A710 Gr.AのGMAW用予熱 — over 2-1/2"
A710 Gr.AをGMAWで板厚over 2-1/2"で溶接する場合の最低予熱およびパス間温度。AWS D1.1:2025 表5.11に基づく。
AWS D1.1:2025 表5.11に基づく — すべての値は条項に追跡可能。
低水素SMAW、SAW、GMAW、またはFCAWプロセス(高強度鋼)
GMAW (Gas Metal Arc Welding)
GMAW (MIG) feeds continuous solid wire with shielding gas — an inherently low-hydrogen process assigned to Category B in Table 5.11.
On high-strength plate, GMAW wire selection must meet the specified minimum tensile to satisfy weld metal matching. ER80S-D2 or ER100S-G wires serve higher-strength steels. The inherently low hydrogen input of solid wire makes GMAW particularly well-suited for crack-sensitive TMCP grades where minimizing diffusible hydrogen is the primary fabrication objective.
A710 Gr.A
ASTM A710 Grade A is a precipitation-hardened low-carbon steel plate achieving high strength through copper precipitation rather than carbon content. Class 2 (65 ksi yield, age-hardened at mill) and Class 3 (75 ksi yield, precipitation-hardened after fabrication) both feature very low carbon (0.07% max) producing a CE-IIW of approximately 0.32-0.38 — among the lowest of any high-strength steel. Table 5.11 assigns Category C for standard low-hydrogen processes and the reduced Category D preheat (32°F all thicknesses) with H8-certified consumables, reflecting the exceptional hydrogen cracking resistance of this ultra-low-carbon metallurgy. The precipitation hardening mechanism means weld thermal cycles can alter the strength in the HAZ depending on peak temperature and cooling rate, requiring attention to heat input control during procedure qualification.
A710 Gr.AとGMAWでこの予熱が必要な理由
Precipitation-hardened low-carbon plate with multiple category paths. The higher strength level of this steel places it in Category C of Table 5.11, which carries elevated preheat requirements compared to Category B grades. At 300°F minimum with GMAW, the preheat ensures the cooling rate stays slow enough to prevent hydrogen-induced cracking in this higher-hardenability material. Category C steels demand careful attention to interpass temperature control throughout the weld sequence.
A710 Gr.Aの代表的な適用例
Found in naval hull plates, military vehicle armor brackets, offshore platform node connections, heavy-lift crane boom sections, and mine hoist drum shells. A710 Gr.A precipitation-hardened plate offers a rare combination of high strength and exceptional weldability at low carbon equivalent (CE-IIW approximately 0.32-0.38). The multiple thickness-dependent category paths (B, C, and D with H8) reflect its complex metallurgical response to different section sizes. Class 2 plate is age-hardened at the mill through a controlled thermal cycle, while Class 3 achieves higher strength through precipitation hardening after welding, which makes it particularly suitable for applications where extensive welding occurs before final strengthening. The distinction between Class 2 and Class 3 response to weld thermal cycles requires careful attention during procedure qualification. Plate thicknesses up to 6" are available but procurement requires extended lead times due to limited production volume.
over 2-1/2"で予熱が重要な理由
The heaviest sections demand the highest preheat in Table 5.11. Multi-pass sequences require maintaining interpass temperature throughout.
A710 Gr.AのカテゴリーC予熱
表5.11のカテゴリーCは、焼入性と残留応力の組み合わせにより高い予熱が必要な高強度鋼に適用されます。over 2-1/2"のA710 Gr.Aにおいて、300°Fの最低予熱は溶接冷却速度を遅くし、熱影響部での割れ感受性マルテンサイトの生成を防ぎます。拘束された継手の多パス溶接では、パス間温度をこの最低値以上に維持することが特に重要です。
GMAWとover 2-1/2"における他の鋼材
A710 Gr.AとGMAW
A710 Gr.A溶接ガイド
D1.1:2025参考データ。AWSとの提携なし。