HCBBS Forum (English)
Submit Chemical Projects / Find Solutions
Amplify Your Requirements on a Broader Chemical Platform *Engineering · Technology · Equipment · Solutions*
Submit Request

Solve common problems in austenitic stainless steel welding at once

2023-08-05View Original

Thread Content

Welding characteristics of austenitic stainless steel: Elastic and plastic stresses and strain levels are very high during welding, yet cold cracks occur very rarely. The welded joint lacks quenched and hardened zones as well as grain coarsening, hence the tensile strength of the weld is high. Main issues in welding austenitic stainless steel: significant welding deformation ; Due to its grain boundary properties and sensitivity to certain trace impurities (S, P), it is prone to thermal cracking. 5 Major Welding Problems of Austenitic Stainless Steel and Their Solutions 01 Formation of chromium carbide, which reduces the intergranular corrosion resistance of the welded joint. Intergranular corrosion: According to the chromium-depletion theory, when the welds and heat-affected zones are heated to the sensitization temperature range of 450–850°C, chromium carbide precipitates at the grain boundaries, resulting in chromium-depleted boundaries that are not strong enough to resist corrosion. (1) To mitigate intergranular corrosion in welds and corrosion in the sensitization temperature range of the base material, the following measures can be taken: a. Reduce the carbon content in both the base material and the weld; add stabilizing elements such as Ti and Nb to the base material to promote the formation of MC phases, thereby preventing the formation of Cr23C6. b. To form a dual-phase structure in the weld consisting of austenite with a small amount of ferrite. When a certain amount of ferrite is present in the weld, it can refine the grains and increase their area, thereby reducing the amount of chromium carbide precipitated per unit area of the grain boundaries. Chromium has a high solubility in ferrite; Cr23C6 preferentially forms in ferrite, thereby preventing the austenite grain boundaries from becoming chromium-deficient ; The ferrite dispersed among the austenite prevents corrosion from spreading inward along the grain boundaries. c. Control the residence time within the sensitization temperature range. Adjust the welding heat cycle to minimize the residence time at 600–1000°C; choose a welding method with high energy density (such as plasma TIG welding), use a lower welding wire energy, pass argon gas behind the weld seam or use copper pads to increase the cooling rate of the weld joint. Reduce the number of start-up and shutdown cycles to avoid repeated heating, and when performing multi-layer welding, apply welding to the surfaces in contact with corrosive agents as late as possible. d. After welding, carry out solution treatment or stabilization annealing (at 850–900°C), followed by air cooling, in order to promote the complete precipitation of carbides and accelerate the diffusion of chromium. (2) Knife-edge corrosion of welded joints; to prevent this, the following measures can be taken: Due to their strong diffusion capacity, carbon tends to accumulate at the grain boundaries during cooling, resulting in a supersaturated state, while Ti and Nb remain within the grains because of their low diffusion capacity. When the welded joint is reheated within the sensitization temperature range, supersaturated carbon will precipitate intergranularly in the form of Cr23C6. a. Reduce carbon content. For stainless steels containing stabilizing elements, the carbon content should not exceed 0.06%. b. Adopt a reasonable welding process. Choose a lower welding wire energy to reduce the residence time of the overheated area at high temperatures, and be careful to avoid the occurrence of \"intermediate-temperature sensitization\" during welding. During double-sided welding, the welds that come into contact with corrosive media should be welded last (which is why the inner weld of large-diameter thick-walled welded pipes is performed after the outer weld); if this cannot be done, the welding parameters and weld geometry should be adjusted to minimize any further sensitizing heating of the areas that come into contact with corrosive media. c. Post-weld heat treatment. Solution treatment or stabilization treatment is carried out after welding. 02 Stress corrosion cracking: The following measures can be taken to prevent stress corrosion cracking: a. Proper selection of materials and reasonable adjustment of weld composition. High-purity chromium-nickel austenitic stainless steels, high-silicon chromium-nickel austenitic stainless steels, ferritic-austenitic stainless steels, and high-chromium ferritic stainless steels exhibit good resistance to stress corrosion; weld metals with an austenitic-ferritic duplex structure also show good stress corrosion resistance. b. Eliminate or reduce residual stress. Post-weld stress relief heat treatment is performed, and mechanical methods such as polishing, shot peening, and peening are used to reduce residual surface stresses. c. Reasonable structural design. To avoid significant stress concentration. 03 Welding thermal cracks (weld crystallization cracks, liquidation cracks in the heat-affected zone). The sensitivity to thermal cracks depends primarily on the chemical composition, microstructure, and properties of the material. Ni readily forms low-melting-point compounds or eutectics with impurities such as S and P, and the segregation of elements like boron and silicon promotes the formation of thermal cracks. The welds tend to develop a coarse columnar grain structure with a strong directional pattern, which facilitates the segregation of harmful impurities and elements. This facilitates the formation of a continuous intergranular liquid film, increasing susceptibility to thermal cracking. If the heating during welding is uneven, relatively large tensile stresses are likely to form, promoting the occurrence of welding hot cracks. Preventive measures: a. Strictly control the content of harmful impurities S and P. b. Adjust the microstructure of the weld metal. Welds with a biphase structure possess excellent crack resistance. The δ phase in the weld helps to refine the grain structure, eliminates the directional nature of single-phase austenite, reduces the segregation of harmful impurities at the grain boundaries, and is capable of dissolving larger amounts of S and P. It also lowers the interfacial energy, thereby preventing the formation of liquid films between the grains. c. Adjust the alloy composition of the weld metal. By appropriately increasing the contents of Mn, C, and N in single-phase austenitic steel, and adding small amounts of trace elements such as cerium, hafnium, and tantalum (which can refine the weld microstructure and purify the grain boundaries), the sensitivity to thermal cracking can be reduced. d. Process measures. Minimize the molten pool overheating to prevent the formation of large columnar crystals, by using a low wire energy and a narrow weld bead cross-section. For example, austenitic steels of type 25-20 are prone to liquefaction cracking. This can be achieved by strictly controlling the impurity content and grain size of the base material, using welding methods with high energy density, reducing the wire energy input, and increasing the cooling rate of the joint. 