Dual-phase steel and hot-dip galvanized dual-phase steel with tensile strength ≥ 980MPa and their rapid heat treatment manufacturing methods

The rapid heat treatment of low-carbon, low-alloy dual-phase steels addresses inefficiencies in conventional methods by refining grain size and enhancing mechanical properties, achieving high tensile strengths and ductility with reduced energy consumption and costs.

JP7796766B2Active Publication Date: 2026-01-09BAOSHAN IRON & STEEL CO LTD
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Patent Information

Application Number
JP2023560348
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-04-02
Filing Date
2022-03-31
Publication Date
2026-01-09
Estimated Expiration
2042-03-31

AI Technical Summary

Technical Problem

Conventional continuous annealing methods for producing 980MPa-grade dual-phase steels are inefficient, requiring long heating and soaking times, leading to large grain sizes and high energy consumption, and result in high production costs and inconsistent material properties.

Method used

A rapid heat treatment process involving low-carbon, low-alloy dual-phase steels with controlled heating and cooling rates, refining grain size and altering phase transformation processes to achieve tensile strengths of ≥ 980MPa with improved ductility and formability, while reducing energy consumption and production costs.

Benefits of technology

The process achieves dual-phase steels with refined grain sizes, enhanced mechanical properties, and improved production efficiency, resulting in yield strengths of ≥ 590MPa, tensile strengths of ≥ 980MPa, and elongations of ≥ 7.5%, with reduced energy consumption and production costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

A low carbon low alloy duplex steel and hot dip galvanized duplex steel with tensile strength ≥ 980MPa and their rapid heat treatment manufacturing method, the chemical composition of the steel is as follows in mass percent: C: 0.05-0.17%, Si: 0.1-0.7%, Mn: 1.4-2.8%, P ≤ 0.020%, S ≤ 0.005%, B ≤ 0.005%, Al: 0.02-0.055%, and may further contain two or more of Nb, Ti, Cr, Mo, and V, and Cr + Mo + Ti + Nb + V ≤ 1.1%, with the balance being Fe and other unavoidable impurities. The manufacturing method includes smelting, casting, hot rolling, cold rolling, and rapid heat treatment steps. By controlling the rapid heating, short-time holding time and rapid cooling processes in the rapid heat treatment process, the present invention changes the recovery of the deformed structure, recrystallization and austenite phase transformation processes, increases the nucleation rate, shortens the grain growth time, refines the grains, increases the strength of the material and expands the performance range of the material.
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Description

[Technical Field]

[0001] The present invention relates to the technical field of rapid thermal treatment of materials, in particular to dual-phase steels and hot-dip galvanized dual-phase steels with tensile strengths of ≥ 980 MPa and their rapid thermal treatment manufacturing methods. [Background technology]

[0002] With the increasing public awareness of energy conservation and material service safety, many automakers have begun to use high-strength steel for their automobiles. The adoption of high-strength steel in the automobile industry can reduce the thickness of steel plates while improving the dent resistance, durability, large deformation impact toughness and collision safety of automobiles, so automotive steel plates are inevitably developing in the direction of high strength, high toughness and easy forming.

[0003] Among high-strength steels for automobiles, duplex steels are the most widely used and have the best application prospects. Low-carbon, low-alloy duplex steels have the characteristics of a small yield ratio, a high initial work hardening rate, and a good combination of strength and ductility, and are currently widely used as high-strength, highly formable press steels for automobile structures.

[0004] Dual-phase stainless steels are obtained by soaking and annealing cold-rolled low-carbon or low-alloy high-strength steels in the critical region, followed by rapid cooling or hot rolling with controlled rolling and cooling. Their microstructures consist primarily of ferrite and martensite. Dual-phase stainless steels utilize the "composite material" mechanism, allowing the advantages of each phase (ferrite and martensite) in the steel to be fully realized, while the weaknesses or defects of one phase are mitigated or eliminated by the presence of the other phase.

[0005] The mechanical properties of duplex stainless steels depend mainly on three aspects: 1. Matrix phase grain size and alloying element distribution; Second, the size, shape, distribution and volume fraction of the second phase; Third, the characteristics of the phase bonding between both the matrix and the second phase.

[0006] Therefore, how to obtain low-cost, high-performance, and good strength-ductility dual-phase stainless steel products has become the goal pursued by major steel companies and has attracted widespread attention from steel companies and automobile users.

[0007] Cold-rolled dual-phase stainless steel is obtained through a rapid cooling process after soaking at a critical temperature, which mainly includes three steps: Step 1: Heat the steel strip to the critical temperature of the ferrite-austenite two-phase zone and keep it soaked; Step 2: Cool the sample at a rate higher than the critical cooling rate. s ~M f and cooling to a temperature between 0.01 and 0.10 to obtain a desired two-phase structure of martensite and ferrite; Step 3: Heat the strip or s By heating to the temperature below, keeping the temperature, and then performing tempering, a good structural combination of hard martensite and soft ferrite is obtained, and finally a two-phase structure of martensite and ferrite is obtained.

[0008] Currently, 980MPa-grade cold-rolled dual-phase steels produced using conventional continuous annealing methods require a complete continuous annealing cycle of 5-8 minutes due to their slow heating rate and relatively long heating and soaking times. During the heating process, the recovery, recrystallization, and phase transformation processes occur sequentially and generally do not overlap. As a result, the ferrite recrystallization grains and austenite grains nucleate and grow sufficiently, resulting in a relatively large structure of the final ferrite-martensite dual-phase grains, typically 5-10 μm in size.

[0009] In the prior art, the main control measures for dual-phase stainless steels are to change the phase structure proportion and distribution by adding alloying elements or adjusting the temperature and time in the quenching and tempering processes in the annealing process, thereby obtaining relatively superior product performance.

[0010] Chinese Patent Application CN101802233B discloses "Dual-Phase Steel, Flat Products Made Therefrom, and a Method for Manufacturing Flat Products." The high-strength dual-phase steel of this invention has the following chemical compositions by weight: C: 0.1-0.2%, Si: 0.1-0.6%, Mn: 1.5-2.5%, Cr: 0.2-0.8%, Ti: 0.02-0.08%, Mo≦0.25%, P≦0.2%, S≦0.01%, Al≦0.1%, N≦0.012%, B≦0.002%, with the balance being Fe and other unavoidable impurities. This method is primarily based on the conventional continuous annealing method, and the quenching rate must be in the range of 0.5-30°C / s. The steel of this invention has relatively high contents of C, Mn, Cr, and Mo, and also contains alloying elements such as Ti, resulting in a complex and relatively high alloying element composition. The resulting dual-phase steel has a yield strength of approximately 620-1070 MPa, a tensile strength of approximately 980-1100 MPa, and an elongation of approximately 10-15%. In order to achieve sufficient strength, the steel composition of this invention contains a large number of alloying elements (e.g., C, Mn, Cr, Mo, Ti, etc.), which significantly increases production costs and manufacturing difficulties and also affects the subsequent welding performance of the material.

[0011] Chinese patent application CN101768695B discloses a "Method for Producing 1000 MPa Grade Ti Microalloyed Ultrafine Grain Cold-Rolled Dual-Phase Steel," which describes a high-strength dual-phase steel with the following chemical compositions (by weight): C: 0.03-0.2%, Si: 0.2-0.8%, Mn: 1.2-2.0%, Ti: 0.03-0.15%, P≦0.02%, S≦0.015%, Al: 0.02-0.15%, with the balance consisting of Fe and other unavoidable impurities. This patent relies on the conventional continuous annealing method, which contains relatively high contents of C, Si, Ti, and Al, while also containing a non-low content of Mn. The high content of alloying elements not only increases production costs and manufacturing difficulties, but also leads to inconsistencies in structure and performance, making it difficult for subsequent users to use.

[0012] Chinese patent application CN108486477A discloses a "1000 MPa-class high work hardening index cold-rolled high-strength steel sheet and its manufacturing method." The high-strength dual-phase steel of this invention has the following chemical composition by weight: C: 0.2-0.25%, Si: 1.4-1.6%, Mn: 1.8-2.0%, V: 0.08-0.12%, P≦0.01%, S≦0.012%, Al: 0.02-0.05%, with the balance consisting of Fe and other unavoidable impurities. This patent relies on the conventional continuous annealing method, and in order to achieve sufficient strength, the C, Si, Mn, and V contents are all relatively high, which increases the production cost of the alloy and poses manufacturing difficulties. At the same time, excessive element contents lead to the appearance of banded structures, reducing the uniformity of the final structure and the welding performance of the material, making it difficult for subsequent users to process.

[0013] Chinese patent application CN105543674B discloses a "method for manufacturing cold-rolled ultra-high strength dual-phase steel with high local forming performance." The high-strength dual-phase steel of this invention has the following chemical composition by weight: C: 0.08-0.12%, Si: 0.1-0.5%, Mn: 1.5-2.5%, Al: 0.015-0.05%, with the remainder consisting of Fe and other unavoidable impurities. Raw materials are selected and blended according to these chemical compositions, melted, and formed into a cast slab. The cast slab is heated to 1150-1250°C for 1.5-2 hours, and then hot-rolled, with a hot-rolling start temperature of 1080-1150°C and a rolling finish temperature of 880-930°C. After rolling, the slab is cooled to 450-620°C at a cooling rate of 50-200°C / s and then coiled to produce a hot-rolled steel with a bainite-based structure. The hot-rolled steel plate is then cold-rolled, annealed at a rate of 50-300°C / s to 740-820°C, with a holding time of 30 s-3 min, cooled to 620-680°C at a rate of 2-6°C / s, and then cooled to 250-350°C at a rate of 30-100°C / s, followed by overaging for 3-5 min to obtain ultra-high strength dual-phase steel with a ferrite + martensite dual-phase structure. This ultra-high strength dual-phase steel has a yield strength of 650-680 MPa, a tensile strength of 1023-1100 MPa, an elongation of 12.3-13%, and a tensile strength of 180°C along the rolling direction.o It will not break even if it is bent.

[0014] The most important feature of this patent is the combination of controlling the cooling conditions after hot rolling and rapid heating during the continuous annealing process, i.e., by controlling the cooling process after hot rolling, the band structure is eliminated and a uniform structure is achieved; by adopting rapid heating during the subsequent continuous annealing process, not only is the uniform structure of the structure ensured, but also the refinement of the structure is achieved. Thus, this patented technology adopts rapid heating annealing, which is premised on obtaining a hot-rolled raw material with a structure mainly consisting of bainite after hot rolling, with the main purpose of ensuring uniform structure and avoiding uneven local deformation caused by the appearance of band structure.

[0015] The patent shortage is primarily due to: First, it is necessary to obtain hot-rolled raw materials with bainite structure, which have high strength and large deformation resistance, which will bring great difficulties to the subsequent pickling and cold rolling production; Second, the understanding of rapid heating is limited to shortening the heating time and refining the crystal grains. The heating rate is not differentiated based on the changes in the material structure at different temperatures, and is generally set at a heating rate of 50-300°C / s, which increases the production costs of rapid heating; Third, the soaking time is 30 seconds to 3 minutes. Increasing the soaking time inevitably weakens the grain refinement effect achieved by rapid heating, which is unfavorable for improving the strength and toughness of the material. Fourth, this method requires overaging for 3 to 5 minutes, which is too long and unnecessary for rapid heat treatment of DP steel. The increase in soaking time and overaging time is detrimental to energy savings, reduction in system equipment costs and system footprint, and is also detrimental to the rapid and stable movement of the steel strip in the furnace. This is also clearly not a rapid heat treatment process in the strict sense.

[0016] Chinese Patent Application No. 201711385126.5 discloses a "780 MPa-grade low-carbon, low-alloy TRIP steel" with the following chemical composition (by mass): 0.16-0.22% C, 1.2-1.6% Si, 1.6-2.2% Mn, with the remainder being Fe and other unavoidable impurities. It is obtained by the following rapid heat treatment process: the steel strip is rapidly heated from room temperature to 790-830°C to the austenite-ferrite dual-phase region at a heating rate of 40-300°C / s; the residence time in the heating target temperature range in the dual-phase region is 60-100 seconds; the steel strip is rapidly cooled from the dual-phase region temperature to 410-430°C at a cooling rate of 40-100°C / s, with a residence time in this temperature range of 200-300 seconds; and the steel strip is rapidly cooled from 410-430°C to room temperature. It has the following characteristics: the metallographic structure of TRIP steel is a three-phase structure consisting of bainite, ferrite, and austenite; the average grain size of TRIP steel is significantly refined; the tensile strength is 950-1050 MPa; the elongation is 21-24%; and the strength-ductility product reaches a maximum of 24 GPa%.

[0017] The patent shortage is primarily due to: First, the patent discloses a 780MPa-class low-carbon, low-alloy TRIP steel product and its processing technology. However, the tensile strength of the TRIP steel product is 950-1050MPa, which is too high for a 780MPa-class product and will not necessarily be effective for users. On the other hand, the tensile strength of a 980MPa-class product is too low and will not meet users' strength requirements. Second, this patent uses a single-stage rapid heating process, with the same rapid heating rate in the entire heating temperature range. It does not perform different treatments according to the changes in the material structure in different temperature segments. The total rapid heating rate is 40~300℃ / s, which inevitably leads to higher production costs in the rapid heating process; Third, the soaking time in this patent is 60-100 seconds, which is not significantly different from the soaking time of conventional continuous annealing. Increasing the soaking time inevitably weakens the grain refinement effect achieved by rapid heating, which is very detrimental to improving the strength and toughness of the material. Fourth, this patent requires a bainite isothermal treatment time of 200-300 seconds, which is actually too long for rapid heat treatment products and is unnecessary. The increase in soaking time and isothermal treatment time is detrimental to energy savings, reduction in system equipment costs and system footprint, and is also detrimental to the rapid and stable movement of the steel strip in the furnace. This is also clearly not a rapid heat treatment process in the strict sense.

