EP4450664A1 - Hot rolled steel sheet for ground reinforcement and steel pipe for ground reinforcement, and manufacturing methods thereof - Google Patents

Hot rolled steel sheet for ground reinforcement and steel pipe for ground reinforcement, and manufacturing methods thereof Download PDF

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Publication number
EP4450664A1
EP4450664A1 EP22907796.1A EP22907796A EP4450664A1 EP 4450664 A1 EP4450664 A1 EP 4450664A1 EP 22907796 A EP22907796 A EP 22907796A EP 4450664 A1 EP4450664 A1 EP 4450664A1
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EP
European Patent Office
Prior art keywords
hot
less
steel pipe
ground reinforcement
steel sheet
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Pending
Application number
EP22907796.1A
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German (de)
French (fr)
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EP4450664A4 (en
Inventor
Yun-Ik KWON
Hak-Jun Kim
Kyong-Su Park
Seok-Jong SEO
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Posco Holdings Inc
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Posco Co Ltd
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Application filed by Posco Co Ltd filed Critical Posco Co Ltd
Publication of EP4450664A1 publication Critical patent/EP4450664A1/en
Publication of EP4450664A4 publication Critical patent/EP4450664A4/en
Pending legal-status Critical Current

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    • CCHEMISTRY; METALLURGY
    • C21METALLURGY OF IRON
    • C21DMODIFYING THE PHYSICAL STRUCTURE OF FERROUS METALS; GENERAL DEVICES FOR HEAT TREATMENT OF FERROUS OR NON-FERROUS METALS OR ALLOYS; MAKING METAL MALLEABLE, e.g. BY DECARBURISATION OR TEMPERING
    • C21D9/00Heat treatment, e.g. annealing, hardening, quenching or tempering, adapted for particular articles; Furnaces therefor
    • C21D9/46Heat treatment, e.g. annealing, hardening, quenching or tempering, adapted for particular articles; Furnaces therefor for sheet metals
    • CCHEMISTRY; METALLURGY
    • C21METALLURGY OF IRON
    • C21DMODIFYING THE PHYSICAL STRUCTURE OF FERROUS METALS; GENERAL DEVICES FOR HEAT TREATMENT OF FERROUS OR NON-FERROUS METALS OR ALLOYS; MAKING METAL MALLEABLE, e.g. BY DECARBURISATION OR TEMPERING
    • C21D8/00Modifying the physical properties of ferrous metals or ferrous alloys by deformation combined with, or followed by, heat treatment
    • C21D8/02Modifying the physical properties of ferrous metals or ferrous alloys by deformation combined with, or followed by, heat treatment during manufacturing of plates or strips
    • C21D8/0221Modifying the physical properties of ferrous metals or ferrous alloys by deformation combined with, or followed by, heat treatment during manufacturing of plates or strips characterised by the working steps
    • C21D8/0226Hot rolling
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B21MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
    • B21BROLLING OF METAL
    • B21B21/00Pilgrim-step tube-rolling, i.e. pilger mills
    • B21B21/02Rollers therefor
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B21MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
    • B21CMANUFACTURE OF METAL SHEETS, WIRE, RODS, TUBES, PROFILES OR LIKE SEMI-MANUFACTURED PRODUCTS OTHERWISE THAN BY ROLLING; AUXILIARY OPERATIONS USED IN CONNECTION WITH METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL
    • B21C47/00Winding-up, coiling or winding-off metal wire, metal band or other flexible metal material characterised by features relevant to metal processing only
    • B21C47/02Winding-up or coiling
    • CCHEMISTRY; METALLURGY
    • C21METALLURGY OF IRON
    • C21DMODIFYING THE PHYSICAL STRUCTURE OF FERROUS METALS; GENERAL DEVICES FOR HEAT TREATMENT OF FERROUS OR NON-FERROUS METALS OR ALLOYS; MAKING METAL MALLEABLE, e.g. BY DECARBURISATION OR TEMPERING
    • C21D6/00Heat treatment of ferrous alloys
    • C21D6/005Heat treatment of ferrous alloys containing Mn
    • CCHEMISTRY; METALLURGY
    • C21METALLURGY OF IRON
    • C21DMODIFYING THE PHYSICAL STRUCTURE OF FERROUS METALS; GENERAL DEVICES FOR HEAT TREATMENT OF FERROUS OR NON-FERROUS METALS OR ALLOYS; MAKING METAL MALLEABLE, e.g. BY DECARBURISATION OR TEMPERING
    • C21D8/00Modifying the physical properties of ferrous metals or ferrous alloys by deformation combined with, or followed by, heat treatment
