Infrared thermography monitoring of rock faces-Potential and pitfalls

被引:4
|
作者
Sass, Oliver [1 ]
Bauer, Christian [2 ]
Heil, Stefanie [2 ]
Schnepfleitner, Harald [2 ]
Kropf, Flora [2 ]
Gaisberger, Christoph [2 ]
机构
[1] Univ Bayreuth, Chair Geomorphol, Univ Str 30, D-95447 Bayreuth, Germany
[2] Karl Franzens Univ Graz, Dept Geog, Heinrichstr 36, A-8010 Graz, Austria
关键词
Infrared thermography (IRT); Rock; Reflectivity; Weathering; MASS;
D O I
10.1016/j.geomorph.2023.108837
中图分类号
P9 [自然地理学];
学科分类号
0705 ; 070501 ;
摘要
Rock surface temperatures are of fundamental importance for studies on weathering, rockfall and permafrost. Point temperature measurements may not reflect the small-scale variability of temperature as a function of micro-topography. To close this gap, infrared thermography (IRT) seems to be a simple and promising approach. However, there are several pitfalls in terms of interpretation, as radiation temperatures depend on emissivity and reflectivity of the rock, which in turn are influenced by rock type, surface roughness, wetness, surrounding weather conditions, and angle to the camera axis. We performed laboratory and exemplary field experiments in order to estimate the magnitude of possible errors. We used rough and smooth (sawn) specimen of six different stone types in wet and dry condition and took IRT images at different tilt angles between camera axis and rock surface. Furthermore, we applied the approach to a small rock outcrop (approx. 3 x 3 m) and to a rockwall (approx. 100 x 100 m). The results of the laboratory measurements show that the temperature error increases with increasing tilt angle of the rock surface. Depending on the nature of the reflected surroundings, radiation temperatures can be warmer or cooler than sensor temperatures. In typical settings, the error is low (<0.5 K) up to a tilt of 40 degrees but it may increase to >1 K at tilt angles of 50 degrees and more. Smooth and wet surfaces tend to be more prone to deviations. The field examples confirm the results of the laboratory tests. But they show that spatial differences in temperature can still be detected as the "true" differences are usually larger than the magnitude of error. We suggest to reduce the error of the IRT image by correcting temperatures using a high-resolution surface model.
引用
收藏
页数:13
相关论文
共 50 条
  • [41] Thermochemical monitoring of brucite carbonation using passive infrared thermography
    Larachi, F.
    Aksenova, D.
    Yousefi, B.
    Maldague, X. P. V.
    Beaudoin, G.
    CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2018, 130 : 43 - 52
  • [42] MONITORING THE CONDITION OF VEGETABLES, FRUITS AND PLANTS USING INFRARED THERMOGRAPHY
    Dunaevsky, V
    Venher, Y.
    Liptyha, A.
    Kotovskyi, V
    Timofeyev, V
    Nazarchuk, S.
    JOURNAL OF FOOD SCIENCE AND TECHNOLOGY-UKRAINE, 2020, 14 (04): : 98 - 104
  • [43] Techniques of infrared thermography for condition monitoring of electrical power equipment
    Ezechukwu Kalu Ukiwe
    Steve A. Adeshina
    Jacob Tsado
    Journal of Electrical Systems and Information Technology, 10 (1)
  • [44] Infrared Thermography applied to transport infrastructures monitoring: outcomes and perspectives
    Dumoulin, J.
    Criniere, A.
    THERMOSENSE: THERMAL INFRARED APPLICATIONS XXXIX, 2017, 10214
  • [45] Noncontact temperature monitoring of a pelleting process using infrared thermography
    Salas-Bringas, C.
    Jeksrud, W. K.
    Lekang, O. -I.
    Schuller, R. B.
    JOURNAL OF FOOD PROCESS ENGINEERING, 2007, 30 (01) : 24 - 37
  • [46] Online Infrared Thermography as Smart Grid Monitoring for Substation Apparatus
    Panggabean, Jayandi Soriasi
    Surjana, I. Nyoman D.
    2020 10TH ELECTRICAL POWER, ELECTRONICS, COMMUNICATIONS, CONTROLS AND INFORMATICS SEMINAR (EECCIS), 2020, : 93 - 98
  • [47] Infrared thermography for monitoring surface checking of wood during drying
    Graduate School of Agricultural and Life Sciences, The University of Tokyo, 1-1-1 Yayoi, Bunkyo-ku, Tokyo, Japan
    Wood Mater. Sci. Eng., 2 (73-77):
  • [48] Сapabilities of Dynamic Infrared Thermography for Planning and Monitoring of Perforating Flaps
    Melnikov, Viktor S.
    Dubrov, Vadim E.
    Zelyanin, Alexander S.
    Babaeva, Julia V.
    Pashkovskaya, Anna A.
    Zhalyalov, Ilyas S.
    TRAVMATOLOGIYA I ORTOPEDIYA ROSSII, 2024, 30 (01): : 99 - 109
  • [49] Multi-camera infrared thermography for infant respiration monitoring
    Lorato, Ilde
    Stuijk, Sander
    Meftah, Mohammed
    Kommers, Deedee
    Andriessen, Peter
    van Pul, Carola
    de Haan, Gerard
    BIOMEDICAL OPTICS EXPRESS, 2020, 11 (09) : 4848 - 4861
  • [50] Method for online quality monitoring of AWJ cutting by infrared thermography
    Lebar, Andrej
    Junkar, Mihael
    Poredos, Alojz
    Cvjeticanin, Mladen
    CIRP JOURNAL OF MANUFACTURING SCIENCE AND TECHNOLOGY, 2010, 2 (03) : 170 - 175