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Study on the toughness of steel and causes of fracture

2023-05-28View Original

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The main reasons are as follows: First, since a certain amount of one or more alloying elements must be added during the steel manufacturing process, simple heat treatment after the steel is formed can result in different microstructures, thereby altering the original properties of the steel; Second, defects arising during steelmaking and casting, particularly concentrated defects such as pores and inclusions, are highly sensitive during rolling. Moreover, these defects can vary between different batches of steel with the same chemical composition, or even across different sections of the same steel billet, thereby affecting the quality of the steel. Since the toughness of steel mainly depends on its microstructure and the degree of dispersion of defects (with strict prevention of concentrated defects), rather than its chemical composition. Therefore, toughness changes significantly after heat treatment. To thoroughly understand the properties of steel and the reasons for its fracture, it is also necessary to master physical metallurgy as well as the relationship between microstructure and the toughness of steel. 1. Fracture of ferrite-pearlite steel: Ferrite-pearlite steel accounts for the vast majority of total steel production. They are typically alloys of iron-carbon with a carbon content ranging from 0.05% to 0.20%, along with small amounts of other alloying elements added to improve yield strength and toughness. The ferrite-pearlite microstructure consists of BBC iron (ferrite), 0.01%C, soluble alloys, and Fe3C. In carbon steels with very low carbon content, cementite particles (carbides) remain at the boundaries and within the ferrite grains. However, when the carbon content exceeds 0.02%, the vast majority of Fe3C forms a lamellar structure containing some ferrite, known as pearlite; it also tends to be dispersed in the ferrite matrix as “grains” and spherulites (precipitates at grain boundaries). In the microstructure of low-carbon steel with a carbon content of 0.10%–0.20%, the proportion of pearlite ranges from 10% to 25%. Although pearlite particles are very hard, they can be dispersed widely throughout the ferritic matrix and deform easily around the ferrite. Typically, the grain size of ferrite decreases as the pearlite content increases. Because the formation and transformation of pearlite spheres hinder the growth of ferrite grains. Therefore, pearlite indirectly increases the tensile yield stress δy by raising d-1/2 (where d is the average grain diameter). From the perspective of fracture analysis, there are two carbon content ranges in low-carbon steel whose properties are of interest. First, the carbon content is below 0.03%, and the carbon exists in the form of pearlite spheres, having little impact on the toughness of the steel ; Secondly, when the carbon content is high, it directly affects toughness and the Charpy curve in the form of spherulites. 2. Influence of processing techniques: Practical experience shows that water-quenched steel has better impact strength than annealed or normalized steel, as rapid cooling prevents the formation of cementite at the grain boundaries and promotes the refinement of ferrite grains. Many steel grades are sold in the hot-rolled state, and the rolling conditions have a significant impact on impact strength. A lower final rolling temperature reduces the impact transformation temperature, increases the cooling rate, and promotes the refinement of ferrite grains, thereby enhancing the toughness of the steel. Due to the slower cooling rate compared to thin plates, the ferrite grains in thick plates are coarser than those in thin plates. Therefore, under the same heat treatment conditions, thick plates are more brittle than thin plates. Therefore, normalizing is commonly used after hot rolling to improve the properties of the steel plate. Hot rolling can also produce anisotropic steels, as well as steels with various microstructures, pearlite bands, and grain boundaries containing inclusions, resulting in oriented toughness in the direction of rolling. The pearlite bands and the elongated inclusions, which are widely dispersed in a flaky shape, have a significant impact on the notch toughness at lower temperatures within the Charpy transition range. 3. Influence of ferrite and soluble alloying elements: The vast majority of alloying elements are added to low-carbon steel in order to produce solution-hardened steels that exhibit increased lattice friction stress δi at certain ambient temperatures. However, at present it is not possible to predict the lower yield stress using formulas alone, unless the grain size is known. Although the determining factors for yield stress are normalizing temperature and cooling rate, this research method remains important because it allows the range by which a single alloying element can reduce toughness to be predicted by increasing δi. There are no reports to date on the regression analysis of the non-plastic transformation (NDT) temperature and Charpy transformation temperature in ferritic steels; however, such studies have also been limited to qualitative discussions on the effect of adding single alloying elements on toughness. The following provides a brief introduction to the effects of several alloying elements on the properties of steel. 