DETECTION AND MITIGATION OF COPPER CONTAMINATION IN MECHANIZED ONSHORE PIPELINE GIRTH WELDS

被引:0
|
作者
Lee, Kenneth [1 ]
Spielbauer, Paul [2 ]
Culbertson, David [3 ]
Huntley, Bob [4 ]
机构
[1] DNV, Dublin, OH 43017 USA
[2] Lake Super Consulting, Duluth, MN USA
[3] NDT Tech Serv, Houston, TX USA
[4] RMH Welding Consulting, Calgary, AB, Canada
关键词
weld; welding; defect detection & assessment; nondestructive examination;
D O I
暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Copper contamination in pipeline girth welds was experienced in the construction of onshore high strength steel transmission pipelines with mechanized welding using gas metal arc welding short-circuit transfer (GMAW-S) on root pass welds with copper backing, gas metal arc welding pulsed spray transfer (GMAW-P) on fill and cap pass welds, and flux cored gas-shielded arc welding (FCAW-G) on fill and cap pass welds. Copper contamination may result in copper contamination cracking, which is a type of liquid metal embrittlement (LME), or copper inclusions which have elevated hardness. Traditionally, pipeline girth welds were made using manual shielded metal arc welding (SMAW), which is generally not susceptible to copper contamination, as copper is not present in the weld zone. However, mechanized welding requires the use of copper materials in the weld zone, including the contact tip, gas nozzle, and backing bar when using the copper backup clamp (CBU) system. Copper contamination cracking in mechanized girth welds occurs in specific weld passes and weld locations, with distinct characteristics detectable by common nondestructive examination (NDE) methods, including visual testing (VT), radiographic testing (RT), and ultrasonic testing (UT). Copper contamination cracking of production welds may be effectively controlled when it is recognized and appropriate actions are taken to optimize mechanized welding procedure qualification, welding operator training and production controls, and tailor NDE methods and personnel training to improve detection.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] New guidance for fatigue design of pipeline girth welds
    Macdonald, K.A. (k.macdonald@penspen.com), 1600, Elsevier Ltd (10):
  • [22] Research on Ultrasonic Phased Array System for Automatic Defect Detection of Pipeline Girth Welds
    Zhan, Xianglin
    Li, Jian
    Jin, Shijiu
    2010 8TH WORLD CONGRESS ON INTELLIGENT CONTROL AND AUTOMATION (WCICA), 2010, : 5454 - 5459
  • [23] DETERMINATION OF ACCEPTABLE DEFECT LEVELS IN PIPELINE GIRTH WELDS
    BANKS, EE
    VINES, MJ
    JOURNAL OF THE AUSTRALASIAN INSTITUTE OF METALS, 1977, 22 (02): : 100 - 105
  • [24] EFFECT OF BLUNT FLAWS STUDIED IN PIPELINE GIRTH WELDS
    KASEN, MB
    MIKESELL, RP
    OIL & GAS JOURNAL, 1981, 79 (13) : 155 - 158
  • [25] FRACTURE-MECHANICS EVALUATION OF FLAWS IN PIPELINE GIRTH WELDS
    REED, RP
    MCHENRY, HI
    KASEN, MB
    WELDING RESEARCH COUNCIL BULLETIN, 1979, (245): : 1 - 23
  • [26] Ultrasonic study for detection of inner diameter cracking in pipeline girth welds using creeping waves
    Baby, S
    Balasubramanian, T
    Pardikar, RJ
    INTERNATIONAL JOURNAL OF PRESSURE VESSELS AND PIPING, 2003, 80 (02) : 139 - 146
  • [27] Defect intelligent detection for pipeline girth welds based on improved YOLOv5 model
    He, Dongchang
    Yuan, Jianwei
    Tang, Dayun
    Wu, Di
    Xie, Fahang
    Zhang, Peilei
    Shi, Haichuan
    Yu, Zhishui
    NONDESTRUCTIVE TESTING AND EVALUATION, 2025,
  • [28] A method for defect segmentation in digital radiographs of pipeline girth welds
    Hyatt, R
    Kechter, GE
    Nagashima, S
    MATERIALS EVALUATION, 1996, 54 (08) : 925 - 928
  • [29] Experimental study of the fracture properties of oil pipeline girth welds
    Qu, Wenqing
    Zhang, Yanhua
    Bao, Yunjie
    Zhao, Zhigang
    China Welding (English Edition), 1999, 8 (01): : 16 - 23
  • [30] EFFECT OF STRAIN AGEING ON MECHANICAL PROPERTIES OF PIPELINE GIRTH WELDS
    Narayanan, Badri K.
    Ogborn, Jon
    OMAE2011: PROCEEDINGS OF THE ASME 30TH INTERNATIONAL CONFERENCE ON OCEAN, OFFSHORE AND ARCTIC ENGINEERING, VOL 3: MATERIALS TECHNOLOGY, 2011, : 403 - 410