    • C21D8/02Modifying the physical properties of ferrous metals or ferrous alloys by deformation combined with, or followed by, heat treatment during manufacturing of plates or strips
    • CCHEMISTRY; METALLURGY
    • C21METALLURGY OF IRON
    • C21DMODIFYING THE PHYSICAL STRUCTURE OF FERROUS METALS; GENERAL DEVICES FOR HEAT TREATMENT OF FERROUS OR NON-FERROUS METALS OR ALLOYS; MAKING METAL MALLEABLE, e.g. BY DECARBURISATION OR TEMPERING
    • C21D8/00Modifying the physical properties of ferrous metals or ferrous alloys by deformation combined with, or followed by, heat treatment
    • C21D8/02Modifying the physical properties of ferrous metals or ferrous alloys by deformation combined with, or followed by, heat treatment during manufacturing of plates or strips
    • C21D8/0247Modifying the physical properties of ferrous metals or ferrous alloys by deformation combined with, or followed by, heat treatment during manufacturing of plates or strips characterised by the heat treatment
    • C21D8/0263Modifying the physical properties of ferrous metals or ferrous alloys by deformation combined with, or followed by, heat treatment during manufacturing of plates or strips characterised by the heat treatment following hot rolling
    • CCHEMISTRY; METALLURGY
    • C21METALLURGY OF IRON
    • C21DMODIFYING THE PHYSICAL STRUCTURE OF FERROUS METALS; GENERAL DEVICES FOR HEAT TREATMENT OF FERROUS OR NON-FERROUS METALS OR ALLOYS; MAKING METAL MALLEABLE, e.g. BY DECARBURISATION OR TEMPERING
    • C21D8/00Modifying the physical properties of ferrous metals or ferrous alloys by deformation combined with, or followed by, heat treatment
    • C21D8/10Modifying the physical properties of ferrous metals or ferrous alloys by deformation combined with, or followed by, heat treatment during manufacturing of tubular bodies
    • CCHEMISTRY; METALLURGY
    • C21METALLURGY OF IRON
    • C21DMODIFYING THE PHYSICAL STRUCTURE OF FERROUS METALS; GENERAL DEVICES FOR HEAT TREATMENT OF FERROUS OR NON-FERROUS METALS OR ALLOYS; MAKING METAL MALLEABLE, e.g. BY DECARBURISATION OR TEMPERING
    • C21D9/00Heat treatment, e.g. annealing, hardening, quenching or tempering, adapted for particular articles; Furnaces therefor
    • C21D9/08Heat treatment, e.g. annealing, hardening, quenching or tempering, adapted for particular articles; Furnaces therefor for tubular bodies or pipes
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/001Ferrous alloys, e.g. steel alloys containing N
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/002Ferrous alloys, e.g. steel alloys containing In, Mg, or other elements not provided for in one single group C22C38/001 - C22C38/60
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/02Ferrous alloys, e.g. steel alloys containing silicon
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/04Ferrous alloys, e.g. steel alloys containing manganese
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/12Ferrous alloys, e.g. steel alloys containing tungsten, tantalum, molybdenum, vanadium, or niobium
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/14Ferrous alloys, e.g. steel alloys containing titanium or zirconium
    • CCHEMISTRY; METALLURGY
    • C21METALLURGY OF IRON
    • C21DMODIFYING THE PHYSICAL STRUCTURE OF FERROUS METALS; GENERAL DEVICES FOR HEAT TREATMENT OF FERROUS OR NON-FERROUS METALS OR ALLOYS; MAKING METAL MALLEABLE, e.g. BY DECARBURISATION OR TEMPERING
    • C21D2211/00Microstructure comprising significant phases
    • C21D2211/004Dispersions; Precipitations
    • CCHEMISTRY; METALLURGY
    • C21METALLURGY OF IRON
    • C21DMODIFYING THE PHYSICAL STRUCTURE OF FERROUS METALS; GENERAL DEVICES FOR HEAT TREATMENT OF FERROUS OR NON-FERROUS METALS OR ALLOYS; MAKING METAL MALLEABLE, e.g. BY DECARBURISATION OR TEMPERING
    • C21D2211/00Microstructure comprising significant phases
    • C21D2211/005Ferrite

Definitions

  • the present disclosure relates to a hot-rolled steel sheet for ground reinforcement and a steel pipe for ground reinforcement, having excellent strength and formability, and manufacturing methods thereof.
  • a steel pipe for ground reinforcement used to reinforce ground structures in civil engineering, construction and the like should satisfy a YS of 800 MPa, TS of 860 MPa, and EL of 10% or more in a longitudinal direction.
  • a hot-rolled steel sheet is required to have high strength of a YS of 700 MPa or more and a TS of 750 MPa or more, and formability of EL of 15% or more.
