Search Books

Environmental stress-corrosion cracking of fiberglass: Lessons learned from failures in the chemical industry [An article from: Journal of Hazardous Materials]

Author T.J. Myers, H.K. Kytomaa, T.R. Smith
Publisher Elsevier
📄 Viewing lite version Full site ›
🌎 Shop on Amazon — choose country
⌛ 🇫🇷 France pricing being fetched… Prices will appear once fetched — usually within a few minutes.
Share:
Book Details
PublisherElsevier
ISBN / ASINB000PDYNN2
ISBN-13978B000PDYNN2
MarketplaceFrance 🇫🇷

Description

This digital document is a journal article from Journal of Hazardous Materials, published by Elsevier in 2007. The article is delivered in HTML format and is available in your Amazon.com Media Library immediately after purchase. You can view it with any web browser.

Description:
Fiberglass reinforced plastic (FRP) composite materials are often used to construct tanks, piping, scrubbers, beams, grating, and other components for use in corrosive environments. While FRP typically offers superior and cost effective corrosion resistance relative to other construction materials, the glass fibers traditionally used to provide the structural strength of the FRP can be susceptible to attack by the corrosive environment. The structural integrity of traditional FRP components in corrosive environments is usually dependent on the integrity of a corrosion-resistant barrier, such as a resin-rich layer containing corrosion resistant glass fibers. Without adequate protection, FRP components can fail under loads well below their design by an environmental stress-corrosion cracking (ESCC) mechanism when simultaneously exposed to mechanical stress and a corrosive chemical environment. Failure of these components can result in significant releases of hazardous substances into plants and the environment. In this paper, we present two case studies where fiberglass components failed due to ESCC at small chemical manufacturing facilities. As is often typical, the small chemical manufacturing facilities relied largely on FRP component suppliers to determine materials appropriate for the specific process environment and to repair damaged in-service components. We discuss the lessons learned from these incidents and precautions companies should take when interfacing with suppliers and other parties during the specification, design, construction, and repair of FRP components in order to prevent similar failures and chemical releases from occurring in the future.