Submitted:
18 June 2024
Posted:
19 June 2024
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Background: Single Cavitation Bubble Near Solid Boundary
3. Experimental Setup
3.1. Solid Boundary without and with Bio-Inspired Sawtooth Riblets
3.2. Experimental Methodology
4. Results and Discussion
4.1. The Effects of the Material and Riblet on Cavitation-Induced Erosion Morphology
4.2. The Effects of the Material and Riblet on Cavitation-Induced Erosion Depth and Cross-Section
5. Outlook and Perspective
5.1. Riblets Morphology
5.2. The Effects of the Cathodic Environment
| For Al: | 2Al(s) + H2O(l) → AlOH(s) + AlH(s) | (1) |
| For Brass: | Brass(Cu-20Zn)(s) + 2H2O (l) → Cu2O(s) + ZnO(s) + 2H2(g) | (2) |
6. Conclusions
References
- E. Kadivar, T. Ochiai, Y. Iga, O. el Moctar, An experimental investigation of transient cavitation control on a hydrofoil using hemispherical vortex generators, J. Hydrodyn. 33 (2021) 1139–1147. [CrossRef]
- E. Kadivar, M. V. Timoshevskiy, M.Y. Nichik, O. El Moctar, T.E. Schellin, K.S. Pervunin, Control of unsteady partial cavitation and cloud cavitation in marine engineering and hydraulic systems, Phys. Fluids. 32 (2020). [CrossRef]
- R. Fortes Patella, T. Choffat, J.L. Reboud, A. Archer, Mass loss simulation in cavitation erosion: Fatigue criterion approach, Wear. 300 (2013) 205–215. [CrossRef]
- M. Sadri, E. Kadivar, Numerical investigation of the cavitating flow and the cavitation-induced noise around one and two circular cylinders, Ocean Eng. 277 (2023) 114178. [CrossRef]
- M. Dular, B. Bachert, B. Stoffel, B. Širok, Relationship between cavitation structures and cavitation damage, Wear. 257 (2004) 1176–1184. [CrossRef]
- G.E. Reisman, Y.C. Wang, C.E. Brennen, Observations of shock waves in cloud cavitation, J. Fluid Mech. 355 (1998) 255–283. [CrossRef]
- Y. Lin, E. Kadivar, O. El Moctar, J. Neugebauer, T.E. Schellin, Experimental investigation on the effect of fluid-structure interaction on unsteady cavitating flows around flexible and stiff hydrofoils, Phys. Fluids. 34 (2022). [CrossRef]
- T. Wei, C.R. Smith, Secondary vortices in the wake of circular cylinders, J. Fluid Mech. 169 (1986) 513–533. [CrossRef]
- E. Kadivar, O. el Moctar, H.J. Sagar, Experimental study of the influence of mesoscale surface structuring on single bubble dynamics, Ocean Eng. 260 (2022) 111892. [CrossRef]
- A. Philipp, W. Lauterborn, Cavitation erosion by single laser-produced bubbles, J. Fluid Mech. 361 (1998) 75–116. [CrossRef]
- Y. Tomita, A. Shima, Mechanisms of impulsive pressure generation and damage pit formation by bubble collapse, J. Fluid Mech. 169 (1986) 535–564. [CrossRef]
- W. Lauterborn, H. Bolle, Experimental investigations of cavitation-bubble collapse in the neighbourhood of a solid boundary, J. Fluid Mech. 72 (1975) 391–399. [CrossRef]
- Vogeland, W. Lauterborn, Acoustic transient generation by laser-produced cavitation bubbles near solid boundaries, J. Acoust. Soc. Am. 84 (1988) 719–731. [CrossRef]
- Lindau, W. Lauterborn, Cinematographic observation of the collapse and rebound of a laser-produced cavitation bubble near a wall, J. Fluid Mech. 479 (2003) 327–348. [CrossRef]
- Y. Tomita, P.B. Robinson, R.P. Tong, J.R. Blake, Growth and collapse of cavitation bubbles near a curved rigid boundary, J. Fluid Mech. 466 (2002) 259–283. [CrossRef]
- M. Dular, T. Požar, J. Zevnik, R. Petkovšek, High speed observation of damage created by a collapse of a single cavitation bubble, Wear. 418–419 (2019) 13–23. [CrossRef]
- E. Kadivar, O. el Moctar, R. Skoda, U. Löschner, Experimental study of the control of cavitation-induced erosion created by collapse of single bubbles using a micro structured riblet, Wear. 486–487 (2021) 204087. [CrossRef]
- T.H. Phan, E. Kadivar, V.T. Nguyen, O. El Moctar, W.G. Park, Thermodynamic effects on single cavitation bubble dynamics under various ambient temperature conditions, Phys. Fluids. 34 (2022) 23318. [CrossRef]
- Y. Murai, Y. Matsumoto, Numerical study of the three-dimensional structure of a bubble plume, J. Fluids Eng. Trans. ASME. 122 (2000) 754–760. [CrossRef]
- C. Xiao, D.M. Heyes, J.G. Powles, The collapsing bubble in a liquid by molecular dynamics simulations, Mol. Phys. 100 (2002) 3451–3468. [CrossRef]