1) Manganese: The manganese content in the vast majority of cases is around 0.5%. Adding it as a deoxidizer or sulfur fixer can prevent thermal cracking of steel. It also has the following functions in low-carbon steel. ◆Steel with a carbon content of 0.05% shows a tendency to reduce the formation of cementite films at the grain boundaries after air cooling or furnace cooling. ◆It can slightly reduce the ferrite grain size. ◆It can produce a large number of small pearlite particles. The first two effects indicate that the NDT temperature decreases as the manganese content increases, while the latter two effects cause the peak of the Charpy curve to become sharper. When the carbon content in steel is high, manganese can significantly reduce the transformation temperature by about 50%. The reason may be the large amount of pearlite, rather than the distribution of cementite at the boundaries. It should be noted that if the carbon content of the steel is higher than 0.15%, the manganese content plays a decisive role in the impact strength of normalized steel. This is because the high hardenability of steel causes the austenite to transform into brittle upper bainite, rather than ferrite or pearlite. 2) Nickel, like manganese, plays a role in steel by improving the toughness of iron-carbon alloys. Its effectiveness depends on the carbon content and heat treatment. In steel with a very low carbon content (about 0.02%), an addition level of 2% is sufficient to prevent the formation of cementite at the grain boundaries in the hot-rolled and normalized states; simultaneously, it significantly lowers the onset transformation temperature TS and raises the peak value of the Charpy impact curve. Further increasing the nickel content reduces the effect of improving impact toughness. If the carbon content is low enough that no carbides remain after normalizing, the effect of nickel on the transformation temperature becomes very limited. Adding nickel to normalized steel containing approximately 0.10% carbon has the greatest benefit of refining grains and reducing the free nitrogen content; however, its mechanism remains unclear at present. It may be because nickel acts as a stabilizer for austenite, thereby lowering the temperature at which austenite decomposes. 3) Phosphorus: In pure iron-phosphorus alloys, phosphorus segregation at the ferrite grain boundaries reduces the tensile strength Rm and causes brittleness between the grains. Furthermore, phosphorus is also a stabilizer for ferrite. Therefore, adding steel will **increase the δi value and the ferrite grain size. The combination of these effects makes phosphorus an extremely harmful embrittlement agent, leading to transgranular fracture. 4) Silicon: Silicon is added to steel for deoxidation, and it also helps to improve impact strength. If both manganese and aluminum are present in the steel, most of the silicon dissolves in the ferrite, thereby increasing δi through solid solution hardening. This effect, combined with the improvement in impact strength brought about by the addition of silicon, results in an increase of approximately 44°C in the 50% transformation temperature when silicon is added to iron-carbon alloys with a stable grain size, on a weight percentage basis. Furthermore, similar to phosphorus, silicon is a stabilizer for ferritic iron and can promote the growth of ferrite grains. By weight percentage, adding silicon to normalized steel raises the average energy conversion temperature by about 60°C. 5) Aluminum is added to steel in the form of alloys and deoxidizers for two reasons: first, it forms AlN with nitrogen in the melt, thereby removing free nitrogen ; Second, the formation of AlN refines the ferrite grains. As a result of these two effects, an increase of 0.1% in aluminum reduces the transition temperature by about 40°C. However, when the amount of aluminum added exceeds what is necessary, the effect of \"fixing\" free nitrogen weakens. 6) Oxygen: Oxygen in steel causes segregation at grain boundaries, leading to intergranular fracture in ferroalloys. When the oxygen content in steel is as high as 0.01%, fracture occurs along the continuous pathways formed at the grain boundaries of the embrittled grains. Even when the oxygen content in steel is very low, it causes cracks to nucleate preferentially at grain boundaries and then to propagate transgranularly. To address the problem of oxygen embrittlement, deoxidizing elements such as carbon, manganese, silicon, aluminum, and zircon can be added; these elements combine with oxygen to form oxide particles, thereby removing oxygen from the grain boundaries. Oxide particles are also beneficial substances for delaying ferrite growth and increasing d-/2. 4. Influence of carbon content between 0.3% and 0.8%: In hypoeutectoid steels with a carbon content of 0.3% to 0.8%, pro-eutectoid ferrite is the continuous phase and forms first at the austenite grain boundaries. Pearlite forms within the austenite grains, accounting for 35% to 100% of the microstructure. Furthermore, various aggregates form within each austenite grain, turning the pearlite into a polycrystal. Since the strength of pearlite is higher than that of pro-eutectoid ferrite, it restricts the flow of ferrite, thereby causing the yield strength and strain hardening rate of the steel to increase as the carbon content in pearlite increases. The restraining effect increases with the number of hardened masses, and pearlite enhances the refinement of the pro-eutectoid grain size. When there is a large amount of pearlite in steel, micro-cleavage cracks form during deformation at low temperatures and/or high strain rates. Although there are also some internal aggregated tissue sections, the fracture path initially follows the cleavage planes. Therefore, there are certain preferred orientations within the ferrite grains in the spaces