Back to results
Bibliographic record · Consultation and access
Artículo de revista

An Equilibrium-Based Design Framework for Pitch Stabilization of a Forward-Towed Towfish

Sunbeom Jeong et al · IEEE · 2026

Open access available
Quick overview. Review the resource’s basic details, then access the content using the main button. This page shows only the information needed to identify, cite, and open the work.
Serial publication

3PS-RAN: A Real-Time Framework for Securing the O-RAN RACH Against DDoS Attacks Toward NextG

This serial publication contains 172 related contents.

Resource access

Open the content from the main option or choose another available source.

DOAJ DOAJ Articles
Entrar por DOAJ
Main access

Open access available

Recurso identificado como acceso abierto, sin confirmar automáticamente si es texto completo directo.
Open resource

Summary

Descripción general del contenido del recurso.

Forward-towed towfish systems offer practical advantages for uncrewed surface vehicle (USV)-based operations because they are inherently compatible with simplified launch-and-recovery procedures and reduced deck intervention. However, locating the towing point near the forebody introduces a persistent stern-sagging trim bias under steady towing, which can degrade sensor alignment and hydrodynamic performance. This study presents a quasi-static equilibrium-based framework for passive steady-state pitch-trim design in forward-towed towfish systems. The trim problem is formulated as a pitching-moment balance about the towing point together with a vertical-force design constraint imposed on a fore–aft wing subsystem, yielding closed-form expressions for the required wing installation angles as explicit functions of towing speed. The resulting solution reveals an inverse-square dependence of the required angle magnitude on towing speed and clarifies the geometric role of wing placement in restoring-moment generation. A full-scale towfish prototype equipped with a 1°-resolution passive wing-angle adjustment mechanism was developed and tested in a towing tank at three representative towing speeds. Pitch behavior was evaluated using mean pitch, standard deviation, and RMS metrics. The experimentally identified minimum-response settings shifted toward smaller wing-angle magnitude as towing speed increased, consistent with the equilibrium-based trend. Pair-space comparison further showed that the analytical fore–aft angle pairs lie close to the experimentally preferred equal-magnitude settings over the tested towing-speed range. These results indicate that the proposed framework captures the dominant restoring-moment requirement governing steady-state trim and provides a practical first-order methodology for passive trim design of forward-towed towfish systems without resorting to high-fidelity multiphysics simulation.

How to cite

Elegí el formato que necesitás y copiá la referencia al portapapeles.

APA 7

al, S. J. E. (2026). An Equilibrium-Based Design Framework for Pitch Stabilization of a Forward-Towed Towfish. https://doi.org/10.1109/ACCESS.2026.3686839

MLA

al, Sunbeom Jeong et. "An Equilibrium-Based Design Framework for Pitch Stabilization of a Forward-Towed Towfish." 2026. https://doi.org/10.1109/ACCESS.2026.3686839.

Chicago

al, Sunbeom Jeong et. 2026. "An Equilibrium-Based Design Framework for Pitch Stabilization of a Forward-Towed Towfish.". https://doi.org/10.1109/ACCESS.2026.3686839.

Harvard

al, S. J. E. 2026, An Equilibrium-Based Design Framework for Pitch Stabilization of a Forward-Towed Towfish, IEEE, available at: https://doi.org/10.1109/ACCESS.2026.3686839 [Accessed 8 Aug. 2026].

Share and print

Save the record, copy its permanent link, or print it as a PDF.

Export reference

You can export the record in common formats for use in a reference manager.

Resource details

Bibliographic information to help confirm that this is the correct material.

Title
An Equilibrium-Based Design Framework for Pitch Stabilization of a Forward-Towed Towfish
Author / contributors
Sunbeom Jeong et al
Publisher
IEEE
Publication year
2026
ISSN
2169-3536
ISSN
2169-3536
Language
English

Subjects

Explore related resources through these subjects.

Copied