Measurements of geometry of a boiler drum by time-of-flight laser scanning

被引:12
|
作者
Malowany, K. [1 ,2 ]
Magda, K. [2 ]
Rutkiewicz, J. [2 ]
Malesa, M. [1 ,2 ]
Kantor, J. [3 ]
Michonski, J. [1 ]
Kujawinska, M. [1 ]
机构
[1] Warsaw Univ Technol, Inst Micromech & Photon, PL-02525 Warsaw, Poland
[2] KSM Vis Sp Zoo, PL-01142 Warsaw, Poland
[3] TAURON Wytwarzanie SA, Dept Tech Assessment & Diag, PL-40389 Katowice, Poland
关键词
Time of flight; Point clouds processing; Geometry measurements; Power engineering; Optical measurements; SYSTEM;
D O I
10.1016/j.measurement.2015.03.040
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In the paper the application of ToF laser scanner in measurements of geometrical parameters of a boiler drum used in a power plant is presented. These parameters are required during renovation works, for verification of correctness of annealing process and optimization of the process of mounting a mechanical steam-water separation. The currently used separations are tightly placed in a boiler drum, so a welding process is not required any-more. This approach saves the time of renovation works, but the geometry of a separation has to be precisely matched against the geometry of the drum to ensure the tightness of connection and, in consequence, to ensure stability of steam parameters (pressure and temperature). Renovation works may include heating processes, after which geometry should also be carefully verified as improperly performed can lead to buckling of a boiler drum. In the presented approach ToF scanner provides cloud of points, which has been subjected to a set of post-processing operations including stitching, cylinder fitting, projection 3D data onto 2D map, 2D data interpolation and filtering. As the result, the required dimensions and tolerances are obtained and are ready for further implementation. (C) 2015 Elsevier Ltd. All rights reserved.
引用
收藏
页码:88 / 95
页数:8
相关论文
共 50 条
  • [1] PROPORTIONAL CHAMBER FOR COMPENSATION GEOMETRY IN TIME-OF-FLIGHT MEASUREMENTS
    CISEK, Z
    PESHEKHONOV, VD
    RONGIN, AJ
    TURALA, M
    ZANEVSKY, JV
    NUCLEAR INSTRUMENTS & METHODS, 1971, 93 (03): : 493 - +
  • [2] Development of a time-of-flight laser scanning system for underwater applications
    Stemmler, Simon
    Werner, Christoph S.
    Reiterer, Alexander
    REMOTE SENSING OF THE OCEAN, SEA ICE, COASTAL WATERS, AND LARGE WATER REGIONS 2019, 2019, 11150
  • [3] TIME-OF-FLIGHT LASER ANEMOMETER FOR VELOCITY-MEASUREMENTS IN ATMOSPHERE
    LADING, L
    JENSEN, AS
    FOG, C
    ANDERSEN, H
    APPLIED OPTICS, 1978, 17 (10): : 1486 - 1488
  • [4] Processing of laser altimeter time-of-flight measurements to geodetic coordinates
    Xiao, Haifeng
    Stark, Alexander
    Steinbrugge, Gregor
    Hussmann, Hauke
    Oberst, Jurgen
    JOURNAL OF GEODESY, 2021, 95 (02)
  • [5] Timing discriminator for pulsed time-of-flight laser rangefinding measurements
    Kilpela, A
    Ylitalo, J
    Maatta, K
    Kostamovaara, J
    REVIEW OF SCIENTIFIC INSTRUMENTS, 1998, 69 (05): : 1978 - 1984
  • [6] Processing of laser altimeter time-of-flight measurements to geodetic coordinates
    Haifeng Xiao
    Alexander Stark
    Gregor Steinbrügge
    Hauke Hussmann
    Jürgen Oberst
    Journal of Geodesy, 2021, 95
  • [7] Electron time-of-flight measurements
    Aschwanden, MJ
    MAGNETODYNAMIC PHENOMENA IN THE SOLAR ATMOSPHERE: PROTOTYPES OF STELLAR MAGNETIC ACTIVITY, 1996, : 209 - 210
  • [8] Mobile robot localization: Integrating measurements from a time-of-flight laser
    Larsson, U
    Forsberg, J
    Wernersson, A
    IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 1996, 43 (03) : 422 - 431
  • [9] Time-of-flight measurements of ejected particles during dry laser cleaning
    Grojo, D.
    Cros, A.
    Delaporte, P.
    Sentis, M.
    APPLIED PHYSICS B-LASERS AND OPTICS, 2006, 84 (03): : 517 - 521
  • [10] Time-of-flight measurements of ejected particles during dry laser cleaning
    D. Grojo
    A. Cros
    P. Delaporte
    M. Sentis
    Applied Physics B, 2006, 84 : 517 - 521