Advances in Nanoparticles

Volume 2, Issue 1 (February 2013)

ISSN Print: 2169-0510   ISSN Online: 2169-0529

Google-based Impact Factor: 2.25  Citations  

Investigation of the Release of Particles from a Nanocoated Product

HTML  XML Download Download as PDF (Size: 589KB)  PP. 39-44  
DOI: 10.4236/anp.2013.21008    4,852 Downloads   8,331 Views  Citations

ABSTRACT

Manufactured products are being coated with nanoparticles in order to functionalize them with antibacterial or self-cleaning properties or to improve their durability etc. As the (eco-) toxicological effects of the nanoparticles are not well known yet, their use could lead to new potential risks for the workers, the consumers and the environment. This study focuses on the release of the nanoparticles during the operations related to the handling and processing of an automotive part. The part is made up of a metallic alloy and, in order to reduce friction, the part is nano-coated with inorganic fullerenes. The mechanical stresses appearing during these operations are reproduced in a nano-secured facility. The release of nanoparticles is found to be increasing with the wear energy applied on the surface.

Share and Cite:

Le Bihan, O. , Shandilya, N. , Gheerardyn, L. , Guillon, O. , Dore, E. and Morgeneyer, M. (2013) Investigation of the Release of Particles from a Nanocoated Product. Advances in Nanoparticles, 2, 39-44. doi: 10.4236/anp.2013.21008.

Cited by

[1] EMISSION D'AEROSOLS A PARTIR DE MATERIAUX SOUMIS A DES CONTRAINTES MÉCANIQUES: MODELISATION PRELIMINAIRE
[2] Behavior of engineered nanoparticles in aquatic environmental samples: Current status and challenges
2021
[3] Quantifying Mechanical Abrasion of MWCNT Nanocomposites used in 3D Printing: Influence of CNT content on abrasion products and rate of microplastic production
Environmental …, 2021
[4] Recent Progress in the Abatement of Hazardous Pollutants Using Photocatalytic TiO2-Based Building Materials
2020
[5] Safety of nanomaterials along their lifecycle: Release, exposure, and human hazards
2019
[6] Interaction of zero valent copper nanoparticles with algal cells under simulated natural conditions: Particle dissolution kinetics, uptake and heteroaggregation
2019
[7] Nano-object release during machining of polymer-based nanocomposites depends on process factors and the type of nanofiller
Annals of Work Exposures and Health, 2017
[8] The need for a life-cycle based aging paradigm for nanomaterials: importance of real-world test systems to identify realistic particle transformations
Nanotechnology, 2017
[9] Quantitative material releases from products and articles containing manufactured nanomaterials: Towards a release library
NanoImpact, 2017
[10] Conductive plastics: comparing alternative nanotechnologies by performance and life cycle release probability
Journal of Nanoparticle Research, 2017
[11] Emissions and Possible Environmental Implication of Engineered Nanomaterials (ENMs) in the Atmosphere
Atmosphere, 2017
[12] The Effect of Time on the Stability of Iron Oxide Nanoparticles in Environmental Acids
Water Environment Research, 2017
[13] A critical review of engineered nanomaterial release data: Are current data useful for material flow modeling?
Environmental Pollution, 2016
[14] Meeting the needs for aged and released nanomaterials required for further testing–the SUN approach
Environmental science & technology, 2016
[15] Experimental Protocol to Investigate Particle Aerosolization of a Product Under Abrasion and Under Environmental Weathering
2016
[16] Meeting the Needs for Released Nanomaterials Required for Further Testing—The SUN Approach
Environmental Science and Technology, 2016
[17] The adequacy of the current United States legislation to manage the environmental, health & safety of nanomaterials in coating products
2015
[18] Stability of Nanoparticle Agglomerates under Mechanical Stress and its Effects on their Release into the Air
2015
[19] Release of nanomaterials from solid nanocomposites and consumer exposure assessment–A forward-looking review
Nanotoxicology, 2015
[20] Human exposure to carbon-based fibrous nanomaterials: A review
International journal of hygiene and environmental health, 2015
[21] Use of a modified Taber abrasion apparatus for investigating the complete stress state during abrasion and in-process wear particle aerosol generation
Chemical Engineering Research and Design, 2015
[22] Emission of Titanium Dioxide Nanoparticles from Building Materials to the Environment by Wear and Weather
Environmental science & technology, 2015
[23] Thèse présentée pour l'obtention du grade de Docteur de l'UTC
Thesis, 2015
[24] Study of the (nano) particles emission during mechanical solicitation and environmental weathering of the products
Thesis, 2015
[25] First development to model aerosol emission from solid surfaces subjected to mechanical stresses: I. Development and results
Journal of Aerosol Science, 2015
[26] Measuring Nanomaterial Release from Carbon Nanotube Composites: Review of the State of the Science
Journal of Physics: Conference Series, 2015
[27] Evaluation of the Particle Aerosolization from n-TiO
2014
[28] Effect of the Normal Load on the Release of Aerosol Wear Particles During Abrasion
Tribology Letters, 2014
[29] A Review on the Study of the Generation of (Nano) particles Aerosols during the Mechanical Solicitation of Materials
Journal of Nanomaterials, 2014
[30] Experimental study of the aerosolization from a carbon nanotube bulk by a vortex shaker
Journal of Nanomaterials, 2014
[31] Evaluation of the particle aerosolization from n-TiO 2 photocatalytic nanocoatings under abrasion
Journal of Nanomaterials, 2014
[32] "TRAVAUX PRENORMATIFS SUR LA CARACTERISATION DES NANOPARTICULES DANS L’AIR: INTERCOMPARAISON DE TECHNIQUES DE MESURE ON-LINE ET OFF-LINE"
2014
[33] Evaluation of the particle aerosolization from n-TiO2 photocatalytic nanocoatings under abrasion
2014

Copyright © 2024 by authors and Scientific Research Publishing Inc.

Creative Commons License

This work and the related PDF file are licensed under a Creative Commons Attribution 4.0 International License.