Cold-rolled steel sheet and manufacturing method therefor
Patent Information
- Authority / Receiving Office
- EP · EP
- Patent Type
- Applications
- Current Assignee / Owner
- POHANG IRON & STEEL CO LTD
- Filing Date
- 2023-12-14
- Publication Date
- 2026-05-06
AI Technical Summary
Existing cold-rolled steel sheets face challenges in achieving high strength, elongation, and hole expandability, particularly for use in collision energy absorption members, due to issues with microstructure and processing limitations.
A cold-rolled steel sheet with specific alloy compositions and manufacturing processes, including controlled microstructures and a soft layer, to enhance strength, elongation, and hole expandability, with a depth-specific carbon distribution.
The solution provides a steel sheet with yield strength of 600 MPa or more, tensile strength of 980 MPa or more, and excellent elongation and hole expandability, suitable for complex shape formation and impact energy absorption.
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Abstract
Description
Technical Field
[0001] The present disclosure relates to a cold-rolled steel sheet and a manufacturing method therefor and, more specifically, to a cold-rolled steel sheet that is preferably applicable to collision energy absorption members such as a body-in-white (BIW) structural element, and a manufacturing method for the cold-rolled steel sheet.Background Art
[0002] Recently, in the automobile industry, advanced countries, led by Europe, are actively conducting research to reduce the weight of the vehicle body due to fuel efficiency regulations and performance improvements. In the case of the steel industry, in order to respond to the demand for weight reduction from automobile companies, efforts are made to increase strength and further reduce a thickness of the steel sheet in the same grade as compared to competing materials (Mg, Al, CFRP, etc.). In addition to weight reduction, due to strengthening CO 2 emission regulations and rapid changes to the era of electric vehicles, safety regulations for automobile passengers and pedestrians are strengthened, and thus, stability and high strength of vehicle body materials are also demanded. Specifically, the demand for high-strength steels of 980 to 1180MPa has increased. In the case of 980MPa grade steels, in order to be used as collision energy absorbing materials, not only should the elongation be high to form complex shapes, but also excellent hole expandability should be ensured so that fracture does not occur due to axial deformation.
[0003] These structural members are required to have high yield strength and hole expandability in order to facilitate absorption of impact energy. A representative manufacturing method for increasing yield strength is a method of utilizing water cooling during continuous annealing. A representative technology of this method is Patent Document 1. Patent Document 1 relates to manufacturing a steel having a martensite volume ratio of 80 to 97% and a balance of ferrite by continuously annealing a steel including C in the content of 0.18 to 0.3% and cooling the steel to room temperature with water, and then performing an overaging treatment at a temperature of 120 to 300°C for 1 to 15 minutes. Ultra-high strength steel may be manufactured by tempering a cold-rolled steel sheet after rapid cooling to room temperature after annealing in a dual phase zone or a single phase zone. In this case, a yield strength and hole expandability are excellent, but the shape quality of the coil deteriorates due to temperature deviation in width and length directions, and problems such as poor material quality and reduced workability may occur depending on the area during processing roll-forming components.
[0004] Additionally, as the strength of the steel sheet generally increases, the elongation thereof decreases, which causes problems such as reduced formability, and thus, an application thereof as a material for cold stamping is limited. In order to form a steel into complex shapes, the elongation should be high, and a representative method for increasing the elongation is a method of introducing retained austenite and utilizing a TRIP phenomenon, as in Patent Document 2. However, when a large amount of ferrite is introduced to secure additional elongation in addition to the retained austenite, as in Patent Document 2, the yield strength and hole expandability may be inferior.
[0005] Accordingly, in order to solve the above-described problems, it is necessary to develop an ultra-high strength steel sheet with a tensile strength of 980 MPa or more and excellent elongation and hole expandability.[Prior Art Document]
[0006] (Patent Document 1) Japanese Patent Publication No. 1992-289120 (Patent Document 2) Japanese Patent Publication No. 2002-382250 Summary of InventionTechnical Problem
[0007] An aspect of the present disclosure is to provide a cold-rolled steel sheet and a manufacturing method therefor.
[0008] A preferred aspect of the present disclosure is to provide a cold-rolled steel sheet having excellent strength, excellent elongation and excellent hole expandability and a manufacturing method therefor.Solution to Problem
[0009] According to an embodiment of the present disclosure, provided is a cold-rolled steel sheet, including: by wt%, carbon (C): 0.15 to 0.25%, manganese (Mn): 1.5 to 2.5%, silicon (Si): 1.0 to 2.0%, phosphorus (P): 0.1% or less (excluding 0%), sulfur (S): 0.03% or less (excluding 0%), aluminum (Al): 0.01 to 0.1%, molybdenum (Mo): 0.01% or less (excluding 0%), boron (B): 0.001% or less (excluding 0%), and a balance of Fe and other inevitable impurities, wherein a microstructure includes, in area%, ferrite: more than 10% and 45% or less, retained austenite: 7 to 15%, fresh martensite: 10% or less (including 0%), and a sum of tempered martensite and bainite: 40 to 80%, and the cold-rolled steel sheet includes a soft layer having a predetermined depth (t) of the steel sheet in a thickness direction from a surface thereof, and the soft layer satisfies the following relational expressions 1 and 2, C t / 5 / C M < 0.3 C 3 t / 5 / C M < 0.6 (where, in the relational expression 1 and 2, [C t / 5 ] represents an average C content in a region from a surface to 1 / 5 of a predetermined depth (t) of the steel sheet in a thickness direction, [C 3t / 5 ] represents an average C content in a region corresponding to 3 / 5 of the predetermined depth (t) of the steel sheet in the thickness direction from 1 / 5 of the predetermined depth (t), and [C M ] represents an average C content of the steel sheet).
