Comparison of deposited surface area of airborne ultrafine particles generated from two welding processes

被引:27
|
作者
Gomes, J. F. [1 ,2 ]
Albuquerque, P. C. [3 ]
Miranda, Rosa M. [4 ]
Santos, Telmo G. [4 ]
Vieira, M. T. [5 ]
机构
[1] Inst Super Engn Lisboa, Area Dept Engn Quim, P-1959007 Lisbon, Portugal
[2] Univ Tecn Lisboa, Inst Biotecnol & Bioengn, Inst Super Tecn, P-1100 Lisbon, Portugal
[3] Escola Super Tecnol Saude Lisboa, Inst Politecn Lisboa, Lisbon, Portugal
[4] Univ Nova Lisboa, UNIDEMI, Dept Engn Mecan & Ind, Fac Ciencias & Tecnol, Caparica, Portugal
[5] Univ Coimbra, CEMUC, Dept Engn Mecan, Fac Ciencias & Tecnol, P-3030290 Coimbra, Portugal
关键词
Welding; ultrafine particles; alveolar-deposited surface area; EXPOSURE;
D O I
10.3109/08958378.2012.717648
中图分类号
R99 [毒物学(毒理学)];
学科分类号
100405 ;
摘要
This article describes work performed on the assessment of the levels of airborne ultrafine particles emitted in two welding processes metal-active gas (MAG) of carbon steel and friction-stir welding (FSW) of aluminium in terms of deposited area in alveolar tract of the lung using a nanoparticle surface area monitor analyser. The obtained results showed the dependence from process parameters on emitted ultrafine particles and clearly demonstrated the presence of ultrafine particles, when compared with background levels. The obtained results showed that the process that results on the lower levels of alveolar-deposited surface area is FSW, unlike MAG. Nevertheless, all the tested processes resulted in important doses of ultrafine particles that are to be deposited in the human lung of exposed workers.
引用
收藏
页码:774 / 781
页数:8
相关论文
共 50 条
  • [31] Behavior of ultrafine particles generated from organic vapors by corona ionizers
    Ichitsubo, H
    Alonso, M
    Ishii, M
    Endo, Y
    Kousaka, Y
    Sato, K
    PARTICLE & PARTICLE SYSTEMS CHARACTERIZATION, 1996, 13 (01) : 41 - 46
  • [32] Release of ultrafine particles from three simulated building processes
    Prashant Kumar
    Mike Mulheron
    Claudia Som
    Journal of Nanoparticle Research, 2012, 14
  • [33] Release of ultrafine particles from three simulated building processes
    Kumar, Prashant
    Mulheron, Mike
    Som, Claudia
    JOURNAL OF NANOPARTICLE RESEARCH, 2012, 14 (04)
  • [34] ELEMENTAL CONCENTRATIONS IN AIRBORNE PARTICLES FROM WELDING AND METAL SPRAYING OPERATIONS
    MALMQVIST, KG
    JOHANSSON, GI
    BOHGARD, M
    AKSELSSON, KR
    NUCLEAR INSTRUMENTS & METHODS, 1981, 181 (1-3): : 465 - 471
  • [35] Chemical composition and not only total surface area is important for the effects of ultrafine particles
    Ovrevik, J
    Schwarze, PE
    MUTATION RESEARCH-FUNDAMENTAL AND MOLECULAR MECHANISMS OF MUTAGENESIS, 2006, 594 (1-2) : 201 - 202
  • [36] Towards a model for the number of airborne particles generated from a sliding contact
    Olofsson, Ulf
    Olander, Lars
    Jansson, Anders
    WEAR, 2009, 267 (12) : 2252 - 2256
  • [37] Measurement of ultrafine particles: A comparison of two handheld condensation particle counters
    Matson, U
    Ekberg, LE
    Afshari, A
    AEROSOL SCIENCE AND TECHNOLOGY, 2004, 38 (05) : 487 - 495
  • [38] Behavioral characteristics to airborne particles generated from commercial spray products
    Kim, Taksoo
    Park, Jihoon
    Seo, Jungkwan
    Yoon, Hyojung
    Lee, Byeongwoo
    Lim, Hyunwoo
    Lee, Daeyeop
    Kim, Pilje
    Yoon, Chungsik
    Lee, Kiyoung
    Zoh, Kyung-Duk
    ENVIRONMENT INTERNATIONAL, 2020, 140
  • [39] New insights into the generation mechanism of quasicrystal by the surface reaction between ultrafine particles and deposited clusters
    Kido, O
    Kaito, C
    Saito, Y
    SURFACE REVIEW AND LETTERS, 2003, 10 (2-3) : 461 - 466
  • [40] Comparison of Three Real-Time Measurement Methods for Airborne Ultrafine Particles in the Silicon Alloy Industry
    Kero, Ida Teresia
    Jorgensen, Rikke Bramming
    INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH, 2016, 13 (09):