Nurdin, R. and Sriwijaya, R. (2024) Effect of Pad Thickness and Width Variations on Plastic Limit Moment in Cylindrical Pressure Vessels Due to Nozzle In-Plane Load. In: International Symposium on Advances and Innovation in Mechanical Engineering (ISAIME), 13 Oktober 2022, Makasar.
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Abstract
This study investigates how different pad thicknesses and diameters affect the maximum stress a cylindrical pressure vessel can handle without failing, particularly around the areas where nozzles are attached. Nozzles on these vessels often face directional stress from loads applied in a specific plane, and these stresses mustn't push the nozzle material beyond its breaking point. The research used computer simulations to see how these vessels, with various pad sizes and a set shell and nozzle size, behave under increasing stress until they reach their breaking point. Findings indicate that making the pad thicker or wider increases the vessel's resistance to breaking up to a certain point; beyond this optimal size, making the pad larger doesn't provide any additional benefit. This information helps design better and safer pressure vessels by identifying the best pad size to prevent failure. The study contributes to understanding how to avoid design issues and optimize the construction of these vessels, adhering to specific industry standards. © Published under licence by IOP Publishing Ltd.
Item Type: | Conference or Workshop Item (Paper) |
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Additional Information: | Cited by: 0; All Open Access, Gold Open Access |
Uncontrolled Keywords: | Ductile fracture; Finite element method; Pressure effects; Pressure vessels; Breaking point; Cylinder pressure vessel; Cylinder pressures; Cylindrical pressure vessels; Finite element analyse; In-plane loads; Pad; Pad sizes; Plastic limit; Plastic limit loads; Nozzles |
Subjects: | T Technology > TJ Mechanical engineering and machinery |
Divisions: | Faculty of Engineering > Mechanical and Industrial Engineering Department |
Depositing User: | Rita Yulianti Yulianti |
Date Deposited: | 18 Feb 2025 05:44 |
Last Modified: | 18 Feb 2025 05:44 |
URI: | https://ir.lib.ugm.ac.id/id/eprint/13682 |