[0010] A fraction of the tempered martensite may be 40% or more.
[0011] The predetermined depth (t) may be 50 to 100µm.
[0012] The cold-rolled steel sheet may have one of a hot-dip galvanized layer (GI), an alloyed hot-dip galvanized layer (GA), and an electrolytic galvanized layer (EG) formed on at least one surface thereof.
[0013] According to another embodiment of the present disclosure, provided is a method for manufacturing a cold-rolled steel sheet, including: heating a slab at 1100 to 1300°C, the slab including, by wt%, carbon (C): 0.15 to 0.25%, manganese (Mn): 1.5 to 2.5%, silicon (Si): 1.0 to 2.0%, phosphorus (P): 0.1% or less (excluding 0%), sulfur (S): 0.03% or less (excluding 0%), aluminum (Al): 0.01 to 0.1%, molybdenum (Mo): 0.01% or less (excluding 0%), boron (B): 0.001% or less (excluding 0%), and a balance of Fe and other inevitable impurities; finishing hot-rolling the heated slab at Ar3 or higher to obtain a hot-rolled steel sheet; coiling the hot-rolled steel sheet at 700°C or less; pickling and then cold-rolling the coiled hot-rolled steel sheet to obtain a cold-rolled steel sheet; primarily heating the cold-rolled steel sheet at 780°C or higher and less than Ac3-10°C for 30 seconds or longer under an atmosphere condition having a dew point temperature of 0 to 30°C; primarily cooling the heated cold-rolled steel sheet to 600 to 750°C at an average cooling rate of 1 to 10°C / s; secondarily cooling the primarily-cooled cold-rolled steel sheet to 150°C~Ms at an average cooling rate of 10 to 45°C / s; and secondarily heating the secondarily-cooled cold-rolled steel sheet at Ms~480°C and then subjecting the steel sheet to an overaging treatment for 1 to 30 minutes.
[0014] The cold rolling may be performed at a cold reduction ratio of 30 to 80%.
[0015] The method for manufacturing a cold-rolled steel sheet may further include: immersing the cold-rolled steel sheet in a hot-dip galvanized bath at 440 to 480°C after the secondary heating and holding, to form a hot-dip galvanized layer.
[0016] The method for manufacturing a cold-rolled steel sheet may further include: performing an alloying heat treatment on the cold-rolled steel sheet at 450 to 520°C after the formation of the hot-dip galvanized layer.
[0017] The method for manufacturing a cold-rolled steel sheet may further include: forming an electro-galvanized layer after the secondary heating and holding.Advantageous Effects of Invention
[0018] According to an aspect of the present disclosure, a cold-rolled steel sheet and a manufacturing method therefor could be provided.
[0019] According to a preferred aspect of the present disclosure, a cold-rolled steel sheet having excellent strength, excellent elongation and excellent hole expandability and a manufacturing method therefor could be provided.Brief Description of Drawings
[0020] FIG. 1 is a microstructure image of Inventive Example 1 according to an embodiment of the present disclosure observed with an SEM microscope.Best Mode for Invention
[0021] The terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the present disclosure. The singular forms used herein include the plural forms as well, unless the context clearly dictates otherwise. The meaning of "include" and "comprise" used in the specification specifies particular features, regions, integers, steps, operations, elements, and / or components, but does not exclude the presence or addition of other particular features, regions, integers, steps, operations, elements, components, and / or groups.
[0022] Unless otherwise defined, all terms including technical terms and scientific terms used herein have the same meaning as generally understood by one of ordinary skill in the art to which example embodiments of the present disclosure belong. Terms defined in commonly used dictionaries are additionally interpreted as having a meaning consistent with the relevant technical literature and the presently disclosed content, and are not interpreted in an idealized or overly formal sense unless expressly so defined herein.
