. 2021. url: https://sites.imsa.edu/hadron/2021/11/ 07/the-physics-of-waterwakes/ (visited on 11/07/2021).
[3] T. R. Auton. “The lift force on a spherical body in a rotational flow.” In: Journal of Fluid Mechanics 183 (1987), pp. 199–218. doi: 10.1017/S002211208700260X.
[4] William S. Burdic and James F. Bartram. “Underwater Acoustic System Analysis by William S. Burdic”. In: The Journal of the Acoustical Society of America 76.3 (Sept. 1984), pp. 996– 996. ISSN: 0001-4966. doi: 10.1121/1.391242. eprint: https://pubs.aip.org/asa/jasa/arti clepdf/76/3/996/11949459/996_1_online.pdf. url: https://doi. org/10.1121/1.391242.
[5] Richard Flay. “Bluff Body Aerodynamics”. In: Apr. 2013, pp. 59–84. isbn: 978-4-431-54336-7. doi: 10.1007/978-4-431-54337-4_3.
[6] Terry P Hughes, JT Kerry, and T Simpson. Large-scale bleaching of corals on the Great Barrier Reef. 2018.
[7] Kekuewa Kikiloi et al. “Papaha¯naumokua¯kea: Integrating Culture in the Design and Management of one of the World’s Largest Marine Protected Areas”. In: Coastal Management 45.6 (2017), pp. 436– 451. doi: 10.1080/08920753.2017.1373450. eprint: https://doi.org/10.1080/08920753.2017.1373450. url: https://doi.org/10.1080/08920753.2017.1373450.
[8] Diana Li. Locomotion. url: https://gillylab.stanford.edu/ locomotion2.
[9] MakerFocus. MakerFocus ESP32 Development Board SX1262 863 928MHz LoRaWAN WiFi Bluetooth Dual Core 240MHz Integrated CP2102 with 0.96” OLED Display and Antenna for Ar duino NodeMCU Intelligent Scenes. 2017. url: https://www.amazon.com/MakerFocus-DevelopmentBluetooth- 0-96inch-Display/dp/B076MSLFC9 (visited on 10/21/2017).
[10] F. Menter. “Zonal Two Equation k-w Turbulence Models For Aerodynamic Flows.” In: 23rd Fluid Dynamics, Plasmadynamics, and Lasers Conference. doi: 10.2514/6.1993- 2906. eprint: https: //arc.aiaa.org/doi/pdf/10.2514/6.1993-2906. url: https://arc.aiaa. org/doi/abs/10.2514/6.19932906.
[11] F. R. Menter. “Two-equation eddy-viscosity turbulence models for engineering applications.” In: AIAA Journal 32.8 (1994), pp. 1598–1605. doi: 10.2514/3.12149. eprint: https://doi. org/10.2514/3. 12149. url: https://doi.org/10.2514/3.12149.
[12] Peter J Mumby and Robert S Steneck. “Coral reef management and conservation in light of rapidly evolving ecological paradigms.” In: Trends in ecology & evolution 23.10 (2008), pp. 555–563.
[13] NOAA. Coral reef ecosystems. 2019. url: https://www. noaa.gov/education/resource-collections/ marine-life/coralreef-ecosystems#:~:text=Benefits%20of%20coral%20reef%20 ecosystems,food% 2C%20income%2C%20and%20protection (visited on 02/01/2019).
[14] Agamenon R. E. Oliveira. “History of the Bernoulli Principle”. In: Advances in Mechanism and Machine Science. Ed. by Tadeusz Uhl. Cham: Springer International Publishing, 2019, pp. 1161–1178. isbn: 978-3-030-20131-9.
[15] NR Olsen. CFD algorithms for hydraulic engineering. 2000.
[16] Tibi Puiu. “Coral reefs generate 36billionintourismeveryyea rbutweofferlittleinreturn” in: (2017).
[17] Steven Vogel. “Flow-assisted mantle cavity refilling in jetting squid.” In: The Biological Bulletin 172.1 (1987), pp. 61–68.
[18] Wikipedia. Squid. url: https://en.wikipedia.org/wiki/Squid. Dean&Francis
[19] M. H. Zawawi et al. “A review: Fundamentals of computational fluid dynamics (CFD)”. In: AIP Conference Proceedings 2030.1 (Nov. 2018), p. 020252. ISSN: 0094-243X. doi: 10.1063/1.5066893. eprint: https://pubs.aip.org/aip/acp/ article-pdf/doi/10.1063/1.5066893/7654457/020252_1 _online. pdf. url: https://doi.org/10.1063/1.5066893.
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