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Establishment of Ultrasonic Measurement Method for Stone Cultural Heritage Considering Water Content and Anisotropy

함수율과 이방성을 고려한 석조문화유산의 초음파 측정방법 설정

  • Jo, Young Hoon (Department of Cultural Heritage Conservation Sciences, Kongju National University) ;
  • Lee, Chan Hee (Department of Cultural Heritage Conservation Sciences, Kongju National University)
  • 조영훈 (공주대학교 문화재보존과학과) ;
  • 이찬희 (공주대학교 문화재보존과학과)
  • Received : 2014.10.13
  • Accepted : 2014.11.14
  • Published : 2014.12.20

Abstract

This study was focused on measurement methods for stone cultural heritages by analyzing Ultrasonic (P-wave) velocity variations according to the water content and anisotropy of rocks. As a result of analyzing of rock properties, the water content and saturation degree were rapidly changed at the beginning of drying and then showed exponential curve which their rates of change gradually decreased. However, P-wave velocity and its rate of change maintained constant values after natural drying of 10 hours. Therefore, the ultrasonic measurement for stone cultural heritages should be performed after natural drying of 10 hours considering the weather and moisture conditions. In addition, the highest values of anisotropy coefficient exhibited in granite and limestone, and indirect method was insensitive to anisotropy compared to direct method. However, all rocks remained anisotropy by indirect method. Accordingly, ultrasonic measurement considering various directions is required. The research results will contribute to customized non-destructive testing and precise diagnosis for lithological characteristics of stone cultural heritage.

이 연구에서는 암석의 함수율과 이방성에 따른 초음파속도 변화를 분석하여 석조문화유산에 적합한 측정방법을 설정하였다. 암석의 함수율과 포화도는 건조 초기에 급격한 변화를 보이다가 변화율이 서서히 줄어드는 지수함수 형태를 나타냈다. 그러나 초음파속도 및 변화율은 10시간의 자연건조 이후 거의 일정한 수치를 유지하였다. 따라서 수분에 포화된 석조문화유산은 기상환경 및 함수조건을 고려하여 약 10시간의 자연건조 후에 초음파 측정을 수행해야 한다. 이방성지수는 화강암과 석회암에서 가장 높은 수치를 보였으며, 간접전달방법이 직접전달방법에 비해 이방성에 둔감한 측정법으로 나타났다. 그러나 간접전달방법에 의한 이방성은 모든 암석에 미약하게나마 존재하므로 다양한 방향성을 고려한 초음파 측정이 요구된다. 이 연구결과는 석조문화유산의 암석학적 특성에 적합한 맞춤형 비파괴진단과 신뢰도 높은 정밀 평가에 크게 기여할 것으로 사료된다.

Keywords

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