| General water, air, and low-corrosive utility piping | Potable water, treated water, compressed air, inert gas | Normally ambient to moderately elevated temperatures; confirm thermal expansion where temperature changes are frequent. | Low chloride exposure and limited chemical contamination | 304L for general corrosion resistance; 316L where chlorides or mild chemical exposure are present | ASTM A312 or EN 10217-7, depending on project requirements | Continuous longitudinal weld; pickled and passivated surfaces are commonly specified after fabrication. | Check water chemistry, chloride content, sanitary requirements, nominal diameter, wall thickness, and joining method. |
| Food, beverage, and hygienic process lines | Water, milk-based liquids, oils, syrups, cleaned-in-place solutions | Ambient service with repeated hot-water, steam, or cleaning cycles | Organic acids, cleaning chemicals, moisture, and frequent wet-dry cycles | 304L for less aggressive service; 316L for higher chloride or chemical exposure | ASTM A270 for sanitary tubing applications; ASTM A312 or EN 10217-7 for process piping where applicable | Internal weld bead control, low-roughness finish, full drainage, orbital or high-quality TIG welding, and passivation are commonly required. | Specify internal surface roughness, hygienic fittings, dead-leg prevention, cleanability, drainability, and weld inspection. |
| Seawater and coastal cooling systems | Seawater, brackish water, seawater cooling water | Temperature, flow velocity, oxygen content, and stagnant zones strongly affect service life. | High chlorides, deposits, crevices, and possible pitting or crevice corrosion | 316L may be suitable for limited conditions; higher-alloy stainless steels or non-stainless alloys may be required for severe seawater exposure. | Project-specific piping specification; ASTM A312 or ASTM A358 may be considered where applicable | Use high-quality welds with careful heat control; remove heat tint and passivate surfaces after welding. | Evaluate chloride concentration, velocity, oxygenation, biofouling, crevice design, galvanic coupling, and corrosion allowance. |
| Moderate-temperature chemical processing | Dilute acids, alkaline solutions, solvents, and process chemicals | Temperature increases can significantly accelerate corrosion; consider start-up, shutdown, and cleaning conditions. | Chemical concentration, pH, chlorides, oxidizing agents, and contaminants determine suitability. | 316L is often considered for improved molybdenum-enhanced pitting resistance; the exact chemical compatibility must be confirmed. | ASTM A312, ASTM A358, or EN 10217-7 according to pressure, diameter, and project specification | Control weld heat input, minimize sensitization risk, remove weld discoloration, and specify suitable non-destructive examination. | Obtain corrosion data for the exact chemical, concentration, temperature, flow condition, and exposure time before approval. |
| High-temperature process and exhaust service | Hot air, combustion products, process gases, and heated fluids | Continuous and cyclic high-temperature exposure; thermal fatigue and oxidation must be considered. | Oxidizing gases, carburizing conditions, sulfur compounds, or condensates may affect alloy selection. | 321 or 347 may be selected for improved resistance to intergranular corrosion after exposure to elevated temperatures; service-specific verification is required. | ASTM A312 or ASTM A358, subject to design code and fabrication requirements | Use qualified welding procedures, control distortion, and consider post-weld cleaning and heat-treatment requirements. | Check design temperature, thermal cycling, oxidation, creep considerations, expansion loads, insulation, and support spacing. |
| Steam and pressurized hot-water systems | Steam, condensate, boiler feedwater, hot process water | Temperature and pressure may vary significantly during start-up and shutdown. | Dissolved oxygen, chlorides, scaling, erosion, and condensate chemistry | 304L or 316L may be considered depending on water chemistry and design temperature. | ASTM A312 or another pressure-piping standard required by the applicable code | Weld quality, dimensional control, radiographic or ultrasonic examination, and hydrostatic or alternative pressure testing may be specified. | Calculate wall thickness using the governing code; verify allowable stress, pressure-temperature rating, supports, and thermal expansion. |
| Architectural, structural, and exposed outdoor service | Rainwater, humid air, atmospheric exposure, decorative or structural applications | Ambient temperature with possible solar heating and freeze-thaw cycles | Urban pollutants, coastal salt spray, moisture retention, and crevice contamination | 304 for many inland environments; 316 is commonly considered for coastal or chloride-containing atmospheres. | ASTM A554 for ornamental or mechanical tubing; ASTM A312 where pressure service applies | Specify visible weld appearance, grinding or polishing level, pickling, passivation, and protection against embedded iron contamination. | Assess atmospheric severity, drainage, crevices, finish, cleaning frequency, dimensional tolerance, and load requirements. |
| Underground or buried process piping | Water, wastewater, chemicals, and industrial process fluids | Soil temperature, seasonal variation, and freeze protection may be relevant. | Soil chlorides, sulfates, moisture, stray currents, and external corrosion | 304L or 316L may be considered only after soil and fluid conditions are evaluated. | ASTM A312, ASTM A358, or the applicable regional pressure-piping standard | Use qualified field welding procedures, external protection where required, and inspection of coating or wrapping systems. | Evaluate soil resistivity, drainage, cathodic protection, external coating, accessibility, settlement, and leak detection. |