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Welding technology for stainless steel pressure vessels

2023-04-28View Original

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I. Stainless steels for pressure vessels and their welding characteristics. Stainless steel refers to steel to which a certain amount of chromium is added, thereby putting it in a passivated state and endowing it with rust-resistant properties. To achieve this, its chromium content must be over 12%. To improve the passivation property of steel, elements such as nickel and molybdenum, which can passivate the steel, are often added to stainless steel as well. The term stainless steel generally refers to the combined category of stainless steel and acid-resistant steel. Stainless steel is not necessarily acid-resistant; however, acid-resistant steel generally exhibits good corrosion resistance. Stainless steels can be divided into four categories based on their microstructure: austenitic stainless steels, ferritic stainless steels, martensitic stainless steels, and austenitico-ferritic duplex stainless steels. 1. Austenitic stainless steels and their welding characteristics. Austenitic stainless steels are the most widely used type of stainless steel, with the high Cr-Ni variants being the most common. Currently, austenitic stainless steels can be roughly divided into the Cr18-Ni8 type, the Cr25-Ni20 type, and the Cr25-Ni35 type. Austenitic stainless steels have the following welding characteristics: ① Welding thermal cracks. Due to their low thermal conductivity and high linear expansion coefficient, austenitic stainless steels experience a long period of high temperature at the weld joint during welding. This leads to the formation of coarse columnar crystal structures in the weld. If impurity elements such as sulfur, phosphorus, tin, antimony, and niobium are present in high amounts, low-melting-point eutectics can form between the crystals. When the weld joint is subjected to high tensile stresses, solidification cracks can occur in the weld, while liquefaction cracks can form in the heat-affected zone; all of these are considered welding thermal cracks. The most effective way to prevent thermal cracking is to reduce the impurity elements in steel and welding materials that tend to form low-melting eutectics, and to include 4% to 12% ferritic structure in chromium-nickel austenitic stainless steels. ② Intergranular corrosion: According to the chromium-depletion theory, the precipitation of chromium carbide at the grain boundaries leads to chromium depletion in those areas, which is the main cause of intergranular corrosion. To this end, selecting ultra-low carbon welding materials or welding materials containing stabilizing elements such as niobium and titanium is the main measure to prevent intergranular corrosion. ③ Stress corrosion cracking usually manifests as brittle failure, and the failure process occurs in a short time, making it highly hazardous. The main cause of stress corrosion cracking in austenitic stainless steels is welding residual stress. Changes in the microstructure of the welded joint or the presence of stress concentration, as well as the concentration of local corrosion agents, are also factors that contribute to stress corrosion cracking. ④ Sigma-phase embrittlement of welded joints: The sigma phase is a brittle and hard intermetallic compound that primarily precipitates at the grain boundaries of columnar crystals. Both the γ phase and the δ phase can undergo a σ phase transformation. For example, when Cr25Ni20-type welds are heated at 800°C to 900°C, a strong γ→δ transformation occurs. In chromium-nickel-type austenitic stainless steels, especially those of the chromium-nickel-molybdenum type, a δ→σ phase transformation tends to occur. This is mainly due to the significant σ-forming effect of chromium and molybdenum elements; when the content of δ-ferrite in the weld exceeds 12%, the δ→σ transformation becomes quite pronounced, resulting in significant embrittlement of the weld metal. This is why, in the lining layers of hot-wall hydrogen reactors, the content of δ-ferrite is kept between 3% and 10%. 