The role of sawtooth-shaped nano riblets on nanobubble dynamics and collapse-induced erosion near solid boundary

被引:8
作者
Rezaee, Sasan [1 ]
Kadivar, Ebrahim [2 ,3 ]
el Moctar, Ould [2 ]
机构
[1] Amirkabir Univ Technol, Dept Phys & Energy Engn, Tehran 1591634311, Iran
[2] Univ Duisburg Essen, Inst Ship Technol, Ocean Engn & Transport Syst, D-47057 Duisburg, Germany
[3] Tarbiat Modares Univ, Fac Mech Engn, Tehran, Iran
关键词
Nanobubble; Aluminium; Sawtooth-shaped nano riblets; Molecular dynamics simulations; Erosion; CAVITATION BUBBLES; DRAG; COEFFICIENTS; GENERATION; SIMULATION; SURFACES;
D O I
10.1016/j.molliq.2024.124947
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
In this research, surfaces inspired by shark skin were engineered for aluminum (Al) slabs to investigate the influences of riblets on the collapse dynamics of nanobubbles and the resultant erosion on the slab surfaces. These effects were probed through molecular dynamics simulations. Specifically, surfaces with flat profiles as well as those with small and high sawtooth-shaped nano riblets were modelled for analysis. Near the flat surface, due to the absence of riblets, the water nanohammer, with its semi-spherical shape containing water beads under approximately 30 GPa pressure and 5000 K temperature, impulse the Al slab, transferring both temperature and pressure, thereby inducing maximum erosion. Conversely, surfaces containing riblets separate some parts of water vortices, leading to a shorter collapse time of the nanobubble and the creation of a water nanohammer with a smaller volume compared to their values near a flat surface. Moreover, due to the initial impulse of the water nanohammer to the peak of the riblet, the nanohammer splits into two or three inclined shapes. Then, they diagonally impact the main part of the Al slab, resulting in erosion. The decentralization and diagonal impulse of the water nanohammer in the presence of riblets create a lower erosion volume and depth compared to these values on a flat surface. In summary, it can be inferred that riblets can serve as a passive control method for managing erosion, thereby increasing the lifetime of hulls for ships or submarines.
引用
收藏
页数:14
相关论文
共 73 条
[11]   A new temperature-resistant and fast dissolving nano-silica/poly (AM-AMPS) composite drag reducer for slickwater fracturing [J].
Ding, Fei ;
Dai, Caili ;
Sun, Yongpeng ;
You, Qing ;
Ding, Xingxing ;
Liu, Jiawei ;
Sun, Ning .
JOURNAL OF MOLECULAR LIQUIDS, 2023, 387
[12]   Hydrodynamic properties of biomimetic shark skin: effect of denticle size and swimming speed [J].
Domel, August G. ;
Domel, Gino ;
Weaver, James C. ;
Saadat, Mehdi ;
Bertoldi, Katia ;
Lauder, George V. .
BIOINSPIRATION & BIOMIMETICS, 2018, 13 (05)
[13]   Online Detection of AI-Generated Images [J].
Epstein, David C. ;
Jain, Ishan ;
Wang, Oliver ;
Zhang, Richard .
2023 IEEE/CVF INTERNATIONAL CONFERENCE ON COMPUTER VISION WORKSHOPS, ICCVW, 2023, :382-392
[14]  
Fu Y.F., 2017, Biosurface and Biotribology, P11, DOI DOI 10.1016/J.BSBT.2017.02.001
[15]   Shark Skin Denticles: From Morphological Diversity to Multi-functional Adaptations and Applications [J].
Ghimire, Ashish ;
Dahl, Rikke Beckmann ;
Shen, Sheng-Feng ;
Chen, Po-Yu .
ADVANCED FUNCTIONAL MATERIALS, 2024, 34 (35)
[16]   Thermodynamic effects on nanobubble's collapse-induced erosion using molecular dynamic simulation [J].
Ghoohestani, Marzieh ;
Rezaee, Sasan ;
Kadivar, Ebrahim ;
el Moctar, Ould .
PHYSICS OF FLUIDS, 2023, 35 (07)
[17]   Reactive-dynamic characteristics of a nanobubble collapse near a solid boundary using molecular dynamic simulation [J].
Ghoohestani, Marzieh ;
Rezaee, Sasan ;
Kadivar, Ebrahim ;
Esmaeilbeig, Mohammad Amin .
PHYSICS OF FLUIDS, 2023, 35 (02)
[18]   Molecular nature of the drag force [J].
Gutierrez-Varela, Oscar ;
Santamaria, Ruben .
JOURNAL OF MOLECULAR LIQUIDS, 2021, 338
[19]   Exploring the utility of coarse-grained water models for computational studies of interfacial systems [J].
He, Xibing ;
Shinoda, Wataru ;
DeVane, Russell ;
Klein, Michael L. .
MOLECULAR PHYSICS, 2010, 108 (15) :2007-2020
[20]  
Healy M., 2023, SSRN Electron. J., DOI [10.2139/ssrn.4544617, DOI 10.2139/SSRN.4544617]