[0018] Chinese patent application CN108774681A discloses a "method for rapid heat treatment of high-strength steel." This method employs a ceramic sheet electric heating device, capable of achieving a heating rate of up to 400°C / s. After heating to 1000-1200°C, the steel is cooled to room temperature at a rate of up to nearly 3000°C / s using a blower cooling fan. The processing speed of the ceramic sheet electric heating heat treatment device used in this method is 50 cm / min. The steel used in this invention is characterized by a carbon content of 0.16-0.55% and the simultaneous addition of alloying elements such as Si, Mn, Cr, and Mo. This method is primarily suitable for steel wire, coils, or steel strips with a thickness of 5 mm or less. This patent discloses a rapid heat treatment method using ceramic sheet electric heating. The primary objective of this invention is to solve the problems of low heat treatment efficiency, energy waste, and environmental pollution in products such as high-strength steel wire and coils. However, the impact or effect of rapid heating on material microstructural performance is not mentioned. This invention does not take into account the chemical composition and structural characteristics of the steel grade, and the cooling rate of nearly 3000°C / s achieved by using a fan to blow cool is supposed to refer to the instantaneous cooling rate in the high-temperature segment, but the average cooling rate cannot reach 3000°C / s. At the same time, if a cooling rate that is too high in the high-temperature segment is used to produce wide strip steel, the internal stress will be too large, causing problems such as poor plate shape, making it unsuitable for large-scale industrial continuous heat treatment production of wide strip steel.

[0019] Chinese patent application CN106811698B discloses a "high-strength steel plate and its manufacturing method based on precise microstructure control," in which the chemical composition of this high-strength dual-phase steel is, in weight percentages, as follows: C: 0.08-0.40%, Si: 0.35-3.5%, Mn: 1.5-7.0%, P≦0.02%, S≦0.02%, Al: 0.02-3.0%, and at least one of Cr: 0.50-1.5%, Mo: 0.25-0.60%, Ni: 0.5-2.5%, Cu: 0.20-0.50%, B: 0.001-0.005%, V: 0.10-0.5%, Ti: 0.02-0.20%, and Nb: 0.02-0.20%, with the balance being Fe and other unavoidable impurities. It has the following mechanical properties: tensile strength R m exceeds 1000 MPa, and elongation A 50mm In this invention, the contents of the elements C, Si, and Mn are all high, and the steel strip with different elements is recrystallized by non-soaking annealing in a conventional continuous annealing production line, omitting the soaking and heat-retaining segment. The specific annealing parameter range is as follows: Rapid heating to 800-930°C at 20°C / s or more, followed immediately by cooling at a rate of 40°C / s or more to remove M. s -M f Cool to the M f ~M f Reheat to +100°C, keep warm for 30 seconds to 30 minutes, and finally cool to room temperature.

[0020] In this invention, by controlling the morphology and structure of the high-strength martensite phase, a fine needle-like and short rod-like precision martensite structure is obtained, and by reheating, carbon atoms are diffused into the retained austenite, ultimately obtaining stable retained austenite, which has a certain degree of deformability, and thus has the main feature of improving the plasticity and toughness of the high-strength steel.

[0021] The rapid heating referred to in this invention actually involves a low heating rate of 20-60°C / s, which is considered a moderate heating rate, with a cooling rate of 40-100°C / s. The consideration of omitting the rapid heating, rapid cooling, and soaking segments is intended to shorten the high-temperature storage time of high-strength steel, prevent the formation of large amounts of large-scale plate-like martensite after cooling due to the refinement of steel grains during the austenitization process and the incomplete homogenization of structure and chemical composition, and ensure the formation of a consistent film-like retained austenite structure. However, this inevitably makes it difficult to control the heating temperature and results in significant variations in structure and performance.

[0022] This method still relies on heating and cooling techniques based on conventional continuous annealing units. By eliminating the soaking segment (reducing the soaking time to 0 seconds), increasing the alloy content, and performing quenching and tempering, high-strength steel products with consistent strength and toughness are ultimately obtained. This invention also lacks specific research and development specific to steel grades with different strength levels. Furthermore, the heating rate is moderate, not rapid, and there is no soaking time. Therefore, it does not embody a true rapid heat treatment method or a complete annealing cycle, and therefore has no prospects for commercial application.

[0023] Chinese patent application CN107794357B and US patent application US2019 / 0153558A1 disclose a "Method for Producing Ultra-High Strength Martensitic Cold-Rolled Steel Plate by Ultra-Rapid Heating Process," which describes a high-strength dual-phase steel with the following chemical composition by weight: C: 0.10-0.30%, Mn: 0.5-2.5%, Si: 0.05-0.3%, Mo: 0.05-0.3%, Ti: 0.01-0.04%, Cr: 0.10-0.3%, B: 0.001-0.004%, P≦0.02%, S≦0.02%, with the balance being Fe and other unavoidable impurities. This dual-phase steel has the following mechanical properties: yield strength Rp 0.2 exceeds 1100 MPa, and the tensile strength R m=1800-2300 MPa, maximum elongation of 12.3%, and uniform elongation of 5.5-6%. This invention provides an ultra-rapid heating production process for ultra-high strength martensitic cold-rolled steel sheet, which is characterized by first heating the cold-rolled steel sheet to 300-500°C at 1-10°C / s, and then reheating it to 850-950°C, which is in the single-phase austenite region, at a heating rate of 100-500°C / s; then, after maintaining the temperature for 5 seconds or less, immediately water-quenching and cooling to room temperature to obtain ultra-high strength cold-rolled steel sheet.

[0024] The process according to this patent has the following deficiencies: First, the annealing temperature of the steel in this invention is in the ultra-high temperature range of the austenite single phase region, and it contains many alloying elements, so that the yield strength and tensile strength are both above 1000 MPa, which brings great difficulties to the heat treatment process, the manufacturing process before heat treatment, and subsequent user use; Second, the ultra-rapid heating annealing method of this invention uses a holding time of less than 5 seconds, which not only makes it difficult to control the heating temperature, but also leads to uneven distribution of alloying elements in the final product, which may result in uneven and unstable structural performance of the product; Third, the final rapid cooling is performed by water quenching to room temperature, without the necessary tempering process, which results in the final product's structural properties and the distribution of alloying elements in the final structural structure not providing the product with optimal strength and toughness, resulting in excessive strength and insufficient plasticity and toughness; Fourth, in the method of the present invention, the cooling rate of water quenching is too high, which causes problems such as poor shape of the steel plate and surface oxidation.

[0025] As described above, this patented technology has no practical application value or little practical application value.

[0026] Currently, due to the limited capacity of conventional continuous annealing furnace production lines, research on cold-rolled duplex stainless steel products and annealing processes has been hindered by the need to slowly heat the strip at conventional industrial equipment's heating rate (5-20°C / s) to sequentially complete recovery, recrystallization, and austenitization phase transformations. This requires long heating and soaking times, high energy consumption, and other problems. Furthermore, conventional continuous annealing production lines have problems such as the long residence time of the strip in the high-temperature furnace segment and the large number of rolls it must pass through. Depending on the product category and production capacity, conventional continuous annealing systems generally require a soaking time of 1-3 minutes. For conventional production lines with a system speed of around 180 meters per minute, the high-temperature furnace segment typically has 20-40 rolls, making it difficult to control the surface quality of the strip. Summary of the Invention [Problem to be solved by the invention]

[0027] The present invention provides low-carbon, low-alloy dual-phase steels and hot-dip galvanized dual-phase steels with tensile strengths of ≥ 980 MPa, and methods for their rapid heat treatment. Rapid heat treatment alters the recovery of deformation structures, recrystallization, and austenite phase transformation processes, increases nucleation rates (including recrystallization nucleation rates and austenite phase transformation nucleation rates), shortens grain growth time, and refines grains. The resulting dual-phase steels have yield strengths of ≥ 590 MPa, tensile strengths of ≥ 980 MPa, elongations of ≥ 7.5%, strength-ductility products of ≥ 9.0 GPa%, and excellent formability. The resulting hot-dip galvanized dual-phase steels have yield strengths of ≥ 540 MPa, tensile strengths of ≥ 980 MPa, elongations of ≥ 7.0%, and strength-ductility products of ≥ 10.0 GPa%. The dual-phase steels obtained by this method have a relatively low alloy content compared to comparable steels, resulting in increased strength and good plasticity and toughness. At the same time, the adoption of the rapid heat treatment process improves production efficiency, reduces production costs and energy consumption, significantly reduces the number of furnace rolls, and improves the surface quality of the steel plate. [Means for solving the problem]

[0028] To achieve the above objectives, the technical solution of the present invention comprises: A low-carbon, low-alloy duplex stainless steel having a tensile strength of 980 MPa or a low-carbon, low-alloy hot-dip galvanized duplex stainless steel having a tensile strength of 980 MPa, the chemical composition of which is, in mass percent, as follows: C: 0.05-0.17%, Si: 0.1-0.7%, Mn: 1.4-2.8%, P≦0.020%, S≦0.005%, B≦0.005%, Al: 0.02-0.055%, and may further contain two or more of Nb, Ti, Cr, Mo, and V, where Cr+Mo+Ti+Nb+V≦1.1%, with the balance being Fe and other unavoidable impurities.

[0029] In one embodiment, the dual-phase or hot-dip galvanized dual-phase steel has a C content of 0.05-0.12%. In one embodiment, the dual-phase or hot-dip galvanized dual-phase steel has a C content of 0.05-0.10%. In one embodiment, the dual-phase or hot-dip galvanized dual-phase steel has a C content of 0.10-0.17%.

[0030] In one embodiment, the Si content in the dual-phase or hot-dip galvanized dual-phase steel is 0.1 to 0.5%. In one embodiment, the Si content in the dual-phase or hot-dip galvanized dual-phase steel is 0.2 to 0.7%.

[0031] In one embodiment, the Mn content of the duplex steel or hot-dip galvanized duplex steel is 1.4-2.2%. In one embodiment, the Mn content of the duplex steel or hot-dip galvanized duplex steel is 1.6-2.5%. In one embodiment, the Mn content of the duplex steel or hot-dip galvanized duplex steel is 1.8-2.8%.

[0032] In one embodiment, the duplex stainless steel or hot-dip galvanized duplex stainless steel further contains 0.002-0.005% B.

[0033] In one embodiment, the duplex or hot-dip galvanized duplex stainless steel contains 0.02-0.05% Al.

[0034] In one embodiment, in the duplex stainless steel or hot-dip galvanized duplex stainless steel, Cr+Mo+Ti+Nb+V≦0.5%.

[0035] In one embodiment, the duplex or hot-dip galvanized duplex stainless steel contains Ti≦0.07%, for example ≦0.05%. In one embodiment, the duplex or hot-dip galvanized duplex stainless steel contains 0.01-0.05% or 0.02-0.07% Ti.

[0036] In one embodiment, the duplex steel or hot-dip galvanized duplex steel contains Nb≦0.07%, for example ≦0.04%. In one embodiment, the duplex steel or hot-dip galvanized duplex steel contains 0.02-0.07% Nb. In one embodiment, the duplex steel or hot-dip galvanized duplex steel contains 0.02-0.04% Nb.

[0037] In one embodiment, the duplex or hot-dip galvanized duplex stainless steel contains Cr≦0.9%, for example ≦0.6% or ≦0.4%. In one embodiment, the duplex or hot-dip galvanized duplex stainless steel contains 0.2-0.6% or 0.3-0.9% Cr.

[0038] In one embodiment, the duplex or hot-dip galvanized duplex steel has Mo≦0.4%, for example ≦0.15%. In one embodiment, the duplex or hot-dip galvanized duplex steel has Mo in the range of 0.1-0.4%.

[0039] In one embodiment, in the duplex stainless steel or hot-dip galvanized duplex stainless steel, V≦0.05%.

[0040] In one embodiment, the dual-phase stainless steel according to the present invention has a yield strength of ≥ 590 MPa, a tensile strength of ≥ 980 MPa, an elongation of ≥ 7.5%, and a strength-ductility product of ≥ 9.0 GPa%. The hot-dip galvanized dual-phase stainless steel according to the present invention has a yield strength of ≥ 540 MPa, a tensile strength of ≥ 980 MPa, an elongation of ≥ 7.0%, and a strength-ductility product of ≥ 10.0 GPa%.

[0041] In one embodiment, the dual-phase steel has the following chemical compositions, in mass percent: C: 0.05-0.12%, Si: 0.1-0.5%, Mn: 1.4-2.2%, Nb: 0.02-0.04%, Ti: 0.03-0.05%, P≦0.015%, S≦0.003%, Al: 0.02-0.05%, and may further contain one or two of Cr, Mo, and V, where Cr+Mo+Ti+Nb+V≦0.5%. Preferably, the C content is 0.055-0.110%. Preferably, the Si content is 0.15-0.45%. Preferably, the Mn content is 1.6-2.0%. Preferably, the dual-phase steel has a microstructure of uniformly distributed ferrite and martensite with an average grain size of 1-3 μm. Preferably, the dual-phase stainless steel has a yield strength of 590 to 750 MPa, for example 598 to 749 MPa, a tensile strength of 980 to 1100 MPa (for example 1030 to 1090 MPa), an elongation of 10.0 to 17.0% (for example 10.6 to 16.6%), a strength-ductility product of 10.5 to 18.0 GPa% (for example 10.9 to 17.4 GPa%), and a strain hardening exponent n 90 Values ​​exceed 0.21.

[0042] In one embodiment, the dual-phase stainless steel has a tensile strength of ≥ 1180 MPa and preferably has the following chemical composition in mass percent: C: 0.05-0.10%, Si: 0.1-0.5%, Mn: 1.6-2.5%, Cr: 0.2-0.6%, Mo: 0.1-0.4%, Ti: 0.01-0.05%, P≦0.015%, S≦0.003%, Al: 0.02-0.05%, and may further contain one or two of Nb and V, with Cr + Mo + Ti + Nb + V≦0.5%, the balance being Fe and other unavoidable impurities. Preferably, the C content is 0.07-0.10%. Preferably, the Si content is 0.1-0.4%. Preferably, the Mn content is 1.8-2.3%. Preferably, the Cr content is 0.25 to 0.35%. Preferably, the Mo content is 0.15 to 0.25%. Preferably, the microstructure of the dual-phase steel is a two-phase structure of ferrite and martensite, which are uniformly distributed and have an average grain size of 1 to 5 μm. Preferably, the dual-phase steel has a yield strength of 710 to 920 MPa (e.g., 714 to 919 MPa), a tensile strength of 1180 to 1300 MPa (e.g., 1188 to 1296 MPa), an elongation of 10.0 to 13.0% (e.g., 10.4 to 12.8%), and a strength-ductility product of 12 to 16 GPa%.

