Weak Magnetic Internal Signal Characteristics of Pipe Welds under Internal Pressure

被引:3
|
作者
Liu, Bin [1 ]
Fu, Yanduo [1 ]
He, Luyao [1 ]
Geng, Hao [1 ]
Yang, Lijian [1 ]
机构
[1] Shenyang Univ Technol, Sch Informat Sci & Engn, Shenyang 110870, Peoples R China
基金
中国国家自然科学基金;
关键词
pipeline weak magnetic stress; simulation analysis; energy factor; experimental test; DEFECT; STEEL;
D O I
10.3390/s23031147
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Weak magnetic detection technology is an effective method to identify stress-induced damage to ferromagnetic materials, and it especially possesses great application potential in long-distance oil and gas pipeline weld crack detection. In the process of pipeline operation, due to internal pressure and external loads, local stress concentration may be generated, and partial stress concentration may lead to local cracks and expansion of the pipe. In order to improve the accuracy of magnetic signal analysis for ferromagnetic materials under internal pressure, the causes of magnetic signal generation at pipeline welds were analyzed from a microscopic perspective. The distributions of magnetic signals at pipeline welds, weld cracks, and base metal cracks under different internal pressures were numerically analyzed. The variation trends of magnetic signal characteristics, such as peak values of axial and radial components, gradient K, maximum gradient Kmax, and gradient energy factor S(K), were analyzed. In addition, experiments were carried out to verify the numerical data. It was revealed that with the elevation of internal pressure, the peak values of the axial and radial components, gradient K, maximum gradient Kmax, and gradient energy factor S(K) linearly increased. However, the magnitude and average change of S(K) were larger, which can more directly indicate variations of magnetic signals. The radial growth rate nu(y) of S(K) was 3.24% higher than the axial growth rate nu(x), demonstrating that the radial component of the magnetic signal was more sensitive to variations of stress. This study provided a theoretical and experimental basis for detection of stress-induced damage to long-distance oil and gas pipelines.
引用
收藏
页数:27
相关论文
共 50 条
  • [41] Internal Pressure Fatigue Behavior of Pipe and Vessels.
    Spaeth, Wilhelm
    1600, (27):
  • [43] Rerounding of Deflected Buried Pipe Subjected to Internal Pressure
    Zarghamee, Mehdi S.
    Liepins, Atis A.
    PIPELINES 2016 - OUT OF SIGHT, OUT OF MIND, NOT OUT OF RISK, 2016, : 1102 - 1114
  • [44] CHARACTERISTICS OF CYLINDRICAL VESSELS UNDER INTERNAL PRESSURE AND HIGH TEMPERATURE CONDITIONS
    WELLINGE.K
    STURM, D
    BRENNSTOFF-WARME-KRAFT, 1969, 21 (08): : 395 - &
  • [45] TOROIDAL MEMBRANE UNDER INTERNAL PRESSURE
    SANDERS, JL
    LIEPINS, AA
    AIAA JOURNAL, 1963, 1 (09) : 2105 - 2110
  • [46] ANALYSIS OF SHELLS UNDER INTERNAL PRESSURE
    REUTER, RC
    JOURNAL OF COMPOSITE MATERIALS, 1972, 6 (NJAN) : 94 - &
  • [47] Mechanical Response of Steel Wire Wound Reinforced Rubber Flexible Pipe under Internal Pressure
    谷凡
    黄承逵
    周晶
    李林普
    JournalofShanghaiJiaotongUniversity(Science), 2009, 14 (06) : 747 - 756
  • [48] A SIMPLE ANALYSIS AND DESIGN METHOD OF BOLTED PIPE FLANGE CONNECTIONS WITH GASKETS UNDER INTERNAL PRESSURE
    Oyama, Yasuro
    Sawa, Toshiyuki
    Kobayashi, Takashi
    Nagata, Satoshi
    ASME PRESSURE VESSELS AND PIPING CONFERENCE - 2009, VOL 2, 2010, : 169 - 176
  • [49] Limit Analysis of Defect-free Pipe Elbow under Internal Pressure with MY Criterion
    Zhang, Shunhu
    Zhao, Dewen
    Gao, Cairu
    NUMBERS, INTELLIGENCE, MANUFACTURING TECHNOLOGY AND MACHINERY AUTOMATION, 2012, 127 : 79 - 84
  • [50] Carbon nanotubes under internal pressure
    Galanov, BA
    Galanov, SB
    Gogotsi, Y
    FRONTIERS OF MULTIFUNCTIONAL NANOSYSTEMS, 2002, 57 : 59 - 74