[0023] Hereinafter, a cold-rolled steel sheet according to an embodiment of the present disclosure will be described. First, an alloy composition will be described. The content of the alloy composition described below refers to wt% unless otherwise specified.Carbon (C): 0.15 to 0.25%
[0024] C is an interstitial solid-solution element and is the most effective and important element for improving the strength of steel. When the content of C is less than 0.15%, it may be difficult to obtain the yield ratio and tensile strength targeted in the present disclosure. When the content of C exceeds 0.25%, the strength thereof may increase rapidly due to excessive formation of martensite during cooling due to an increase in hardenability, which may result in poor elongation and reduced weldability. Accordingly, it is preferable that the content of C is in the range of 0.15 to 0.25%. A lower limit of the content of C is more preferably 0.18%, and a lower limit of the content of C is more preferably 0.2%. The upper limit of the content of C is more preferably 0.24%.Manganese (Mn): 1.5 to 2.5%
[0025] Mn is an element added to secure strength. When the content of Mn is less than 1.5%, it may be difficult to secure the level of strength desired in the present disclosure. When the content of Mn exceeds 2.5%, an Ms temperature decreases during cooling after annealing, which may make it difficult to smoothly secure an initial martensite phase. It may be difficult to simultaneously secure the strength, elongation, and hole expandability targeted in the present disclosure due to a decrease in a tempered martensite fraction in a Quenching & Partitioning (Q&P) process. Additionally, Mn may segregate in a thickness direction, making it easy to form an Mn band in a slab, which may increase the possibility of defects occurring during a rolling process along with continuous casting cracks. Accordingly, the content of Mn is preferably in the range of 1.5 to 2.5%. A lower limit of the content of Mn is more preferably 1.8%, and a lower limit of the content of Mn is more preferably 2.0%. The upper limit of the content of Mn is more preferably 2.4%.Silicon (Si): 1.0 to 2.0%
[0026] Si is a key element of Transformation Induced Plasticity (TRIP) steel securing an appropriate level of retained austenite fraction and increasing an elongation by suppressing precipitation of cementite. When the content of Si is less than 1.0%, the control of cementite precipitation during the reheating and overaging operations may be not smoothly performed, and thus, a fraction of a finally obtained retained austenite may be reduced or the stability thereof may be low, resulting in a poor elongation. On the other hand, when the content of Si exceeds 2.0%, the properties of a welded portion may deteriorate due to the occurrence of Liquid Metal Embrittlement (LME) cracks, and the surface characteristics and plating properties of a steel may also deteriorate. Accordingly, the content of Si is preferably in the range of 1.0 to 2.0%. A lower limit of the content of Si is more preferably 1.2%. An upper limit of the content of Si is more preferably 1.8%.Phosphorus (P): 0.1% or less (excluding 0%)
[0027] P is an impurity element included in steel, and when a content thereof exceeds 0.1%, weldability thereof deteriorates and there is a risk of steel brittleness. The lower the content of P is, the more advantageous it is, but considering that phosphorus (P) is inevitably included in the manufacturing process, 0% is excluded. Accordingly, the content of P is preferably in the range of 0.1% or less (excluding 0%). The content of P is more preferably 0.03% or less.Sulfur (S): 0.03% or less (excluding 0%)
[0028] S, similarly to P, is an impurity element included in steel, and when a content thereof exceeds 0.03%, ductility and weldability thereof may deteriorate. The lower the S content is, the more advantageous it is, but considering that sulfur (S) is inevitably included in the manufacturing process, 0% is excluded. Accordingly, the content of S is preferably in the range of 0.03% or less (excluding 0%). The content of S is more preferably 0.005% or less.Aluminum (Al): 0.01 to 0.1%
[0029] Al is an element added to remove oxygen in molten steel, and is effective in stabilizing retained austenite by suppressing precipitation of cementite during reheating and overaging operations, similarly to Si. When the content of Al is less than 0.01%, the deoxidation effect may not be sufficiently obtained, which may impair the cleanliness of a steel. When the content of Al exceeds 0.1%, not only may the castability of the slab deteriorate, but the temperature required for single-phase region heating during annealing may also increase, which may cause production and facility problems. Accordingly, the content of Al is preferably in the range of 0.01 to 0.1%. An upper limit of the content of Al is more preferably 0.05%.Molybdenum (Mo): 0.01% or less (excluding 0%)
[0030] Mo is a representative element that may improve hardenability, but in the present disclosure, since the balance of strength, an elongation and hole expandability is important, and a steel has a tensile strength of 980 MPa, there is no need to add Mo for the purpose of improving hardenability and facilitating the formation of martensite. When Mo is added, there is a problem of increasing the manufacturing costs, so that it is preferable not to intentionally add Mo in the present disclosure. Accordingly, in the present disclosure, the content of Mo may be limited to 0.01% or less. Meanwhile, considering a case in which Mo is inevitably included during the manufacturing process, a lower limit thereof may be 0.001%.Boron (B): 0.001% or less (excluding 0%)
[0031] B is a representative element that may improve hardenability, but in the present disclosure, since the balance of strength, an elongation and hole expandability is important, and a steel has a tensile strength of 980 MPa, there is no need to add B for the purpose of improving hardenability and facilitating the formation of martensite. Accordingly, it is preferable not to add B in the present disclosure. Accordingly, in the present disclosure, the content of B may be limited to 0.001% or less. Meanwhile, considering a case in which B is unavoidably included during the manufacturing process, a lower limit thereof may be 0.0001%.
[0032] The remaining component is iron (Fe). However, since unintended impurities may inevitably be mixed during a normal manufacturing process from raw materials or the surrounding environment, this may not be excluded. Since these impurities may be known to anyone who is skilled in the normal manufacturing process, not all of their contents are specifically mentioned in this specification.
[0033] A microstructure of the cold-rolled steel sheet of the present disclosure may include, in area%, ferrite: more than 10% and 45% or less, retained austenite: 7 to 15%, fresh martensite: 10% or less (including 0%), and a sum of tempered martensite and bainite: 40 to 80%. The ferrite is a structure advantageous for securing an elongation. When a fraction of the ferrite is 10% or less, it may be difficult to secure the elongation targeted in the present disclosure, and when the fraction of the ferrite exceeds 45%, it may be difficult to secure the strength and hole expandability targeted in the present disclosure. The retained austenite is a structure absolutely necessary for securing the elongation together with the ferrite formed during the annealing process. When the fraction of the retained austenite is less than 7%, it may be difficult to secure the elongation targeted in the present disclosure. When the fraction of the retained austenite exceeds 15%, it may be difficult to secure the targeted elongation due to insufficient stability of the retained austenite. When the fraction of the fresh martensite exceeds 10%, it may be difficult to obtain a steel having excellent strength, an excellent elongation and excellent hole expandability characteristics. The tempered martensite and bainite are structures necessary for securing strength and hole expandability, and when a phase transformation is advanced to include the fraction in the above-described range, the retained austenite that is stable at room temperature may ultimately include 7 to 15%. When the fraction of the tempered martensite and bainite is less than 40%, it may be difficult to secure the retained austenite fraction targeted by the present disclosure due to insufficient total transformation amount, and since 10% or more of the fresh martensite is secured, it may be difficult to secure the strength, elongation, and hole expandability targeted by the present disclosure. When the fraction of the tempered martensite and bainite exceeds 80%, it may be possible to secure strength and hole expandability, but it may be difficult to secure the high elongation targeted by the present disclosure due to the lack of the fraction of ferrite and retained austenite. Meanwhile, the fraction of the tempered martensite is more preferably 40% or more.
