This study investigates the dynamic behavior of an articulated boom offshore crane under various load application laws. The following steps were taken to perform numerical simulations using the finite-element method (FEM): Definition of the model's geometry, materials, and boundary conditions. The modal analyses reveal significant resonance frequencies in the direction of load application (payload). The crane's displacement, velocity, and acceleration responses are closely related to load application laws, specifically the time required to reach the structure's full payload (epsilon). It is highly correlated with the dynamic factor (maximum acceleration multiplied by payload), which has a wide range of effects on the structure, including the effects of overstress, overturning, buckling, and so on. The main findings reveal a very strong exponential correlation, allowing the dynamic effect to be estimated as a function of epsilon time. This is a useful tool for increasing the safety and reliability of offshore lifting operations.

Dynamic Analysis of an Offshore Knuckle-Boom Crane Under Different Load Applications Laws

Tomasi I.;Solazzi L.
2025-01-01

Abstract

This study investigates the dynamic behavior of an articulated boom offshore crane under various load application laws. The following steps were taken to perform numerical simulations using the finite-element method (FEM): Definition of the model's geometry, materials, and boundary conditions. The modal analyses reveal significant resonance frequencies in the direction of load application (payload). The crane's displacement, velocity, and acceleration responses are closely related to load application laws, specifically the time required to reach the structure's full payload (epsilon). It is highly correlated with the dynamic factor (maximum acceleration multiplied by payload), which has a wide range of effects on the structure, including the effects of overstress, overturning, buckling, and so on. The main findings reveal a very strong exponential correlation, allowing the dynamic effect to be estimated as a function of epsilon time. This is a useful tool for increasing the safety and reliability of offshore lifting operations.
2025
Ateneo di appartenenza
PE5_1 Structural properties of materials
PE7_3 Simulation engineering and modelling
PE8_9 Materials engineering (biomaterials, metals, ceramics, polymers, composites,…)
PE8_8 Mechanical and manufacturing engineering (shaping, mounting, joining, separation)
PE8_3 Civil engineering, maritime/hydraulic engineering, geotechnics, waste treatment
PE8_11 Product design, ergonomics, man-machine interfaces
Esperti anonimi
Inglese
Internazionale
ELETTRONICO
15
14
15
dynamic analysis; offshore knuckle-boom crane; modal analysis; finite-element analysis; lifting equipment
https://www.mdpi.com/2076-3417/15/14/8100
no
Goal 9: Industry, Innovation, and Infrastructure
2
info:eu-repo/semantics/article
262
Tomasi, I.; Solazzi, L.
1 Contributo su Rivista::1.1 Articolo in rivista
open
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11379/631985
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