Review of high thickness welding analysis using SYSWELD for a fusion grade reactor

Vacuum vessel and Cryostat for a fusion grade machine are massive structures involving fabrication of chambers with high thickness, about thickness up to 60mm or more, made of special grade steels. Such machines require accurate planning of welding as the distortions and tolerance levels are stringe...

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Veröffentlicht in:Fusion engineering and design 2013-10, Vol.88 (9-10), p.2581-2584
Hauptverfasser: Prakash, Ravi, Gangradey, Ranjana
Format: Artikel
Sprache:eng
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Zusammenfassung:Vacuum vessel and Cryostat for a fusion grade machine are massive structures involving fabrication of chambers with high thickness, about thickness up to 60mm or more, made of special grade steels. Such machines require accurate planning of welding as the distortions and tolerance levels are stringent. Vacuum vessel of ITER has “D” shaped profile and is toroidal double walled huge steel cage of about 6m width and 19m diameter, and the Cryostat of 30m height and width. The huge vacuum chamber will be fabricated in various parts/sectors due to huge size and then welded with countless weld joints to give the final components. High thickness welding of vacuum vessel is considered to be one of the most important elements in building a reactor of fusion grade due to large ineluctable distortions of welded parts after welding process as it is not easy to correct the large deformations after the welding process and finally the corrections are very expensive. The present paper demonstrates results of welding simulation done using SYSWELD software. Simulation results are of review studies of identified welding process like MIG, MAG, NG-TIG, TIG and EBW for welding large structural D shaped vacuum vessel profile as a case study. Simulation has carried out for SS316LN in clamped as well as unclamped condition for a distortion tolerance of ±2mm with various weld factors and the local–global approach.
ISSN:0920-3796
1873-7196
DOI:10.1016/j.fusengdes.2013.05.096