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Book Chapter
Structural Steels and Steels for Pressure Vessels, Piping, and Boilers
Available to PurchaseSeries: ASM Technical Books
Publisher: ASM International
Published: 01 August 2018
DOI: 10.31399/asm.tb.msisep.t59220475
EISBN: 978-1-62708-259-4
... Abstract This chapter discusses the properties and compositions of steels used in pressure vessels, piping, boilers, rebar, and other structural applications. It covers fine-grained steels, quenched and tempered steels, and controlled rolled (thermomechanical treatment) steels. It also compares...
Abstract
This chapter discusses the properties and compositions of steels used in pressure vessels, piping, boilers, rebar, and other structural applications. It covers fine-grained steels, quenched and tempered steels, and controlled rolled (thermomechanical treatment) steels. It also compares and contrasts steels used for concrete reinforcement and in various types of pressure vessels, and presents a metallographic study of the effects of welding on the micro and macrostructure of steel.
Book Chapter
Integral Design for Filament Winding—Materials, Winding Patterns, and Roving Dimensions for Optimal Pressure Vessels
Available to PurchaseSeries: ASM Technical Books
Publisher: ASM International
Published: 01 September 2011
DOI: 10.31399/asm.tb.cfw.t52860019
EISBN: 978-1-62708-338-6
... Abstract This chapter outlines a methodology for the design of cylindrical pressure vessels, with emphasis on the establishment of winding patterns and the interaction between the real fiber bed geometry (finite roving dimensions) and the theoretical one. To highlight the materials-shape...
Abstract
This chapter outlines a methodology for the design of cylindrical pressure vessels, with emphasis on the establishment of winding patterns and the interaction between the real fiber bed geometry (finite roving dimensions) and the theoretical one. To highlight the materials-shape/pattern-roving interaction, an outline of the basic principles of pressure vessel design is provided. After a short section on laminate thickness approximation techniques (essential for establishing a range of acceptable roving dimensions), the chapter concludes with an example demonstrating the methodology from an initial set of design parameters up to the final stage, including patterns, roving dimensions, and production time minimization.
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Published: 01 September 2011
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Pressure vessels wound with void-free techniques. ERINT, Extended Range Int...
Available to PurchasePublished: 01 September 2011
Book Chapter
Pressure Vessel Design, Fabrication, Analysis, and Testing
Available to PurchaseSeries: ASM Technical Books
Publisher: ASM International
Published: 01 September 2011
DOI: 10.31399/asm.tb.cfw.t52860115
EISBN: 978-1-62708-338-6
... Abstract The necessity of developing the lightest-weight structures with sufficient strength was the driving factor for the development of filament-wound composite pressure vessels. This chapter presents a brief history of the development of rocket motor cases (RMCs), followed by a comparison...
Abstract
The necessity of developing the lightest-weight structures with sufficient strength was the driving factor for the development of filament-wound composite pressure vessels. This chapter presents a brief history of the development of rocket motor cases (RMCs), followed by a comparison of the advantages of composites over metals for RMCs. A discussion on a typical design, analysis, and manufacturing operation follows. The chapter introduces the basic design approach and shows some sizing techniques along with example calculations. It discusses the processes involved in the testing of the composite pressure vessel.
Book Chapter
Petroleum Reactor Pressure-Vessel Materials for Hydrogen Service
Available to PurchaseSeries: ASM Technical Books
Publisher: ASM International
Published: 01 December 1989
DOI: 10.31399/asm.tb.dmlahtc.t60490329
EISBN: 978-1-62708-340-9
... Abstract This chapter covers the failure modes and mechanisms of concern in hydroprocessing reactor vessels and the methods used to assess lifetime and performance. It begins with a review of the materials used in the construction of pressure-vessel shells, the challenges they face...
Abstract
This chapter covers the failure modes and mechanisms of concern in hydroprocessing reactor vessels and the methods used to assess lifetime and performance. It begins with a review of the materials used in the construction of pressure-vessel shells, the challenges they face, and the factors that determine shell integrity. The discussion addresses key properties and design parameters including allowable stress, fracture toughness, the effect of microstructure and composition on embrittlement, high-temperature creep, and subcritical crack growth. The chapter also provides information on the factors that affect cladding integrity and ends with a section on life-assessment techniques.
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Published: 01 September 2011
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Reference fracture-toughness curve for nuclear-reactor pressure-vessel stee...
Available to PurchasePublished: 01 December 1989
Fig. 2.12. Reference fracture-toughness curve for nuclear-reactor pressure-vessel steels as per ASME Boiler and Pressure Vessel Code, Section III, Appendix G ( Ref 45 ).
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Use of ASME Boiler and Pressure Vessel Code criteria to establish the allow...
Available to PurchasePublished: 01 December 1989
Fig. 3.7. Use of ASME Boiler and Pressure Vessel Code criteria to establish the allowable stress for a 2¼Cr-1Mo steel ( Ref 46 ).
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Effect of temperature on ASME Boiler and Pressure Vessel Code allowable str...
Available to Purchase
in Life Prediction for Boiler Components
> Damage Mechanisms and Life Assessment of High-Temperature Components
Published: 01 December 1989
Fig. 5.2. Effect of temperature on ASME Boiler and Pressure Vessel Code allowable stress for several grades of steel tubing.
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Image
Hydrogen embrittlement failure of a Ti-6Al-4V helium pressure vessel used o...
Available to PurchasePublished: 01 December 2006
Fig. 8 Hydrogen embrittlement failure of a Ti-6Al-4V helium pressure vessel used on the Saturn IV B. Similar hydriding occurred in Apollo SPS pressure vessels. (a) Failed pressure vessel due to brittle hydride formation along weld bead made with commercially pure titanium. (b) Hydride at edge
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Sulfide stress cracking of hard HAZ next to weld in A516-70 pressure vessel...
Available to PurchasePublished: 01 December 2006
Fig. 3 Sulfide stress cracking of hard HAZ next to weld in A516-70 pressure vessel steel after exposure to sour water. 35×
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Composite Isotensoid pressure vessel. Courtesy of Advanced Lightweight Engi...
Available to PurchasePublished: 01 September 2011
Fig. 1.2 Composite Isotensoid pressure vessel. Courtesy of Advanced Lightweight Engineering B.V.
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Published: 01 September 2011
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Published: 01 September 2011
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Schematic representation of a pressure vessel and definition of the winding...
Available to Purchase
in Integral Design for Filament Winding—Materials, Winding Patterns, and Roving Dimensions for Optimal Pressure Vessels
> Composite Filament Winding
Published: 01 September 2011
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in Integral Design for Filament Winding—Materials, Winding Patterns, and Roving Dimensions for Optimal Pressure Vessels
> Composite Filament Winding
Published: 01 September 2011
Image
Roving placement, adjacent to the polar periphery of a pressure vessel (top...
Available to Purchase
in Integral Design for Filament Winding—Materials, Winding Patterns, and Roving Dimensions for Optimal Pressure Vessels
> Composite Filament Winding
Published: 01 September 2011
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Published: 01 September 2011
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Published: 01 September 2011
Fig. 9.2 Composite pressure vessel nomenclature Composite case nomenclature Fwd and aft port openings (D F , D A ) End fitting or polar boss (opening attach feature for nozzle/igniters) Diameter (D): Twice the radius (either local or cylinder) Overall length (L = OAL
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