Shape optimization of blended-wing-body underwater glider by using gliding range as the optimization target

Chunya Sun, Baowei Song, Peng Wang, Xinjing Wang

Research output: Contribution to journalArticlepeer-review

62 Scopus citations

Abstract

Blended-Wing-Body Underwater Glider (BWBUG), which has excellent hydrodynamic performance, is a new kind of underwater glider in recent years. In the shape optimization of BWBUG, the lift to drag ratio is often used as the optimization target. However this results in lose of internal space. In this paper, the energy reserve is defined as the direct proportional function of the internal space of BWBUG. A motion model, which relates gliding range to steady gliding motion parameters as well as energy consumption, is established by analyzing the steady-state gliding motion. The maximum gliding range is used as the optimization target instead of the lift to drag ratio to optimizing the shape of BWBUG. The result of optimization shows that the maximum gliding range of initial design is increased by 32.1% though an Efficient Global Optimization (EGO) process.

Original languageEnglish
Pages (from-to)693-704
Number of pages12
JournalInternational Journal of Naval Architecture and Ocean Engineering
Volume9
Issue number6
DOIs
StatePublished - Nov 2017

Keywords

  • Blended-wing-body underwater glider
  • Energy consumption model
  • Gliding range
  • Lift to drag ratio
  • Shape optimization

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