Characterization of particle exposure during tunnel excavation by tunnel boring machines

被引:0
|
作者
Ervik, Torunn K. [1 ]
Leite, Mimmi [1 ]
Weinbruch, Stephan [1 ,2 ]
Nordby, Karl-Christian [1 ]
Ellingsen, Dag G. [1 ]
Ulvestad, Bente [1 ]
Dahl, Kari [1 ]
Berlinger, Balazs [1 ,3 ]
Skaugset, Nils Petter [1 ]
机构
[1] Natl Inst Occupat Hlth, POB 5330, N-0304 Oslo, Norway
[2] Tech Univ Darmstadt, Inst Appl Geosci, Schnittspahnstr 9, D-64287 Darmstadt, Germany
[3] Univ Vet Med, Dept Anim Hyg, Herd Hlth & Mobile Clin, Istvan U 2, H-1078 Budapest, Hungary
关键词
Tunnel excavation; TBM; quartz; particulate matter; impactor; CRYSTALLINE SILICA CONTENT; SIZE DISTRIBUTION; DUST; QUARTZ; MICROSCOPY;
D O I
10.1093/annweh/wxae041
中图分类号
R1 [预防医学、卫生学];
学科分类号
1004 ; 120402 ;
摘要
Tunnel boring machines (TBMs) are used to excavate tunnels in a manner where the rock is constantly penetrated with rotating cutter heads. Fine particles of the rock minerals are thereby generated. Workers on and in the vicinity of the TBM are exposed to particulate matter (PM) consisting of bedrock minerals including alpha-quartz. Exposure to respirable alpha-quartz remains a concern because of the respiratory diseases associated with this exposure. The particle size distribution of PM and alpha-quartz is of special importance because of its influence on adverse health effects, monitoring and control strategies as well as accurate quantification of alpha-quartz concentrations. The major aim of our study was therefore to investigate the particle size distribution of airborne PM and alpha-quartz generated during tunnel excavation using TBMs in an area dominated by gneiss, a metamorphic type of rock. Sioutas cascade impactors were used to collect personal samples on 3 separate days. The impactor fractionates the dust in 5 size fractions, from 10 mu m down to below 0.25 mu m. The filters were weighted, and the alpha-quartz concentrations were quantified using X-ray diffraction (XRD) analysis and the NIOSH 7500 method on the 5 size fractions. Other minerals were determined using Rietveld refinement XRD analysis. The size and elemental composition of individual particles were investigated by scanning electron microscopy. The majority of PM mass was collected on the first 3 stages (aerodynamic diameter = 10 to 0.5 mu m) of the Sioutas cascade impactor. No observable differences were found for the size distribution of the collected PM and alpha-quartz for the 3 sampling days nor the various work tasks. However, the alpha-quartz proportion varied for the 3 sampling days demonstrating a dependence on geology. The collected alpha-quartz consisted of more particles with sizes below 1 mu m than the calibration material, which most likely affected the accuracy of the measured respirable alpha-quartz concentrations. This potential systematic error is important to keep in mind when analyzing alpha-quartz from occupational samples. Knowledge of the particle size distribution is also important for control measures, which should target particle sizes that efficiently capture the respirable alpha-quartz concentration.
引用
收藏
页码:713 / 724
页数:12
相关论文
共 50 条
  • [21] Compressed air work with tunnel boring machines
    Herrenknecht, E. h. Martin
    Baeppler, K.
    UNDERGROUND SPACE - THE 4TH DIMENSION OF METROPOLISES, VOLS 1-3, 2007, : 1175 - 1181
  • [22] Tunnel boring machines (TBMs) in difficult grounds
    Gong, Qiuming
    Liu, Quansheng
    Zhang, Qianbing
    TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY, 2016, 57 : 1 - 3
  • [23] Autonomous steering control for tunnel boring machines
    Zheng, Zhe
    Luo, Kaidi
    Tan, Xianzhong
    Jia, Lianhui
    Xie, Mingrui
    Xie, Haibo
    Jiang, Lijie
    Gong, Guofang
    Yang, Huayong
    Han, Dong
    AUTOMATION IN CONSTRUCTION, 2024, 159
  • [24] The use of open tunnel boring machines in squeezing rock in the gotthard base tunnel
    Gollegger, Johannes
    Priller, Anton
    Rausch, Meike
    Geomechanik und Tunnelbau, 2009, 2 (05): : 591 - 600
  • [25] Survey of the design of back anchors for tunnel boring machines (TBM), used in the excavation of metro tunnels in Sofia
    Partov, D.
    Ivanov, R.
    Petkov, M.
    STEEL STRUCTURES AND BRIDGES 2012 - 23RD CZECH AND SLOVAK INTERNATIONAL CONFERENCE, 2012, 40 : 351 - 356
  • [26] Dynamic Analysis of the Propulsion Process of Tunnel Boring Machines
    Liao, Xiangping
    Zhao, Ying
    Kang, Shaopeng
    Liu, Kailei
    Zhu, Xinyang
    Sun, Langxin
    MANUFACTURING TECHNOLOGY, 2024, 24 (03): : 410 - 419
  • [27] Record advances of tunnel boring machines: The Quito Metro
    Manuel, Jiménez
    Juan Pablo, Alonso
    Javier, Descarga
    Felipe, Mendaña
    Revista de Obras Publicas, 2017, 164 (3590): : 126 - 130
  • [28] Challenges and opportunities of using tunnel boring machines in mining
    Zheng, Y. L.
    Zhang, Q. B.
    Zhao, J.
    TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY, 2016, 57 : 287 - 299
  • [29] Performance of tunnel boring machines in basalts of the Lesotho Formation
    Boniface, A
    CHALLENGES FOR THE 21ST CENTURY, VOL. 2: COMMUNICATION TUNNELS/MISCELLANEOUS INCLUDING WATER TUNNELS/MECHANISED TUNNELLING, 1999, : 823 - 828
  • [30] Application of tunnel boring machines in underground mine development
    Cigla, M
    Yagiz, S
    Ozdemir, L
    PROCEEDINGS OF THE SEVENTEENTH INTERNATIONAL MINING CONGRESS AND EXHIBITION OF TURKEY, 2001, : 155 - 164