2. Ferritic stainless steels and their welding characteristics Ferritic stainless steels are divided into two main categories: ordinary ferritic stainless steels and ultra-pure ferritic stainless steels. The ordinary ferritic stainless steels include the Cr12 – Cr14 series, such as 00Cr12 and 0Cr13Al ; Cr16 ~ Cr18 types, such as 1Cr17Mo ; Type Cr25 ~ 30. Due to the high levels of carbon and nitrogen in conventional ferritic stainless steels, they are difficult to process and weld, and their corrosion resistance is hard to ensure, which limits their use. In ultra-pure ferritic stainless steels, the total amounts of carbon and nitrogen in the steel are strictly controlled, typically within the ranges of 0.035%–0.045%, 0.030%, and 0.010%–0.015%. Additionally, necessary alloying elements are incorporated to further improve the steel’s corrosion resistance and overall performance. Compared with ordinary ferritic stainless steels, ultra-pure high-chromium ferritic stainless steels exhibit excellent resistance to uniform corrosion, pitting, and stress corrosion, and are widely used in petrochemical equipment. Ferritic stainless steels have the following welding characteristics: ① Under the effects of high welding temperatures, the grains in the heat-affected zone, especially in the area near the weld seam, grow rapidly when the heating temperature exceeds 1000°C. Even if rapid cooling is carried out after welding, it is not possible to avoid a sharp decline in toughness resulting from the enlargement of these grains, as well as an increased tendency to intergranular corrosion. ② Ferritic steel inherently has a high chromium content, as well as higher levels of harmful elements such as carbon, nitrogen, and oxygen. It has a high brittle transition temperature and is relatively sensitive to notches. Therefore, the post-welding embrittlement phenomenon is relatively severe. ③ During prolonged heating and slow cooling at 400°C to 600°C, embrittlement occurs at 475°C, resulting in a significant decrease in toughness at room temperature. After prolonged heating at 550°C to 820°C, the σ phase readily precipitates from ferrite, which also significantly reduces its plasticity and toughness. 3. Martensitic stainless steels and their welding characteristics Martensitic stainless steels can be divided into Cr13-type martensitic stainless steels, low-carbon martensitic stainless steels, and supermartensitic stainless steels. Type Cr13 possesses ordinary corrosion resistance. Being a martensitic stainless steel based on Cr12, the addition of alloying elements such as nickel, molybdenum, tungsten, and vanadium endows it with not only certain corrosion resistance but also high strength at high temperatures as well as resistance to high-temperature oxidation. Welding characteristics of martensitic stainless steels: Cr13-type martensitic stainless steels exhibit a high tendency to harden in their welds and heat-affected zones; under air cooling, the welded joints develop hard and brittle martensite. Welding cold cracks can easily occur due to welding restraint stresses and diffused hydrogen. When the cooling rate is low, coarse ferrite and intergranular precipitated carbides form in the near-suture zone and weld metal, significantly reducing the plasticity and toughness of the joint. After cooling, the weld zones and heat-affected zones of low-carbon and super martensitic stainless steels are indeed completely transformed into low-carbon martensite; however, there is no significant hardening phenomenon, and they exhibit good weldability. II. Selection of stainless steel welding materials for pressure vessels 1. Selection of austenitic stainless steel welding materials The principle for selecting austenitic stainless steel welding materials is to ensure, without the formation of cracks, that the corrosion resistance and mechanical properties of the weld metal are roughly equivalent to those of the base material, or even higher; generally, it is required that their alloy composition be similar to that of the base material. For corrosion-resistant austenitic stainless steels, it is generally desirable to have a certain amount of ferrite present; this ensures both good crack resistance and excellent corrosion resistance. However, in certain special media, such as the weld metal of urea plants, the presence of ferrite is not allowed, as it would otherwise reduce its corrosion resistance. For heat-resistant austenitic steels, consideration should be given to controlling the ferrite content in the weld metal. For austenitic steel weldments that are operated at high temperatures for extended periods, the ferrite content in the weld metal should not exceed 5%. Readers can estimate the corresponding ferrite content based on the Schaeffler diagram, using the chromium equivalent and nickel equivalent in the weld metal. 