The objective of the current work is to model a stainless steel SA 316L autoclave explosion and rupture that occurred during a research laboratory experiment designed to study the thermal decomposition of ammonium tetrathiomolybdate in the presence of dimethyl sulfoxide (DSMO) in an autoclave. The explosion was believed to have occurred because DMSO was used in excess in the experiment and heated beyond its decomposition temperature. The aim of the current study is to investigate the effect of internal blast load on a pressure vessel made of stainless steel AISI 316L through finite element analysis. Numerical simulation using FEA is performed to better understand the cause of failure of the pressure vessel. The finite element model predicts very well the structural response and subsequent failure of the actual incident and the results reveal that the root cause to failure was an internal blast load, which arose from the decomposition of DMSO at high temperature.
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ASME 2018 Pressure Vessels and Piping Conference
July 15–20, 2018
Prague, Czech Republic
Conference Sponsors:
- Pressure Vessels and Piping Division
ISBN:
978-0-7918-5163-0
PROCEEDINGS PAPER
Finite Element Analysis of a Pressure Vessel Subjected to an Internal Blast Load
I. Barsoum,
I. Barsoum
The Petroleum Institute, Abu Dhabi, UAE
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L. Sadiq
L. Sadiq
The Petroleum Institute, Abu Dhabi, UAE
Search for other works by this author on:
I. Barsoum
The Petroleum Institute, Abu Dhabi, UAE
L. Sadiq
The Petroleum Institute, Abu Dhabi, UAE
Paper No:
PVP2018-84012, V03BT03A039; 8 pages
Published Online:
October 26, 2018
Citation
Barsoum, I, & Sadiq, L. "Finite Element Analysis of a Pressure Vessel Subjected to an Internal Blast Load." Proceedings of the ASME 2018 Pressure Vessels and Piping Conference. Volume 3B: Design and Analysis. Prague, Czech Republic. July 15–20, 2018. V03BT03A039. ASME. https://doi.org/10.1115/PVP2018-84012
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