Hybrid friction diffusion bonding of 316L stainless steel tube-to-tube sheet joints for coil-wound heat exchangers

被引:7
|
作者
Haneklaus, Nils [1 ]
Cionea, Cristian [1 ]
Reuven, Rony [1 ,2 ]
Frazer, David [1 ]
Hosemann, Peter [1 ]
Peterson, Per F. [1 ]
机构
[1] Univ Calif Berkeley, Dept Nucl Engn, 4118 Etcheverry Hall,MC 1730, Berkeley, CA 94720 USA
[2] NRCN, POB 9001, Beer Sheva, Israel
关键词
316L stainless steel; Coil-wound heat exchanger; Hybrid friction diffusion bonding; Tube-to-tube sheet joints; SALT; CORROSION; ALUMINUM; REACTOR; FLIBE; TOOLS;
D O I
10.1007/s12206-016-0832-z
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Hybrid friction diffusion bonding (HFDB) is a solid-state bonding process first introduced by Helmholtz-Zentrum Geesthacht to join aluminum tube-to-tube sheet joints of Coil-wound heat exchangers (CWHE). This study describes how HFDB was successfully used to manufacture 316L test samples simulating tube-to-tube sheet joints of stainless steel CWHE for molten salt coolants as foreseen in several advanced nuclear- and thermal solar power plants. Engineering parameters of the test sample fabrication are presented and results from subsequent non-destructive vacuum decay leak testing and destructive tensile pull-out testing are discussed. The bonded areas of successfully fabricated samples as characterized by tube rupture during pull-out tensile testing, were further investigated using optical microscopy and scanning electron microscopy including electron backscatter diffraction.
引用
收藏
页码:4925 / 4930
页数:6
相关论文
共 50 条
  • [11] Root cause analysis for 316L stainless steel tube leakages
    Kaewkumsai, S.
    Auampan, S.
    Wongpinkaew, K.
    Viyanit, E.
    [J]. ENGINEERING FAILURE ANALYSIS, 2014, 37 : 53 - 63
  • [12] FRETTING CORROSION BEHAVIOR OF 316L STAINLESS STEEL HEAT EXCHANGER TUBE IN NACL SOLUTION
    Ma, Xu
    Zhang, Shengzan
    Tan, Wei
    Zhu, Guorui
    [J]. PROCEEDINGS OF ASME 2022 PRESSURE VESSELS AND PIPING CONFERENCE, PVP2022, VOL 4B, 2022,
  • [13] Study of Diffusion Bonding Parameters of AISI 316L Stainless Steel
    Volponi Mortean, Marcus Vinicius
    Mateus, Luisa Bastos
    Rosinski, Gregori
    Mantelli, Marcia Barbosa Henriques
    [J]. SOLDAGEM & INSPECAO, 2019, 24
  • [14] Diffusion Bonding of Austenitic Stainless Steel 316L to a Magnesium Alloy
    Elthalabawy, W.
    Khan, T. I.
    [J]. ADVANCED MATERIALS XI, 2010, 442 : 26 - 33
  • [15] Failure analysis: Role of surface finish in fatigue failure of type 316L stainless steel coil tube
    Elshawesh, F.
    Mahfud, H.
    Abdurrahim, A.
    Elhaddad, F.
    [J]. MATERIALS PERFORMANCE, 2008, 47 (08) : 70 - 73
  • [16] Electrochemical polishing of 316L stainless steel slotted tube coronary stents
    Hui Zhao
    Jan Van Humbeeck
    Jürgen Sohier
    Ivan De Scheerder
    [J]. Journal of Materials Science: Materials in Medicine, 2002, 13 : 911 - 916
  • [17] Electrochemical polishing of 316L stainless steel slotted tube coronary stents
    Zhao, H
    Van Humbeeck, J
    Sohier, J
    De Scheerder, I
    [J]. JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2002, 13 (10) : 911 - 916
  • [18] EVALUATION OF ELECTROPOLISHING CHARACTERISTICS OF 316L STAINLESS STEEL TUBE IN CONTAMINATED ELECTROLYTE
    Jung, Woo-chul
    Yang, Hyunseok
    Choi, Seon-jin
    Kong, Man-sik
    [J]. ARCHIVES OF METALLURGY AND MATERIALS, 2024, 69 (01) : 123 - 127
  • [19] Failure analysis of 316L stainless steel bellows serving in steam tube
    Peng, Yi
    Xue, Song
    Yang, Tao
    Liu, XueDong
    Ren, Yi
    [J]. INTERNATIONAL JOURNAL OF PRESSURE VESSELS AND PIPING, 2022, 199
  • [20] SURFACE STUDIES OF SEMICONDUCTOR PROCESS PIPE AND TUBE: 316L STAINLESS STEEL.
    Anewalt, Margaret K.
    Drummer, David M.
    de Pinillos, J.V.Martinez
    [J]. Microcontamination, 1985, 3 (04): : 52 - 59