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Component Velocities and Turbulence Intensities within Ship Twin-Propeller Jet Using CFD and ADV

Yonggang Cui; Wei Haur Lam; How Tion Puay; Muhammad S. I. Ibrahim; Desmond Robinson; Gerard Hamill
Journal of Marine Science and Engineering · Vol. 8, Issue 12 · pp. 1025 · 2020

Abstract

This study presents the decays of three components of velocity for a ship twin-propeller jet associated with turbulence intensities using the Acoustic Doppler Velocimetry (ADV) measurement and computational fluid dynamics (CFD) methods. Previous research has shown that a single-propeller jet consists of a zone of flow establishment and a zone of established flow. Twin-propeller jets are more complex than single-propeller jets, and can be divided into zones with four peaks, two peaks, and one peak. The axial velocity distribution is the main contributor and can be predicted using the Gaussian normal distribution. The axial velocity decay is described by linear equations using the maximum axial velocity in the efflux plane. The tangential and radial velocity decays show linear and nonlinear distributions in different zones. The turbulence intensity increases locally in the critical position of the noninterference zone and the interference zone. The current research converts the axial momentum theory of a single propeller into twin-propeller jet theory with a series of equations used to predict the overall twin-propeller jet structure.

Bibliographic Information

JournalJournal of Marine Science and Engineering
PublisherMDPI
Publication Date2020-12-15
Publication Year2020
Volume8
Issue12
Pages1025
Document TypeJournal Article
eISSN2077-1312
DOI10.3390/jmse8121025
SubjectMarine science; oceanography; marine engineering; coastal science; marine environment

Access Information

NARA Access CoverageOA / free full text
Journal Homepagehttps://www.mdpi.com/journal/jmse
Publisher PageOpen Publisher Page
This article is openly available from the publisher.