International Journal of Marine Engineering Innovation and Research
Vol. 11 No. 3 (2026): In Progress

Structural Performance of Breasting Dolphin Under Berthing Load Variations

Oryza Sari (Department of Civil Engineering, Kalimantan Institute of Technology, Balikpapan, East Kalimantan 76127, Indonesia.)
Basyaruddin (Department of Civil Engineering, Kalimantan Institute of Technology, Balikpapan, East Kalimantan 76127, Indonesia.)
Alvin Sari (Department of Civil Engineering, Kalimantan Institute of Technology, Balikpapan, East Kalimantan 76127, Indonesia.)
Lorddy Zefanya Nugroho (Department of Civil and Construction Engineering, National Taiwan University of Science and Technology, Taipei 10607, Taiwan. Universidad Politécnica Taiwán Paraguay (UPTP), Asunción Paraguay.)



Article Info

Publish Date
01 Sep 2026

Abstract

Breasting dolphins are critical marine structures that transfer vessel impact loads to the jetty system during berthing operations. In several existing terminals, increasing operational demands may necessitate the accommodation of vessels larger than the original design vessel, provided that water depth and terminal functionality permit such operation. However, operational feasibility cannot be evaluated solely based on navigational clearance, as berthing velocity, fender reaction, pile stiffness, and soil–pile interaction may significantly influence structural demand. This study investigates the structural performance of an existing breasting dolphin at an oil and gas shore-base jetty under varying berthing load conditions. Four vessel capacities, namely 7,000, 8,000, 9,000, and 10,000 DWT, and five berthing velocity conditions were assessed using a three-dimensional structural model. Additional permanent loads, fender and bollard loads, and soil support modeled using spring element were included. Structural acceptability was assessed based on the occurrence of plastic member behavior and axial force–biaxial bending interaction criteria. The results indicate that only two scenarios remained fully elastic: 7,000 DWT at 0.108 m/s and 8,000 DWT at 0.103 m/s. All other applicable scenarios exhibited plastic member behavior, with critical interaction utilization under difficult sheltered berthing ranging from 3.392 to 3.706. These findings highlight that operational approval for larger vessels should be controlled by berthing velocity and verified structural capacity, rather than by water depth alone.

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Journal Info

Abbrev

ijmeir

Publisher

Subject

Automotive Engineering Control & Systems Engineering Decision Sciences, Operations Research & Management Electrical & Electronics Engineering Energy Engineering Environmental Science Industrial & Manufacturing Engineering Materials Science & Nanotechnology Mechanical Engineering Physics Transportation

Description

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