  • the formability thereof should be excellent, since the small diameter of the steel pipe is subject to a lot of work hardening during piping, and a microstructure thereof should be uniform to enable pipe production without shape defects.
  • An aspect of the present disclosure is to provide a hot-rolled steel sheet for ground reinforcement and a steel pipe for ground reinforcement, having excellent strength and formability, and manufacturing methods thereof.
  • a hot-rolled steel sheet for ground reinforcement having excellent strength and formability
  • the hot-rolled steel sheet for ground reinforcement including by weight: 0.05 to 0.1% of C, 0.1% or less (excluding 0%) of Si, 1.5 to 1.9% of Mn, 0.05 to 0.15% of Ti, 0.03 to 0.1% of Nb, 0.03 to 0.1% of Mo, 0.02% or less (excluding 0%) of P, 0.02% or less (excluding 0%) of S, 0.01% or less (excluding 0%) of N, with a balance of Fe and inevitable impurities, wherein the following Relational expressions 1 and 2 are satisfied, wherein the hot-rolled steel sheet for ground reinforcement has a microstructure including by area, 90% or more of ferrite, wherein a grain of the ferrite has an average size of 15 ⁇ m or less, wherein the hot-rolled steel sheet includes by weight, 0.05% or more of a carbide containing Ti, Nb, and Mo, alone or in combination thereof, wherein the carbide has an
  • Another aspect of the present disclosure is to provide a steel pipe for ground reinforcement having excellent strength and formability manufactured using the hot-rolled steel sheet.
  • a method of manufacturing a hot-rolled steel sheet for ground reinforcement having excellent strength and formability including: reheating a steel slab including, by weight: 0.05 to 0.1% of C, 0.1% or less (excluding 0%) of Si, 1.5 to 1.9% of Mn, 0.05 to 0.15% of Ti, 0.03 to 0.1% of Nb, 0.03 to 0.1% of Mo, 0.02% or less (excluding 0%) of P, 0.02% or less (excluding 0%) of S, 0.01% or less (excluding 0%) of N, with a balance of Fe and inevitable impurities, wherein the following Relational expressions 1 and 2 are satisfied, at a temperature within a range of 1150°C to 1300°C; finish hot rolling the reheated steel slab at a temperature within a range of 800 to 950°C to obtain a hot-rolled steel sheet; and coiling the hot-rolled steel sheet at a temperature within a range of 550°C to 700°C. 0.002 ⁇ (
  • Another aspect of the present disclosure is to provide a method of manufacturing a steel pipe for ground reinforcement having excellent strength and formability, including the operation of obtaining a steel pipe by piping the hot-rolled steel sheet manufactured by the above manufacturing method.
  • a hot-rolled steel sheet for ground reinforcement having excellent strength and formability and manufacturing methods thereof may be provided.
  • Carbon (C) is an element added not only for solid solution strengthening but also for forming a carbide with Ti, No, and Mo, and to secure a tensile strength. In order to obtain the above-described effects, C is preferably added in an amount of 0.05% or more. However, when a content of carbon (C) exceeds 0.1%, carbide coarsening occurs and a precipitation strengthening effect cannot be sufficiently secured, and a pearlite fraction may increase in the microstructure, making it impossible to secure 90% or more of ferrite desired in the present disclosure. Therefore, the content of carbon (C) is preferably in a range of 0.05 to 0.1%. A lower limit of the content of carbon (C) is more preferably 0.06%, more preferably 0.065%, and most preferably 0.07%. An upper limit of the C content is more preferably 0.09%, more preferably 0.085%, and most preferably 0.08%.
  • Silicon (Si) is not only useful for deoxidizing steel, but is also effective in securing strength through solid solution strengthening. However, when the Si content exceeds 0.1%, there is a disadvantage in that a silicon oxide is formed, making plating difficult. Therefore, it is preferable that the Si content is 0.1% or less.
  • the Si content is more preferably 0.08% or less, even more preferably 0.065% or less, and most preferably 0.05% or less.
  • Manganese (Mn) is added to achieve a solid solution strengthening effect and to secure hardenability of a weld zone when cooled after welding. In order to obtain the above-described effects, it is preferable that 1.5% or more of Mn is added. However, when a content of Mn exceeds 1.9%, Mn segregation increases, which may cause defects and material deviations during continuous casting. Therefore, the Mn content is preferably in the range of 1.5 to 1.9%. A lower limit of the Mn content is more preferably 1.55%, even more preferably 1.6%, and most preferably 1.65%. An upper limit of the Mn content is more preferably 1.85%, even more preferably 1.8%, and most preferably 1.75%.
  • Titanium (Ti) is added for precipitation strengthening effect and suppression of grain coarsening.
  • the Ti content is preferably in the range of 0.05 to 0.15%.
