On the Chemical Composition and Hygroscopicity of Aerosols Deposited on the Insulators of Italian Power Lines

Author:

Gini Irene1ORCID,Balzarini Alessandra2,Pirovano Guido2ORCID,Toppetti Anna Maria2,Fialdini Lucio2,Omodeo Paolo2,Pirovano Giovanni2,Marzinotto Massimo3,Mancini Alessandro14ORCID,Losi Niccolò1ORCID,Cefalì Amedeo Manuel12ORCID,Doldi Andrea1ORCID,Bolzacchini Ezio1,Ferrero Luca1ORCID

Affiliation:

1. GEMMA and POLARIS Research Centres, University of Milano-Bicocca, Piazza Della Scienza, 1, 20126 Milano, Italy

2. Ricerca sul Sistema Energetico–RSE S.p.A., Via Rubattino 54, 20134 Milano, Italy

3. Terna S.p.A., Via A. Benigni, 00156 Roma, Italy

4. Brembo S.p.A., Viale Europa 2, 24040 Stezzano, Italy

Abstract

The reliability of the national power grid is a key issue in modern society. Atmospheric aerosols are the main cause of the reduction in the performance of insulators and the increase in the possibility of flashovers, resulting in power line failures. Under high ambient humidity, the water-soluble compounds of atmospheric aerosols collected on the insulators’ surface can dissociate in ions and form a conductive layer, which may lead to flashover events. With a view to investigating the processes that drive these phenomena, the chemical composition of aerosol deposits on insulators in Italy was determined by ion chromatography analysis and thermos-optical and X-ray techniques. In addition, a synthetic aerosol with the same analyzed chemical composition was generated in a laboratory and deposited on PTFE filters and glass specimens allowing us to determine the deliquescence and crystallization relative humidity and the conductive effect in an aerosol exposure chamber. The results evidenced the presence of a hazardous inorganic ion layer, which generates a sharp phase transition of the aerosol deposit as a function of the ambient relative humidity; this layer poses a dangerous threat to the reliability of the power grid, increasing the probability of flashover events where the conductive layer facilitates the flow of electrical current across the insulator surface, potentially causing power outages or damage to the power lines.

Funder

Research Fund for the Italian Electrical System

GEMMA Center

European Union—NextGenerationEU

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

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