[0043] In one embodiment, the dual-phase stainless steel has a tensile strength of ≥ 1260 MPa and preferably has the following chemical composition in mass percent: C: 0.10-0.17%, Si: 0.2-0.7%, Mn: 1.8-2.8%, Cr: 0.3-0.9%, Nb: 0.02-0.07%, Ti: 0.02-0.07%, B: 0.002-0.005%, P≦0.02%, S≦0.005%, Al: 0.02-0.05%, and may further contain one or two of Mo and V, with Cr + Mo + Ti + Nb + V≦1.1%, the balance being Fe and other unavoidable impurities. Preferably, the C content is 0.055-0.110%. Preferably, the Si content is 0.15-0.45%. Preferably, the Mn content is 1.6 to 2.0%. Preferably, the Cr content is 0.5 to 0.7%. Preferably, the Ti content is 0.02 to 0.05%. Preferably, the Nb content is 0.02 to 0.05%. Preferably, the microstructure of the dual-phase steel is a uniformly distributed dual-phase structure of ferrite and martensite with an average grain size of 1 to 3 μm. Preferably, the dual-phase steel has a yield strength of 900 to 1120 MPa (e.g., 902 to 1114 MPa), a tensile strength of 1260 to 1450 MPa (e.g., 1264 to 1443 MPa), an elongation of 7.0 to 10.0% (e.g., 7.0 to 9.8%), and a strength-ductility product of 9.0 to 12.5 GPa (e.g., 9.5 to 12.1 GPa%).

[0044] In one embodiment, the dual phase stainless steel according to any of the embodiments herein is obtained by the following process: 1) Smelting and Casting Smelting according to the above chemical composition and casting into slabs; 2) Hot rolling and coiling Hot rolling finish temperature ≧ A r3 ;The coiling temperature is 550~680℃; 3) Cold rolling Cold rolling reduction is 40-85%; 4) Rapid thermal processing The cold-rolled steel sheet is rapidly heated to 750-845°C, and the rapid heating can be one-stage or two-stage. When one-stage rapid heating is used, the heating rate is 50-500°C / s. When two-stage rapid heating is used, the first stage is heated from room temperature to 550-650°C at a heating rate of 15-500°C / s, and the second stage is heated from 550-650°C to 750-845°C at a heating rate of 30-500°C / s (e.g., 50-500°C / s). Then, soaking is performed, with the soaking temperature being 750-845°C and the soaking time being 10-60 seconds. After the soaking is completed, the material is gradually cooled to 670-770°C at a cooling rate of 5-15°C / s, and then rapidly cooled from 670-770°C to room temperature at a cooling rate of 50-200°C / s; Alternatively, the material is rapidly cooled from 670 to 770°C to 230 to 280°C at a cooling rate of 50 to 200°C / s, and overaging treatment is performed in this temperature range. The overaging treatment time is 200 seconds or less, for example, 175 seconds or less; and finally, the material is cooled to room temperature at a cooling rate of 30 to 50°C / s.

[0045] Preferably, in step 2), the coiling temperature is 580 to 650°C. Preferably, in step 3), the cold rolling reduction is 60 to 80%.

[0046] Preferably, in step 4), the rapid thermal processing takes a total of 41 to 297 seconds, for example 41 to 295 seconds.

[0047] Preferably, in step 4), when the rapid heating is performed by one-stage heating, the heating rate is 50 to 300° C. / s.

[0048] Preferably, in step 4), the rapid heating is performed in two stages, with the first stage heating from room temperature to 550-650°C at a heating rate of 15-300°C / s, and the second stage heating from 550-650°C to 750-845°C at a heating rate of 50-300°C / s.

[0049] Preferably, in step 4), the rapid heating is performed in two stages, with the first stage heating from room temperature to 550-650°C at a heating rate of 50-300°C / s, and the second stage heating from 550-650°C to 750-845°C at a heating rate of 80-300°C / s.

[0050] Preferably, in step 4), the soaking time is 10 to 40 seconds. Preferably, in step 4), the rapid cooling rate is 50 to 150° C. / s.

[0051] Preferably, the overaging time is set to 20 to 200 seconds or 20 to 175 seconds. In one embodiment, the hot-dip galvanized dual-phase stainless steel has the following chemical compositions, in mass percent: C: 0.05-0.12%, Si: 0.1-0.5%, Mn: 1.4-2.2%, Nb: 0.02-0.04%, Ti: 0.03-0.05%, P≦0.015%, S≦0.003%, and Al: 0.02-0.055%, and may further contain one or two of Cr, Mo, and V, where Cr+Mo+Ti+Nb+V≦0.5%, with the balance being Fe and other unavoidable impurities. Preferably, the C content is 0.05-0.10%. Preferably, the Si content is 0.15-0.45%. Preferably, the Mn content is 1.6-2.0%. Preferably, Cr≦0.4%. Preferably, Mo≦0.15%. Preferably, V≦0.05%. Preferably, the metallographic structure of the hot-dip galvanized dual-phase steel is a dual-phase structure of uniformly distributed ferrite and martensite, and has an average grain size of 1 to 3 μm. Preferably, the hot-dip galvanized dual-phase steel has a yield strength of 540 to 710 MPa (e.g., 543 to 709 MPa), a tensile strength of 980 to 1110 MPa (e.g., 989 to 1108 MPa), an elongation of 11.0 to 15.5% (e.g., 11.9 to 15.2%), and a strength-ductility product of 12.0 to 15.5 GPa (e.g., 12.2 to 15.2 GPa%).

[0052] In one embodiment, the hot-dip galvanized dual-phase stainless steel has a tensile strength of ≥ 1180 MPa and preferably has the following chemical composition in mass percent: C: 0.05-0.10%, Si: 0.15-0.45%, Mn: 2.0-2.5%, Nb: 0.02-0.04%, Ti: 0.02-0.04%, Cr: 0.3-0.6%, Mo: 0.2-0.4%, P≦0.015%, S≦0.005%, Al: 0.02-0.05%, with the balance being Fe and other unavoidable impurities. Preferably, the C content is 0.07-0.10%. Preferably, the Si content is 0.25-0.35%. Preferably, the Mn content is 2.2-2.35%. Preferably, the Cr content is 0.35-0.50%. Preferably, the Mo content is 0.25% to 0.35%. Preferably, the metallographic structure of the hot-dip galvanized dual-phase steel is a dual-phase structure of uniformly distributed ferrite and martensite, and the average grain size is 1 to 3 μm. Preferably, the hot-dip galvanized dual-phase steel has a yield strength of 660 to 860 MPa (e.g., 665 to 854 MPa), a tensile strength of 1180 to 1290 MPa (e.g., 1182 to 1285 MPa), an elongation of 11.0 to 13.0% (e.g., 11.5 to 12.8%), and a strength-ductility product of 13.0 to 15.5 GPa% (e.g., 13.6 to 15.2 GPa%).

[0053] In one embodiment, the hot-dip galvanized dual-phase stainless steel has a tensile strength of ≥ 1280 MPa and preferably has the following chemical composition in mass percent: C: 0.10-0.17%, Si: 0.2-0.7%, Mn: 1.8-2.8%, Cr: 0.3-0.9%, Nb: 0.02-0.07%, Ti: 0.02-0.07%, B: 0.002-0.005%, P≦0.02%, S≦0.005%, and Al: 0.02-0.05%, and may further contain one or two of Mo and V, with Cr + Mo + Ti + Nb + V≦1.1%, with the balance being Fe and other unavoidable impurities. Preferably, the C content is 0.10-0.15%. Preferably, the Si content is 0.2-0.5%. Preferably, the Mn content is 2.0 to 2.6%. Preferably, the Cr content is 0.5 to 0.7%. Preferably, the Ti content is 0.02 to 0.05%. Preferably, the Nb content is 0.02 to 0.05%. Preferably, Mo≦0.15%. Preferably, V≦0.055%. Preferably, the metallographic structure of the hot-dip galvanized dual-phase steel is a uniformly distributed dual-phase structure of ferrite and martensite, and the average grain size is 1 to 3 μm. Preferably, the hot-dip galvanized dual-phase stainless steel has a yield strength of 960 to 1110 MPa (e.g., 963 to 1109 MPa), a tensile strength of 1280 to 1450 MPa (e.g., 1282 to 1443 MPa), an elongation of 7.0 to 9.0% (e.g., 7.1 to 8.8%), and a strength-ductility product of 10.0 to 12.0 GPa% (e.g., 10.0 to 11.8 GPa%).

[0054] In one embodiment, the duplex steel according to any of the embodiments of the present invention is slowly cooled to 670-770°C at a cooling rate of 5-15°C / s upon completion of soaking, then rapidly cooled to 460-470°C at a cooling rate of 50-150°C / s, and then immersed in a zinc kettle for hot-dip galvanization, thereby obtaining the hot-dip galvanized duplex steel according to any of the embodiments of the present invention.

[0055] In some of the above aspects, the hot-dip galvanized dual-phase stainless steel according to embodiments of the present invention is obtained by the following process: A) Smelting and Casting Smelting according to the above chemical composition and casting into slabs; B) Hot rolling and coiling Hot rolling finish temperature ≧ A r3 , the coiling temperature is 550-680°C; C) Cold rolling Cold rolling reduction is 40-85%; D) Rapid heat treatment, hot dip galvanizing The cold-rolled steel sheet is rapidly heated to 750-845°C, and the rapid heating can be one-stage or two-stage. When one-stage rapid heating is used, the heating rate is 50-500°C / s. When two-stage rapid heating is used, the first stage is heated from room temperature to 550-650°C at a heating rate of 15-500°C / s, and the second stage is heated from 550-650°C to 750-845°C at a heating rate of 30-500°C / s (e.g., 50-500°C / s). Then, soaking is performed, with a soaking temperature of 750-845°C and a soaking time of 10-60 seconds. After the soaking is complete, the steel is cooled slowly to 670-770°C at a cooling rate of 5-15°C / s, then rapidly cooled to 460-470°C at a cooling rate of 50-150°C / s, and then immersed in a zinc kettle for hot-dip galvanizing; After hot-dip galvanizing, the product is quenched to room temperature at a cooling rate of 30-150°C / s to obtain hot-dip pure galvanized GI products; or After hot-dip galvanizing, the alloying treatment is carried out by heating to 480-550°C at a heating rate of 30-200°C / s, and the alloying treatment time is 10-20s; after the alloying treatment, it is quenched to room temperature at a cooling rate of 30-250°C / s to obtain the alloyed hot-dip galvanized GA product.

[0056] Preferably, in step D), the rapid heat treatment and hot dip galvanizing take a total of 30 to 142 seconds.

[0057] Preferably, in step B), the coiling temperature is 580 to 650°C. Preferably, in step C), the cold rolling reduction is 60 to 80%.

[0058] Preferably, in step D), when the rapid heating is performed by one-stage heating, the heating rate is 50-300° C. / s.

[0059] Preferably, in step D), the rapid heating is performed in two stages, with the first stage heating from room temperature to 550-650°C at a heating rate of 15-300°C / s, and the second stage heating from 550-650°C to 750-845°C at a heating rate of 50-300°C / s.

[0060] Preferably, in step D), the rapid heating is performed in two stages, with the first stage heating from room temperature to 550-650°C at a heating rate of 30-300°C / s, and the second stage heating from 550-650°C to 750-845°C at a heating rate of 80-300°C / s.

[0061] Preferably, in step D), the final temperature of the rapid heating is 790-845°C. In one embodiment, for example in the manufacturing process of hot-dip galvanized dual-phase stainless steel with a tensile strength of ≥ 1280 MPa, the final temperature of the rapid heating is 790-830°C.

[0062] Preferably, in the soaking process of step D), the steel sheet is heated to a target temperature in the two-phase region of austenite and ferrite, and then the temperature is maintained constant to perform soaking.

[0063] Preferably, in the soaking process of step D), the steel sheet is subjected to a small temperature increase or decrease during the soaking period, with the temperature after the increase being 845°C or less and the temperature after the decrease being 750°C or more.

[0064] Preferably, the soaking time is set to 10 to 40 seconds. Preferably, in step D), after the alloying treatment of the steel sheet, it is quenched to room temperature at a cooling rate of 30 to 200°C / s to obtain a galvannealed GA product.

[0065] In the steel composition and process design of this invention: Carbon: Carbon is the most commonly used strengthening element in steel. Carbon increases the strength of steel and reduces its plasticity. However, cold-pressed steel sheets require low yield strength, high and uniform elongation, and high total elongation. Therefore, the carbon content should not be too high. Carbon generally exists in two phases in steel: ferrite and cementite. The carbon content has a significant effect on the mechanical properties of steel. As the carbon content increases, the number of strengthening phases such as pearlite increases, significantly increasing the strength and hardness of the steel, but significantly reducing its plasticity and toughness. If the carbon content is too high, a significant network of carbides will form in the steel. The presence of this network of carbides significantly reduces the strength, plasticity, and toughness. This significantly weakens the strengthening effect of increasing the carbon content in steel and also impairs the steel's processing capabilities. Therefore, to ensure strength, the carbon content should be kept as low as possible.

[0066] In dual-phase stainless steels, carbon primarily affects the volume fraction of austenite formed during the annealing process. During the austenite formation process, the diffusion of carbon into austenite or ferrite plays a key role in controlling the growth of austenite grains. As the carbon content or critical heating temperature increases, the austenite volume fraction increases, and the martensite phase formed after cooling increases, resulting in increased strength and reduced plasticity. Because increasing the carbon content increases the manufacturing difficulty of pre-heat treatment processes, the present invention comprehensively considers the strength and toughness of the material, the characteristics of rapid heat treatment, and the change in carbon microstructure performance in the final product. Therefore, the carbon content in this invention is set to a range of 0.05 to 0.17%.

