AASHTO/AWS D1.5:2025 · Tabela 12.6/12.7 · Fratura Crítica · H8

Pré-aquecimento M270M HPS485W — H8, Low HI, ≤ 20 mm: 125°F

Requisito de pré-aquecimento de fratura crítica para M270M HPS485W / M270 HPS70W em espessura ≤ 20 mm (3/4 in) com designação de hidrogênio H8, conforme AASHTO/AWS D1.5:2025.

Baseado na AWS D1.5:2025 — cada valor rastreado à cláusula.

Pré-aquecimento e Interpasse Mínimo de Fratura Crítica
125°F / 50°C
Hidrogênio H8 · aporte de calor 1.2–2.0 kJ/mm · espessura ≤ 20 mm (3/4 in)
AASHTO/AWS D1.5M/D1.5:2025 Tabela 12.6/12.7
Designação H8: o consumível deposita ≤ 8 mL/100g de hidrogênio difusível conforme AWS A4.3. Menor hidrogênio = menor pré-aquecimento.
Ferramenta de referência. Verificar contra a edição aplicável ao projeto e EPS aprovada pelo Engenheiro.

M270M HPS485W / M270 HPS70W

AASHTO M270M HPS485W (M270 HPS70W) is a high-performance weathering steel with 485 MPa (70 ksi) yield, used in long-span bridge girder flanges and heavily loaded members where weight reduction is critical. Produced as quenched-and-tempered plate up to 100 mm (4 in) thick. The high strength level places it in NFC Group 2 (Table 6.3) with higher minimum preheat than Group 1. FC preheat follows Tables 12.6/12.7 alongside the 345W grades but at higher temperatures reflecting the increased hardenability. Maximum interpass per Table 6.4 is 230°C (450°F) to protect the Q&T microstructure.

Entendendo o Pré-aquecimento FC para M270M HPS485W / M270 HPS70W

High-performance 485 MPa (70 ksi) weathering bridge steel. Under D1.5 fracture-critical requirements (Clause 12), the combination of H8 hydrogen designation and this heat input band requires 125°F minimum preheat at ≤ 20 mm (3/4 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.

Onde M270M HPS485W / M270 HPS70W é Usado

Used in long-span bridge main girder flanges, cable-stayed bridge edge girders, and heavily loaded interchange ramp girders where weight reduction is critical. Enables 20–30% weight savings versus Gr.345 designs, allowing shallower girder sections that reduce embankment costs. Flange thickness often exceeds 50 mm (2 in), making preheat and interpass control critical at every CJP splice. Fabricators must use dual-readout temperature monitoring to ensure joints stay within the qualified range between minimum preheat and maximum interpass.

Controle de Hidrogênio H8 para M270M HPS485W / M270 HPS70W

HPS485W (HPS70W) at H8 represents a moderate preheat specification used when H4 consumables are not available in the required wire diameter or flux combination. For SAW on long girder flange welds, H8 wire-flux combinations are more readily available than H4 alternatives.

Por que o Pré-aquecimento Importa em ≤ 20 mm (3/4 in)

Material up to 20 mm (3/4 in) covers most cross-frame angles, stiffener clips, lateral bracing members, and light bridge plate. At this thickness, hydrogen diffusion is efficient and preheat requirements are the lowest in Table 6.3 — 10°C (50°F) for both groups. In FC service, this thickness tier also carries the lowest preheat in Tables 12.4–12.7, starting at 40°C (100°F) for H4 consumables.

M270M HPS485W / M270 HPS70W em ≤ 20 mm (3/4 in)

HPS485W (HPS70W) under 20 mm is uncommon because its high-strength benefit is marginal at thin gauges where member capacity is governed by buckling rather than yield. When specified, it appears in compact tension flanges on short deep girders for interchange ramps. The Q&T microstructure makes welding procedure more sensitive to heat input than conventional grades — even at thin plate, interpass monitoring is essential.

Outros Aços de Ponte em H8 1.2–2.0 kJ/mm · ≤ 20 mm (3/4 in)

AçoTabelaPré-aquecimento
M270M Gr.250 / M270 Gr.36A125°F (50°C)
M270M Gr.345 / M270 Gr.50A125°F (50°C)
M270M Gr.345S / M270 Gr.50SA125°F (50°C)
M270M Gr.345W / M270 Gr.50WB125°F (50°C)

Experimente Diferentes Combinações

Use a Calculadora de Pré-aquecimento D1.5 para Pontes para consultar qualquer aço AASHTO M270, nível de hidrogênio e combinação de aporte de calor. Veja também a Calculadora de Pré-aquecimento D1.1 para aço estrutural.

Qual é o pré-aquecimento FC para M270M HPS485W / M270 HPS70W com H8 em ≤ 20 mm (3/4 in)?
Para fratura crítica M270M HPS485W / M270 HPS70W soldado com consumíveis designados H8 em espessura ≤ 20 mm (3/4 in) e aporte de calor 1.2–2.0 kJ/mm, o pré-aquecimento mínimo é 125°F (50°C) conforme D1.5 Tabela 12.6/12.7.
Qual é a diferença entre pré-aquecimento FC e NFC para M270M HPS485W / M270 HPS70W?
O pré-aquecimento não fratura crítica (Tabela 6.3) é uma consulta simples baseada em espessura. O de fratura crítica (Tabelas 12.4–12.8) adiciona nível de hidrogênio e aporte de calor como variáveis.
Como o aporte de calor afeta o pré-aquecimento FC de M270M HPS485W / M270 HPS70W?
Maior aporte de calor significa taxas de resfriamento mais lentas, dando mais tempo ao hidrogênio para se difundir para fora da zona de solda. Em 1.2–2.0 kJ/mm, o pré-aquecimento de 125°F equilibra o nível de hidrogênio e a taxa de resfriamento.
Is preheat needed for bridge steel under 20 mm?
Yes — D1.5 Table 6.3 requires a minimum of 10°C (50°F) even for the thinnest material in both groups. This is higher than D1.1’s Category B minimum of 0°C (32°F) at the same thickness, reflecting the more conservative approach for bridge structures where fracture consequences are severe.

Dados de referência D1.5:2025. Sem afiliação com AWS ou AASHTO.