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FTIR
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Published: 01 January 2002
Fig. 3 A typical FTIR spectrum illustrating the correlation between structure and absorption bands
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Published: 01 January 2002
Fig. 13 The FTIR spectrum obtained on the bracket base material, exhibiting absorption bands characteristic of polycarbonate
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Image
Published: 01 January 2002
Fig. 16 The FTIR spectrum obtained on the grip surface. The spectrum contains absorption bands indicative of glyceride derivatives of fats and oils in addition to bands associated with the base ABS resin.
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Image
Published: 01 January 2002
Fig. 18 The FTIR spectrum obtained on the included particle, characteristic of polybutadiene
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Image
Published: 01 January 2002
Fig. 22 The FTIR spectrum obtained on the failed tubing material. The spectrum exhibits absorption bands indicative of a PVC resin containing an adipate-based plasticizer.
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Image
Published: 01 January 2001
Fig. 4 Fourier transform infrared (FTIR) spectroscopy trace of an adhesive from a composite component
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Image
Published: 01 January 2001
Fig. 6 FTIR spectrum of Kevlar/epoxy paddle surface showing additional carbonyl peak (arrow) at 1741 cm –1
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in Manufacturing-Related Failures of Plastic Parts
> Characterization and Failure Analysis of Plastics
Published: 15 May 2022
Fig. 2 FTIR analysis results for a failed part due to incompatible materials. Courtesy of Michail Kalloudis, Impact Solutions (Impact Laboratories Ltd., UK)
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Published: 15 May 2022
Fig. 36 Thermogravimetric analysis-Fourier transform infrared spectroscopy (TGA-FTIR) of polyvinyl chloride (PVC)
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Series: ASM Handbook Archive
Volume: 11
Publisher: ASM International
Published: 01 January 2002
DOI: 10.31399/asm.hb.v11.a0003525
EISBN: 978-1-62708-180-1
... Fourier transform infrared spectroscopy (FTIR) is a nondestructive microanalytical spectroscopic technique that involves the study of molecular vibrations ( Ref 2 ). The analysis results provide principally qualitative, but also limited quantitative, information regarding the composition and state...
Abstract
This article reviews the analytical techniques most commonly used in plastic component failure analysis. These include the Fourier transform infrared spectroscopy, differential scanning calorimetry, thermogravimetric analysis, thermomechanical analysis, and dynamic mechanical analysis. The descriptions of the analytical techniques are supplemented by a series of case studies that include pertinent visual examination results and the corresponding images that aid in the characterization of the failures. The article describes the methods used for determining the molecular weight of a plastic resin. It explains the use of mechanical testing in failure analysis and also describes the considerations in the selection and use of test methods.
Image
Published: 15 May 2022
Fig. 6 The presence of polyethylene was found via DSC analysis (a) but was not clear in the FTIR analysis (b). Data courtesy of Element New Berlin
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Image
Published: 12 September 2022
Fig. 11 Powder characterization in the powder-bed fusion process. DSC, differential scanning calorimetry; TG, thermogravimetry; FTIR, Fourier transform infrared spectroscopy; EDX, energy-dispersive x-ray analysis; XRD, x-ray diffraction; AFM, atomic force microscopy
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Series: ASM Handbook
Volume: 10
Publisher: ASM International
Published: 15 December 2019
DOI: 10.31399/asm.hb.v10.a0006652
EISBN: 978-1-62708-213-6
... reaction after mixing to provide the hardened final product. In this example, the type of chemistry involved in the epoxy curing (the reaction between the two components) can be established by using Fourier transform infrared (FTIR) spectroscopic analysis of the uncured epoxy components as well...
Series: ASM Handbook
Volume: 11B
Publisher: ASM International
Published: 15 May 2022
DOI: 10.31399/asm.hb.v11B.a0006933
EISBN: 978-1-62708-395-9
...Practical information derived from polymer analysis methods Table 1 Practical information derived from polymer analysis methods Test method Properties measured Use in polymer failure analysis Fourier transform infrared spectroscopy (FTIR) Molecular bond structure Material...
Abstract
This article reviews analytical techniques that are most often used in plastic component failure analysis. The description of the techniques is intended to familiarize the reader with the general principles and benefits of the methodologies, namely Fourier transform infrared spectroscopy, energy-dispersive x-ray spectroscopy, differential scanning calorimetry, thermogravimetric analysis, and dynamic mechanical analysis. The article describes the methods for molecular weight assessment and mechanical testing to evaluate plastics and polymers. The descriptions of the analytical techniques are supplemented by a series of case studies to illustrate the significance of each method. The case studies also include pertinent visual examination results and the corresponding images that aided in the characterization of the failures.
Image
Published: 15 December 2019
Fig. 2 Images of polystyrene (PS)/polymethyl methacrylate (PMMA) block copolymer, a sample used to gage the performance of nanoinfrared techniques. Photo-induced force microscopy (PiFM) spectra correlate with the Fourier transform infrared (FTIR) spectra quite nicely. By tuning the excitation
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in Introduction to Characterization of Organic Solids and Organic Liquids
> Materials Characterization
Published: 15 December 2019
Fig. 2 Flow charts of common techniques for characterization of organic liquids. EFG: elemental and functional group analysis; ESR: electron spin resonance; FTIR: Fourier transform infrared spectroscopy; GC: gas chromatography; GC/MS: gas chromatography/mass spectrometry; IC: ion
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Image
Published: 15 December 2019
Fig. 1 Flow charts of common techniques for characterization of glasses and ceramics. AAS, atomic absorption spectrometry; AES, Auger electron spectroscopy; EPMA, electron probe x-ray microanalysis; FTIR, Fourier transform infrared spectroscopy; IA, image analysis; IC, ion chromatography; ICP
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Published: 15 December 2019
; FTIR: Fourier-transform infrared spectrometry; RS: Raman spectroscopy; GC: gas chromatography; GC-MS: gas chromatography-mass spectrometry; LC: liquid chromatography; LC-MS: liquid chromatography-mass spectrometry; XRD: x-ray diffraction; TEM: transmission electron microscopy; OM: optical microscopy
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Book Chapter
Series: ASM Handbook
Volume: 10
Publisher: ASM International
Published: 15 December 2019
DOI: 10.31399/asm.hb.v10.a0006673
EISBN: 978-1-62708-213-6
... Thermogravimetric Analysis ASTM E 2105 TGA/FTIR ASTM D 6375 Standard Test Method for Evaporation Loss of Lubricating Oils by Thermogravimetric Analyzer (TGA) Noack Method Note: Others can be found by searching “thermogravimetric,” “TGA,” or “thermogravimetric analysis” on the websites of ASTM...
Abstract
Thermogravimetric analysis (TGA) is a thermal analysis technique that measures the amount and rate of change in the weight of a material as a function of temperature or time in a controlled atmosphere. This article provides a detailed account of the concepts of TGA, covering the various criteria to be considered for specimen preparation and calibration of TGAs. The use of thermogravimetric analysis data in the assessment of failure analysis of plastics and the combined usage of TGA with other techniques to understand the changes in the sample are also covered. The article provides examples of applications and provides information on the interpretation of TGA.
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in Introduction to Characterization of Organic Solids and Organic Liquids
> Materials Characterization
Published: 15 December 2019
resonance; FTIR: Fourier transform infrared spectroscopy; GC: gas chromatography; GC/MS: gas chromatography/mass spectrometry; IA: image analysis; IC: ion chromatography; ICP-MS: inductively coupled plasma mass spectrometry; LC: liquid chromatography; LC/MS: liquid chromatography/mass spectrometry; LEISS
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