2. Selection of ferritic stainless steel welding materials. There are basically three types of ferritic stainless steel welding materials: 1) Welding materials whose composition is roughly matched to that of the base material ; 2) Austenitic welding materials ; 3) Nickel-based alloy welding materials are rarely used due to their high cost. For ferritic stainless steel welding, materials comparable to the base metal can be used; however, under conditions of high restraint, cracks are likely to occur. Post-weld heat treatment can be employed to restore corrosion resistance and improve the plasticity of the weld joint. The use of austenitic welding materials eliminates the need for preheating and post-weld heat treatment; however, sensitization in the heat-affected zone remains a problem for various steels that lack stabilizing elements. Chromium-nickel austenitic welding materials of types 309 and 310 are commonly used. For Cr17 steel, Type 308 welding consumables can also be used; welding consumables with a high alloy content help to improve the plasticity of the weld joint. Austenitic or austenitic-ferritic weld metals are generally comparable in strength to ferritic base metals; however, in certain corrosive environments, the corrosion resistance of the weld may differ significantly from that of the base metal. This is a point that must be taken into account when selecting welding materials. 3. Selection of welding materials for martensitic stainless steel: Among stainless steels, martensitic stainless steel can have its properties adjusted through heat treatment. Therefore, to meet the requirements regarding performance, especially in the case of martensitic stainless steel used in high-temperature applications, the composition of the weld should be as similar as possible to that of the base material. To prevent cold cracking, austenitic welding materials can also be used; in this case, the strength of the weld will inevitably be lower than that of the base material. When the composition of the weld is similar to that of the base material, both the weld and the heat-affected zone will harden and become brittle, while a tempering softening zone appears in the heat-affected zone. To prevent cold cracking, components with a thickness of 3 mm or more often require preheating, and heat treatment is also usually necessary after welding to improve the properties of the joint. Since the thermal expansion coefficients of the weld metal and the base material are essentially the same, welding stresses can potentially be completely eliminated through heat treatment. When the workpiece cannot be preheated or heat-treated, an austenitic microstructure weld can be chosen. Since such welds possess high plasticity and toughness, they can relieve welding stresses and absorb more hydrogen, thereby reducing the tendency for cold cracking in the joint. However, in joints made from this material, differences in thermal expansion coefficients may result in shear stresses in the fusion zone under cyclic temperature conditions, leading to joint failure. For simple Cr13-type martensitic steel, when welds without an austenitic structure are used, there is little room for adjusting the weld composition; it generally remains the same as that of the base material. However, harmful impurities such as S, P, and Si must be controlled, as Si can promote the formation of coarse martensite in the welds of Cr13-type martensitic steel. Reducing the carbon content helps to decrease hardenability; the presence of small amounts of elements such as Ti, N, or Al in the weld can also refine the grain structure and reduce hardenability. For multi-component alloyed Cr12-based martensitic heat-resistant steels, the primary application is heat resistance; austenitic welding materials are generally not used, and it is desired that the composition of the weld be similar to that of the base material. When adjusting the composition, it is essential to ensure that no ferrite phase appears in the weld, as it is highly detrimental to the properties of the material. Since the main components of Cr13-based martensitic heat-resistant steels are predominantly ferrite-forming elements (such as Mo, Nb, W, V, etc.), in order to ensure that the entire microstructure consists of uniform martensite, these must be balanced out with austenite-forming elements—that is, appropriate amounts of C, Ni, Mn, N, and similar elements are required. Martensitic stainless steels have a relatively high tendency to cold cracking; therefore, it is essential to maintain low, or even ultra-low, hydrogen levels. This must be taken into account when selecting welding consumables. III. Key points for welding stainless steel used in pressure vessels 1. Key points for welding austenitic stainless steel Generally speaking, austenitic stainless steel possesses excellent weldability. Almost all fusion welding methods can be used to weld austenitic stainless steels, and the thermophysical properties and microstructural characteristics of these steels determine the key aspects of their welding processes. ① Due to the low thermal conductivity and high thermal expansion coefficient of