[0034] The cold-rolled steel sheet of the present disclosure includes a soft layer having a predetermined depth (t) of the steel sheet in a thickness direction from a surface thereof, and it is preferable that the soft layer satisfies the following relational expressions 1 and 2. By forming the soft layer, Liquid Metal Embrittlement (LME) cracks may be prevented. The predetermined depth (t) may be 50 to 100µm.More specifically, the predetermined depth (t) may be 50 to 80µm. In this case, the surface refers to a surface of a base steel sheet, and a plating layer that may be formed on the surface of the base steel sheet is excluded.
[0035] It is preferable that the soft layer satisfies the following relational expressions 1 and 2. C t / 5 / C M < 0.3 C 3 t / 5 / C M < 0.6
[0036] (where, in the relational expressions 1 and 2, [C t / 5 ] represents an average C content in a region from the surface to 1 / 5 of the predetermined depth (t) of the steel sheet in a thickness direction, [C 3t / 5 ] represents an average C content in a region corresponding to 3 / 5 of the predetermined depth (t) of the steel sheet in the thickness direction from 1 / 5 of the predetermined depth (t), and [C M ] represents an average C content of the steel sheet.)
[0037] When the conditions of the relational expressions 1 and 2 are not satisfied, it may be difficult to obtain good LME characteristics.
[0038] Meanwhile, the [C 1 / 5t ] may include a microstructure including, area%, 80% or more of ferrite, and a balance of bainite and tempered martensite.
[0039] The cold-rolled steel sheet of the present disclosure may have one of a hot-dip galvanized layer (GI), an alloyed hot-dip galvanized layer (GA), and an electrogalvanized layer (EG) formed on at least one surface thereof. The present disclosure does not specifically limit the specific conditions of the hot-dip galvanized layer (GI), the alloyed hot-dip galvanized layer (GA), or the electrogalvanized layer (EG), and all types commonly used in the relevant technical field may be used.
[0040] The cold-rolled steel sheet of the present disclosure may have a yield strength (YS): 600 MPa or more, a tensile strength (TS): 980 MPa or more, a total elongation (T-El): 21% or more, and a hole expansion ratio (HER): 20 to 40%. Since the yield strength, the tensile strength, the total elongation, and the uniform elongation are advantageous as they are higher, the present disclosure does not specifically limit upper limits of the yield strength, the tensile strength, and the total elongation.
[0041] The cold-rolled steel sheet of the present disclosure may be 30000 MPa% ≤ X = yield strength × [total elongation + (2 × hole expansion ratio)] ≤ 70000 MPa%. The control of the value X is to secure the yield strength of 600 MPa or more, targeted by the present disclosure, while simultaneously securing excellent elongation and excellent hole expandability. When the value of X is less than 30000 MPa% or exceeds 70000 MPa%, one or more of the properties of the strength, the elongation, and the hole expandability, desired by the present disclosure, may be inferior, making it difficult to use the cold-rolled steel sheet as a member for absorbing impact energy. A lower limit of the value X is more preferably 35000 MPa%. An upper limit of the value X is more preferably 65000 MPa%, and 60000 MPa% is even more preferably.
[0042] Hereinafter, a method for manufacturing a cold-rolled steel sheet according to an embodiment of the present disclosure will be described.
[0043] First, the slab is heated to a temperature of 1100 to 1300°C. The slab heating is performed to smoothly perform the subsequent hot rolling process and obtain the target properties of the steel sheet. When the slab heating temperature is lower than 1100°C, a problem of a rapid increase in the hot rolling load may occur. When the slab heating temperature exceeds 1300°C, the amount of surface scale may increase, which may reduce productivity.
[0044] Then, the heated slab is subjected to a finishing hot rolling at Ar3 or higher to obtain a hot rolled steel sheet. When the finishing hot rolling temperature is lower than Ar3, a two-phase zone of ferrite + austenite or a ferrite zone rolling is performed, resulting in generating a mixed grain structure, and equipment malfunction may occur due to a change in the hot rolling load. Meanwhile, the Ar3 may be obtained through the following relational expression 1.
[0045] Then, the hot-rolled steel sheet is coiled at 700°C or lower. When a coiling temperature exceeds 700°C, an oxide film may be excessively formed on the surface of the steel sheet, which may cause defects. The coiling temperature is more preferably 650°C or lower. On the other hand, as the coiling temperature decreases, the strength of the hot-rolled steel sheet increases, which has the disadvantage of increasing the rolling load as the subsequent cold rolling process, but since this is not a factor making actual production impossible, the present disclosure does not specifically limit a lower limit thereof. However, as an example, the lower limit of the coiling temperature may be 300°C.