[0067] Mn: Manganese forms a solid solution with iron, further increasing the strength and hardness of ferrite and austenite in carbon steel. It can also allow steel to obtain relatively fine, high-strength pearlite during the cooling process after hot rolling. The pearlite content also increases with increasing Mn content. Manganese is also a carbide-forming element, and manganese carbide can dissolve into cementite, thereby indirectly increasing the strength of pearlite. Manganese can also significantly improve the hardenability of steel, further increasing its strength.

[0068] In duplex stainless steels, manganese is one of the elements that significantly influences the austenite formation kinetics during critical region annealing. Manganese mainly affects the transformation and growth of austenite into ferrite, as well as the final equilibrium between austenite and ferrite. Because the diffusion rate of manganese in austenite is much slower than that in ferrite, austenite controlled by manganese diffusion takes longer to grow, and it takes longer for manganese to reach a uniform distribution within the austenite. When rapidly heating in the critical region, if the holding time is too short, manganese will not reach a uniform distribution within the austenite, and if the cooling rate is insufficient, a uniform martensite-austenite island (also known as "Martensite Island") structure will not be obtained. In dual-phase steels produced using rapid heating processes (such as rapid induction heating or rapid direct heating and water quenching continuous annealing production lines), the manganese content is generally high and there is a large amount of pearlite in the matrix. This causes the austenite that is formed first in the localized areas to have a high manganese content immediately after formation, ensuring the hardenability of the island austenite. After cooling, it is easy to obtain a uniform island martensite-austenite island (also known as "Mao Island") structure and uniform performance. In addition, manganese expands the γ phase region, and the A c1 and A c3Because the temperature is reduced, manganese-containing steel can achieve a higher martensite volume fraction than low-carbon steel under similar heat treatment conditions. However, as the manganese content increases, the grains in the steel tend to coarsen, the steel's sensitivity to overheating increases, and white spots are more likely to form in carbon steel if the cooling after melt casting and rolling is inappropriate. Increasing the manganese content increases the manufacturing difficulty of the processes prior to heat treatment. Taking these factors into consideration, the present invention specifies a manganese content range of 1.4 to 2.8%.

[0069] Si: Silicon forms a solid solution in ferrite or austenite, increasing the yield strength and tensile strength of steel. Silicon is a preferred element in alloy steels because it increases the deformation hardening rate during cold working. Silicon exhibits significant enrichment along the grain boundary cross-section of silicon-manganese steel. Its segregation at the grain boundary slows the distribution of carbon and phosphorus along the grain boundary cross-section and improves the embrittlement of the grain boundary. Silicon can increase the strength, hardness, and wear resistance of steel, without significantly reducing its plasticity within a certain range. Silicon has strong deoxidizing ability and is commonly used as a deoxidizer during steelmaking. Silicon can also improve the flowability of steel liquors, so silicon is commonly included in steel. However, if the silicon content in steel is too high, its plasticity and toughness will be significantly reduced.

[0070] For dual-phase stainless steels, silicon has no significant effect on the growth rate of austenite, but it does have a significant effect on the formation and distribution of austenite. Increasing the silicon content increases the manufacturing difficulty of high-strength steels in the pre-heat treatment process. In the present invention, the silicon content needs to be controlled to reduce the manufacturing difficulty in the pre-heat treatment process, reduce costs, and improve weldability. Taking these factors into consideration, the present invention specifies a silicon content within the range of 0.1 to 0.7%.

[0071] Nb: Nb is a carbide and nitride former and can meet these requirements even at relatively low concentrations. At room temperature, most of its content in steel exists in the form of carbides, nitrides, and carbon nitrides, with some dissolving in ferrite. Adding Nb inhibits austenite grain growth and raises the grain coarsening temperature of steel. Nb forms sufficiently stable NbC with carbon, so adding trace amounts of Nb to steel can enhance the matrix strength by utilizing its precipitation strengthening effect. Nb has a significant inhibitory effect on the growth of ferrite recrystallization and austenite grain growth, resulting in grain refinement and improved steel strength and toughness. Nb also influences the mobility of crystal boundaries, phase transformation, and carbide formation. Nb increases the carbon content in retained austenite, inhibits the formation of bainite, and promotes martensite nucleation, resulting in a dispersed martensite structure and enhanced retained austenite stability. The addition of Nb increases the strength of dual-phase steel, resulting in a dual-phase steel with consistent strength even at low martensite and low C content, thereby enhancing the strength and toughness of the dual-phase steel. At the same time, another advantage of adding Nb is that it increases the strength of steel over a wide annealing temperature range. In the present invention, Nb is a necessary addition element, and its addition amount should not be excessive, considering factors such as increased costs. In one embodiment, the dual-phase steel or hot-dip galvanized dual-phase steel has an Nb content of ≦0.07%, e.g., ≦0.04%. In one embodiment, the dual-phase steel or hot-dip galvanized dual-phase steel contains 0.02-0.07% Nb. In one embodiment, the dual-phase steel or hot-dip galvanized dual-phase steel contains 0.02-0.07% Nb. In one embodiment, the dual-phase steel or hot-dip galvanized dual-phase steel contains 0.02-0.04% Nb.

[0072] Ti: Ti is a microalloying element and a closed gamma-region ferrite former, which can increase the critical point of steel. In steel, Ti can form stable TiC with C, but TiC is very difficult to dissolve within the austenitizing temperature range in typical heat treatments. TiC particles refine austenite grains, increasing the opportunity for nucleation of new phases during austenite decomposition and transformation, accelerating the transformation of austenite. Furthermore, Ti can form TiC and TiN precipitates with C and N, which are more stable than Nb and V carbon nitrides. This significantly reduces the diffusion rate of C in austenite, significantly slowing the austenite formation rate. The formed carbon nitrides precipitate in the matrix and become anchored at the austenite grain boundaries, inhibiting austenite grain growth. During the cooling process, the precipitated TiC provides precipitation strengthening. During tempering, Ti slows the diffusion of C into the α phase, slowing the precipitation and growth of carbides such as Fe and Mn, improving tempering stability, and also performs secondary hardening through the precipitation of TiC. Microalloying with Ti enhances the high-temperature strength of steel. Adding trace amounts of Ti to steel: first, reduces the carbon equivalent content while simultaneously increasing strength and improving the weldability of the steel; second, fixes impurities such as oxygen, nitrogen, and sulfur, improving the weldability of the steel; and third, its microscopic properties, such as the insolubility of TiN at high temperatures, prevent grain coarsening in the heat-affected zone, increasing toughness in the heat-affected zone and improving the weldability of the steel. In the present invention, Ti is a necessary additive, but its amount should not be too high due to cost and other factors. In one embodiment, the Ti content is ≦0.07%. In one embodiment, the Ti content is ≦0.05%.

[0073] Cr: Chromium's primary function in steel is to improve its hardenability, imparting good overall mechanical properties to the steel after quenching and tempering. Chromium forms a continuous solid solution with iron, reducing the austenite phase region. Chromium forms numerous carbides with carbon and has a stronger affinity for carbon than iron and manganese. Chromium can form the intermetallic compound σ phase (FeCr) with iron, reducing the carbon concentration in pearlite and the ultimate solubility of carbon in austenite. Chromium slows the decomposition rate of austenite, significantly improving the hardenability of steel. However, it also tends to increase the temper embrittlement of steel. Chromium can increase the strength and hardness of steel, but this effect becomes more pronounced when other alloying elements are added. Because chromium increases the hardenability of steel during air cooling, it has a negative effect on the weldability of steel. However, if the chromium content is less than 0.3%, the negative effect on weldability is negligible. If the content exceeds this limit, defects such as cracks and slag are likely to occur during welding. When Cr is present together with other alloying elements (e.g., coexistence with V), the adverse effect of Cr on weldability is significantly reduced. For example, when elements such as Cr, Mo, and V are present together in a steel, even if the Cr content reaches 1.7%, there is no significant adverse effect on the weldability of the steel. In the present invention, chromium is a preferred but unnecessary addition element, and considering factors such as increased cost, the addition amount should not be too high. In one embodiment, the Cr content is ≦0.9%, for example ≦0.6% or ≦0.4%. In one embodiment, the duplex stainless steel or hot-dip galvanized duplex stainless steel contains 0.2-0.6% or 0.3-0.9% Cr.

[0074] Mo: Molybdenum can inhibit the spontaneous diffusion of iron and the diffusion rate of other elements. The atomic radius of Mo is larger than that of α-Fe atoms. When Mo dissolves in α-ferrite solid solution, it causes a strong lattice distortion in the solid solution. At the same time, Mo increases the interstitial bond attraction, thereby raising the recrystallization temperature of α-ferrite. Mo has a significant strengthening effect in pearlitic, ferritic, martensitic, and even high-alloy austenitic steels. The beneficial effect of Mo in steel is determined by its interaction with other alloying elements. The addition of strong carbide-forming elements V, Nb, and Ti to steel further enhances the solid-solution strengthening effect of Mo. This is because when strong carbide-forming elements combine with C to form stable carbides, it promotes the effective dissolution of Mo into solid solution, further enhancing the heat strengthening properties of steel. The addition of Mo also improves the hardenability of steel. Mo inhibits the transformation of the pearlite phase and accelerates the transformation of the intermediate-temperature phase. This allows Mo-containing steels to form a certain amount of bainite and eliminate the formation of ferrite even at high cooling rates. This is one of the reasons why Mo has a beneficial effect on the heat strengthening of low-alloy heat-resistant steels. Mo also significantly reduces the tendency of steels to become hot brittle and slows the rate of pearlite spheroidization. A Mo content of 0.15% or less does not adversely affect the weldability of the steel. In the present invention, molybdenum is a preferred but unnecessary additive element, and its addition amount should not be excessive due to cost and other factors. In one embodiment, the Mo content is ≦0.4%, e.g., ≦0.15%. In one embodiment, the duplex steel or hot-dip galvanized duplex steel contains 0.1-0.4% Mo.

[0075] V: V is a ferrite stabilizing element and a strong carbide former, so it has a strong grain refining effect and can densify the steel structure. Adding V to steel can simultaneously improve the strength, plasticity, and toughness of the steel. Vanadium can further increase the high-temperature strength of structural steel. Vanadium cannot improve hardenability. By adding trace amounts of the microalloy element V to steel, even if the carbon equivalent of the steel is low, the dispersed precipitation of carbon and nitride materials (less than 5 nm in size) and the solid solution of V refines the grains, greatly improving the strength and toughness of the steel, especially low-temperature toughness, and providing the steel with good usability and other usable properties. Adding trace amounts of V to steel: first, it reduces the carbon equivalent content while simultaneously increasing strength and improving the weldability of the steel; second, it fixes impurities such as oxygen, nitrogen, and sulfur, improving the weldability of the steel; and third, its microscopic properties, such as the insolubility of V(CN) at high temperatures, prevent grain coarsening in the heat-affected zone, thereby increasing toughness in the heat-affected zone and improving the weldability of the steel. In the present invention, minor alloying elements are preferred but not necessary, and their addition amount should not be too large due to factors such as increased cost. In one embodiment, V≦0.05% in the duplex steel or hot-dip galvanized duplex steel of the present invention.

[0076] B: The content of boron in steel is extremely low, and its main function is to increase the hardenability of steel. Its effect is much greater than that of Cr, Mn, and other alloying elements. Therefore, the use of trace amounts of boron can significantly reduce the need for other precious metals (such as nickel, chromium, and molybdenum). For this purpose, its content is generally set within the range of 0.001-0.005%. It can replace 1.6% nickel, 0.3% chromium, or 0.2% molybdenum. When substituting boron for molybdenum, it is important to note that while molybdenum can prevent or reduce temper embrittlement, boron also has a slight tendency to increase temper embrittlement, so boron should not be used to completely replace molybdenum. Boron has a strong affinity with nitrogen and oxygen, and adding 0.007% boron to boiling steel can eliminate the aging phenomenon. However, only B that exists in a solid solution state has a beneficial effect on the hardenability of steel; B that exists in a compound state has no effect on the hardenability of steel. Therefore, when increasing hardenability with B, it is necessary to consider fixing C and N.

[0077] The present invention uses a rapid heat treatment method (including rapid heating, short-term temperature holding, and rapid cooling processes) to precisely control the recovery, recrystallization, and phase transformation processes of the deformation structure of roll-hardened strip steel during the heat treatment process, ultimately achieving a fine, uniform, and dispersedly distributed structure and good strength and plasticity composition.

[0078] The specific principles are as follows: Different heating rates are used for different temperature stages during the heating process. Since the recovery of deformation structure mainly occurs in the low-temperature stage, a relatively low heating rate is used to reduce energy consumption; since the recrystallization of different phase structures and grain growth mainly occurs in the high-temperature stage, a relatively high heating rate and short soaking time are used to shorten the structure residence time in the high-temperature section, ensuring grain refinement. Controlling the heating rate during the heating process suppresses the recovery of deformation structure and the ferrite recrystallization process, overlapping the recrystallization process and the austenite phase transformation process, increasing the nucleation points for recrystallized grains and austenite grains, ultimately resulting in grain refinement. Rapid heating, short heating times, and rapid cooling shorten the time for grain growth in the material during the high-temperature process, ensuring a fine and uniformly distributed grain structure.

[0079] The heat treatment process disclosed in Chinese patent application CN106811698B does not involve staged treatment throughout the entire heating process, and the heating rate used in the heating process is 20-60°C / s, which is a medium heating rate. Therefore, it is realized by heating technology based on a conventional continuous annealing system, and it is not possible to control the structural changes of the material over a wide range according to the requirements.

[0080] The heat treatment process disclosed in Chinese patent application CN107794357B and US patent application US2019 / 0153558A1 involves a divided heating process: first, heating to 300-500°C at a heating rate of 1-10°C / s, then heating to 850-950°C in the single-phase austenite region at a heating rate of 100-500°C / s, holding at that temperature for less than 5 seconds, and then water quenching to room temperature. This treatment method requires the steel plate to be heated to the high-temperature region of single-phase austenite, which increases the high-temperature resistance requirements of the equipment and makes manufacturing more difficult. At the same time, the use of water quenching allows for a very fast cooling rate, which significantly reduces the time for grain structure growth in the high-temperature region during the entire heat treatment process. However, this inevitably results in uneven distribution of alloying elements in the final product, resulting in uneven and unstable microstructural performance. A cooling rate that is too fast can also cause problems such as poor plate shape and surface oxidation.