austenitic stainless steel, large deformations and welding stresses tend to occur during welding; therefore, welding methods that concentrate welding energy should be used as much as possible. ② Due to the low thermal conductivity of austenitic stainless steel, a greater penetration depth can be achieved compared to low-alloy steel under the same current. At the same time, due to its high resistivity, in shielded metal arc welding, a lower welding current is required compared to carbon steel or low-alloy steel electrodes of the same diameter, in order to prevent the electrode from turning red. ③ Welding specifications. High wire energy is generally not used for welding. In shielded metal arc welding, it is advisable to use electrodes of small diameter and carry out rapid multi-pass welding. For welds with high quality requirements, cold water may even be used to accelerate cooling. In the case of pure austenitic stainless steels and super-austenitic stainless steels, due to their high sensitivity to thermal cracking, it is essential to strictly control the welding heat input in order to prevent excessive growth of weld grains and the occurrence of welding thermal cracks. ④ To improve the resistance to hot cracking and corrosion of the weld, special care must be taken during welding to keep the welding area clean, thereby preventing harmful elements from penetrating the weld. ⑤ Generally, preheating is not required when welding austenitic stainless steel. To prevent grain growth and carbide precipitation in the weld and heat-affected zone, and to ensure the plasticity, toughness, and corrosion resistance of the welded joint, a lower interpass temperature should be maintained, generally not exceeding 150°C. 2. Key points for welding ferritic stainless steel: Ferritic stainless steel contains a relatively high amount of elements that promote the formation of ferrite, and a relatively low amount of elements that promote the formation of austenite; as a result, it has a lower tendency to harden or develop cold cracks. Under the influence of the welding heat cycle, the grain size in the heat-affected zone of ferritic stainless steels increases significantly, resulting in a sharp decline in the toughness and plasticity of the joint. The degree of grain growth in the heat-affected zone depends on the highest temperature reached during welding and the duration for which it is maintained. Therefore, when welding ferritic stainless steels, it is advisable to use a low wire energy, that is, to employ methods that concentrate energy, such as low-current TIG welding or manual welding with electrodes of small diameter. At the same time, narrow-gap grooves, high welding speeds, and multi-layer welding should be used as much as possible, along with strict control of the interlayer temperature. Due to the effect of the welding thermal cycle, ordinary ferritic stainless steels become sensitized in the high-temperature region of the heat-affected zone, leading to intergranular corrosion in certain media. After welding, annealing at 700–850°C is carried out to homogenize the chromium, thereby restoring its corrosion resistance. Ordinary high-chromium ferritic stainless steels can be welded using fusion welding methods such as shielded metal arc welding, gas metal arc welding, and submerged arc welding. Due to the inherent low plasticity of high-chromium steel, as well as grain growth in the heat-affected zone caused by the welding heat cycle and the accumulation of carbides and nitrides at grain boundaries, the weld joint exhibits very low plasticity and toughness. Cracks are likely to occur when weld materials with a chemical composition similar to that of the base material are used under high restraint. To prevent cracks and improve the plasticity and corrosion resistance of joints, the following process measures can be taken, taking shielded metal arc welding as an example. ① Preheat to around 100 ~ 150°C to weld the material in a tough state. The higher the chromium content, the higher the preheating temperature should be. ② Use low wire energy and weld without oscillation. During multi-pass welding, the interpass temperature should be controlled to not exceed 150°C; continuous welding is not recommended in order to minimize the effects of high-temperature embrittlement and 475°C embrittlement. ③ After welding, an annealing treatment at 750–800°C is performed; due to the spheroidization of carbides and uniform distribution of chromium, the corrosion resistance can be restored, and the plasticity of the joint can be improved. After annealing, rapid cooling should be performed to prevent the formation of the σ phase and 475°C brittleness. 