[0046] Then, the coiled hot-rolled steel sheet is pickled and then cold-rolled to obtain a cold-rolled steel sheet. The pickling is a process for removing the oxide layer formed on the surface of the coiled hot-rolled steel sheet. The cold-rolling may be performed at a cold reduction ratio of 30 to 80%. When the cold reduction ratio is less than 30%, it is difficult to secure the target thickness, and there is a concern that the formation of austenite and securing of physical properties may be affected during annealing heat treatment due to retained crystal grains formed during hot rolling. When the cold reduction ratio exceeds 80%, a material deviation may occur due to the uneven rolling amount in length and width directions due to the work hardening occurring during cold rolling, and it may be difficult to secure a target thickness due to the rolling load.
[0047] Then, the cold-rolled steel sheet is primarily heated to a temperature of 780°C or higher and less than Ac3-10°C for 30 seconds or longer under atmospheric conditions having a dew point temperature of 0 to 30°C. The primary heating is to form some annealed ferrite in addition to the retained austenite in order to secure an elongation of 21% or more. When the dew point temperature is less than 0°C, the soft layer targeted by the present disclosure is not sufficiently formed on the surface of the steel sheet. When the dew point temperature exceeds 30°C, there are problems of reduced equipment life and productivity. A lower limit of the dew point temperature is more preferably 2°C. A upper limit of the dew point temperature is more preferably 25°C. When the primary heating temperature is less than 780°C, annealed ferrite may be excessively formed, making it difficult to secure strength and hole expandability. When the primary heating temperature is Ac3-10°C or higher, the fraction of annealed ferrite may be insufficient due to heating at a single-phase region level, resulting in poor elongation. A lower limit of the primary heating temperature is more preferably 790°C. An upper limit of the primary heating temperature is more preferably Ac3-15°C. When the primary heating time is less than 30 seconds, there is a disadvantage in that a sufficient annealing effect is not obtained. Meanwhile, the longer the primary heating time is, the more advantageous it is, and thus the present disclosure is not particularly limited to the lower limit thereof. However, as an example, the upper limit of the primary heating time may be 500 seconds. Meanwhile, the above-described Ac3 may be obtained through the following relational expression 2.
[0048] Then, the heated cold-rolled steel sheet is primarily cooled to 600 to 750°C at an average cooling rate of 1 to 10°C / s. When a primary cooling end temperature is less than 600°C, there is a concern that phases such as ferrite or bainite may be formed, resulting in a decrease in strength. When the primary cooling end temperature exceeds 750°C, problems may occur in an actual production line. A lower limit of the primary cooling end temperature is more preferably 610°C, and more preferably 630°C. An upper limit of the primary cooling end temperature is more preferably 740°C, and more preferably 730°C. When a primary average cooling rate is less than 1°C / s, it may be difficult to secure the target strength because ferrite is formed during cooling. When the primary average cooling rate exceeds 10°C / s, the average cooling rate decreases during the second cooling, making it difficult to secure sufficient martensite, which in turn leads to a decrease in the fraction of tempered martensite, making it difficult to secure strength and hole expandability at the same time. An upper limit of the primary average cooling rate is more preferably 6°C / s.
[0049] Then, the primarily-cooled cold-rolled steel sheet is secondarily cooled to 150°C~Ms at an average cooling rate of 10 to 45°C / s. In order to secure a tempered martensite structure of 40% or more required in the present disclosure, it is necessary to cool the steel sheet between the martensite transformation start and finish temperature (Martensite Start (Ms) to Finish Temperature (Mf)) during the secondary cooling. That is, for this purpose, the secondary cooling end temperature preferably has a range of 150°C-Ms. When the secondary cooling end temperature is less than 150°C, a tempered martensite fraction may become excessively high, the retained austenite fraction may decrease, and the elongation may become inferior. When the secondary cooling end temperature exceeds Ms, the formation of tempered martensite structure may become difficult, and the strength and hole expandability may become inferior. A lower limit of the secondary cooling end temperature is more preferably 180. When the secondary average cooling rate is less than 10°C / s, some bainite structure may be formed from the primary cooling section to the secondary cooling. When the secondary average cooling rate exceeds 45°C / s, a surface shape of the steel sheet may become inferior due to the rapid martensite transformation rate at the time of the secondary cooling, and a material deviation problem in a width direction may occur. A lower limit of the secondary average cooling rate is more preferably 12°C / s. An upper limit of the secondary average cooling rate is more preferably 42°C / s. Meanwhile, the above-described Ms may be obtained through the following relational expression 3.
[0050] Then, the secondarily-cooled cold-rolled steel sheet is secondarily heated to a temperature of Ms~480°C, and then subjecting to overaging for 1 to 30 minutes. The secondary heating and overaging are intended to improve the toughness by changing the high dislocation density and hard martensite formed during the second cooling into tempered martensite. In addition, by securing a sufficient amount of tempered martensite and bainite during the secondary heating and overaging treatment, C is enriched in the austenite remaining from the annealing (Partitioning). In this process, the martensite transformation start temperature (Ms) of the austenite in which C is enriched is lowered to a temperature equal to or lower than room temperature, and a large amount of retained austenite is ultimately formed, thereby securing the properties targeted by the present disclosure. When the secondary heating temperature is less than Ms or exceeds 480°C, it may be difficult to secure the fraction of the microstructure targeted by the present disclosure. A lower limit of the secondary heating temperature is more preferably 360°C. An upper limit of the secondary heating temperature is more preferably 460°C. When the overaging treatment time is less than 1 minute, it is difficult to obtain a partitioning effect because sufficient transformation is not advanced. When the overaging treatment time exceeds 30 minutes, the secondary heating and overaging treatment section should be significantly long, and productivity decreases, so that it may be difficult to apply to an actual production line.
