Experimental Validation of a Bio-Inspired Thruster

被引:4
|
作者
Costa, Daniele [1 ]
Palmieri, Giacomo [1 ]
Scaradozzi, David [2 ]
Callegari, Massimo [1 ]
机构
[1] Polytech Univ Marche, Dept Ind Engn & Math Sci, I-60131 Ancona, Italy
[2] Polytech Univ Marche, Dept Informat Engn, I-60131 Ancona, Italy
来源
JOURNAL OF DYNAMIC SYSTEMS MEASUREMENT AND CONTROL-TRANSACTIONS OF THE ASME | 2021年 / 143卷 / 08期
关键词
DISCONTINUOUS GALERKIN METHOD; HYDRODYNAMICS; PERFORMANCE; DESIGN;
D O I
10.1115/1.4050258
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Bio-inspired solutions have been deeply investigated in the last two decades as a source of propulsive improvement for autonomous underwater vehicles. Despite the efforts made to pursue the substantial potential payoffs of marine animals' locomotion, the performance of biological swimmers is still far to reach. The possibility to design a machine capable of propelling itself like a marine animal strongly depends on the understanding of the mechanics principles underlying biological swimming. Therefore, the adoption of advanced simulation and measurement techniques is fundamental to investigate the fluid-structure interaction phenomena of aquatic animals' locomotion. Among those, computational fluid dynamics represents an invaluable tool to assess the propulsive loads due to swimming. However, the numerical predictions must be validated before they can be applied to the design of a bio-inspired robot. To this end, this paper presents the experimental setup devised to validate the fluid dynamics analysis performed on an oscillating foil. The numerical predictions led to the design of a strain gages-based sensor, which exploits the deflection and twisting of the foil shaft to indirectly measure the propulsive loads and obtain a complete dynamic characterization of the oscillating foil. The results obtained from the experiments showed a good agreement between the numerical predictions and the measured loads; the test equipment also allowed to investigate the potential benefits of a slender fish-like body placed before the spinning fin. Therefore, in future work, the system will be employed to validate the analysis performed on more sophisticated modes of locomotion.
引用
收藏
页数:11
相关论文
共 50 条
  • [41] Bio-Inspired Computing and Communication
    Crowcroft, Jon
    BIO-INSPIRED COMPUTING AND COMMUNICATION, 2008, 5151 : 1 - 8
  • [42] Bio-inspired medical technology
    Breedveld, P.
    COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY A-MOLECULAR & INTEGRATIVE PHYSIOLOGY, 2007, 146 (04): : S135 - S136
  • [43] Bio-inspired soft locomotion
    Ozcan, Onur
    Reis, Murat
    Nurzaman, Surya G.
    FRONTIERS IN ROBOTICS AND AI, 2023, 10
  • [44] Bio-inspired emergent construction
    Feltell, D
    Bai, L
    Soar, R
    2005 IEEE Swarm Intelligence Symposium, 2005, : 7 - 14
  • [45] Bio-Inspired Glass Is Bendable
    不详
    CHEMICAL ENGINEERING PROGRESS, 2014, 110 (03) : 9 - 10
  • [46] Bio-Inspired Robotic Systems
    DeVries, Levi
    Kiriakidis, Kiriakos
    MECHANICAL ENGINEERING, 2016, 138 (03)
  • [47] Bio-inspired Bandwidth Packing
    Koruk, Talha
    Onur, Ertan
    2017 14TH IEEE ANNUAL CONSUMER COMMUNICATIONS & NETWORKING CONFERENCE (CCNC), 2017,
  • [48] Bio-Inspired Plasmonic Photocatalysts
    Liu Z.
    Leow W.R.
    Chen X.
    Small Methods, 2018, 3 (03)
  • [49] Bio-inspired nanochannels with superwettability
    Tian, Ye
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2018, 256
  • [50] Materials for bio-inspired optics
    Zuccarello, G
    Scribner, D
    Sands, R
    Buckley, LJ
    ADVANCED MATERIALS, 2002, 14 (18) : 1261 - +