3. Key points for welding martensitic stainless steel: For Cr13-type martensitic stainless steel, when welding with electrodes of the same material, in order to reduce susceptibility to cold cracking and ensure the plasticity and toughness of the welded joint, low-hydrogen electrodes should be used along with the following measures: ① Preheating. The preheating temperature increases with the carbon content of the steel, generally ranging from 100°C to 350°C. ② Post-heating. For welded joints with high carbon content or high constraint, post-weld heat treatment is applied to prevent welding hydrogen-induced cracks. ③ Post-weld heat treatment. To improve the plasticity, toughness, and corrosion resistance of the welded joint, the post-weld heat treatment temperature is generally between 650°C and 750°C, with the holding time calculated at 1 hour per 25 mm. For super and low-carbon martensitic stainless steels, preheating is generally not necessary. When there is high constraint or a high hydrogen content in the weld, preheating and post-heating measures should be taken; the preheating temperature is usually between 100°C and 150°C, while the post-weld heat treatment temperature is between 590°C and 620°C. For martensitic steels with a high carbon content. Or in situations where preheating before welding and post-weld heat treatment are difficult to implement, as well as when there is high restraint on the joint, austenitic welding materials can also be used in engineering to improve the plasticity and toughness of the welded joint and prevent crack formation. However, when the weld metal is of austenitic structure or predominantly austenitic in composition at this time, its strength is actually low compared to that of the base material. Moreover, there are significant differences between the weld metal and the base material in terms of chemical composition, microstructure, thermophysical properties, and mechanical properties; as a result, welding residual stresses are inevitable, which can easily lead to stress corrosion or high-temperature creep failure. IV. Welding of Duplex Stainless Steels 1. Types of Duplex Stainless Steels Due to their austenite + ferrite dual-phase structure, with roughly equal amounts of each phase, duplex stainless steels possess the characteristics of both austenitic and ferritic stainless steels. The yield strength can reach 400 MPa to 550 MPa, which is twice that of ordinary austenitic stainless steels. Compared to ferritic stainless steels, duplex stainless steels possess higher toughness and a lower brittle transition temperature; their resistance to intergranular corrosion as well as their weldability have seen significant improvements ; At the same time, it retains some of the characteristics of ferritic stainless steels, such as brittleness at 475°C, high thermal conductivity, low linear expansion coefficient, superplasticity, and magnetism. Compared to austenitic stainless steels, duplex stainless steels have higher strength; in particular, their yield strength shows a significant improvement. Additionally, their resistance to pitting corrosion, stress corrosion, and corrosion fatigue has also been markedly enhanced. Based on their chemical composition, duplex stainless steels can be classified into four categories: the Cr18 type, the Cr23 (without Mo) type, the Cr22 type, and the Cr25 type. Cr25-type duplex stainless steels can be further divided into ordinary types and super duplex stainless steels; among them, Cr22-type and Cr25-type have been more widely used in recent years. The duplex stainless steels used in our country are mostly of Swedish origin; the specific grades include: 3RE60 (Cr18 type), SAF2304 (Cr23 type), SAF2205 (Cr22 type), and SAF2507 (Cr25 type). 2. Welding characteristics of duplex stainless steel: ① Duplex stainless steel has good weldability; it does not suffer from the embrittlement of the heat-affected zone that occurs during welding of ferritic stainless steels, nor does it prone to welding hot cracks like austenitic stainless steels. However, due to its high ferrite content, hydrogen-induced cold cracks may occur when there is high rigidity or a high hydrogen content in the weld, so it is very important to strictly control the sources of hydrogen. ② To preserve the characteristics of duplex steel, ensuring an appropriate ratio of austenite to ferrite in the microstructure of the weld joint is crucial for welding this type of steel. When the cooling rate of the welded joint is slow, the secondary phase transformation from δ to γ occurs more thoroughly; as a result, a biphase structure with an appropriate phase ratio can be obtained at room temperature. This requires a sufficiently high amount of heat input during welding. Otherwise, if the cooling rate after welding is fast, the amount of δ-ferrite phase increases, leading to a significant decline in the ductility and corrosion resistance of the joint. 