[0051] Meanwhile, after the secondary heating and maintenance, the cold-rolled steel sheet may be immersed in a hot-dip galvanized bath of 440 to 480°C to form a hot-dip galvanized layer. When a hot-dip galvanized bath temperature is less than 440°C, it may be difficult to manage the molten zinc plating bath, and when the hot-dip galvanized bath temperature exceeds 480°C, a final elongation may decrease.
[0052] Additionally, after the formation of the hot-dip galvanized layer, the cold-rolled steel sheet on which the hot-dip galvanized layer is formed may be subjected to an alloying heat treatment at 450 to 520°C. When the alloying heat treatment temperature is less than 450°C, it may be difficult to form a sufficient Fe-Zn alloy plating layer, and when the alloying heat treatment temperature exceeds 520°C, the final elongation may be inferior due to the decomposition of the retained austenite formed in a previous operation.
[0053] On the other hand, after the secondary heating and maintenance, an electro-galvanized layer may be formed.Mode for Invention
[0054] Hereinafter, the present disclosure will be described in more detail through embodiments. However, it should be noted that the following embodiments are intended only to explain the present disclosure through examples, and are not intended to limit the scope of the present disclosure. This is because the scope of the present disclosure is determined by the matters described in the claims and matters reasonably inferred therefrom.(Example)
[0055] A slab having an alloy composition as described in Table 1 below was heated to a temperature of 1100 to 1300°C, and then finishing hot-rolled at 900 to 1000°C to manufacture a hot-rolled steel sheet. The hot-rolled steel sheet was coiled at 350 to 650°C, pickled, and cold-rolled at a cold reduction ratio of 45 to 65%, and then, a cold-rolled steel sheet was manufactured by applying the conditions described in Table 2 below. Meanwhile, the conditions described in Table 2 below are based on a surface temperature of the steel sheet. Accordingly, the manufactured cold-rolled steel sheet was subjected to hot-dip galvanizing or hot-dip galvanizing and alloying heat treatment under the conditions described in Table 2 below.
[0056] The microstructure and mechanical properties of the cold-rolled steel sheet manufactured in this manner were measured, and the results thereof are described in Tables 3 and 4 below.
[0057] A phase fraction of the microstructure was measured using XRD and EBSD for t / 4 (t: thickness of steel) of the cold-rolled steel sheet.
[0058] The formation of a soft layer having a predetermined depth (t) was measured using GDS. An average C content [C t / 5 ] of a region from a surface thereof to 1 / 5 of a predetermined depth (t) of the steel sheet in a thickness direction and an average C content [C 3t / 5 ] of a region corresponding to 3 / 5 of the predetermined depth (t) of the steel sheet in the thickness direction from 1 / 5 of the predetermined depth (t) were calculated by the average value of the content of C measured through GDS, and [C M ] was measured using the results of OES and ICP C component analysis of a parent material.
[0059] Yield strength (YS), tensile strength (TS), total elongation (T-El), and uniform elongation (U-El) were measured by processing the cold-rolled steel sheet into specimens of the JIS standard (gauge length width × length: 25 × 50 mm, total length of specimen: 200 to 260 mm), and then performing a tensile test at a test speed of 28 mm / min.
[0060] Hole expansion ratio (HER) was measured according to the ISO 16330 standard, and holes were sheared at a clearance of 12% using a 10 mm diameter punch.
[0061] LME was evaluated according to the ISO 18278-2 standard, and ∘ was indicated when a C-type crack occurred, and × was indicated when no cracking occurred. Table 1:Steel Type No.Alloy Composition (wt%)CMnSiPSAlMoBComparative Steel 10.2012.361.370.00710.00120.0360.10.0015Comparative Steel 20.2051.271.470.00820.00110.0350.0020.0003Inventive Steel 10.2152.31.450.00650.00040.0310.0030.0004Inventive Steel 20.2212.251.50.00550.00050.0330.0020.0003Inventive Steel 30.2242.261.480.00580.00060.0250.0020.0004 Table 2: DivisionSteel Type No.Primary HeatingPrimary CoolingMs (°C )Secondary CoolingSec ond ary Hea tin g Tem per atu re (°C)Over agin g Trea tmen t Time (min )Hot-dip galva nized Bath Tempe ratur e (°C)Tempera ture of Alloyin g Heat Treatme nt (°C)Dew poin t temp erat ure (°C)Tem per atu re (°C)Tim e (se con ds)End Temp erat ure (°C)Avera ge Cooli ng Rate (°C / s )End Tempe ratur e (°C)Avera ge Cooli ng Rate (°C / s )Inventive Example 1Inventive Steel 1128401007003.0935630020.38400166460-Inventive Example 2Inventive Steel 115840876804.0335631021.54420145460-Inventive Example 3Inventive Steel 214820876504.2835420026.20400145460-Inventive Example 4Inventive Steel 316830877003.2835225026.20400145460-Inventive Example 5Inventive Steel 113850706802.2835630013.52400206460480Inventive Example 6Inventive Steel 211840537002.5035425021.35400155460480Inventive Example 7Inventive Steel 312850537002.6835232018.03400155460500Inventive Example 8Inventive Steel 2148401007003.0935428020.38400166--Inventive Example 9Inventive Steel 215830876803.7835426024.45400145--Comparative Example 1Inventive Steel 1-508401007003.0935630020.38400166460-Comparative Example 2Inventive Steel 1-48840876804.0335631021.54420145460-Comparative Example 3Inventive Steel 2-50820876504.2835420026.20400145460-Comparative Example 4Inventive Steel 3-47830877003.2835225026.20400145460-Comparative Example 5Inventive Steel 1-1840876804.0335631021.54420145460-Comparative Example 6Inventive Steel 215775877001. 