Burn-through of a Novel Coal Gasification Burner

被引:0
|
作者
Neidel, A. [1 ]
Gadicke, T. [1 ]
Giller, M. [1 ]
Riesenbeck, S. [1 ]
机构
[1] Siemens AG, Power & Gas, Gasturbinenwerk Berlin, Werkslab, Huttenstra 12, D-10548 Berlin, Germany
来源
关键词
LASER;
D O I
10.3139/147.110495
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
A novel tip of a fuel gasification burner, designed-to-SLM (Selective Laser Melting) and made by SLM, was introduced by the client. This component failed prematurely by cracking at the cooled tip. The metallurgical cause of the failure was overheating due to blocked cooling passages, probably as a result of contaminated cooling water, leading to corrosion in the non-stainless piping systems upstream of the burner. Corrosion products, mainly iron oxides, spalled off said non-stainless components, causing blockages in the intricate cooling cavities of the AM-built burner tip. This lead to excessive thermal overload, reaching the melting temperature of the alloy at the burner tip. As a result, the subject burner tip failed by TMF cracking. Neither manufacturing nor design flaws were identified in the course of this failure investigation. It is speculated that the subject component will perform well if cooled properly. The root cause of the failure is the operation of the cooling water system of the subject burner that allowed loose corrosion products to form and to enter the burner tip.
引用
收藏
页码:116 / 127
页数:12
相关论文
共 50 条
  • [31] BURN-THROUGH OF THIN ALUMINUM FOILS BY LASER-DRIVEN ABLATION
    ARAD, B
    ELIEZER, S
    GAXIT, Y
    LOEBENSTEIN, HM
    ROSENBLUM, M
    ZIGLER, A
    ZMORA, H
    ZWEIGENBAUM, S
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA, 1978, 68 (04) : 544 - 544
  • [32] TIME-RESOLVED MEASUREMENTS OF THE LASER BURN-THROUGH OF THIN FOILS
    MURDOCH, JW
    KILKENNY, JD
    GRAY, DR
    TONER, WT
    PHYSICS OF FLUIDS, 1981, 24 (11) : 2107 - 2114
  • [33] Prediction model of Burn-through Point based on GA-BP
    Liu, Xiaojie
    Li, Yifan
    Li, Xin
    Li, Hongwei
    Li, Hongyang
    Chen, Shujun
    39TH YOUTH ACADEMIC ANNUAL CONFERENCE OF CHINESE ASSOCIATION OF AUTOMATION, YAC 2024, 2024, : 1293 - 1298
  • [34] Automatic detection of burn-through in GMA welding using a parametric model
    Adolfsson, S
    Ericson, K
    Grennberg, A
    MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 1996, 10 (05) : 633 - 651
  • [35] The prediction of burn-through during in-service welding of gas pipelines
    Sabapathy, PN
    Wahab, MA
    Painter, MJ
    INTERNATIONAL JOURNAL OF PRESSURE VESSELS AND PIPING, 2000, 77 (11) : 669 - 677
  • [36] METHOD OF OBSERVING AND IDENTIFYING THE PARAMETERS OF THE BURN-THROUGH OF A LAYER OF BATCH.
    Sorkina, A.E.
    Glass and Ceramics (English translation of Steklo i Keramika), 1986, 43 (7-8): : 293 - 297
  • [37] BURN-THROUGH OF THIN ALUMINUM FOILS BY LASER-DRIVEN ABLATION
    ARAD, B
    ELIEZER, S
    GAZIT, Y
    LOEBENSTEIN, HM
    ZIGLER, A
    ZMORA, H
    ZWEIGENBAUM, S
    JOURNAL OF APPLIED PHYSICS, 1979, 50 (11) : 6817 - 6821
  • [38] Predicting burn-through when welding on pressurized natural gas pipelines
    Goldak, John
    Mocanita, Mihaela
    Aldea, Victor
    Zhou, Jianguo
    Downey, Dan
    Dorling, David
    American Society of Mechanical Engineers, Pressure Vessels and Piping Division (Publication) PVP, 2000, 410 : 21 - 28
  • [39] Development of full electromagnetic plasma burn-through model and validation in MAST
    Kim, Hyun-Tae
    Casson, Francis
    Meyer, Hendrik
    Cunningham, Geof
    Scannell, Rory
    Kogan, Lucy
    Harrison, James
    Kim, Seong-Cheol
    Gwak, Jin-Woo
    Na, Yong-Su
    Lee, Jeong-Won
    Litaudon, Xavier
    Falchetto, Gloria
    NUCLEAR FUSION, 2022, 62 (12)
  • [40] Experimental study on flame characteristics of aeroengine combustor case burn-through
    Xu X.
    Chen L.
    Li S.
    Wan Y.
    Qinghua Daxue Xuebao/Journal of Tsinghua University, 2024, 64 (06): : 984 - 991