[0081] By comprehensively controlling the entire heat treatment process, including rapid heating (controlling the heating rate in sections), short-time soaking, and rapid cooling, it is possible to precisely control the optimal grain size, uniform distribution of alloying elements, and each phase structure, ultimately resulting in a product with the optimal strength and toughness combination.

[0082] The ferrite-martensite dual-phase structure obtained through the rapid heat treatment method of the present invention has an average grain size of 1-5 μm, which is more than 50% smaller than the grain size of products produced using conventional technology. The refined grain size increases the strength of the material, while at the same time providing good plasticity and toughness, improving the material's usability. Furthermore, the ferrite-martensite structure obtained through the present invention has a variety of forms, including blocky, stripe-like, and granular, and the distribution of the phase structure is more uniform, resulting in even better strength and plasticity.

[0083] The rapid heat treatment manufacturing method for low carbon low alloy dual phase steel with tensile strength ≥ 980 MPa according to the present invention includes the following steps: 1) Smelting and Casting Smelting according to the above chemical composition and casting into slabs; 2) Hot rolling and coiling Hot rolling finish temperature ≧ A r3 , the coiling temperature is 550-680°C; 3) Cold rolling Cold rolling reduction ratio is 40-85% to obtain rolled hardened steel strip or steel plate; 4) Rapid thermal processing a) Rapid heating The cold-rolled steel strip or steel plate is rapidly heated from room temperature to a target temperature of 750 to 845°C in the austenite-ferrite two-phase region, and the rapid heating is performed in one or two stages; When using one-stage rapid heating, the heating rate should be 50~500℃ / s. When two-stage rapid heating is used, the first stage is heated from room temperature to 550-650°C at a heating rate of 15-500°C / s, and the second stage is heated from 550-650°C to 750-845°C at a heating rate of 30-500°C / s (e.g., 50-500°C / s); b) Soaking The soaking is performed at 750-845°C, which is the end temperature of the two-phase region of austenite and ferrite, for a soaking time of 10-60 seconds; c) cooling After the soaking of the steel strip or steel plate is completed, it is slowly cooled to 670-770°C at a cooling rate of 5-15°C / s; then, it is rapidly cooled from 670-770°C to room temperature at a cooling rate of 50-200°C / s; Alternatively, overaging treatment is performed by rapidly cooling from 670 to 770°C to 230 to 280°C at a cooling rate of 50 to 200°C / s, and the overaging treatment time is set to 200 seconds or less, for example, 175 seconds or less. After overaging treatment, the material is cooled to room temperature at a cooling rate of 30 to 50°C / s.

[0084] Preferably, in step 4), the rapid thermal processing takes a total of 41 to 297 seconds, for example 41 to 295 seconds.

[0085] Preferably, in step 2), the coiling temperature is 580 to 650°C. Preferably, in step 3), the cold rolling reduction is 60 to 80%.

[0086] Preferably, in step 4), when the rapid heating is performed by one-stage heating, the heating rate is 50 to 300° C. / s.

[0087] Preferably, in step 4), the rapid heating is performed in two stages, with the first stage heating from room temperature to 550-650°C at a heating rate of 15-300°C / s, and the second stage heating from 550-650°C to 750-845°C at a heating rate of 50-300°C / s.

[0088] Preferably, in step 4), the rapid heating is performed in two stages, with the first stage heating from room temperature to 550-650°C at a heating rate of 50-300°C / s, and the second stage heating from 550-650°C to 750-845°C at a heating rate of 80-300°C / s.

[0089] Preferably, in step 4), the final temperature of the rapid heating is 790 to 845°C. In one embodiment, for example, in an embodiment for producing a dual-phase stainless steel having a tensile strength of ≥ 1180 MPa according to the present invention, the final temperature of the rapid heating may be 790 to 830°C.

[0090] Preferably, in step 4), the rapid cooling rate of the steel strip or steel plate is 50 to 150°C / s.

[0091] Preferably, in the soaking process of step 4), the steel strip or steel plate is heated to a target temperature in the austenite-ferrite two-phase region, and then the temperature is maintained constant to perform soaking.

[0092] Preferably, in the soaking process of step 4), the steel strip or steel plate is subjected to a small temperature increase or decrease during the soaking period, with the temperature after the increase being 845°C or less and the temperature after the decrease being 750°C or more.

[0093] Preferably, in step 4), the soaking time is 10 to 40 seconds. Preferably, the overaging time is set to 20 to 200 seconds or 20 to 175 seconds.

[0094] The rapid heat treatment hot-dip galvanized manufacturing method for low-carbon low-alloy hot-dip galvanized dual-phase steel with a tensile strength of ≥ 980 MPa according to the present invention includes the following steps: A) Smelting and Casting Smelting according to the above chemical composition and casting into slabs; B) Hot rolling and coiling Hot rolling finish temperature ≧ A r3 , the coiling temperature is 550-680°C; C) Cold rolling The cold rolling reduction ratio is 40-85%, and after cold rolling, hardened strip or steel plate is obtained; D) Rapid heat treatment, hot dip galvanizing a) Rapid heating The cold-rolled steel strip or steel plate is rapidly heated from room temperature to a target temperature of 750 to 845°C, which is in the austenite-ferrite two-phase region; the rapid heating may be performed in one or two stages; When using one-stage rapid heating, the heating rate should be 50~500℃ / s; When two-stage rapid heating is used, the first stage is heated from room temperature to 550-650°C at a heating rate of 15-500°C / s, and the second stage is heated from 550-650°C to 750-845°C at a heating rate of 30-500°C / s (e.g., 50-500°C / s); b) Soaking The target temperature for the austenite-ferrite two-phase region is 750-845°C, and the soaking time is 10-60 seconds. c) Cooling and hot-dip galvanizing After the steel strip or steel plate has been soaked, it is slowly cooled to 670-770°C at a cooling rate of 5-15°C / s; then, it is rapidly cooled to 460-470°C at a cooling rate of 50-150°C / s, and the steel strip or steel plate is immersed in a zinc pot for hot-dip galvanizing; d) After hot-dip galvanizing the steel strip or steel plate, it is quenched to room temperature at a cooling rate of 50-150°C / s to obtain hot-dip pure galvanized GI products; or After hot-dip galvanizing the steel strip or steel plate, the alloying treatment is carried out by heating it to 480-550°C at a heating rate of 30-200°C / s, and the alloying treatment time is 10-20 seconds; after the alloying treatment, it is rapidly cooled to room temperature at a cooling rate of 30-250°C / s to obtain the alloyed hot-dip galvanized GA product.

[0095] Preferably, in step D), the rapid heat treatment and hot dip galvanizing take a total of 30 to 142 seconds.

[0096] Preferably, in step B), the coiling temperature is 580 to 650°C. Preferably, in step C), the cold rolling reduction is 60 to 80%.

[0097] Preferably, in step D), when the rapid heating is performed by one-stage heating, the heating rate is 50-300° C. / s.

[0098] Preferably, in step D), the rapid heating is performed in two stages, with the first stage heating from room temperature to 550-650°C at a heating rate of 15-300°C / s, and the second stage heating from 550-650°C to 750-845°C at a heating rate of 50-300°C / s.

[0099] Preferably, in step D), the rapid heating is performed in two stages, with the first stage heating from room temperature to 550-650°C at a heating rate of 30-300°C / s, and the second stage heating from 550-650°C to 750-845°C at a heating rate of 80-300°C / s.

[0100] Preferably, in step D), the final temperature of the rapid heating is 790-845°C. In one embodiment, for example, in the production of hot-dip galvanized dual-phase stainless steel having a tensile strength of ≥ 1280 MPa, the final temperature of the rapid heating is 790-830°C.

[0101] Preferably, in the soaking process of step D), the steel strip or steel plate is heated to the end temperature of the austenite-ferrite two-phase region, and then the temperature is maintained constant to perform soaking.

[0102] Preferably, in the soaking process of step D), the steel strip or steel plate is subjected to a small temperature increase or decrease during the soaking period, with the temperature after the increase being 845°C or less and the temperature after the decrease being 750°C or more.

[0103] Preferably, the soaking time is set to 10 to 40 seconds. Preferably, in step D), after the alloying treatment of the strip or steel plate, it is quenched to room temperature at a cooling rate of 30 to 200°C / s to obtain a galvannealed GA product. In one embodiment, for example in the production of a hot-dip galvanized dual-phase steel having a tensile strength of 1280 MPa or more, after the alloying treatment of the strip or steel plate, it is quenched to room temperature at a cooling rate of 30 to 100°C / s to obtain a galvannealed GA product.

[0104] In the rapid heat treatment manufacturing method of the 980 MPa class low carbon low alloy dual phase steel according to the present invention, 1. Heating rate control The recrystallization kinetics during continuous heating can be quantitatively described by a relationship that is affected by the heating rate. The functional relationship between the recrystallized volume fraction of ferrite and the temperature T during continuous heating is as follows:

[0105]

number

[0106] where X(T) is the recrystallized volume fraction of ferrite; n is the Avrami exponent, which is related to the phase transformation mechanism and depends on the decay period of the recrystallization nucleation rate, and is generally in the range of 1 to 4; T is the heat treatment temperature; T star is the recrystallization onset temperature; β is the heating rate; b is a constant at a given isothermal temperature. If the isothermal temperature changes, b changes accordingly, and b(T) is given by the following equation:

[0107]

number

[0108] As can be seen from the above equation and the related experimental data, the recrystallization onset temperature (T star ) and the end temperature (T fin When the heating rate is above 50°C / s, the austenite phase transformation and recrystallization process overlap, and the recrystallization temperature rises to the two-phase region temperature. The faster the heating rate, the higher the ferrite recrystallization temperature.

[0109] In conventional heat treatment processes, due to the limitations of heating technology, the heating rate is always slow. Under these conditions, recovery, recrystallization, and grain growth occur sequentially in the deformed matrix, followed by the phase transformation from ferrite to austenite. The nucleation points of the austenite phase transformation are mainly located at the boundaries of the grown ferrite crystals, resulting in a low nucleation rate and a relatively coarse grain structure in the final dual-phase steel.

[0110] Under rapid heating conditions, the ferrite-to-austenite phase transition begins when the recrystallization of the deformed matrix is ​​just completed or not yet complete (not yet fully recovered). The fine grains and large crystal boundary area at the time of just completed or not complete recrystallization significantly increase the nucleation rate of the phase transition, resulting in significantly refined austenite grains. In particular, when the ferrite recrystallization process and the austenite phase transformation process overlap, a large number of crystal defects, such as dislocations, remain in the ferrite crystals, providing a large number of nucleation points for austenite, resulting in explosive austenite nucleation, further refining the austenite grains. These high-density dislocation line defects also serve as pathways for the rapid diffusion of carbon atoms, allowing all austenite grains to rapidly form and grow, resulting in smaller austenite grains and a larger volume fraction.

[0111] The rapid heating process provides a good foundation for the austenite-to-martensite phase transformation during the rapid cooling process. This ultimately results in a final product with a microstructure that has refined grains and a reasonable distribution of elements and phases. Taking into consideration factors such as the effect of grain refinement through rapid heating, production cost, and manufacturability, the present invention specifies a heating rate of 50-500°C / s for single-stage rapid heating and a heating rate of 15-500°C / s for two-stage rapid heating.

[0112] Rapid heating within different temperature ranges has different effects on structural change processes such as material recovery, recrystallization, and grain growth. Therefore, to achieve optimal structural control, the preferred heating rates within different heating temperature ranges also vary: from 20°C to 550-650°C, the heating rate has the greatest effect on the recovery process, so the heating rate should be 15-300°C / s, more preferably 50-300°C / s; from the heating temperature of 550-650°C to the austenitizing temperature of 750-845°C; the heating rate has the greatest effect on the nucleation rate and grain growth process, so the heating rate should be controlled to 50-300°C / s, more preferably 80-300°C / s.

[0113] 2. Control of soaking temperature The selection of the soaking temperature must be combined with the control of the microstructural change process of the material at each temperature stage of the heating process, and at the same time, the microstructural change and control during the subsequent quenching process must be considered, so that the desired microstructural structure and distribution can be finally achieved.

[0114] The soaking temperature usually depends on the C content. In the dual-phase steel of the present invention, the C content is 0.05-0.12%. C1 and A C3 The rapid heat treatment process of the present invention is carried out by heating the steel strip from room temperature to A C1 ~A C3 The rapid heating technique allows a large amount of dislocations to be retained in the insufficiently recrystallized ferrite in the material, providing a larger driving force for nucleation of austenite transformation, and the rapid heat treatment method of the present invention can obtain a finer austenite structure to a greater extent than the conventional continuous annealing process.

[0115] The present invention proposes that the soaking temperature be controlled by first increasing or decreasing the temperature within a certain range; that is, the temperature is increased or decreased gradually during the soaking process, but the soaking temperature must be maintained within a certain range. The advantages are as follows: Rapidly increasing or decreasing the temperature within the two-phase region actually facilitates the rapid phase transition process by further increasing the degree of superheat and supercooling. When the temperature increase / decrease range and rate are both sufficiently large, the repeated phase transitions from ferrite to austenite and from austenite to ferrite further refine the grains, which also has a certain effect on the formation of carbides and the uniform distribution of alloying elements, ultimately resulting in the formation of a finer structure with uniformly distributed alloying elements.

[0116] After cold rolling, dual-phase steels have a large number of uniformly distributed, fine insoluble carbides. These carbides not only serve as austenite nucleation points but also act as mechanical inhibitors against austenite grain growth during heating and soaking, which is beneficial for refining the grain size of alloy steels. However, if the heating temperature is too high, the number of insoluble carbides will decrease significantly and their size will increase, weakening this inhibitory effect and increasing the tendency for grain growth, further reducing the strength of the steel. If the number of insoluble carbides is too high, they will agglomerate, resulting in uneven distribution of local chemical components. If the carbon content in these agglomerates is too high, local overheating will occur. Ideally, a small number of fine, granular insoluble carbides will be uniformly distributed in the steel, preventing abnormal austenite grain growth and increasing the content of each alloying element in the matrix, thereby improving the mechanical properties of the alloy steel, such as strength and toughness.

