Simulation of Radio Frequency Inductive Testing (RFIT) for deep sub-surface defects in concrete

被引:0
|
作者
McDonald, P. G. [1 ]
Abbasi, Z. [1 ]
Cao, L. [1 ]
机构
[1] Thornton Tomasetti, New York, NY 10271 USA
关键词
COMPOSITES; DAMAGE;
D O I
10.1201/9780429279119-208
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Radio Frequency Inductive Testing (RFIT) is a new nondestructive technology that is typically used in damage detection in thin CFRP composites. The method utilizes a pair of inductive coils using low-frequency magnetic field waves to detect subsurface defects. In this paper, we investigate the proof of concept of RFITs in the structural health monitoring of the concrete structures. The study includes electromagnetic simulations of a single coil using the manufacturer specifications which correlates the physical properties of the sensors used in the experiments. The initial results showed that increased frequency results in a decreased magnetic field penetration. Additionally, two coupled coils are simulated in order to increase the detection depth. For a range of driving frequencies, the resulting magnetic field and the received voltage is examined. The results showed that the placement of a discontinuity in concrete such as steel could cause a strong coupling to the magnetic field and additionally alter the received voltage. Theoretically differing sizes and depths of defects should be detectable and distinguishable.
引用
收藏
页码:1524 / 1527
页数:4
相关论文
共 50 条
  • [1] Sub-surface radar testing of concrete: a review
    Bungey, JH
    CONSTRUCTION AND BUILDING MATERIALS, 2004, 18 (01) : 1 - 8
  • [2] Multi-scale ultrasonic imaging of sub-surface concrete defects
    Zhang, Tonghao
    Zhang, Lu
    Ozevin, Didem
    Attard, Thomas
    MEASUREMENT SCIENCE AND TECHNOLOGY, 2024, 35 (03)
  • [3] Development of Eddy Current Probe for Detection of Deep Sub-Surface Defects
    Soni, Anil Kumar
    Sasi, B.
    Thirunavukkarasu, S.
    Rao, B. Purna Chandra
    IETE TECHNICAL REVIEW, 2016, 33 (04) : 386 - 395
  • [4] A channel sounder for low-frequency sub-surface radio paths
    Gibson, D
    Darnell, M
    ADVANCED SIGNAL PROCESSING FOR COMMUNICATION SYSTEMS, 2002, 703 : 113 - 128
  • [5] Sub-surface visualization and parallel simulation
    Siemers, A
    Fritzson, D
    MULTIBODY DYNAMICS: MONITORING AND SIMULATION TECHNIQUES - III, 2004, : 91 - 98
  • [6] Deep sub-surface exploration of cometary nuclei
    Natl. Optical Astron. Observatories, 950 N. Cherry Ave, Tucson, AZ 84719, United States
    不详
    Adv. Space Res., 9 (1167-1173):
  • [7] Deep sub-surface exploration of cometary nuclei
    Belton, MJS
    A'Hearn, MF
    EXPLORATION OF SMALL BODIES IN THE SOLAR SYSTEM: I. INITIAL RESULTS AND FUTURE PROSPECTS, 1999, 24 (09): : 1167 - 1173
  • [8] Deep Sub-Surface Eddies in the Gulf of Mexico
    Ivanov, Leonid
    Ramos, Rafael
    Sharma, Neha
    Magnell, Bruce
    Minh Tran
    Storie, Jill
    Leber, Michael
    Gustafson, Drew
    OCEANS 2018 MTS/IEEE CHARLESTON, 2018,
  • [9] Optical simulation for sub-surface nano glistening
    Takahashi, Yoriko
    Kawamorita, Takushi
    Mita, Norihiro
    Hatsusaka, Natsuko
    Shibuya, Eri
    Kubo, Eri
    Sasaki, Hiroshi
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2013, 54 (15)
  • [10] Microwave sub-surface imaging of damage in concrete structures
    Kim, YJ
    Jofre, L
    De Flaviis, F
    Feng, MQ
    SMART STRUCTURES AND MATERIALS 2002: SMART SYSTEMS FOR BRIDGES, STRUCTURES, AND HIGHWAYS, 2002, 4696 : 322 - 333