Multiobjective design optimizatinn of riblet parameters of wing surfaces for underwater gliders

被引:0
|
作者
Hao, Yuxing [1 ]
Wu, Hongyu [1 ]
Zhang, Yuling [1 ]
Wu, Qingjian [2 ]
Tan, Lijie [2 ]
Yan, Shaoze [1 ]
机构
[1] State Key Laboratory of Tribology in Advanced Equipment (SKLT), Department of Mechanical Engineering, Tsinghua University, Beijing,100084, China
[2] School of Engineering and Technology, China University of Geosciences (Beijing), Beijing,100083, China
关键词
Aerodynamics - Boundary layer flow - Flow of gases - Flow separation - Rolling resistance - Turbulent flow - Vortex flow;
D O I
10.16511/j.cnki.qhdxxb.2024.27.026
中图分类号
学科分类号
摘要
[Objective] Underwater glider is a low-energy and buoyancy-driven exploration robot that is used in long-term ocean exploration tasks, such as anticyclonic eddy observations, marine noise detection, and biogeochemical analyses. To enhance its Overall Performance, multidisciplinary optimization during the design and application phases is crucial. An effective method for enhancing hydrodynamic Performance involves optimizing the surface micromorphology of underwater vehicles. Drawing inspiration from this micromorphology design concept, this paper conducts a multiobjective design optimization of the riblet parameters on the wing surface of an underwater glider to enhance its Overall Performance.[Methods] This study begins with the PetrelTI underwater glider prototype, proposing an initial riblet design scheme based on the movement characteristics of the underwater glider. Subsequently, a computational fluid dynamics Simulation model of the entire glider was developed. An optimized Latin hypercube experimental design was used to obtain sample riblet parameters and attack angles, followed by computational fluid dynamics simulations under various operating conditions. Hydrodynamic equations, including riblet parameters, were established through polynomial fitting and computational fluid dynamics results. These hydrodynamic equations were integrated into the dynamic model of the glider, allowing for a comprehensive dynamic analysis that includes riblet effects. Using the entire vehicle dynamic model, a theoretical derivation of the underwater glider's speed, static stability, and energy consumption evaluation was achieved, enabling a quantitative and comprehensive Performance analysis. A Surrogate model for Performance evaluation was established using optimized Latin hypercube experimental designs, dynamic simulations, and Performance models, considerably improving computational efficiency. The optimization objective function for the riblet parameters of the wing surface was determined. Riblet spacing, depth, and direction were selected as optimization design variables. The Surrogate model and second-generation nondominated sorting genetic algorithm were used for optimization calculations. The optimization aimed to simultaneously improve the horizontal speed, vertical speed, energy efficiency, and static stability of the underwater glider. As a result, four single-objective optimal Solutions and one multiobjective compromise Solution were obtained, leading to the final riblet design scheme.[Results] Numerical examples demonstrate that the smaller direction and the larger depth of the riblet can effectively and simultaneously improve the glider's speed, static stability, and energy efficiency. The effect of riblet spacing on the glider's Performance indicators shows certain contradictory and nonlinear characteristics. Compared with the Performance analysis result of the glider without riblet on the wing surface, the optimization result considerably enhances the glider's Overall Performance, proving the effectiveness of the proposed design method. In addition, 3D printing technology was used to produce a prototype of the wing. The surface of the obtained wing prototype is smooth, with the clear and undeformed riblet profile, which confirms the machinability of the riblet-enhanced surface.[Conclusions] The riblet on the wing surface can effectively improve the underwater glider's Overall Performance, and the proposed optimization method can make the above improvement more significant. This research provides theoretical guidance and a reference for the actual optimization design of underwater gliders. The next step is to consider improving the micromorphology of the hull's surface to further enhance the glider's Overall Performance and carrying out the corresponding parameter optimization. © 2024 Tsinghua University. All rights reserved.
引用
收藏
页码:2105 / 2114
相关论文
共 50 条
  • [21] A model-based shape conceptual design framework of blend-wing-body underwater gliders with curved wings
    Wang, Wenxin
    Wang, Xinjing
    Dong, Huachao
    Wang, Peng
    Shen, Jiangtao
    SHIPS AND OFFSHORE STRUCTURES, 2024, 19 (04) : 497 - 508
  • [22] Numerical Study on the Hydrodynamics of Flying Wing Autonomous Underwater Gliders for Shallow Water Maneuvering
    Guggilla, Mukesh
    Vijayakumar, R.
    OCEANS 2022, 2022,
  • [23] Dynamic modeling, motion analysis and fault diagnosis of underwater gliders with the loss of one wing
    Wang, Yanhui
    Han, Wei
    Niu, Wendong
    Yang, Ming
    Teng, Yi
    Yang, Shaoqiong
    APPLIED MATHEMATICAL MODELLING, 2023, 123 : 546 - 565
  • [24] Passivity-Based Controller Design for Stablization of Underwater Gliders
    Zhang, Feitian
    Tan, Xiaobo
    Khalil, Hassan K.
    2012 AMERICAN CONTROL CONFERENCE (ACC), 2012, : 5408 - 5413
  • [25] The Lightweight Design on the Pressure Hull of Underwater Gliders Using ANSYS
    Wu, Yitao
    Wang, Yanhui
    Sun, Xiujun
    MANUFACTURING PROCESS TECHNOLOGY, PTS 1-5, 2011, 189-193 : 703 - 706
  • [26] The Design of UnderGRND: Underwater Gliders - Remote Sensing for Nuclear Decommissioning
    Cooke, Edward
    Green, Peter R.
    Weightman, Andrew
    2019 IEEE INTERNATIONAL SYMPOSIUM ON SAFETY, SECURITY, AND RESCUE ROBOTICS (SSRR), 2019, : 68 - 73
  • [27] Bi-level task planning strategy for blended-wing-body underwater gliders
    Liang, Qingwei
    Huang, Hancheng
    Zio, Enrico
    Hu, Shanshan
    Yang, Cheng
    SHIPS AND OFFSHORE STRUCTURES, 2024,
  • [28] Design, hydrodynamic analysis, and testing of a bioinspired controllable wing mechanism with multi-locomotion modes for hybrid-driven underwater gliders
    Sun TongShuai
    Wang YanHui
    Yang ShaoQiong
    Wang Cheng
    Zhang LianHong
    SCIENCE CHINA-TECHNOLOGICAL SCIENCES, 2021, 64 (12) : 2688 - 2708
  • [29] Surrogate-based bilevel shape optimization for blended-wing-body underwater gliders
    Chen, Weixi
    Wang, Peng
    Dong, Huachao
    ENGINEERING OPTIMIZATION, 2023, 55 (06) : 998 - 1019
  • [30] Performance study of a simplified shape optimization strategy for blended-wing-body underwater gliders
    Li, Chengshan
    Wang, Peng
    Li, Tianbo
    Dong, Huachao
    INTERNATIONAL JOURNAL OF NAVAL ARCHITECTURE AND OCEAN ENGINEERING, 2020, 12 (12) : 455 - 467