| 304 / 304L | Austenitic; typically about 18% chromium and 8% nickel. 304L has a lower maximum carbon content (0.03%). | Good resistance in many indoor, atmospheric, food-processing, and mildly corrosive environments. | Limited in warm or concentrated chloride environments; susceptible to pitting and crevice corrosion in chlorides. | Food and beverage equipment, architectural tubing, general-purpose process lines, and water service with low chloride levels. | 304L is often preferred for welded sections to reduce sensitization risk in the heat-affected zone. Pickling or passivation may be appropriate after fabrication. |
| 316 / 316L | Austenitic; typically about 16–18% chromium, 10–14% nickel, and 2–3% molybdenum. 316L has a lower maximum carbon content (0.03%). | Generally better than 304 in many chemical and marine-atmosphere exposures, though performance depends on concentration, temperature, and exposure conditions. | Molybdenum improves resistance to chloride-induced pitting and crevice corrosion compared with 304; it is not immune to chloride attack or stress-corrosion cracking. | Chemical and pharmaceutical equipment, coastal installations, and process lines handling moderately corrosive media. | 316L is commonly chosen for welded pipe. Confirm suitability against actual chloride level, temperature, pH, and cleaning chemicals. |
| 321 | Austenitic; similar to 304, with titanium added for stabilization. | Broadly similar to 304 in many aqueous environments; stabilization helps reduce sensitization risk after exposure to certain elevated-temperature conditions. | Similar to 304; not a preferred upgrade for chloride pitting resistance. | Welded equipment and piping exposed to elevated temperatures, including some exhaust and thermal-process applications. | Consider when stabilization is needed for the temperature and fabrication conditions. Check the applicable design code and service-temperature limits. |
| 310S | Heat-resistant austenitic grade; typically about 24–26% chromium and 19–22% nickel, with low carbon. | Designed for strong resistance to oxidation and scaling at elevated temperatures; this does not make it the best choice for every aqueous corrosive environment. | Not specifically optimized for chloride pitting; assess separately for wet chloride service. | Furnace components, heat-treatment equipment, and high-temperature process lines. | Select primarily for high-temperature oxidation and scaling requirements. Verify strength and corrosion performance at the actual operating temperature. |
| 2205 (Duplex) | Duplex; typically about 22% chromium, 5% nickel, and 3% molybdenum, with nitrogen additions. | Often offers higher strength and better resistance to several forms of localized corrosion than common 300-series grades, subject to correct fabrication and service conditions. | Typically has better resistance to chloride pitting, crevice corrosion, and chloride stress-corrosion cracking than 304 or 316L; limits still apply. | Seawater-related equipment, chemical processing, desalination systems, and pressure piping where higher strength or chloride resistance is needed. | Welding procedure and heat input control are important to maintain the desired duplex microstructure and properties. Use qualified procedures and suitable filler metal. |
| 430 | Ferritic; typically about 16–18% chromium and little or no nickel. | Useful atmospheric and mild-corrosion resistance, but generally less corrosion resistant than 304 in many demanding environments. | Limited resistance to chloride pitting; unsuitable for many severe chloride exposures. | Decorative tubing, appliance components, and selected indoor or mildly corrosive applications. | Can be considered where cost, magnetic behavior, and mild service conditions fit. Welding procedure and section thickness can affect properties. |