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A study on Waviness of Large Discontinuity using 3D Laser Scanner

3D Laser Scanner를 이용한 대규모 불연속면의 굴곡도 측정 연구

  • Kim, Yong (Dept. of Geotechnical Eng, DAE HAN consultants co.,LTD.) ;
  • Lee, Su-Gon (Dept. of Civil Engineering, University of Seoul) ;
  • Kim, Chee-Hwan (Dept. of civil Engineering, Woosuk University)
  • Received : 2017.01.30
  • Accepted : 2017.06.22
  • Published : 2017.06.30

Abstract

The waviness of Large Discontinuity rock is the one of important elements that judges the stability of rock slope. When the waviness of large discontinuity is measured in the field, there are many limitations Therefore this research was carried out to measure waviness of large rock discontinuities using 3D laser scanner to supplement this problem. This research established one 3D model that actual X, Y and Z coordinates through the integrated data gained from one that calculates waviness of base lock using CAD program was compared and analyzed to that of disc-clinometer. As its results, the high reliability of results could be recognized as it belongs to mechanical tolerance $1{\sim}2^{\circ}$ and the results belong to the measured values of Mean DIP and Mean are all within $1^{\circ}$. So, the investigation method of waviness of large discontinuity rock face using 3D laser scanner was verified as more prompt, effective and reliable method than conventional direct site measuring method.

대규모 불연속면의 굴곡도는 암반의 안정성을 판단하는 중요한 요소 중 하나이다. 그러나, 주로 실시하는 불연속면의 굴곡도 측정시험은 대형암반의 작은 코어를 채취하여 채취한 작은 코어의 굴곡도에 계수를 사용하여 대형 암반의 굴곡도를 환산하고 있다. 이러한 점을 보완하고자 3D Laser Scanner를 사용하여 대규모 불연속면의 굴곡도를 직접 측정하는 방안에 대해 연구를 수행하였다. 본 연구에서는 3D Laser Scanner를 이용하여 실제 X,Y,Z의 좌표를 가지는 3D 모델을 구축하였고, CAD 프로그램을 사용하여 대규모 불연속면의 굴곡도를 산정한 데이터와 현장에서 Disc-Clinometer로 측정한 Data 결과를 비교 분석 하였다. 그 결과 Mean Dip과 Mean I 측정결과 모두 $1^{\circ}$ 이내로서 측정 장비의 기계오차 $1{\sim}2^{\circ}$ 사이에 속 하기 때문에 3D Laser Scanner를 이용한 데이터 취득 및 분석은 기존의 조사법을 보완할 수 있는 효율적이고 신뢰성 있는 조사법이라고 분석되었다.

Keywords

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