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ASME 2010 Pressure Vessels and Piping Conference: Volume 6, Parts A and B | 2010

Cracking of Non-PWHT’d Carbon Steel Operating at Conditions Immediately Below the Nelson Curve

James E. McLaughlin; Joseph Krynicki; Thomas Bruno

Cracking was observed in non-PWHT’d carbon steel piping and vessels operating at conditions immediately below the “Nelson” curve. This curve provides a threshold limit for high temperature hydrogen attack as a function of the equipment operating temperature and hydrogen partial pressure. This curve is based on industry experience with steel equipment operating for many years in high temperature high pressure hydrogen service. Our investigation indicated that cracking occurred in 2 stages. Stage 1 or the initial stage of cracking appeared to occur as a result of intergranular “hydrogen assisted” cracking very similar to high temperature hydrogen attack. It appears that Stage 1 cracking is driven by the combined effects of residual welding stresses and “methane pressure” stresses from the decomposition of carbides. The circumstances of the observed cracking indicate that, unlike high temperature hydrogen attack, it occurred over a relatively short period of time after an operating change to a higher hydrogen partial pressure. Stage 2 cracking results from sulfide scale packing the crack during high temperature operation in a sulfidizing environment and causes the Stage 1 cracks to further propagate through wall. Once the sulfide scale filled crack cools down during a shutdown, the surrounding metal contracts around the scale and causes a high load on the crack tip which promotes further crack propagation. The presence of dissolved hydrogen in the steel further promotes Stage 2 crack propagation during shutdown periods.Copyright


Archive | 2006

Silicon-containing steel composition with improved heat exchanger corrosion and fouling resistance

Changmin Chun; Mark A. Greaney; Thomas Bruno; Ian A. Cody; Trikur A. Ramanarayanan; Leroy Russell Clavenna


Archive | 2006

Insert and method for reducing fouling in a process stream

Mark A. Greaney; James E. Feather; Thomas Bruno; Changmin Chun; Clifford Hay


Archive | 2006

Corrosion resistant material for reduced fouling, heat transfer component with improved corrosion and fouling resistance, and method for reducing fouling

Mark A. Greaney; Thomas Bruno; Changmin Chun; Ian A. Cody; Limin Song; Steve Colgrove; Glen B. Brons; Ashley E. Cooper; James E. Feather; Leroy Russell Clavenna; H. Alan Wolf; Mohsen S. Yeganeh; Clifford Hay; Trikur A. Ramanarayanan


Archive | 2005

Low energy surfaces for reduced corrosion and fouling

Ian A. Cody; Hyung S. Woo; Mark A. Greaney; George Stephens; Mohsen S. Yeganeh; Shawn Dougal; Ashley E. Cooper; Hugh L. Huffman; Thomas Bruno


Archive | 2006

Method for reducing fouling in a refinery

Leroy Russell Clavenna; Ian A. Cody; Ashley E. Cooper; Steve Colgrove; Mark A. Greaney; Thomas Bruno; Limin Song; Henry Alan Wolf; Glen B. Brons; ChangMin Chun; Mohsen S. Yeganeh


Archive | 2005

Method for refinery foulant deposit characterization

Glen B. Brons; Leo D. Brown; Himanshu M. Joshi; Raymond John Kennedy; Thomas Bruno; Thomas M. Rudy


Archive | 2012

Corrosion resistant material for reduced fouling, heat transfer component having reduced fouling and method for reducing fouling

Mark A. Greaney; グリーニー,マーク,エイ.; Thomas Bruno; ブルーノ,トーマス; Changmin Chun; チュン,チャンミン; Ian A. Cody; コディー,イアン,エイ.; Limin Song; ソン,リミン; Steve Colgrove; コルグローブ,スティーブ; Glen B. Brons; ブロンス,グレン,ビー.; Ashley E. Cooper; クーパー,アシュリー,イー.; James E. Feather; フェザー,ジェームス,イー.; Leroy Russell Clavenna; クラベナ,レロイ,アール.; H. Alan Wolf; ウルフ,エイチ.,アラン; Mohsen S. Yeganeh; イェガネー,モーセン,エス.; Clifford Hay; ヘイ,クリフォード; Trikur A. Ramanarayanan; ラマナラヤナン,トリクル,エイ.


Archive | 2012

Corrosion resistant material for reduced fouling, a heat transfer component having reduced fouling and a method for reducing fouling in a refinery

Mark A. Greaney; Thomas Bruno; Ashley E. Cooper; Ian A. Cody; Changmin Chun


Archive | 2011

Chromiun-enriched oxide containing material and preoxidation method of making the same to mitigate corrosion and fouling associated with heat transfer components

Changmin Chun; Mark A. Greaney; Thomas Bruno; Ian A. Cody; Trikur A. Ramanarayanan

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