Cavitator Design for Straight-Running Supercavitating Torpedoes

A practical cavitator design method for straight-running-type supercavitating torpedoes was developed in this paper. Design requirements were first drawn in terms of torpedo performance characteristics, such as maximum range and motion stability. This method determines the optimum cavitator satisfyi...

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Main Authors: Min-Jae Kim, Seon-Hong Kim, Kurn-Chul Lee, Bu-Geun Paik, Moon-Chan Kim
Format: Article
Language:English
Published: MDPI AG 2021-07-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/11/14/6247
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spelling doaj-1a08f457ea904f9e997fad1c4b93815d2021-07-23T13:28:58ZengMDPI AGApplied Sciences2076-34172021-07-01116247624710.3390/app11146247Cavitator Design for Straight-Running Supercavitating TorpedoesMin-Jae Kim0Seon-Hong Kim1Kurn-Chul Lee2Bu-Geun Paik3Moon-Chan Kim4Agency for Defense Development, Jinhae P.O. Box 18, Changwon 51678, KoreaAgency for Defense Development, Jinhae P.O. Box 18, Changwon 51678, KoreaAgency for Defense Development, Jinhae P.O. Box 18, Changwon 51678, KoreaKorea Research Institute of Ships and Ocean Engineering, Daejeon 34103, KoreaDepartment of Naval Architecture & Ocean Engineering, Pusan National University, Busan 46287, KoreaA practical cavitator design method for straight-running-type supercavitating torpedoes was developed in this paper. Design requirements were first drawn in terms of torpedo performance characteristics, such as maximum range and motion stability. This method determines the optimum cavitator satisfying the design requirements that not only minimize the total drag of the torpedo, extending the maximum range, but also provide hydrodynamic forces required for straight level flight. The design procedure includes determining a design cavitation number and cavitator type (disk or cone) for obtaining the optimal cavitator that minimizes the total drag of a torpedo in straight level flight. To determine such an optimal cavitator, the equations of force and moment equilibrium for straight level flight were iteratively solved by the existing mathematical models that determine the cavity shapes generated by disk- and cone-shaped cavitators and hydrodynamic forces acting on the vehicle. For validation, model experiments on a small-scale supercavitating vehicle were conducted in a towing tank, and the results agree well with those of the mathematical models used in this study. A preliminary design based on the newly proposed method was also implemented for a realistic supercavitating vehicle. More precise computations using CFD should be conducted to investigate the physics in more detail in the near future.https://www.mdpi.com/2076-3417/11/14/6247supercavitationcavitatorsupercavitating torpedocavitator design method
collection DOAJ
language English
format Article
sources DOAJ
author Min-Jae Kim
Seon-Hong Kim
Kurn-Chul Lee
Bu-Geun Paik
Moon-Chan Kim
spellingShingle Min-Jae Kim
Seon-Hong Kim
Kurn-Chul Lee
Bu-Geun Paik
Moon-Chan Kim
Cavitator Design for Straight-Running Supercavitating Torpedoes
Applied Sciences
supercavitation
cavitator
supercavitating torpedo
cavitator design method
author_facet Min-Jae Kim
Seon-Hong Kim
Kurn-Chul Lee
Bu-Geun Paik
Moon-Chan Kim
author_sort Min-Jae Kim
title Cavitator Design for Straight-Running Supercavitating Torpedoes
title_short Cavitator Design for Straight-Running Supercavitating Torpedoes
title_full Cavitator Design for Straight-Running Supercavitating Torpedoes
title_fullStr Cavitator Design for Straight-Running Supercavitating Torpedoes
title_full_unstemmed Cavitator Design for Straight-Running Supercavitating Torpedoes
title_sort cavitator design for straight-running supercavitating torpedoes
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2021-07-01
description A practical cavitator design method for straight-running-type supercavitating torpedoes was developed in this paper. Design requirements were first drawn in terms of torpedo performance characteristics, such as maximum range and motion stability. This method determines the optimum cavitator satisfying the design requirements that not only minimize the total drag of the torpedo, extending the maximum range, but also provide hydrodynamic forces required for straight level flight. The design procedure includes determining a design cavitation number and cavitator type (disk or cone) for obtaining the optimal cavitator that minimizes the total drag of a torpedo in straight level flight. To determine such an optimal cavitator, the equations of force and moment equilibrium for straight level flight were iteratively solved by the existing mathematical models that determine the cavity shapes generated by disk- and cone-shaped cavitators and hydrodynamic forces acting on the vehicle. For validation, model experiments on a small-scale supercavitating vehicle were conducted in a towing tank, and the results agree well with those of the mathematical models used in this study. A preliminary design based on the newly proposed method was also implemented for a realistic supercavitating vehicle. More precise computations using CFD should be conducted to investigate the physics in more detail in the near future.
topic supercavitation
cavitator
supercavitating torpedo
cavitator design method
url https://www.mdpi.com/2076-3417/11/14/6247
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AT seonhongkim cavitatordesignforstraightrunningsupercavitatingtorpedoes
AT kurnchullee cavitatordesignforstraightrunningsupercavitatingtorpedoes
AT bugeunpaik cavitatordesignforstraightrunningsupercavitatingtorpedoes
AT moonchankim cavitatordesignforstraightrunningsupercavitatingtorpedoes
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