TECHNICAL PAPERS
May 1, 2008

Biodeterioration of Construction Materials: State of the Art and Future Challenges

Publication: Journal of Materials in Civil Engineering
Volume 20, Issue 5

Abstract

Deterioration plays an important part in the life cycle of infrastructure systems. Among all causes of deterioration (aging, chloride ingress, etc.) the action of live organisms has shown to be critical in, for example, underground structures, sewage systems, and at-sea structures. This phenomenon is usually overlooked, in part, because in most cases live organisms accelerate other processes that may eventually lead to unacceptable structural performance or cause failure (e.g., corrosion, cracking). By the direct or indirect action, it has been estimated that biodeterioration-related structural problems cost billions of dollars a year in infrastructure maintenance and repair. The paper shows that for all major civil engineering materials, in the long term and under the appropriate environmental conditions, biodeterioration may severely affect infrastructure components and their ability to perform as designed. This is particularly relevant given the large amount of existing infrastructure that has been exposed to aggressive environments for long periods of time. This paper presents an overview of the activity of live organisms on three widely used construction materials: wood, concrete, and metals. A description of the main organisms that affect each material and the associated biodeterioration mechanisms are described. In addition, this paper discusses the uncertainties associated with modeling biodeterioration and outlines the main areas for further research.

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Published In

Go to Journal of Materials in Civil Engineering
Journal of Materials in Civil Engineering
Volume 20Issue 5May 2008
Pages: 352 - 365

History

Received: Sep 7, 2006
Accepted: Jul 18, 2007
Published online: May 1, 2008
Published in print: May 2008

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Notes

Note. Associate Editor: Hilary I. Inyang

Authors

Affiliations

M. Sanchez-Silva, A.M.ASCE
Visiting Scholar, Zachry Dept. of Civil Engineering, Texas A&M Univ., College Station, TX 77843-3136. E-mail: [email protected]; Associate Professor, Dept. of Civil and Environmental Engineering, Univ. de Los Andes, Carrera 1, No. 19A-40 Edificio Mario Laserna, Piso 6, Bogotá, Colombia. E-mail: [email protected]
David V. Rosowsky, M.ASCE
P.E.
Department Head and A.P. and Florence Wiley Chair Professor, Zachry Dept. of Civil Engineering, Texas A&M Univ., 3136 TAMU, College Station, TX 77843-3136 (corresponding author). E-mail: [email protected]

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