04 Embrittlement of welded joints: Heat-resistant steels should ensure the plasticity of their welded joints to prevent embrittlement at high temperatures ; Steel for low-temperature applications requires good low-temperature toughness to prevent brittle fracture of welded joints at low temperatures. 05 Significant welding deformation occurs due to the low thermal conductivity and high expansion coefficient; therefore, fixtures can be used to prevent deformation. Welding methods and selection of welding materials for austenitic stainless steel: Austenitic stainless steel can be welded using methods such as Tungsten Inert Gas Welding (TIG), Metal Inert Gas Welding (MIG), Plasma Arc Welding (PAW), and Submerged Arc Welding (SAW). Austenitic stainless steel requires a lower welding current due to its low melting point, low thermal conductivity, and high electrical resistivity. Narrow welds and narrow bead patterns should be used to reduce the time spent at high temperatures, prevent the formation of carbides, minimize weld shrinkage stresses, and lower susceptibility to thermal cracking. The composition of the welding material, especially the alloying elements Cr and Ni, must be higher than that of the base metal. Welding materials containing a small amount (4–12%) of ferrite are used to ensure good crack resistance of the welds (cold cracking, hot cracking, stress corrosion cracking). When the presence of a ferrite phase is not allowed or impossible in the weld, welding materials containing alloying elements such as Mo and Mn should be used. C, S, P, Si, and Nb in the welding materials should be as low as possible; Nb can cause solidification cracks in pure austenitic welds, but a small amount of ferrite in the weld can effectively prevent this. For welded structures that require stabilization or stress-relief treatment after welding, welding materials containing Nb are usually selected. Submerged arc welding is used for welding medium-thickness plates, and the loss of Cr and Ni can be compensated for by the supply of alloying elements from the flux and wire ; Due to the large penetration depth, care must be taken to prevent the formation of hot cracks in the central area of the weld and to avoid a decrease in the corrosion resistance of the heat-affected zone. Care should be taken to select a finer welding wire and a lower welding wire energy; the wire should have low levels of Si, S, and P. The ferrite content in the welds of heat-resistant stainless steel shall not exceed 5%. For austenitic stainless steels with Cr and Ni contents exceeding 20%, weld wires with high Mn content (6–8%) should be used, and alkaline or neutral fluxes should be chosen to prevent the addition of Si to the weld seam, thereby improving its crack resistance. The flux designed for austenitic stainless steel contains very little Si; it can supply alloying elements to the weld zone, compensating for the loss of these elements due to welding, thereby meeting the requirements regarding the properties and chemical composition of the weld.
Reply #22023-08-05
Common problems in the welding of austenitic stainless steel include the formation of chromium carbides, stress corrosion cracking, hot cracking during welding, embrittlement of the weld joint, and significant welding deformation. To address these issues, some measures can be taken. 1. Formation of chromium carbide: – Control the carbon content during welding, and add stabilizing elements such as titanium and niobium to favor the formation of MC, thereby preventing the formation of Cr23C6. - The weld is made to have a duplex structure of austenite with a small amount of ferrite, and the ferrite prevents corrosion from spreading along the grain boundaries. - Control the residence time within the sensitization temperature range. 2. Stress corrosion cracking: – Select materials with good resistance to stress corrosion and adjust the composition of the welds appropriately. - Eliminate or reduce residual stresses by performing post-weld stress-relief heat treatment. - Perform a reasonable structural design to avoid stress concentration. 3. Welding hot cracks: - Strictly control the content of harmful impurities. - Adjust the microstructure of the weld metal by using a dual-phase weld structure. - Adjust the alloy composition of the weld metal by adding appropriate elements. - Appropriate process measures should be adopted to reduce molten pool overheating, as well as using low wire energy and narrow weld beads. 4. Embrittlement of welded joints: – For heat-resistant steels, it is necessary to maintain the plasticity of the welded joints in order to prevent embrittlement at high temperatures. - Steel for low-temperature applications requires good low-temperature toughness to prevent brittle fracture of welded joints at low temperatures. 5. Significant welding deformation: - Use fixtures to prevent deformation. - Use narrow welds and narrow bead patterns to reduce the time spent at high temperatures, prevent the formation of carbides, and minimize weld shrinkage stress. - Pay attention to selecting appropriate welding materials and welding methods, and control the welding current and thermal cycle parameters. .

Submit a Project

**Looking for Chemical Technology, Equipment & Solutions?** No Registration Required Broader Platform Exposure | Global Chemical Service Provider Connections

Submit Request — Free Consultation

Disclaimer

This is an automated machine translation of the original thread. Some technical terms may have inaccuracies; the original text shall prevail. Click "View Original" at the top right to access the source page, which supports IP-based automatic real-time language translation. Please watch out for contact details and sales inducements to prevent fraud. All content and translations are for reference only, representing solely the poster's personal views. For enquiries, email service@hcbbs.com.