3. Selection of welding materials for duplex stainless steel: Welding materials used for duplex stainless steel feature a weld microstructure that is predominantly austenitic in nature. The contents of the key corrosion-resistant elements (such as chromium and molybdenum) are similar to those in the base material, thereby ensuring corrosion resistance on par with that of the base material. To ensure the austenite content in the weld, it is common to increase the levels of nickel and nitrogen, that is, to raise the nickel equivalent by about 2% to 4%. In duplex stainless steel base metal, there is generally a certain amount of nitrogen, and it is also desirable for welding materials to contain a certain level of nitrogen as well; however, this level should not be too high, otherwise pores may form. Thus, the higher nickel content becomes a major difference between the welding material and the base metal. Depending on the requirements regarding corrosion resistance and joint toughness, a welding electrode with a chemical composition compatible with that of the base metal should be selected. For example, when welding Cr22 duplex stainless steel, a Cr22Ni9Mo3-type welding electrode, such as the E2209 electrode, can be used. When acidic electrodes are used, slag removal is excellent and the weld shape is good, but the impact toughness is low. When high impact toughness of the weld metal is required and welding in all positions is necessary, alkaline electrodes should be used. When welding the root seam, alkaline electrodes are usually used. When there are special requirements for the corrosion resistance of the weld metal, alkaline electrodes with super duplex steel composition should also be used. For solid gas-shielded welding wires, while ensuring that the weld metal possesses good corrosion resistance and mechanical properties, attention should also be paid to its weldability. For flux-cored wires, rutile-type or titania-calcium-type flux-cored wires can be used when an attractive weld appearance is required; whereas wires with a higher alkalinity are more suitable when higher impact toughness is needed or when welding under high constraint conditions. For submerged arc welding, it is advisable to use wire with a smaller diameter in order to enable multi-pass welding under medium and low welding parameters, thereby preventing the embrittlement of the weld heat-affected zone and the weld metal; additionally, an appropriate basic flux should be used. 4. Key points for welding duplex stainless steel: ① Control of the welding heat process. Factors such as weld input energy, interpass temperature, preheating, and material thickness all affect the cooling rate during welding, which in turn influences the microstructure and properties of the weld and the heat-affected zone. Both too fast and too slow cooling rates can affect the toughness and corrosion resistance of duplex steel welded joints. Too fast a cooling rate can lead to an excessive amount of α phase and an increased precipitation of Cr2N. Too slow a cooling rate can cause the grains to become significantly coarse, and it may even lead to the formation of some brittle intermetallic compounds, such as the σ-phase. Table 1 lists some recommended ranges for welding wire energy and interpass temperature. When selecting the wire energy, the specific material thickness should also be taken into account; the upper limit of wire energy in the table is suitable for thick plates, while the lower limit is suitable for thin plates. When welding duplex steels and super stainless steels with a high alloy content and an ω(Cr) of 25%, to achieve optimal weld properties, it is recommended to keep the maximum interpass temperature at 100°C. When heat treatment is required after welding, the interlayer temperature can be unrestricted. Recommended wire energy and interlayer temperature for duplex steel: Steel type, Wire energy/(kJ/cm), Maximum interlayer temperature/°C – Cr23% Mo-free duplex steel: 5–25, 150–200; Cr22% duplex steel: 5–25, 150–200; Cr25 (Cu0–2.5%) duplex steel: 2–15, 125–150; Cr25% super duplex steel: 2–15, 125–150. ② Post-weld heat treatment: It is preferable not to carry out heat treatment on duplex stainless steel after welding; however, if the α-phase content in the as-welded state exceeds the required levels or harmful phases such as the σ-phase appear, post-weld heat treatment can be used to improve the properties. The heat treatment method used is water quenching. During heat treatment, heating should be carried out as quickly as possible, and the holding