[0117] The soaking temperature should be selected with the aim of obtaining fine, uniform austenite grains, resulting in a fine martensite structure after cooling. A too high soaking temperature results in coarse austenite grains, and the martensite structure obtained after quenching also becomes coarse, resulting in poor mechanical properties. Furthermore, the amount of retained austenite increases and the amount of martensite decreases, reducing the hardness and wear resistance of the steel. A too low soaking temperature not only reduces the amount of austenite, but also leads to insufficient carbon and alloying element content in the austenite, resulting in uneven distribution of alloying element concentrations in the austenite, significantly reducing the hardenability of the steel and adversely affecting its mechanical properties. The soaking temperature for hypoeutectoid steels should be Ac3 + 30-50°C. For ultra-high-strength steels, the presence of carbide-forming elements inhibits carbide transformation, so a higher soaking temperature is preferred. Considering the above factors comprehensively, the soaking temperature in the present invention is set to 750 to 845°C in order to obtain a more ideal and rational final structure.

[0118] 3. Controlling the soaking time Because the present invention employs rapid heating, the material contains a large number of dislocations in the two-phase region, providing numerous nucleation points for austenite formation and rapid diffusion paths for carbon atoms. This allows austenite to form very quickly. The shorter the soaking time, the shorter the carbon diffusion distance, the greater the carbon concentration difference within the austenite, and the higher the carbon content of the retained austenite. However, if the soaking time is too short, the distribution of alloying elements in the steel will be uneven, resulting in insufficient austenitization. If the soaking time is too long, austenite grains will likely become coarse. The soaking time is also influenced by the carbon and alloying element contents in the steel. Increasing the carbon and alloying element contents in steel not only reduces the thermal conductivity of the steel, but also significantly delays the microstructural transformation of the steel because alloying elements diffuse more slowly than carbon. In this case, the soaking time must be appropriately extended. Therefore, the soaking time must be controlled by carefully combining and comprehensively considering the soaking temperature, quenching, and rapid heating processes, so that an ideal structure and element distribution can be obtained. Therefore, the soaking time in the present invention is set to 10 to 60 seconds.

[0119] 4. Control of rapid cooling rate To obtain the martensite strengthening phase, the cooling rate of the material must be faster than the critical cooling rate during quenching. The critical cooling rate depends mainly on the composition of the material. In this invention, the optimized Si content is 0.1-0.7% and the Mn content is 1.4-2.8%. Mn significantly enhances the hardenability of dual-phase stainless steel, lowering the requirement for the critical cooling rate.

[0120] The cooling rate must be determined by comprehensively considering the microstructural changes and alloy diffusion distribution during the heating and soaking processes. This ultimately results in a reasonable distribution of phases and alloying elements, ultimately resulting in a material structure with ideal phase and element distributions. If the cooling rate is too low, the martensite structure will not be obtained, resulting in reduced strength and insufficient mechanical properties. Furthermore, too high a cooling rate will cause large quenching stresses (i.e., microstructural stresses and thermal stresses), which can lead to poor plate shape and even severe deformation and cracking of the sample. Therefore, the rapid cooling rate in this invention is set to 50-200°C / s.

[0121] 5. Overaging treatment Overaging, performed after conventional heat treatment, primarily improves the overall performance of dual-phase stainless steel by tempering the hardened martensite. Inappropriate overaging temperature and time can induce martensite decomposition, directly deteriorating the mechanical properties of dual-phase stainless steel. The overaging temperature and time must be determined by comprehensively considering the martensite microstructure morphology and distribution, element content and distribution, and the size and distribution of other microstructures. Therefore, overaging control must be determined by comprehensively considering the parameters of the preceding heating, soaking, and cooling processes. In this invention, the overaging temperature range is set to 230–280°C, taking into account the microstructure changes and element distribution during rapid heating, short-time soaking, and rapid cooling. The overaging time is set to 200 seconds or less, typically 20–200 seconds or 20–175 seconds.

[0122] 6. Hot-dip galvanizing and alloying control The present invention improves the rapid heating and quenching process in the conventional continuous annealing hot-dip galvanizing system, thereby realizing a rapid heat treatment hot-dip galvanizing process, which significantly shortens the length of the heating and soaking segments of the annealing furnace (by at least one-third compared to conventional continuous annealing furnaces), improves the production efficiency of the conventional continuous annealing hot-dip galvanizing system, reduces production costs and energy consumption, and significantly reduces the number of furnace rolls in the continuous annealing hot-dip galvanizing furnace, especially the number of furnace rolls in the high-temperature furnace segment, thereby improving the ability to control the surface quality of the steel strip and resulting in strip steel products with high surface quality.

[0123] For high-strength hot-dip galvanized products, the residence time of the steel strip in the high-temperature furnace during the rapid heat treatment process is reduced, which significantly reduces the amount of alloying elements agglomerated on the surface of the high-strength steel strip during the heat treatment process, which is beneficial to improving the weldability of high-strength hot-dip galvanized products, reducing surface coating leakage, and increasing corrosion resistance, thereby increasing the yield rate.

[0124] At the same time, the establishment of a new continuous annealing hot-dip galvanizing system based on rapid heat treatment hot-dip galvanizing process technology achieves the goals of system miniaturization, easy material change, strong adjustability, etc. In terms of product materials, the grain size of the strip steel is refined, the strength of the material is further increased, the alloy cost and manufacturing difficulty of the process before heat treatment hot-dip galvanizing are reduced, and the user performance of material forming, welding, etc. is improved.

[0125] The present invention has the following advantages over the prior art: (1) The present invention uses rapid heat treatment to suppress the recovery of deformation structures and the recrystallization process of ferrite during the heat treatment process, overlapping the recrystallization process and the austenite phase transformation process, increasing the nucleation points of recrystallized grains and austenite grains, shortening the grain growth time, and refining the grains. As a result, the microstructure of the resulting dual-phase steel is a two-phase structure of ferrite and martensite with an average grain size of 1-3 μm, which is more than 50% smaller than the grain size of products produced using conventional technologies (usually 5-10 μm). Furthermore, the ferrite and martensite structures obtained by the present invention have a variety of morphologies, including blocky, stripe, and granular, and the distribution of the two is more uniform, resulting in better strength and plasticity. In addition to increasing the material strength, good plasticity and toughness are also achieved, improving the material's usability.

[0126] (2) Compared with dual-phase steels obtained by conventional heat treatment methods, the dual-phase steels obtained by this invention have a grain size reduced by more than 50%, significantly improving the strength and toughness of the material, with yield strength ≥ 590 MPa and tensile strength ≥ 980 MPa, both of which can be controlled within a narrow range, significantly improving the stability of the mechanical properties of the product. Elongation can be maintained at a high level of ≥ 7.5%, between 10.6 and 16.6%. Strength-ductility product ≥ 9.0 GPa%.

[0127] (3) According to the rapid heat treatment process for dual-phase stainless steels described in the present invention, the time required for the entire heat treatment process can be shortened to 40-295 seconds, which significantly reduces the time required for the entire heat treatment process (compared to the conventional continuous annealing process, which usually takes 5-8 minutes), thereby improving production efficiency, reducing energy consumption, and lowering production costs.

[0128] (4) Compared with conventional duplex steels and their heat treatment processes, the rapid heat treatment method of the present invention reduces the heating and soaking times by 60-80%, shortening the high-temperature strip treatment time, shortening the overall heat treatment process time, reducing energy consumption, significantly reducing the initial investment in furnace equipment, and significantly reducing production, operation, and equipment repair costs. In addition, by using rapid heat treatment to produce products with the same strength, the alloy content can be reduced, reducing the production costs of heat treatment and previous processes and reducing the manufacturing difficulty of each process before heat treatment.

[0129] (5) Compared with dual-phase steels obtained by conventional continuous annealing, rapid heat treatment technology reduces the heating and soaking times, shortens the furnace length, and reduces the number of furnace rolls by 35-90%, thereby reducing the probability of surface defects occurring in the furnace and significantly improving the surface quality of the product. Furthermore, by refining the product grain size and reducing the alloy content of the material, the dual-phase steels obtained by this technology also improve their user performance, such as processing performance (hole expansion performance, bending performance, etc.) and welding performance.

[0130] The duplex stainless steel and hot-dip galvanized duplex stainless steel obtained by the present invention are of great value to the development of next-generation lightweight automobiles, trains, ships, airplanes and other transportation vehicles, as well as the healthy development of related industries and advanced manufacturing. [Brief explanation of the drawings]

[0131] [Figure 1] FIG. 1 is a micrograph of the dual-phase steel produced from Test Steel A of Example 1 of the present invention in accordance with Example 1. [Figure 2] FIG. 2 is a microstructure diagram of a dual-phase steel produced from Test Steel A of Example 1 of the present invention according to Conventional Process 1. [Figure 3] FIG. 3 is a microstructure diagram of the dual-phase steels produced according to Example 1, Test Steel F, to Example 6 of the present invention. [Figure 4] FIG. 4 is a microstructure diagram of the dual-phase steels produced according to Example 1, Test Steel M, to Example 12 of the present invention. [Figure 5] FIG. 5 is a microstructure diagram of the dual-phase steels produced according to Example 1, Test Steel S, to Example 23 of the present invention. [Figure 6] FIG. 6 is a microstructure diagram of the dual-phase steels produced according to Example 1, Test Steel M, to Example 24 of the present invention. [Figure 7] FIG. 7 is a micrograph of the dual-phase steel produced according to Example 1 from Test Steel A of Example 2 of the present invention. [Figure 8] FIG. 8 is a micrograph of the dual-phase steel produced from Test Steel A of Example 2 of the present invention according to Conventional Process 1. [Figure 9] FIG. 9 is a microstructure diagram of the dual-phase steels produced according to Example 6 through Test Steel F of Example 2 of the present invention. [Figure 10] FIG. 10 is a micrograph of the dual-phase steel produced according to Example 12 from Test Steel M of Example 2 of the present invention. [Figure 11] FIG. 11 is a micrograph of the dual-phase steels produced according to Example 23 through Test Steel S of Example 2 of the present invention. [Figure 12] FIG. 12 is a micrograph of the dual-phase steels produced according to Example 24 of the present invention, from Test Steel M. [Figure 13] FIG. 13 is a microstructure diagram of the dual-phase steel produced according to Example 1 from Test Steel A of Example 3 of the present invention. [Figure 14] FIG. 14 is a microstructure diagram of a dual-phase steel produced from Test Steel A in Example 3 of the present invention according to Conventional Process 1. [Figure 15] FIG. 15 is a microstructure diagram of the dual-phase steels produced according to Example 6 through Test Steel F of Example 3 of the present invention. [Figure 16] FIG. 16 is a microstructure diagram of the dual-phase steel produced according to Example 12 from Test Steel M of Example 3 of the present invention. [Figure 17] FIG. 17 is a microstructure diagram of the dual-phase steels produced according to Example 23 through Test Steel S of Example 3 of the present invention. [Figure 18] FIG. 18 is a microstructure diagram of the dual-phase steels produced according to Example 3, Test Steel M, to Example 24 of the present invention. [Figure 19] FIG. 19 is a micrograph of the hot-dip pure galvanized dual-phase steel (GI) produced according to Example 1 from Test Steel A of Example 4 of the present invention. [Figure 20] FIG. 20 is a micrograph of the hot-dip pure galvanized dual-phase steel (GI) produced from Test Steel A in Example 4 of the present invention according to Conventional Process 1. [Figure 21] FIG. 21 is a microstructure diagram of the galvannealed dual-phase steels (GA) produced according to Example 4 of Test Steel I to Example 17 of the present invention. [Figure 22] FIG. 22 is a micrograph of the hot-dip pure galvanized dual-phase steel (GI) produced according to Example 22 from Test Steel D of Example 4 of the present invention. [Figure 23] FIG. 23 is a microstructure diagram of the galvannealed dual-phase steels (GA) produced according to Test Steel I of Example 4 to Example 34 of the present invention. [Figure 24] FIG. 24 is a micrograph of the hot-dip pure galvanized dual-phase steel (GI) produced according to Example 1 from Test Steel A of Example 5 of the present invention. [Figure 25] FIG. 25 is a micrograph of the hot-dip pure galvanized dual-phase steel (GI) produced from Test Steel A in Example 5 of the present invention according to Conventional Process 1. [Figure 26]FIG. 26 is a microstructure diagram of the galvannealed dual-phase steels (GA) produced according to Example 5 of Test Steel I to Example 17 of the present invention. [Figure 27] FIG. 27 is a micrograph of the hot-dip pure galvanized dual-phase steel (GI) produced according to Example 22 from Test Steel D of Example 5 of the present invention. [Figure 28] FIG. 28 is a microstructure diagram of the galvannealed dual-phase steels (GA) produced according to Example 5 of Test Steel I to Example 34 of the present invention. [Figure 29] FIG. 29 is a micrograph of the hot-dip pure galvanized dual-phase steel (GI) produced according to Example 1 from Test Steel A of Example 6 of the present invention. [Figure 30] FIG. 30 is a micrograph of the hot-dip pure galvanized dual-phase steel (GI) produced from Test Steel A in Example 6 of the present invention according to Conventional Process 1. [Figure 31] FIG. 31 is a microstructure diagram of the galvannealed dual-phase steels (GA) produced according to Example 6 of Test Steel I to Example 17 of the present invention. [Figure 32] FIG. 32 is a micrograph of the hot-dip pure galvanized dual-phase steel (GI) produced according to Example 22 from Test Steel D of Example 6 of the present invention. [Figure 33] FIG. 33 is a microstructure diagram of the galvannealed dual-phase steel (GA) produced according to Example 6 of Test Steel I to Example 34 of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0132] The present invention will now be further described with reference to examples and drawings. The examples are implemented based on the technical solutions of the present invention, and demonstrate detailed embodiments and specific operation processes, but do not limit the protection scope of the present invention.

[0133] In the examples, the yield strength, tensile strength and elongation are measured in the transverse direction using sample P7 in accordance with GB / T228.1-2010 Metallic Materials Tensile Test Part 1: Test Method at Room Temperature. 90The test was carried out in accordance with GB / T228.1-2010 Metallic Materials Tensile Test Part 1: Test Method at Room Temperature, using sample P7, and was measured in the transverse direction. The n value was measured in accordance with GBT5028-2008 Metallic Materials Sheet and Ribbon Tensile Test Method (n value). 90 Get the value. [Example]

[0134] Example 1 The composition of the test steel of this example is shown in Table 1. The specific parameters of this example and the conventional process are shown in Tables 2 and 3. Tables 4 and 5 show the main properties of steels produced from the composition of the test steel of the present invention according to the example and the conventional process.