8935425026.20400145460-Comparative Example 7Inventive Steel 214900876805.5535431021.54400145460-Comparative Example 8Inventive Steel 212850875906.5535420022.71400145460-Comparative Example 9Inventive Steel 216820875905.8035420022.71400145460-Comparative Example 10Inventive Steel 212840877003.5335440017.47400145460-Comparative Example 11Inventive Steel 214820877003.0235440017.47400145460-Comparative Example 12Inventive Steel 211850876804.2835430022.13500145460-Comparative Example 13Inventive Steel 213900537003.5735430018. 98400155460480Comparative Example 14Inventive Steel 215850535904.4635430014.23400155460480Comparative Example 15Inventive Steel 216840537002.5035440014.23400155460480Comparative Example 16Inventive Steel 214850236806.8335430040.5740069460480Comparative Example 17Comparati ve Steel 115840876804.0336230022.13400145460480Comparative Example 18Comparati ve Steel 215820876504.2839130020.38400145460500Ac3 (°C) = 910-203√[C]-15.2[Ni]+44.7[Si]+104[V]+31.5[Mo]+13.1[W]Ms(°C) = 539-423[C]-30.4[Mn]-7.5[Si]+30[Al]-12.1[Cr]-17.7[Ni]-7.5[Mo] Table 3: DivisionMicrostructure (area%)Relational Expression 1Relational Expression 2FRAFMBTMInventive Example 116941160○○Inventive Example 216961455○○Inventive Example 330751246○○Inventive Example 41994662○○Inventive Example 51593865○○Inventive Example 618104563○○Inventive Example 715851260○○Inventive Example 8141241654○○Inventive Example 9221141053○○Comparative Example 116941160××Comparative Example 216961455××Comparative Example 330751246××Comparative Example 41994662××Comparative Example 516961455×○Comparative Example 652512310○○Comparative Example 7289774○○Comparative Example 81967365○○Comparative Example 9395112035○○Comparative Example 1016910650○○Comparative Example 1125812550○○Comparative Example 12146141254○○Comparative Example 13086878○○Comparative Example 1419891945○○Comparative Example 1516810660○○Comparative Example 1611515366○○Comparative Example 17277381○○Comparative Example 1858851019○○F: Ferrite, RA: Remaining austenite, FM: Fresh Martensite, B: Bainite, and TM: Tempered Martensite[Relational Expression 1] [C t / 5 ] / [C M ] < 0.3[Relational Expression 2] [C 3t / 5 ] / [C M ] < 0.6(where, in the relational expressions 1 and 2, [C t / 5 ] represents an average C content in a region from a surface to 1 / 5 of a predetermined depth (t) of the steel sheet in a thickness direction, [C 3t / 5 ] represents an average C content in a region corresponding to 3 / 5 of the predetermined depth (t) of the steel sheet in the thickness direction from 1 / 5 of the predetermined depth (t), and [C M ] represents an average C content of the steel sheet,) Table 4: DivisionYield Strength (MPa)Tensile Strength (MPa)Total Elongati on (%)Uniform Elongat ion (%)Hole Expandabi lity (%)XLME Crack (C Type)Inventive Example 1622103322153253492×Inventive Example 2605103122142745980×Inventive Example 3618100522152544496×Inventive Example 4643104222152445010×Inventive Example 5691103522152651134×Inventive Example 6672102122152548384×Inventive Example 7644101921152444436×Inventive Example 8705102721152347235×Inventive Example 9683101523152853957×Comparative Example 1624108322153354912○Comparative Example 2602108121142643946○Comparative Example 3614106322152645436○Comparative Example 4649107122152546728○Comparative Example 5613104922142746588○Comparative Example 6521106520151627092×Comparative Example 7752107719135089488×Comparative Example 8728106919134579352×Comparative Example 9531105822151426550×Comparative Example 10506104519141524794×Comparative Example 11487105720151221428×Comparative Example 12577109315101829427×Comparative Example 13671105219144877165×Comparative Example 14488105019141321960×Comparative Example 15491105920151221604×Comparative Example 16555107016111019980×Comparative Example 17851110515103877441×Comparative Example 1842591225182027625×X = Yield strength × [Total elongation + (2×Hole Expandability)]
[0062] As shown in Tables 1 to 4, in the case of Inventive Examples 1 to 9 satisfying the alloy composition and manufacturing conditions proposed by the present disclosure, it can be seen that excellent physical properties are secured by securing the microstructure and the soft layer targeted by the present disclosure.
[0063] In the case of Comparative Examples 1 to 4, it can be seen that the strength, elongation, and hole expandability required in the present disclosure are satisfied, but the LME characteristics are inferior because the soft layer is not secured as the dew point temperature is not satisfied, among the manufacturing conditions.