time at the heat treatment temperature of 5 to 30 minutes should be sufficient to restore phase equilibrium. During heat treatment, metal oxidation is very severe; the use of inert gas protection should be considered. Dual-phase steels with an ω(Cr) of 22% should be heat-treated at temperatures between 1050°C and 1100°C, whereas dual-phase steels and super-dual-phase steels with an ω(Cr) of 25% require heat treatment at temperatures between 1070°C and 1120°C. V. Welding examples for stainless steel pressure vessels: A flash tank with a diameter of 800 mm and a wall thickness of 10 mm, whose shell is made of 0Cr18Ni9; the welding procedures for its main load-bearing welds are shown in Table 2. Flash tank welding process: Weld number, Weld location, Welding method, Welding material, Notes. 1A1, B1: Shell longitudinal and circumferential seams – Double-sided SMAW; A102. ① B2: Shell closure weld – GTAW for root pass, SMAW for cover pass; TGF-308L, A102. ② C1-C4, D1-D4: Welds between the pipe and the flat flange, as well as welds between the pipe and the shell – SMAW, A102. ③ E1: Weld between the support and the shell – GMAW (CO2 welding); TFW-308L. ④ Notes: ① The diameter of the cylinder is 800 mm, allowing welders to enter the cylinder for welding; therefore, both the longitudinal and circumferential seams are welded using shielded metal arc welding in a double-sided manner. ② This equipment has no manholes; therefore, the closing welds can only be welded from the outside. To ensure welding quality, TIG welding is used for root pass. However, during TIG welding of stainless steel, the metal on the backside gets oxidized. Previously, the only solution was to apply argon shielding on the backside. But when the equipment is large or when argon shielding cannot be applied to the backside, this method results in a significant waste of argon, and inadequate protection may still occur. To overcome this processing difficulty, the Welding Division of Nippon Oil & Fats Co., Ltd. developed and manufactured a back-side self-protective stainless steel TIG welding wire. This is a wire with a special coating; upon melting, this coating (i.e., flux) penetrates to the back side of the weld pool, forming a dense protective layer that functions similarly to the flux coating on a welding electrode. The method of using this welding wire is exactly the same as that for ordinary TIG welding wires; the coating does not affect the arc and the shape of the molten pool, **thereby reducing the welding costs for stainless steel welding with argon. In this equipment, if argon shielding from the rear is used, argon is wasted extensively; therefore, self-shielding welding wire is employed. ③ For the fillet welds between nozzles and plain welding flanges, as well as those between nozzles and the shell, given the weld profile and welding conditions at these locations, shielded metal arc welding is generally selected. If the takeover diameter is too small, TIG welding can also be used to reduce the difficulty of welding. ④ The fillet welds between the support and the housing are non-pressure-bearing welds; shielded metal arc welding is used for these welds, with pure CO2 as the shielding gas, offering high efficiency and good weld quality. TFW-308L is a welding material grade, and its corresponding welding material specification is E308LT1-1 (AWS A5.22). It is very important for welding workers to understand the meaning of \"weldability\". “\"Weldability\" is derived from the English term \"Weldability\"; it combines welding, the properties of structural materials (mechanical, metallurgical, physical, chemical properties, etc.), and the development of materials. Since the concept of weldability was introduced in the early 1940s, its meaning has been continuously evolving, with various definitions being given to it due to different perspectives of understanding, different purposes of analysis, and the ongoing development of welding technologies. The purpose of analyzing weldability is to identify the problems that may arise with a particular material under specified welding conditions, in order to determine the suitability of the welding process and to outline directions for improving the material or the product. To gain a deeper understanding of weldability, it is necessary to conduct systematic studies on the composition, microstructure, and properties of the materials (base metal and welding filler) throughout the welding process, as well as those of the welding zone (weld seam, fusion zone, and heat-affected zone). This includes examining the influence of process parameters and the performance of the joint area after welding.
Reply #22023-04-28
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