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Series: ASM Handbook
Volume: 11B
Publisher: ASM International
Published: 15 May 2022
DOI: 10.31399/asm.hb.v11B.a0006931
EISBN: 978-1-62708-395-9
... crystal phases and structures in solid materials. failure analysis infrared spectroscopy nuclear magnetic resonance spectroscopy polymer structure thermal analysis X-ray diffraction FAILURE OF POLYMERIC materials is the result of a very complex process. This article introduces procedures...
Abstract
This article presents tools, techniques, and procedures that engineers and material scientists can use to investigate plastic part failures. It also provides a brief survey of polymer systems and the key properties that need to be measured during failure analysis. It describes the characterization of plastics by infrared and nuclear magnetic resonance spectroscopy, differential scanning calorimetry, differential thermal analysis, thermogravimetric analysis, thermomechanical analysis, and dynamic mechanical analysis. The article also discusses the use of X-ray diffraction for analyzing crystal phases and structures in solid materials.
Book Chapter
Fracture of Plastics
Available to PurchaseSeries: ASM Handbook Archive
Volume: 11
Publisher: ASM International
Published: 01 January 2002
DOI: 10.31399/asm.hb.v11.a0003541
EISBN: 978-1-62708-180-1
... Abstract This article reviews the mechanical behavior and fracture characteristics that discriminate structural polymers from metals. It provides information on deformation, fracture, and crack propagation as well as the fractography involving the examination and interpretation of fracture...
Abstract
This article reviews the mechanical behavior and fracture characteristics that discriminate structural polymers from metals. It provides information on deformation, fracture, and crack propagation as well as the fractography involving the examination and interpretation of fracture surfaces, to determine the cause of failure. The fracture modes such as ductile fractures and brittle fractures are reviewed. The article also presents a detailed account of various fracture surface features. It concludes with several cases of field failure in various polymers that illustrate the applicability of available analytical tools in conjunction with an understanding of failure mechanisms.
Series: ASM Handbook
Volume: 11B
Publisher: ASM International
Published: 15 May 2022
DOI: 10.31399/asm.hb.v11B.a0006865
EISBN: 978-1-62708-395-9
... Abstract This article reviews the mechanical behavior and fracture characteristics that discriminate structural polymers from metals, including plastic deformation. It provides overviews of crack propagation and fractography. The article presents the distinction between ductile and brittle...
Abstract
This article reviews the mechanical behavior and fracture characteristics that discriminate structural polymers from metals, including plastic deformation. It provides overviews of crack propagation and fractography. The article presents the distinction between ductile and brittle fracture modes. Several case studies of field failure in various polymers are also presented to illustrate the applicability of available analytical tools in conjunction with an understanding of failure mechanisms.
Book Chapter
Rehabilitation of Reinforced Concrete Structures Using Fiber-Reinforced Polymer Composites
Available to PurchaseBook: Composites
Series: ASM Handbook Archive
Volume: 21
Publisher: ASM International
Published: 01 January 2001
DOI: 10.31399/asm.hb.v21.a0003453
EISBN: 978-1-62708-195-5
... polymer (FRP)-reinforced concrete behavior that depends on flexural, shear, or axial failures. Surface preparation procedures for rehabilitation techniques of reinforced concrete structures using bonded FRP materials are also discussed. The article provides information on the applications...
Abstract
Rehabilitation is the process of repairing or modifying reinforced concrete structures to a desired useful condition. This article describes the operational steps for the structural assessment of reinforced concrete structures. It discusses the classification of composite materials reinforcing systems for strengthening reinforced concrete structures, such as shop-manufactured and field-manufactured structures. The article reviews the materials property requirements for designing reinforcing systems to strengthen the reinforced concrete structures. It discusses the fiber-reinforced polymer (FRP)-reinforced concrete behavior that depends on flexural, shear, or axial failures. Surface preparation procedures for rehabilitation techniques of reinforced concrete structures using bonded FRP materials are also discussed. The article provides information on the applications of rehabilitation of concrete structures. It explains data recording and acceptance criteria for rehabilitation of concrete structures with composite materials.
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Polymer structure. The spheres represent the repeating units of the polymer...
Available to PurchasePublished: 15 May 2022
Fig. 8 Polymer structure. The spheres represent the repeating units of the polymer chain, not individual atoms. Source: Ref 8
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Published: 30 September 2015
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Published: 30 September 2015
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Published: 30 September 2015
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Published: 30 September 2015
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Published: 01 January 2003
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Published: 01 November 1995
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Types of polymer structures possible for plastic materials. (a) Statistical...
Available to PurchasePublished: 01 November 1995
Fig. 1 Types of polymer structures possible for plastic materials. (a) Statistical aggregation. (b) Partially crystalline structure. (c) Spherical superstructure. (d) Block copolymer. (e) Main chain/liquid crystal polymer (ordered). (f) Fiber-filled polymer. Source: Ref 9
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Molecular structures of some conjugated polymers; a commonality among all s...
Available to PurchasePublished: 15 December 2019
Fig. 5 Molecular structures of some conjugated polymers; a commonality among all structures is alternating single and double bonds between carbon atoms. Adapted from Ref 35
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Mer chemical structure of representative hydrocarbon thermoplastic polymers...
Available to PurchasePublished: 15 May 2022
Fig. 13 Mer chemical structure of representative hydrocarbon thermoplastic polymers. (See Table 6 for glass transition temperatures.)
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Mer chemical structure of representative heterochain thermoplastic polymers...
Available to PurchasePublished: 15 May 2022
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Mer chemical structure of representative thermoplastic polymers for high-te...
Available to PurchasePublished: 15 May 2022
Fig. 17 Mer chemical structure of representative thermoplastic polymers for high-temperature service
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Structures of selected commodity and engineering plastics. Polymer chains a...
Available to Purchase
in Effects of Composition, Processing, and Structure on Properties of Engineering Plastics
> Characterization and Failure Analysis of Plastics
Published: 15 May 2022
Fig. 1 Structures of selected commodity and engineering plastics. Polymer chains are made up of the repeat units shown, joined end to end. Source: Ref 2 – 7
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Published: 01 February 2024
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Cost versus performance of various lightweight structural cores. PMI, polym...
Available to PurchasePublished: 01 January 2001
Fig. 5 Cost versus performance of various lightweight structural cores. PMI, polymethacrylimide; PP, polypropylene; PVC, polyvinyl chloride; PU, polyurethane; PS, polystyrene
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Book Chapter
Effects of Composition, Processing, and Structure on Properties of Engineering Plastics
Available to PurchaseSeries: ASM Handbook
Volume: 20
Publisher: ASM International
Published: 01 January 1997
DOI: 10.31399/asm.hb.v20.a0002464
EISBN: 978-1-62708-194-8
.... The article describes the effects of structure on thermal and mechanical properties. It reviews the chemical, optical, and electrical properties of engineering plastics and commodity plastics. An explanation of important physical properties, many of which are unique to polymers, is also included. The factors...
Abstract
This article discusses the most fundamental building-block level, atomic level, molecular considerations, intermolecular structures, and supermolecular issues. It contains a table that shows the structures and lists the properties of selected commodity and engineering plastics. The article describes the effects of structure on thermal and mechanical properties. It reviews the chemical, optical, and electrical properties of engineering plastics and commodity plastics. An explanation of important physical properties, many of which are unique to polymers, is also included. The factors that must be considered when processing engineering thermoplastics are discussed. These include melt viscosity and melt strength; crystallization; orientation, die swell, shrinkage, and molded-in stress; polymer degradation; and polymer blends.
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