[0064] For Comparative Example 5, it can be seen that the strength, elongation, and hole expandability required by the present disclosure are satisfied, but among the manufacturing conditions, decarburization is weak as the dew point temperature is not satisfied, and thus, the LME characteristics are inferior because the relational expression 1 is not satisfied.
[0065] In the case of Comparative Examples 6 to 16, it can be seen that as the manufacturing conditions of the present disclosure are not satisfied, the microstructure targeted by the present disclosure is not ensured, and thus, one or more of the strengths, the elongation and the hole expandability required by the present disclosure are not satisfied.
[0066] In the case of Comparative Examples 17 and 18, it can be seen that the microstructure targeted by the present disclosure is not ensured because the alloy composition or the alloy composition and manufacturing conditions of the present disclosure are not satisfied, and thus, one or more of the strength, the elongation, and the hole expandability required by the present disclosure are not satisfied.
[0067] FIG. 1 is a microstructure image of Inventive Example 1 observed with an SEM microscope. As can be seen from FIG. 1, in the case of Inventive Example 1, it can be seen that the microstructure of an appropriate fraction to be obtained by the present disclosure is secured.
Claims
1. A cold-rolled steel sheet, comprising: by wt%, carbon (C): 0.15 to 0.25%, manganese (Mn): 1.5 to 2.5%, silicon (Si): 1.0 to 2.0%, phosphorus (P): 0.1% or less (excluding 0%), sulfur (S): 0.03% or less (excluding 0%), aluminum (Al): 0.01 to 0.1%, molybdenum (Mo): 0.01% or less (excluding 0%), boron (B): 0.001% or less (excluding 0%), and a balance of Fe and other inevitable impurities, wherein a microstructure includes, in area%, ferrite: more than 10% and 45% or less, retained austenite: 7 to 15%, fresh martensite: 10% or less (including 0%), and a sum of tempered martensite and bainite: 40 to 80%, the cold-rolled steel sheet includes a soft layer having a predetermined depth (t) of the steel sheet in a thickness direction from a surface thereof, and the soft layer satisfies the following relational expressions 1 and 2, C t / 5 / C M < 0.3 C 3 t / 5 / C M < 0.6 (where, in the relational expression 1 and 2, [Ct / 5] represents an average C content in a region from a surface to 1 / 5 of a predetermined depth (t) of the steel sheet in a thickness direction, [C3t / 5] represents an average C content in a region corresponding to 3 / 5 of the predetermined depth (t) of the steel sheet in the thickness direction from 1 / 5 of the predetermined depth (t), and [CM] represents an average C content of the steel sheet).
2. The cold-rolled steel sheet of claim 1, wherein a fraction of the tempered martensite is 40% or more.
3. The cold-rolled steel sheet of claim 1, wherein the predetermined depth (t) is 50 to 100µm.
4. The cold-rolled steel sheet of claim 1, wherein the cold-rolled steel sheet has at least one of a hot-dip galvanized layer (GI), an alloyed hot-dip galvanized layer (GA), and an electrolytic galvanized layer (EG) formed on at least one surface thereof.
5. The cold-rolled steel sheet of claim 1, wherein the cold-rolled steel sheet has a 30000MPa% ≤ X = yield strength × [total elongation + (2 × hole expansion ratio)] ≤ 70000MPa%.
6. A method for manufacturing a cold-rolled steel sheet, comprising: heating a slab at 1100 to 1300°C, the slab including, by wt%, carbon (C): 0.15 to 0.25%, manganese (Mn): 1.5 to 2.5%, silicon (Si): 1.0 to 2.0%, phosphorus (P): 0.1% or less (excluding 0%), sulfur (S): 0.03% or less (excluding 0%), aluminum (Al): 0.01 to 0.1%, molybdenum (Mo): 0.01% or less (excluding 0%), boron (B): 0.001% or less (excluding 0%), and a balance of Fe and other inevitable impurities; finishing hot-rolling the heated slab at Ar3 or higher to obtain a hot-rolled steel sheet; coiling the hot-rolled steel sheet at 700°C or less; pickling and then cold-rolling the coiled hot-rolled steel sheet to obtain a cold-rolled steel sheet; primarily heating the cold-rolled steel sheet at 780°C or higher and less than Ac3-10°C for 30 seconds or longer under an atmosphere condition having a dew point temperature of 0 to 30°C; primarily cooling the heated cold-rolled steel sheet to 600 to 750°C at an average cooling rate of 1 to 10°C / s; secondarily cooling the primarily-cooled cold-rolled steel sheet to 150°C~Ms at an average cooling rate of 10 to 45°C / s; and secondarily heating the secondarily-cooled cold-rolled steel sheet at Ms~480°C and then subjecting the steel sheet to an overaging treatment for 1 to 30 minutes.
7. The method for manufacturing a cold-rolled steel sheet of claim 6, wherein the cold rolling is performed at a cold reduction ratio of 30 to 80%.
8. The method for manufacturing a cold-rolled steel sheet of claim 6, further comprising: immersing the cold-rolled steel sheet in a hot-dip galvanized bath at 440 to 480°C after the secondary heating and holding, to form a hot-dip galvanized layer.
9. The method for manufacturing a cold-rolled steel sheet of claim 8, further comprising: performing an alloying heat treatment on the cold-rolled steel sheet at 450 to 520°C after the formation of the hot-dip galvanized layer.
10. The method for manufacturing a cold-rolled steel sheet of claim 6, further comprising: forming an electro-galvanized layer after the secondary heating and holding.
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