• Project Name: Stainless Steel Duct Fabrication for BAF Recuperator Systems: Engineering Principles of SUS 304 Fabrication in the Steel Industry

Stainless Steel Duct Fabrication for BAF Recuperator Systems:

Engineering Principles of SUS 304 Fabrication in the Steel Industry

Abstract

The Batch Annealing Furnace (BAF) is a critical process unit in cold-rolled steel production, restoring the ductility and workability of steel after cold rolling. The recuperator—a heat exchanger installed in the BAF exhaust system—recovers waste heat from flue gases to preheat combustion air, significantly improving furnace energy efficiency. The ductwork connecting the recuperator must withstand high temperatures and corrosive exhaust gases, requiring fabrication from high-grade stainless steel such as SUS 304. This article examines BAF technology, recuperator systems, stainless steel fabrication principles, applicable standards, and a real-world project reference demonstrating WCE’s capabilities.


1. BAF and Recuperator Systems in Cold-Rolled Steel Production

1.1 Role of the BAF

The batch annealing furnace processes cold-rolled steel coils in batch cycles. Multiple coils are stacked on a base, covered with an inner cover and furnace hood, and then slowly heated to the target annealing temperature (approximately 600–720°C for low-carbon steel) before controlled cooling. This process restores ductility and reduces hardness in work-hardened steel [1].

1.2 Recuperator Technology

A recuperator is a heat exchanger installed in the BAF exhaust system that transfers thermal energy from hot flue gases to incoming combustion air before it reaches the burners. The system reduces fuel consumption by 10–30%, lowers exhaust gas temperatures before atmospheric discharge, improves combustion efficiency through preheated air supply, and reduces greenhouse gas emissions [2].

1.3 Ductwork and Hanger Metal

The ductwork connecting the BAF to the recuperator must withstand extreme conditions: high temperatures (flue gas temperatures may reach 400–800°C), chemical corrosion from combustion gases containing SO₂ and moisture, thermal expansion, and vibration from furnace systems and fans. Hanger metal components are the structural brackets and supports that suspend and restrain the ductwork, designed to carry the duct’s weight while accommodating thermal movement [3].

2. SUS 304 Stainless Steel Fabrication Engineering

2.1 Properties of SUS 304

SUS 304 (equivalent to AISI 304 or EN 1.4301) is an austenitic stainless steel with a nominal composition of 18% Cr and 8% Ni. Its key properties include excellent corrosion resistance across diverse environments, good high-temperature performance up to approximately 870°C for continuous service, excellent formability and weldability, non-magnetic when solution annealed, and an attractive, easily cleaned surface finish, per ASTM A240 [4].

2.2 Fabrication Considerations

Fabrication of SUS 304 components for high-temperature service requires attention to several specific factors:

  • Cutting and Forming: Plasma, laser, or waterjet cutting is preferred to avoid carbon contamination from carbon steel tooling [5].
  • Welding: GTAW (TIG) or GMAW (MIG) processes using ER308 or ER308L filler wire with argon shielding gas to prevent weld oxidation, per AWS D1.6 [6].
  • Sensitization Prevention: At service temperatures of 425–870°C, chromium carbide precipitation at grain boundaries (sensitization) can reduce corrosion resistance. Low-carbon grades (304L) mitigate this risk [7].
  • Contamination Prevention: Stainless steel work areas must be strictly separated from carbon steel. Dedicated tools prevent iron contamination that causes surface rust [5].
  • Post-Weld Cleaning: Grinding, cleaning, and passivation of weld zones to restore the protective passive oxide layer [7].

2.3 Applicable Standards

  • ASTM A240: Standard Specification for Chromium and Chromium-Nickel Stainless Steel Plate, Sheet, and Strip [4].
  • AWS D1.6: Structural Welding Code — Stainless Steel [6].
  • ASME Section IX: Welding, Brazing, and Fusing Qualifications [8].
  • ASTM A480: General Requirements for Flat-Rolled Stainless and Heat-Resisting Steel Plate, Sheet, and Strip [9].

3. Recuperator Duct Fabrication Process

The fabrication process for stainless steel recuperator ductwork involves drawing review to confirm dimensions, geometry, and material specifications; procurement of SUS 304 material with mill certificates; cutting and forming per engineering drawings; assembly and welding using qualified TIG/MIG procedures per approved WPS; weld inspection through VT and NDT; cleaning and passivation; final dimensional inspection; and packing and delivery [10].


Project Reference: Stainless Steel Duct Fabrication for BAF Recuperator

Project Details

Item Details
Project Name BAF Duct Fabrication for New Recuperator and Hanger Metal Modification
Client A major cold-rolled steel manufacturer in Thailand
Business Unit CTE — Construction Technology and Engineering
Material Stainless Steel SUS 304
Scope Fabrication of stainless steel ductwork and modification of hanger metal components, with delivery to client site
Project Duration 18 April – 25 June 2026 (approximately 68 days)
Status 100% Completed on schedule
Safety Record Zero Accident

Project Highlights

1. High-Quality SUS 304 Stainless Steel Fabrication The recuperator ductwork required fabrication from SUS 304 stainless steel to withstand high temperatures and corrosive flue gas conditions. The WCE team executed fabrication using qualified welding processes in a dedicated stainless steel work area, with strict contamination prevention protocols.

2. Hanger Metal Modification In addition to new duct fabrication, the team modified the existing hanger metal support components to accommodate the new recuperator configuration.

3. On-Schedule Delivery All fabricated components were completed and delivered to the client’s site within the planned schedule.


References

[1] Roberts, W.L. (1978). Cold Rolling of Steel. Marcel Dekker, Inc., New York.

[2] Trinks, W., Mawhinney, M.H., Shannon, R.A., Reed, R.J. & Garvey, J.R. (2004). Industrial Furnaces, 6th Edition. John Wiley & Sons, Inc.

[3] SMACNA. (2005). HVAC Duct Construction Standards — Metal and Flexible, 3rd Edition. Sheet Metal and Air Conditioning Contractors’ National Association.

[4] ASTM International. (2022). ASTM A240/A240M — Standard Specification for Chromium and Chromium-Nickel Stainless Steel Plate, Sheet, and Strip. West Conshohocken, PA.

[5] IMOA (International Molybdenum Association). (2014). Practical Guidelines for the Fabrication of Stainless Steels. London.

[6] AWS. (2019). AWS D1.6/D1.6M — Structural Welding Code — Stainless Steel. American Welding Society.

[7] ASM International. (2005). ASM Specialty Handbook: Stainless Steels. ASM International, Materials Park, OH.

[8] ASME. (2021). ASME Boiler and Pressure Vessel Code, Section IX — Welding, Brazing, and Fusing Qualifications. American Society of Mechanical Engineers.

[9] ASTM International. (2022). ASTM A480/A480M — Standard Specification for General Requirements for Flat-Rolled Stainless and Heat-Resisting Steel Plate, Sheet, and Strip. West Conshohocken, PA.

[10] Bhadeshia, H. & Honeycombe, R. (2017). Steels: Microstructure and Properties, 4th Edition. Butterworth-Heinemann, Elsevier.


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