- M. Ghoohestani, S. Rezaee, E. Kadivar, M.A. Esmaeilbeig, Reactive-dynamic characteristics of a nanobubble collapse near a solid boundary using molecular dynamic simulation, Phys. Fluids. 35 (2023). [CrossRef]
- M. Ghoohestani, S. Rezaee, E. Kadivar, O. el Moctar, Thermodynamic effects on nanobubble’s collapse-induced erosion using molecular dynamic simulation, Phys. Fluids. 35 (2023). [CrossRef]
- Z. Gao, W. Wu, W. Sun, B. Wang, Understanding the Stabilization of a Bulk Nanobubble: A Molecular Dynamics Analysis, Langmuir. 37 (2021) 11281–11291. [CrossRef]
- D. Sun, X. Lin, Z. Zhang, N. Gu, Impact of Shock-Induced Lipid Nanobubble Collapse on a Phospholipid Membrane, J. Phys. Chem. C. 120 (2016) 18803–18810. [CrossRef]
- N. Nan, D. Si, G. Hu, Nanoscale cavitation in perforation of cellular membrane by shock-wave induced nanobubble collapse, J. Chem. Phys. 149 (2018). [CrossRef]
- K.P. Santo, M.L. Berkowitz, Shock Wave Induced Collapse of Arrays of Nanobubbles Located Next to a Lipid Membrane: Coarse-Grained Computer Simulations, J. Phys. Chem. B. 119 (2015) 8879–8889. [CrossRef]
- U. Adhikari, A. Goliaei, M.L. Berkowitz, Mechanism of membrane poration by shock wave induced nanobubble collapse: a molecular dynamics study, J. Phys. Chem. B. 119 (2015) 6225–6234. [CrossRef]
- S. Rezaee, E. Kadivar, O. el Moctar, Molecular dynamics simulations of a nanobubble’s collapse-induced erosion on nickel boundary and porous nickel foam boundary, J. Mol. Liq. 397 (2024) 124029. [CrossRef]
- S. Rezaee, E. Kadivar, O. el Moctar, The role of sawtooth-shaped nano riblets on nanobubble dynamics and collapse-induced erosion near solid boundary, J. Mol. Liq. 405 (2024) 124947. [CrossRef]
- A.E. Pap, C. Dücso, K. Kamaras, G. Battistig, I. Bársony, Heavy water in gate stack processing, in: Mater. Sci. Forum, Trans Tech Publ, 2008: pp. 119–131. [CrossRef]
- J. Hutson, J. Lively, B. Robertson, P. Cotroneo, M. Lang, Expanding Horizons: AI Tools and Workflows in Art Practice, in: Springer Ser. Cult. Comput., Springer, 2024: pp. 101–132. [CrossRef]
- D.C. Epstein, I. Jain, O. Wang, R. Zhang, Online detection of ai-generated images, in: Proc. IEEE/CVF Int. Conf. Comput. Vis., 2023: pp. 382–392.
- M. Healy, Approaches to Generative Artificial Intelligence, A Social Justice Perspective, SSRN Electron. J. (2023). [CrossRef]
- H.J. Sagar, O. el Moctar, Dynamics of a cavitation bubble near a solid surface and the induced damage, J. Fluids Struct. 92 (2020) 102799. [CrossRef]
- E. Kadivar, T.H. Phan, W.G. Park, O. El Moctar, Dynamics of a single cavitation bubble near a cylindrical rod, Phys. Fluids. 33 (2021). [CrossRef]
- E. Kadivar, A. Rajabpour, O. El Moctar, Nanobubble Collapse Induced Erosion near Flexible and Rigid Boundaries: A Molecular Dynamics Study, Fluids. 8 (2023) 154. [CrossRef]
- H.J. Sagar, Numerical and Experimental Investigation of Laser-Induced Cavitation Bubbles and Induced Damage, (2018) 430–439.
- NOOR HUSSEIN, Materials Science and Engineering, CreateSpace Independent Publishing Platform, 2017.
- Y. Xu, Q. Zhang, Q. Zhou, S. Gao, B. Wang, X. Wang, Y. Huang, Flow accelerated corrosion and erosion−corrosion behavior of marine carbon steel in natural seawater, Npj Mater. Degrad. 5 (2021) 56. [CrossRef]
- C. Googan, Marine Corrosion and Cathodic Protection, CRC Press, 2022. [CrossRef]
- Y. Yan, H. Zhu, Z. Fan, J. Zhao, S. Jiang, Corrosion Behavior of Reinforcing Steel in the Immersed Tube Tunnel (ITT) under Submarine Environment, Materials (Basel). 16 (2023) 3300. [CrossRef]
- M. Hasan, J. Zhao, Z. Jiang, A review of modern advancements in micro drilling techniques, J. Manuf. Process. 29 (2017) 343–375. [CrossRef]
- D.G. Howitt, S.J. Chen, B.C. Gierhart, R.L. Smith, S.D. Collins, The electron beam hole drilling of silicon nitride thin films, J. Appl. Phys. 103 (2008). [CrossRef]
- P.A. Johnson, L.J. Bartolotti, P.W. Ayers, T. Fievez, P. Geerlings, Charge density and chemical reactions: A unified view from conceptual DFT, in: Mod. Charg. Anal., Springer, 2012: pp. 715–764. [CrossRef]
- P. Qiu, C. Leygraf, Initial oxidation of brass induced by humidified air, Appl. Surf. Sci. 258 (2011) 1235–1241. [CrossRef]






Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2024 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).