between the ferrite plates and in the adjacent aggregated structures. The main reasons are as follows: First, since a certain amount of one or more alloying elements must be added during the steel manufacturing process, simple heat treatment after the steel is formed can result in different microstructures, thereby altering the original properties of the steel ; Second, defects arising during steelmaking and casting, particularly concentrated defects such as pores and inclusions, are highly sensitive during rolling. Moreover, these defects can vary between different batches of steel with the same chemical composition, or even across different sections of the same steel billet, thereby affecting the quality of the steel. Since the toughness of steel mainly depends on its microstructure and the degree of dispersion of defects (with strict prevention of concentrated defects), rather than its chemical composition. Therefore, toughness changes significantly after heat treatment. To thoroughly understand the properties of steel and the reasons for its fracture, it is also necessary to master physical metallurgy as well as the relationship between microstructure and the toughness of steel. 1. Fracture of ferrite-pearlite steel: Ferrite-pearlite steel accounts for the vast majority of total steel production. They are typically alloys of iron-carbon with a carbon content ranging from 0.05% to 0.20%, along with small amounts of other alloying elements added to improve yield strength and toughness. The ferrite-pearlite microstructure consists of BBC iron (ferrite), 0.01%C, soluble alloys, and Fe3C. In carbon steels with very low carbon content, cementite particles (carbides) remain at the boundaries and within the ferrite grains. However, when the carbon content exceeds 0.02%, the vast majority of Fe3C forms a lamellar structure containing some ferrite, known as pearlite; it also tends to be dispersed in the ferrite matrix as “grains” and spherulites (precipitates at grain boundaries). In the microstructure of low-carbon steel with a carbon content of 0.10%–0.20%, the proportion of pearlite ranges from 10% to 25%. Although pearlite particles are very hard, they can be dispersed widely throughout the ferritic matrix and deform easily around the ferrite. Typically, the grain size of ferrite decreases as the pearlite content increases. Because the formation and transformation of pearlite spheres hinder the growth of ferrite grains. Therefore, pearlite indirectly increases the tensile yield stress δy by raising d-1/2 (where d is the average grain diameter). From the perspective of fracture analysis, there are two carbon content ranges in low-carbon steel whose properties are of interest. First, the carbon content is below 0.03%, and the carbon exists in the form of pearlite spheres, having little impact on the toughness of the steel ; Secondly, when the carbon content is high, it directly affects toughness and the Charpy curve in the form of spherulites. 2. Influence of processing techniques: Practical experience shows that water-quenched steel has better impact strength than annealed or normalized steel, as rapid cooling prevents the formation of cementite at the grain boundaries and promotes the refinement of ferrite grains. Many steel grades are sold in the hot-rolled state, and the rolling conditions have a significant impact on impact strength. A lower final rolling temperature reduces the impact transformation temperature, increases the cooling rate, and promotes the refinement of ferrite grains, thereby enhancing the toughness of the steel. Due to the slower cooling rate compared to thin plates, the ferrite grains in thick plates are coarser than those in thin plates. Therefore, under the same heat treatment conditions, thick plates are more brittle than thin plates. Therefore, normalizing is commonly used after hot rolling to improve the properties of the steel plate. Hot rolling can also produce anisotropic steels, as well as steels with various microstructures, pearlite bands, and grain boundaries containing inclusions, resulting in oriented toughness in the direction of rolling. The pearlite bands and the elongated inclusions, which are widely dispersed in a flaky shape, have a significant impact on the notch toughness at lower temperatures within the Charpy transition range. 3. Influence of ferrite and soluble alloying elements: The vast majority of alloying elements are added to low-carbon steel in order to produce solution-hardened steels that exhibit increased lattice friction stress δi at certain ambient temperatures. However, at present it is not possible to predict the lower yield stress using formulas alone, unless the grain size is known. Although the determining factors for yield stress are normalizing temperature and cooling rate, this research method remains important because it allows the range by which a single alloying element can reduce toughness to be predicted by increasing δi. There are no reports to date on the regression analysis of the non-plastic transformation (NDT) temperature and Charpy transformation temperature in ferritic steels; however, such studies have also been limited to qualitative discussions on the effect of adding single alloying elements on toughness. The following provides a brief introduction to the effects of several alloying elements on the properties of steel. 