Vorwärmung M270M HPS345W — H4, Low HI, > 60 mm: 350°F
Bruchkritische Vorwärmanforderung für M270M HPS345W / M270 HPS50W bei > 60 mm (> 2½ in) Dicke mit Wasserstoffbezeichnung H4, gemäß AASHTO/AWS D1.5:2025, dem Brückenschweißcode.
Basierend auf AWS D1.5:2025 — jeder Wert bis zur Klausel zurückverfolgt.
M270M HPS345W / M270 HPS50W
AASHTO M270M HPS345W (M270 HPS50W) is a high-performance weathering bridge steel with enhanced weldability through controlled chemistry — 0.11% max carbon, 0.006% max sulfur with calcium treatment for inclusion shape control. Developed under FHWA-funded research to eliminate the lamellar tearing and inconsistent toughness problems of earlier weathering steel bridge designs. The lower carbon equivalent compared to conventional Gr.345W reduces cracking sensitivity at flange splices. NFC preheat per Table 6.3 Group 1; FC per Tables 12.6/12.7.
Die FC-Vorwärmung für M270M HPS345W / M270 HPS50W Verstehen
High-performance weathering 345 MPa steel with enhanced weldability. Under D1.5 fracture-critical requirements (Clause 12), the combination of H4 hydrogen designation and this heat input band requires 350°F minimum preheat at > 60 mm (> 2½ in). Lower hydrogen levels (H4 < H8 < H16) allow lower preheat because less hydrogen enters the weld deposit. Similarly, higher heat input reduces preheat requirements because slower cooling rates give hydrogen more time to diffuse out.
Wo M270M HPS345W / M270 HPS50W Eingesetzt Wird
Preferred over conventional Gr.345W for new unpainted bridge construction. The HPS designation indicates FHWA-developed chemistry with 0.11% max carbon and controlled sulfur for enhanced weldability and lamellar tearing resistance. Flange splice CJP welds benefit from the lower carbon equivalent, reducing reject rates during cold-weather bridge fabrication. Material cost premium over standard Gr.345W is typically 15–25% per ton but eliminates weldability-related rework.
Wasserstoffkontrolle H4 für M270M HPS345W / M270 HPS50W
HPS345W (HPS50W) already has inherently low carbon equivalent due to HPS chemistry control. Combined with H4 consumables, the preheat requirement drops to the lowest tier in Tables 12.6/12.7 — frequently 20–30°F lower than conventional 345W, compounding the weldability advantage of HPS chemistry with optimized hydrogen control.
Warum Vorwärmung bei > 60 mm (> 2½ in) Wichtig ist
Material over 65 mm (2-1/2 in) includes the heaviest bridge girder flanges and box-section walls. Table 6.3 requires 110°C (225°F) for both groups at this thickness. Extended preheat soak time is necessary to achieve uniform through-thickness temperature. FC preheat for the heaviest sections reaches 180–200°C (350–400°F) at the H16 hydrogen level.
M270M HPS345W / M270 HPS50W bei > 60 mm (> 2½ in)
HPS345W (HPS50W) above 65 mm is the preferred material for heavy unpainted bridge flanges replacing conventional 345W. The sulfur control (0.006% max) and calcium treatment ensure clean steel with minimal through-thickness anisotropy. At this thickness, the weldability advantage is most pronounced — conventional 345W at 65+ mm required expensive preheat and post-weld hydrogen bake-out procedures that HPS chemistry largely eliminates.
H4-Zertifizierte Zusatzwerkstoffe für FC-Brückenschweißen
Die Zusatzbezeichnung H4 zertifiziert, dass der Zusatzwerkstoff höchstens 4 mL diffusiblen Wasserstoff pro 100g abgeschiedenes Schweißgut abgibt. Für bruchkritischen M270M HPS345W / M270 HPS50W bei > 60 mm (> 2½ in) Dicke mit 1.2–2.0 kJ/mm Wärmeeinbringung erreichen H4-Zusatzwerkstoffe die niedrigste Vorwärmung von 350°F (180°C) in den FC-Tabellen.
Andere Brückenstähle bei H4 1.2–2.0 kJ/mm · > 60 mm (> 2½ in)
| Stahl | Tabelle | Vorwärmung |
|---|---|---|
| M270M Gr.250 / M270 Gr.36 | A | 300°F (150°C) |
| M270M Gr.345 / M270 Gr.50 | A | 300°F (150°C) |
| M270M Gr.345S / M270 Gr.50S | A | 300°F (150°C) |
| M270M Gr.345W / M270 Gr.50W | B | 350°F (180°C) |
M270M HPS345W / M270 HPS50W bei H4 1.2–2.0 kJ/mm
Verschiedene Kombinationen Ausprobieren
Verwenden Sie den D1.5 Brücken-Vorwärmrechner für jeden AASHTO M270 Stahl, Wasserstoffniveau und Wärmeeinbringungskombination. Siehe auch den D1.1 Vorwärmrechner für Baustahl.
Verwandte Leitfäden
D1.5:2025 Referenzdaten. Nicht mit AWS oder AASHTO verbunden.