[0135] As can be seen from Tables 1 to 5, the method of the present invention can reduce the alloy content of the same level of steel, refine the grains, and obtain the material's structural structure and strength-toughness combination. The dual-phase steel obtained by the method of the present invention has a yield strength of 598-749 MPa, a tensile strength of 1030-1096 MPa, an elongation of 10.6-16.6%, a strength-ductility product of 10.9-17.4 GPa%, and a strain hardening exponent n 90 The value exceeds 0.21, which is higher than that of duplex stainless steels produced by conventional processes.

[0136] Figure 1 shows the microstructure obtained from Steel A with typical chemical composition through Example 1, and Figure 2 shows the microstructure obtained from Steel A with typical chemical composition through Conventional Process Example 1. As can be seen from the figures, there are significant differences between the microstructures after different heat treatment methods. The dual-phase steel microstructure obtained after the rapid heat treatment process of this example is composed of fine, uniform martensite and a small amount of carbides dispersed in a ferrite matrix. The ferrite, martensite grain structure, and carbides are all very fine and uniformly distributed in the matrix, which is very advantageous for improving material strength and plasticity. On the other hand, the dual-phase steel obtained through conventional processing has a typical dual-phase steel microstructure, i.e., a small amount of black martensite is present at the boundaries of white ferrite grains, the ferrite structure is relatively coarse, and the martensite and carbides are not distributed uniformly. When conventional processing is used, the microstructure is characterized by relatively coarse ferrite grains and a non-uniform distribution of the ferrite and martensite dual-phase structure.

[0137] FIG. 3 is a microstructure diagram obtained from F steel with typical compositions after Example 6 (overaging treatment), and FIG. 4 is a microstructure diagram obtained from M steel with typical compositions after Example 12 (no aging treatment). FIG. 5 is a microstructure diagram obtained from S steel with typical compositions after Example 23, and FIG. 6 is a microstructure diagram obtained from M steel with typical compositions after Example 24. Examples 6, 12, 23, and 24 all involve processes with relatively short total heat treatment periods. As can be seen from the diagrams, by employing the method of the present invention, a very uniform, fine, and dispersedly distributed microstructure of each phase can be obtained even without overaging treatment. Therefore, the method of producing dual-phase steel of the present invention refines crystal grains and uniformly distributes each phase structure in the matrix, improving the material's microstructure and enhancing material performance.

[0138] [Table 1]

[0139] [Table 2]

[0140] [Table 3]

[0141] [Table 4]

[0142] [Table 5] [Example]

[0143] Example 2 The composition of the test steel of this example is shown in Table 6. The specific parameters of this example and the conventional process are shown in Tables 7 and 8. Tables 9 and 10 show the main properties of steels produced from the composition of the test steel of the present invention according to the example and the conventional process.

[0144] As can be seen from Tables 6 to 10, the method of the present invention can reduce the alloy content of the same level of steel, refine the grains, and achieve the desired material structure and strength-toughness combination. The dual-phase steel obtained by the method of the present invention has a yield strength of 714 to 919 MPa, a tensile strength of 1188 to 1296 MPa, an elongation of 10.4 to 12.8%, and a strength-ductility product of 12 to 16 GPa%, all of which are higher than those of dual-phase steel produced by conventional processes.

[0145] Figure 7 shows the microstructure of Steel A with typical chemical composition obtained through Example 1, and Figure 8 shows the microstructure of Steel A with typical chemical composition obtained through Conventional Process Example 1. As can be seen from the diagrams, there are significant differences between the microstructures after different heat treatment methods. The dual-phase steel microstructure obtained through the rapid heat treatment process of this example is composed of ferrite, martensite, and a small amount of carbides. The ferrite, martensite, and carbides are all very fine and uniformly distributed throughout the matrix, which is very advantageous for improving material strength and plasticity. On the other hand, the dual-phase steel obtained through conventional processing has a typical dual-phase steel microstructure, with coarse grains and a uniform band structure, martensite and carbides distributed in a network pattern along the ferrite grain boundaries, relatively coarse ferrite grains, and a non-uniform distribution of the ferrite and martensite dual-phase structure.

[0146] Figure 9 shows a microstructure diagram obtained from F steel with typical compositions through Example 6, and Figure 10 shows a microstructure diagram obtained from M steel with typical compositions through Example 12. Figure 11 shows a microstructure diagram obtained from S steel with typical compositions through Example 23, and Figure 12 shows a microstructure diagram obtained from M steel with typical compositions through Example 24. Examples 6, 12, 23, and 24 all involve processes with relatively short total heat treatment periods. As can be seen from the figures, by employing the method of the present invention, a highly uniform, fine, and dispersedly distributed microstructure of each phase can be obtained without overaging treatment. Therefore, the method for producing dual-phase steel of the present invention refines crystal grains and uniformly distributes each phase in the matrix, improving the material's microstructure and enhancing its performance.

[0147] [Table 6]

[0148] [Table 7]

[0149] [Table 8]

[0150] [Table 9]

[0151] [Table 10] [Example]

[0152] Example 3 The compositions of the test steels of this example are shown in Table 11. Specific parameters of this example and the conventional process are shown in Tables 12 and 13. Tables 14 and 15 show the main properties of steels produced from the compositions of the test steels of this example according to the example and conventional process.

[0153] As can be seen from Tables 11 to 15, the method of the present invention can reduce the alloy content of the same level of steel, refine the grains, and achieve a material structure and a combination of strength and toughness. The dual-phase steel obtained by the method of the present invention has a yield strength of 902 to 1114 MPa, a tensile strength of 1264 to 1443 MPa, an elongation of 7 to 9.8%, and a strength-ductility product of 9.5 to 12.1 GPa%, which are higher than those of dual-phase steel produced by conventional processes.

[0154] Figure 13 shows the microstructure diagram obtained from Steel A with typical chemical composition through Example 1, and Figure 14 shows the microstructure diagram obtained from Steel A with typical chemical composition through Conventional Process Example 1. As can be seen from the diagrams, there are significant differences between the microstructures after the different heat treatment methods. The dual-phase steel microstructure obtained after the rapid heat treatment process of this example is composed of fine, uniform martensite and a small amount of carbides dispersed in a ferrite matrix. The ferrite, martensite grain structure, and carbides are all very fine and uniformly distributed in the matrix, which is very advantageous for improving material strength and plasticity. On the other hand, the microstructure obtained through the conventional process is typical of dual-phase steel, i.e., a small amount of black martensite is present at the crystal boundaries of white ferrite. Due to element segregation and other factors, the microstructure of the material after the conventional process exhibits a certain directionality, with the ferrite microstructure distributed in elongated stripes along the rolling direction. The characteristics of the structure produced by conventional processing are: coarse grains and the presence of a uniform band structure, martensite and carbides distributed in a network pattern along the ferrite grain boundaries, relatively coarse ferrite grains, and a non-uniform distribution of the two-phase structure of ferrite and martensite.

[0155] Figure 15 shows a microstructure diagram obtained from F steel with typical compositions through Example 6, and Figure 16 shows a microstructure diagram obtained from M steel with typical compositions through Example 12. Figure 17 shows a microstructure diagram obtained from S steel with typical compositions through Example 23, and Figure 18 shows a microstructure diagram obtained from M steel with typical compositions through Example 24. Examples 6, 12, 23, and 24 all involve processes with relatively short total heat treatment periods. As can be seen from the figures, by employing the method of the present invention, a highly uniform, fine, and dispersedly distributed microstructure of each phase can be obtained even without aging treatment. Therefore, the method for producing dual-phase steel of the present invention refines crystal grains and uniformly distributes each phase in the matrix, improving the material's microstructure and enhancing its performance.

[0156] [Table 11]

[0157] [Table 12]

[0158] [Table 13]

[0159] [Table 14]

[0160] [Table 15] [Example]

[0161] Example 4 The compositions of the test steels in this example are shown in Table 16. Specific parameters of this example and the conventional process are shown in Table 17 (single-stage heating) and Table 18 (two-stage heating). Tables 19 and 20 show the main properties of GI and GA hot-dip galvanized dual-phase steels produced from the compositions of the test steels of the present invention according to the examples in Tables 17 and 18 and the conventional process.

[0162] As can be seen from Tables 16 to 20, the method of the present invention can reduce the alloy content of the same level of steel, refine the grains, and obtain the material's microstructure and combination of strength and toughness. The dual-phase steel obtained by the method of the present invention has a yield strength of 543 to 709 MPa, a tensile strength of 989 to 1108 MPa, an elongation of 11.9 to 15.2%, and a strength-ductility product of 12.2 to 15.2 GPa%.

[0163] Figures 19 and 20 show the microstructures of Steel A with typical chemical composition obtained through Example 1 and Comparative Conventional Process Example 1. From these two figures, we can see that there are significant differences in the microstructures after hot-dip galvanization. The microstructure of Steel A after the rapid heat treatment of the present invention (Figure 1) is composed of fine, uniform martensite and carbides dispersed in a fine ferrite matrix. The ferrite, martensite grain structure, and carbides are all very fine and uniformly dispersed, which is highly advantageous for enhancing material strength and plasticity. On the other hand, the microstructure of Steel A after conventional processing (Figure 20) is a typical dual-phase steel microstructure, i.e., a small amount of black martensite exists on the grain boundaries of large white ferrite. Due to element segregation and other factors, the microstructure of the material after conventional processing exhibits a certain directionality, with the ferrite structure distributed in elongated stripes along the rolling direction. The characteristics of the structure obtained by conventional heat treatment processes are: coarse grains and the presence of a uniform band structure, martensite and carbides distributed in a network pattern along the ferrite grain boundaries, relatively coarse ferrite grains, and a non-uniform distribution of the two-phase structure of ferrite and martensite.

[0164] Figure 21 shows a microstructure diagram obtained from typical-component I steel via Example 17 (GA), and Figure 22 shows a microstructure diagram obtained from typical-component D steel via Example 22 (GI). Figure 23 shows a microstructure diagram obtained from typical-component I steel via Example 34 (GA). Examples 17, 22, and 34 all involve processes with relatively short total heat treatment periods. As can be seen from the figures, by employing the rapid heat treatment hot-dip galvanizing method of the present invention, a very uniform, fine, and dispersedly distributed phase structure (Figures 21 and 23) can be obtained even after alloying treatment. The method for producing hot-dip galvanized dual-phase steel of the present invention refines crystal grains and uniformly distributes the phase structure of the material throughout the matrix, improving the material's structure and enhancing its performance.

[0165] [Table 16]

[0166] [Table 17]

[0167] [Table 18]

[0168] [Table 19]

[0169] [Table 20] [Example]

[0170] Example 5 The compositions of the test steels in this example are shown in Table 21. Specific parameters of this example and the conventional process are shown in Table 22 (single-stage heating) and Table 23 (two-stage heating). Tables 24 and 25 show the main properties of GI and GA hot-dip galvanized dual-phase steels produced from the compositions of the test steels of the present invention according to the examples in Tables 22 and 23 and the conventional heat treatment process.

[0171] As can be seen from Tables 21 to 25, the method of the present invention can reduce the alloy content of the same level of steel, refine the grains, and obtain the material's microstructure and combination of strength and toughness. The dual-phase steel obtained by the method of the present invention has a yield strength of 665 to 854 MPa, a tensile strength of 1182 to 1285 MPa, an elongation of 11.5 to 12.8%, and a strength-ductility product of 13.6 to 15.2 GPa%.

[0172] Figures 24 and 25 are diagrams of the microstructures obtained from Steel A with typical chemical compositions through Example 1 and Comparative Conventional Process Example 1. Looking at the two diagrams, there is a clear difference in the microstructure after hot-dip galvanizing. The microstructure of Steel A after the rapid heat treatment of the present invention (Figure 24) has the following characteristics: the ferrite, martensite grain structure, and carbides are all very fine and uniformly distributed throughout the matrix, which is extremely advantageous for increasing the material strength and plasticity.

[0173] On the other hand, the structure of steel A (Figure 25) processed using conventional processes is a typical dual-phase steel structure. In other words, small amounts of black martensite exist on the grain boundaries of large white ferrite. Due to factors such as element segregation, the structure of the material after conventional processing exhibits a certain directionality, with the ferrite structure distributed in long stripes along the rolling direction. The characteristics of the structure resulting from conventional processing are that the ferrite grains are coarse, and the martensite and carbides are distributed in a network pattern along the ferrite grain boundaries, but the distribution is uneven.

[0174] Figure 26 shows a microstructure diagram obtained from typical-component I steel via Example 17 (GA), and Figure 27 shows a microstructure diagram obtained from typical-component D steel via Example 22 (GI). Figure 28 shows a microstructure diagram obtained from typical-component I steel via Example 34 (GA). Examples 17, 22, and 34 all use processes with relatively short total heat treatment periods. As can be seen from the diagram, the rapid heat treatment hot-dip galvanizing method of the present invention achieves a very uniform, fine, and dispersedly distributed phase structure (Figure 26) even after alloying treatment. On the other hand, the conventional process 9 results in a typical hot-dip galvanized dual-phase steel structure, with a coarse ferrite structure and a small amount of martensite distributed along the ferrite grain boundaries. Therefore, the hot-dip galvanized dual-phase steel manufacturing method of the present invention refines the crystal grains and uniformly distributes the phases in the matrix, improving the material's structure and performance.

[0175] [Table 21]

[0176] [Table 22]

[0177] [Table 23]

[0178] [Table 24]

[0179] [Table 25] [Example]

[0180] Example 6 The compositions of the test steels in this example are shown in Table 26. Specific parameters of this example and the conventional process are shown in Table 27 (single-stage heating) and Table 28 (two-stage heating). Tables 29 and 30 show the main properties of GI and GA hot-dip galvanized dual-phase steels produced from the compositions of the test steels of the present invention according to the examples in Tables 27 and 28 and the conventional process.