1) Manganese: The manganese content in the vast majority of cases is around 0.5%. Adding it as a deoxidizer or sulfur fixer can prevent thermal cracking of steel. It also has the following functions in low-carbon steel. ◆Steel with a carbon content of 0.05% shows a tendency to reduce the formation of cementite films at the grain boundaries after air cooling or furnace cooling. ◆It can slightly reduce the ferrite grain size. ◆It can produce a large number of small pearlite particles. The first two effects indicate that the NDT temperature decreases as the manganese content increases, while the latter two effects cause the peak of the Charpy curve to become sharper. When the carbon content in steel is high, manganese can significantly reduce the transformation temperature by about 50%. The reason may be the large amount of pearlite, rather than the distribution of cementite at the boundaries. It should be noted that if the carbon content of the steel is higher than 0.15%, the manganese content plays a decisive role in the impact strength of normalized steel. This is because the high hardenability of steel causes the austenite to transform into brittle upper bainite, rather than ferrite or pearlite. 2) Nickel, like manganese, plays a role in steel by improving the toughness of iron-carbon alloys. Its effectiveness depends on the carbon content and heat treatment. In steel with a very low carbon content (about 0.02%), an addition level of 2% is sufficient to prevent the formation of cementite at the grain boundaries in the hot-rolled and normalized states; simultaneously, it significantly lowers the onset transformation temperature TS and raises the peak value of the Charpy impact curve. Further increasing the nickel content reduces the effect of improving impact toughness. If the carbon content is low enough that no carbides remain after normalizing, the effect of nickel on the transformation temperature becomes very limited. Adding nickel to normalized steel containing approximately 0.10% carbon has the greatest benefit of refining grains and reducing the free nitrogen content; however, its mechanism remains unclear at present. It may be because nickel acts as a stabilizer for austenite, thereby lowering the temperature at which austenite decomposes. 3) Phosphorus: In pure iron-phosphorus alloys, phosphorus segregation at the ferrite grain boundaries reduces the tensile strength Rm and causes brittleness between the grains. Furthermore, phosphorus is also a stabilizer for ferrite. Therefore, adding steel will **increase the δi value and the ferrite grain size. The combination of these effects makes phosphorus an extremely harmful embrittlement agent, leading to transgranular fracture. 4) Silicon: Silicon is added to steel for deoxidation, and it also helps to improve impact strength. If both manganese and aluminum are present in the steel, most of the silicon dissolves in the ferrite, thereby increasing δi through solid solution hardening. This effect, combined with the improvement in impact strength brought about by the addition of silicon, results in an increase of approximately 44°C in the 50% transformation temperature when silicon is added to iron-carbon alloys with a stable grain size, on a weight percentage basis. Furthermore, similar to phosphorus, silicon is a stabilizer for ferritic iron and can promote the growth of ferrite grains. By weight percentage, adding silicon to normalized steel raises the average energy conversion temperature by about 60°C. 5) Aluminum is added to steel in the form of alloys and deoxidizers for two reasons: first, it forms AlN with nitrogen in the melt, thereby removing free nitrogen ; Second, the formation of AlN refines the ferrite grains. As a result of these two effects, an increase of 0.1% in aluminum reduces the transition temperature by about 40°C. However, when the amount of aluminum added exceeds what is necessary, the effect of \"fixing\" free nitrogen weakens. 6) Oxygen: Oxygen in steel causes segregation at grain boundaries, leading to intergranular fracture in ferroalloys. When the oxygen content in steel is as high as 0.01%, fracture occurs along the continuous pathways formed at the grain boundaries of the embrittled grains. Even when the oxygen content in steel is very low, it causes cracks to nucleate preferentially at grain boundaries and then to propagate transgranularly. To address the problem of oxygen embrittlement, deoxidizing elements such as carbon, manganese, silicon, aluminum, and zircon can be added; these elements combine with oxygen to form oxide particles, thereby removing oxygen from the grain boundaries. Oxide particles are also beneficial substances for delaying ferrite growth and increasing d-/2. 4. Influence of carbon content between 0.3% and 0.8%: In hypoeutectoid steels with a carbon content of 0.3% to 0.8%, pro-eutectoid ferrite is the continuous phase and forms first at the austenite grain boundaries. Pearlite forms within the austenite grains, accounting for 35% to 100% of the microstructure. Furthermore, various aggregates form within each austenite grain, turning the pearlite into a polycrystal. Since the strength of pearlite is higher than that of pro-eutectoid ferrite, it restricts the flow of ferrite, thereby causing the yield strength and strain hardening rate of the steel to increase as the carbon content in pearlite increases. The restraining effect increases with the number of hardened masses, and pearlite enhances the refinement of the pro-eutectoid grain size. When there is a large amount of pearlite in steel, micro-cleavage cracks form during deformation at low temperatures and/or high strain rates. Although there are also some internal aggregated tissue sections, the fracture path initially follows the cleavage planes. Therefore, there are certain preferred orientations within the ferrite grains in the spaces between the ferrite plates and in the adjacent aggregated structures.

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