New Tools for the Evaluation of Asbestos-Related Risk during Excavation in an NOA-Rich Geological Setting

Author:

Turci Francesco1,Avataneo Chiara2,Botta Serena2,Marcelli Igor2,Barale Luca3,Tomatis Maura1,Cossio Roberto4,Tallone Sergio3,Piana Fabrizio3,Compagnoni Roberto4

Affiliation:

1. Department of Chemistry and “G. Scansetti” Interdepartmental Center for Studies on Asbestos and Other Toxic Particulates, University of Torino, Via Pietro Giuria, 7, 10125 Torino, Italy

2. Geological Risk Analysis Gi-RES Srl, Via Gottardo 223, 10154 Torino, Italy

3. National Research Council of Italy, Institute of Geosciences and Earth Resources, Via Valperga Caluso, 35, 10125 Torino, Italy

4. Department of Earth Sciences and “G. Scansetti” Interdepartmental Center for Studies on Asbestos and Other Toxic Particulates, University of Torino, Via Valperga Caluso, 35, 10125 Torino, Italy

Abstract

ABSTRACT The presence of naturally occurring asbestos (NOA) in many areas worldwide requires an enhanced geological risk evaluation to ensure workplace safety from asbestos during large construction projects. Due to the complexity of the geological risk definition, health and safety regulations for working with asbestos-bearing materials are often not enforceable in NOA settings. Therefore, to correctly estimate the risk of NOA in these scenarios, new procedures are urgently needed to provide (1) a detailed geological model representative of the possible presence of the asbestos, (2) representative sampling, and (3) a reliable quantitative determination of asbestos content in rocks. This work aims to discuss the improvements on the two latter points specifically developed during the design of the “Gronda di Genova” project, a 50-km-long tunnel bypass partially designed in the NOA-bearing meta-ophiolites of the Ligurian Alps and ophiolites of the northern Apennines in Italy. Implementation of Gy's theory on sampling was used to maintain statistical validity during sample processing from the primary sample to the analytical sample and is here described. The scanning electron microscopy/energy dispersive spectroscopy procedure for the quantification of NOA was improved with an error analysis delivering the minimum number of fibers to be measured to achieve the best analytical results.

Publisher

GeoScienceWorld

Subject

Earth and Planetary Sciences (miscellaneous),Geotechnical Engineering and Engineering Geology,Environmental Engineering

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