[0181] As can be seen from Tables 26 to 30, the method of the present invention can reduce the alloy content of the same level of steel, refine the grains, and obtain the material's microstructure and combination of strength and toughness. The dual-phase steel obtained by the method of the present invention has a yield strength of 963 to 1109 MPa, a tensile strength of 1282 to 1443 MPa, an elongation of 7.1 to 8.8%, and a strength-ductility product of 10.0 to 11.8 GPa%.

[0182] 29 and 30 are diagrams of the microstructures obtained from Steel A with typical chemical compositions through Example 1 and Comparative Conventional Process Example 1. Looking at the two diagrams, there is a significant difference in the microstructures after hot-dip galvanization. The microstructure of Steel A after the rapid heat treatment of the present invention (FIG. 29) is composed of a fine, uniform martensite structure and carbides dispersedly distributed in a fine ferrite matrix. The microstructure after treatment with the process of the present invention is characterized by the ferrite, martensite grain structure, and carbides all being very fine and uniformly dispersed, which is extremely advantageous for increasing the material strength and plasticity.

[0183] On the other hand, the structure of steel A (Fig. 30) that underwent conventional processing is a typical dual-phase steel structure. The characteristics of the structure resulting from conventional heat treatment processing are that the crystal grains are relatively coarse, a uniform band structure is present, martensite and carbides are distributed in a network pattern along the ferrite crystal boundaries, and the distribution of the dual-phase structure of ferrite and martensite is uneven.

[0184] Figure 31 shows a microstructure diagram obtained from typical-component I steel via Example 17 (GA), and Figure 32 shows a microstructure diagram obtained from typical-component D steel via Example 22 (GI). Figure 33 shows a microstructure diagram obtained from typical-component I steel via Example 34 (GA). Examples 17, 22, and 34 all use processes with relatively short total heat treatment periods. As can be seen from the figure, the rapid heat treatment hot-dip galvanizing method of the present invention achieves a very uniform, fine, and dispersedly distributed phase structure (Figure 31) even after alloying treatment. In contrast, the conventional process 9 produces a typical hot-dip galvanized dual-phase steel structure, with a coarse ferrite structure and a small amount of martensite distributed along the ferrite grain boundaries. Therefore, the hot-dip galvanized dual-phase steel production method of the present invention refines the crystal grains and uniformly distributes the phases in the matrix, improving the material's structure and performance.

[0185] [Table 26]

[0186] [Table 27]

[0187] [Table 28]

[0188] [Table 29]

[0189] [Table 30]

[0190] The present invention improves the conventional continuous annealing and hot-dip galvanizing system by adopting a rapid heating and cooling process. This rapid heat treatment hot-dip galvanizing process significantly shortens the length of the furnace heating and soaking segments in the conventional continuous annealing and hot-dip galvanizing system, improving the production efficiency of the conventional continuous annealing and hot-dip galvanizing system, reducing production costs and energy consumption, and reducing the number of furnace rolls in the continuous annealing and hot-dip galvanizing furnace, thereby improving the control of strip surface quality and achieving high-surface-quality strip products. At the same time, the establishment of a new continuous annealing and hot-dip galvanizing system using rapid heat treatment hot-dip galvanizing technology achieves the goals of system miniaturization, easy modification of product specifications and types, and strong controllability. Regarding the material, the refinement of strip grains further increases material strength, reduces alloying costs and manufacturing difficulties before heat treatment, and improves user performance such as material formability and welding.

[0191] As described above, the use of a rapid heat treatment hot-dip galvanizing process in the present invention has greatly promoted the advancement of continuous annealing and hot-dip galvanizing technology for cold-rolled steel strips. The final austenitization process can be completed within a few seconds, from room temperature to several tens of seconds. This significantly shortens the length of the heating segment of the continuous annealing and hot-dip galvanizing furnace, which tends to improve the speed and production efficiency of the continuous annealing and hot-dip galvanizing system. The number of rolls in the furnace of the continuous annealing and hot-dip galvanizing system can be significantly reduced. For a rapid heat treatment hot-dip galvanizing production line with a system speed of around 180 m / min, the number of rolls in the high-temperature furnace segment can be reduced to 10 or less, significantly improving the surface quality of the steel strip. At the same time, the rapid heat treatment hot-dip galvanizing process, which completes the recrystallization and austenitization processes in an extremely short time, provides a more flexible microstructure design method for high-strength steels, allowing for improved material microstructure and performance without the need to change upstream process conditions such as alloy composition and rolling process.

[0192] Advanced high-strength steels, represented by duplex stainless steels, have wide application potential, and rapid heat treatment hot-dip galvanizing technology also has great development value. Therefore, the combination of the two will inevitably provide more space for the development and production of hot-dip galvanized duplex stainless steels.

Claims

1. A dual-phase steel sheet or hot-dip galvanized dual-phase steel sheet, The chemical composition of the dual-phase steel sheet is as follows in mass percent: C: 0.05-0.10%, Si: 0.1-0.23%, Mn: 1.6-2.0%, Cr: 0.2-0.6%, Mo: 0.1-0.4%, Ti: 0.01-0.05%, P≦0.015%, S≦0.003%, Al: 0.02-0.05%, and may further contain one or two of Nb and V. Cr+ Mo+Ti+Nb+V≦0.5%, the balance being Fe and other unavoidable impurities; the dual-phase steel sheet has a yield strength of 710-920 MPa, a tensile strength of 1180-1300 MPa, an elongation of 10.0-13.0%, and a tensile strength-ductility product of 12-16 GPa%, and the microstructure of the dual-phase steel sheet is a two-phase structure of ferrite and martensite with an average grain size of 1-5 μm; The chemical composition of the hot-dip galvanized dual-phase steel sheet is as follows in mass percent: C: 0.05-0.10%, Si: 0.15-0.23%, Mn: 2.0%, Nb: 0.02-0.04%, Ti: 0.02-0.04%, Cr: 0.3-0.6%, Mo: 0.2-0.4%, P≦0.015%, S≦0.005%, Al: 0.02-0.05%, and the balance being Fe and other unavoidable impurities. the hot-dip galvanized dual-phase steel sheet has a yield strength of 660 to 860 MPa, a tensile strength of 1180 to 1290 MPa, an elongation of 11.0 to 13.0%, and a tensile strength ductility product of 13.0 to 15.5 GPa%; and the hot-dip galvanized dual-phase steel sheet has a microstructure that is a two-phase structure of ferrite and martensite, and an average grain size of 1 to 3 μm, which is a dual-phase steel sheet or a hot-dip galvanized dual-phase steel sheet.

2. The method for manufacturing a dual-phase steel sheet according to claim 1, The chemical composition of the dual-phase steel sheet is as follows in mass percent: C: 0.05-0.10%, Si: 0.1-0.23%, Mn: 1.6-2.0%, Cr: 0.2-0.6%, Mo: 0.1-0.4%, Ti: 0.01-0.05%, P≦0.015%, S≦0.003%, Al: 0.02-0.05%, and may further contain one or two of Nb and V, and Cr+Mo +Ti+Nb+V≦0.5%, the balance being Fe and other unavoidable impurities; the dual-phase steel sheet has a yield strength of 710 to 920 MPa, a tensile strength of 1180 to 1300 MPa, an elongation of 10.0 to 13.0%, and a tensile strength-ductility product of 12 to 16 GPa%, and the microstructure of the dual-phase steel sheet is a two-phase structure of ferrite and martensite with an average grain size of 1 to 5 μm; The manufacturing method includes the following steps: 1) Smelting and casting Smelting according to the above chemical composition and casting into slabs; 2) Hot rolling and coiling Hot rolling finish temperature ≧ A r3 The coiling temperature is 550 to 680°C; 3) Cold rolling The cold rolling reduction is 40 to 85% to obtain a roll-hardened steel strip or steel plate; 4) Rapid thermal processing a) Rapid heating The cold-rolled steel strip or steel plate is rapidly heated from room temperature to a target temperature of 750-845°C, which is in the austenite-ferrite two-phase region, and the rapid heating is performed in one or two stages; when one-stage rapid heating is used, the heating rate is 50-500°C / s, and when two-stage rapid heating is used, the first stage is heated from room temperature to 550-650°C at a heating rate of 15-500°C / s, and the second stage is heated from 550-650°C to 750-845°C at a heating rate of 30-500°C / s; b) Soaking The soaking is performed at a target temperature of 750 to 845°C, which is the two-phase region of austenite and ferrite, for a soaking time of 10 to 60 seconds; c) Cooling After the soaking of the steel strip or steel plate is completed, it is slowly cooled to 670-770°C at a cooling rate of 5-15°C / s; then, it is rapidly cooled from 670-770°C to room temperature at a cooling rate of 50-200°C / s; Alternatively, overaging treatment is performed by quenching from 670 to 770°C to 230 to 280°C at a cooling rate of 50 to 200°C / s, setting the overaging treatment time to 200 seconds or less, and after the overaging treatment, cooling to room temperature at a cooling rate of 30 to 50°C / s.

3. The method according to claim 2, wherein the method has one or more of the following features: In step 4), the rapid thermal processing takes a total of 41 to 297 seconds; In step 2), the coiling temperature is 580 to 650°C; In step 3), the cold rolling reduction is 60 to 80%; In step 4), when the rapid heating is performed in one stage, the heating rate is 50-300°C / s; In step 4), when the rapid heating is performed in two stages, the first stage is heated from room temperature to 550-650°C at a heating rate of 15-300°C / s; the second stage is heated from 550-650°C to 750-845°C at a heating rate of 50-300°C / s; In step 4), the final temperature of the rapid heating is 790-845°C; In step 4), the rapid cooling rate of the steel strip or steel plate is 50-150°C / s; In the soaking process of step 4), the steel strip or steel plate is heated to the target temperature in the austenite-ferrite two-phase region, and then the temperature is maintained constant to soak the steel strip or steel plate; In the soaking process of step 4), the temperature of the steel strip or steel plate is increased or decreased slightly during the soaking period, and the temperature after the increase is 845°C or less, and the temperature after the decrease is 750°C or more; In step 4), the soaking time is 10 to 40 seconds; The overaging time is set to 20 to 200 seconds.

4. The method for producing a hot-dip galvanized dual-phase steel sheet according to claim 1, The chemical composition of the hot-dip galvanized dual-phase steel sheet is as follows in mass percent: C: 0.05-0.10%, Si: 0.15-0.23%, Mn: 2.0%, Nb: 0.02-0.04%, Ti: 0.02-0.04%, Cr: 0.3-0.6%, Mo: 0.2-0.4%, P≦0.015%, S≦0.005%, Al: 0.02-0.05%, and the balance being Fe and its components. and other unavoidable impurities; the hot-dip galvanized dual-phase steel sheet has a yield strength of 660 to 860 MPa, a tensile strength of 1180 to 1290 MPa, an elongation of 11.0 to 13.0%, and a tensile strength ductility product of 13.0 to 15.5 GPa%; the hot-dip galvanized dual-phase steel sheet has a microstructure that is a two-phase structure of ferrite and martensite, and an average grain size of 1 to 3 μm; The manufacturing method includes the following steps: A) Smelting and casting Smelting according to the above chemical composition and casting into slabs; B) Hot rolling and coiling Hot rolling finish temperature ≧ A r3 The coiling temperature is 550 to 680°C; C) Cold rolling The cold rolling reduction is 40-85%, and after cold rolling, a roll-hardened steel strip or steel plate is obtained; D) Rapid heat treatment, hot dip galvanizing a) Rapid heating The cold-rolled steel strip or steel plate is rapidly heated from room temperature to a target temperature of 750 to 845°C in the austenite-ferrite two-phase region; the rapid heating may be performed in one or two stages; When one-stage rapid heating is used, the heating rate is 50-500°C / s; When two-stage rapid heating is used, the first stage is heated from room temperature to 550-650°C at a heating rate of 15-500°C / s, and the second stage is heated from 550-650°C to 750-845°C at a heating rate of 30-500°C / s; b) Soaking The soaking is performed at a target temperature of 750 to 845°C, which is the two-phase region of austenite and ferrite, for a soaking time of 10 to 60 seconds; c) Cooling and hot dip galvanizing After the soaking of the steel strip or steel plate is completed, it is slowly cooled to 670-770°C at a cooling rate of 5-15°C / s; then it is rapidly cooled to 460-470°C at a cooling rate of 50-150°C / s, and the steel strip or steel plate is immersed in a zinc kettle for hot-dip galvanization; d) After hot-dip galvanizing the steel strip or steel sheet, it is quenched to room temperature at a cooling rate of 50-150°C / s to obtain a hot-dip pure galvanized GI product; or After hot-dip galvanizing the steel strip or steel plate, the steel strip or steel plate is heated to 480-550°C at a heating rate of 30-200°C / s to carry out alloying treatment, and the alloying treatment time is 10-20 seconds; after the alloying treatment, the steel strip or steel plate is rapidly cooled to room temperature at a cooling rate of 30-250°C / s to obtain a hot-dip galvannealed GA product.

5. The method according to claim 4, wherein the method has one or more of the following features: In step D), the rapid heat treatment and hot-dip galvanizing take a total of 30 to 142 seconds; In step B), the coiling temperature is 580 to 650°C; In step C), the cold rolling reduction is 60 to 80%; In step D), when the rapid heating is performed in one stage, the heating rate is 50-300°C / s; In step D), when the rapid heating is performed in two stages, the first stage is heated from room temperature to 550-650°C at a heating rate of 15-300°C / s, and the second stage is heated from 550-650°C to 750-845°C at a heating rate of 50-300°C / s; In step D), the final temperature of the rapid heating is 790-845°C; In the soaking process of step D), the steel strip or steel plate is heated to the target temperature in the austenite-ferrite two-phase region, and then the temperature is maintained constant to soak the steel strip or steel plate; In the soaking process of step D), the temperature of the steel strip or steel plate is increased or decreased slightly during the soaking period, and the temperature after the increase is 845°C or less, and the temperature after the decrease is 750°C or more; The soaking time is 10 to 40 seconds; In step D), after the alloying treatment of the strip steel or steel plate, it is quenched to room temperature at a cooling rate of 30 to 200°C / s to obtain a galvannealed GA product.

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