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AISI 316L vs AISI 904L: Acid Resistance, PREN & Chemical Processing Applications | Hangbo Alloy

Detailed comparison of AISI 316L (022Cr17Ni12Mo2) and super-austenitic AISI 904L (015Cr21Ni26Mo5Cu2): sulfuric acid resistance, phosphoric acid resistance, PREN values, chloride pitting, weldability, cost analysis, and recommendations for chemical and oil & gas industries.

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Overview

AISI 904L (UNS N08904) is a super-austenitic stainless steel with significantly higher nickel, molybdenum, and copper content compared to standard AISI 316L (UNS S31603). This enhanced alloy composition provides superior resistance to reducing acids like sulfuric and phosphoric acid, making 904L the go-to material for demanding chemical processing environments. While 316L offers excellent general corrosion resistance at an economical price point, 904L extends the performance envelope into concentrated acid service where 316L would fail rapidly.

Chemical Composition Comparison

ElementAISI 316LAISI 904L
Carbon (C)≤ 0.03%≤ 0.02%
Chromium (Cr)16.0–18.0%19.0–23.0%
Nickel (Ni)10.0–14.0%23.0–28.0%
Molybdenum (Mo)2.0–3.0%4.0–5.0%
Copper (Cu)1.0–2.0%
Manganese (Mn)≤ 2.0%≤ 2.0%

PREN and Chloride Resistance

The PREN (Pitting Resistance Equivalent Number) dramatically illustrates the gap between these grades:

  • AISI 316L: PREN ≈ 22–25 (Cr~17, Mo~2.5)
  • AISI 904L: PREN ≈ 34–37 (Cr~20, Mo~4.5)

With a PREN well above 32, AISI 904L offers exceptional resistance to pitting and crevice corrosion in chloride-containing media, significantly outperforming 316L in seawater, brine, and chemical process streams with halide contamination.

Sulfuric Acid Resistance

AISI 904L demonstrates markedly superior performance in sulfuric acid (H₂SO₄) across a broad concentration range:

  • 0–5% H₂SO₄: Both grades perform adequately at ambient temperatures
  • 5–50% H₂SO₄: 904L shows corrosion rate < 0.1 mm/year, while 316L exceeds 0.5 mm/year at elevated temperatures
  • 50–80% H₂SO₄: 904L maintains acceptable rates at moderate temperatures; 316L is unsuitable

The copper addition (1–2%) in 904L is critical for improving resistance to sulfuric acid by promoting cathodic reaction polarization and enhancing passive film stability in reducing acid environments.

Phosphoric Acid & Chemical Processing

In phosphoric acid (H₃PO₄) production — including wet-process acid containing fluorides and chlorides — 904L provides reliable long-term service in heat exchangers, reactors, and storage tanks. 316L may suffer accelerated corrosion in wet-process phosphoric acid with fluoride contamination. For the chemical industry, 904L is widely specified for:

  • Acid coolers and condensers
  • Pickling tank heaters
  • Gas scrubber internals
  • Piping for mixed acid streams

International Standards

Standard316L904L
UNSS31603N08904
EN/DIN1.4404 (X2CrNiMo17-12-2)1.4539 (X1NiCrMoCu25-20-5)
GB (China)022Cr17Ni12Mo2015Cr21Ni26Mo5Cu2
GOST (Russia)03Cr17Ni14Mo306CrNi28MDT

Cost Analysis

AISI 904L is typically 2–3 times more expensive than 316L per kilogram, driven by its high nickel (23–28%) and molybdenum (4–5%) content plus copper addition. However, the total lifecycle cost analysis often favors 904L in acid service:

  • Service life of 904L can be 5–10 times longer in aggressive acid environments
  • Reduced downtime and replacement costs
  • Thinner wall designs possible due to lower corrosion allowance requirements

Selection Guide

  • General chemical processing, moderate chlorides? → 316L (cost-effective)
  • Sulfuric acid service, any concentration? → 904L
  • Wet-process phosphoric acid with fluorides? → 904L
  • Seawater or high-chloride brines? → 904L (PREN > 32)
  • Budget-limited, short service cycles? → Evaluate 316L with inspection program