  • a lower limit of the Ti content is more preferably 0.07%, even more preferably 0.08%, and most preferably 0.09%.
  • An upper limit of the Ti content is more preferably 0.14%, even more preferably 0.13%, and most preferably 0.12%.
  • Niobium (Nb) is added to suppress recrystallization during hot rolling to obtain a finer grain size, in addition to the precipitation strengthening effect.
  • Nb content is less than 0.03%, it may be difficult to obtain a sufficient precipitation strengthening effect, and when the Nb content exceeds 0.1%, the strength may decrease due to the formation of coarse precipitates. Therefore, it is preferable that the Nb content is in the range of 0.03 to 0.1%.
  • a lower limit of the Nb content is more preferably 0.035%, even more preferably 0.038%, and most preferably 0.04%.
  • An upper limit of the Nb content is more preferably 0.08%, even more preferably 0.07%, and most preferably 0.06%.
  • Mo Molybdenum
  • Mo is added to suppress precipitate growth.
  • Mo delays the formation of ferrite and allows ferrite to be formed at a low temperature, thereby contributing to grain refinement.
  • the Mo content is preferably in the range of 0.03 to 0.1%.
  • a lower limit of the Mo content is more preferably 0.035%, even more preferably 0.04%, and most preferably 0.045%.
  • An upper limit of the Mo content is more preferably 0.09%, even more preferably 0.08%, and most preferably 0.07%.
  • Phosphorous (P) is an impurity element which segregates at grain boundaries and reduces toughness, so it is preferable that P is not included as much as possible, and in the present disclosure, an upper limit of the P content is limited to 0.02%.
  • the P content is more preferably 0.018% or less, even more preferably 0.017% or less, and most preferably 0.015% or less.
  • S is an impurity element and is the main element forming MnS. Since S reduces toughness due to the formation of coarse MnS, in the present disclosure, the S content is limited to 0.02% or less. The S content is more preferably 0.015% or less, even more preferably 0.01% or less, and most preferably 0.005% or less.
  • N Nitrogen
  • N is an impurity element, and when the N content exceeds 0.01%, N reacts with Ti and Nb at high temperatures to form nitrides, so N has a disadvantage of lowering the strength of the steel material by reducing the content of Ti and Nb, substantially contributing to precipitation strengthening. Therefore, it is preferable that the N content is 0.01% or less.
  • the N content is more preferably 0.008% or less, even more preferably 0.007% or less, and most preferably 0.006% or less.
  • the hot-rolled steel sheet of the present disclosure satisfies the following Relational expressions 1 and 2. 0.002 ⁇ (Ti/48 + Mo/96 + Nb/93) ⁇ 0.004
  • the above Relational expression 1 is a parameter for improving strength by controlling the contents of Ti, Mo, and Nb, which are precipitation strengthening elements.
  • Ti, Mo, and Nb which are precipitation strengthening elements.
  • Nb which are precipitation strengthening elements.
  • an amount of precipitates may be too small to be effective in improving strength.
  • effective precipitation strengthening effect may not be obtained due to coarsening of the precipitates. 0.002 ⁇ (C/12) - (Ti/48 + Mo/96 + Nb/93) ⁇ 0.006
  • the above Relational expression 2 is a parameter representing the content of C used in the solid solution strengthening effect excluding the content of C used in the precipitation strengthening effect.
  • the value of (C/12) - (Ti/48 + Mo/96 + Nb/93) is less than 0.002
  • the high strength targeted in the present disclosure cannot be obtained since a ferrite phase does not obtain sufficient strength.
  • the value of (C/12) - (Ti/48 + Mo/96 + Nb/93) exceeds 0.006, as the content of remaining C increases excessively, the precipitates may easily become coarse, so that the target strength cannot be obtained, and as a pearlite fraction increases, it may be difficult to obtain 90% or more of ferrite, targeted in the present disclosure.
  • Rolling processing refers to a process of forming protrusions on a surface of the steel pipe.
  • the remaining component of the present disclosure is iron (Fe).
  • Fe iron
  • the component since in the common manufacturing process, unintended impurities may be inevitably incorporated from raw materials or the surrounding environment, the component may not be excluded. Since these impurities are known to any person skilled in the common manufacturing process, the entire contents thereof are not particularly mentioned in the present specification.
  • the hot-rolled steel sheet of the present disclosure has a microstructure including by area, 90% or more of ferrite.
  • the microstructure of the present disclosure is preferably a single phase of ferrite, but one or more of pearlite, retained austenite, bainite, and martensite may inevitably be formed in the microstructure during the manufacturing process.
  • a low-temperature transformation phase such as bainite or martensite increases, the formability deteriorates.
  • pearlite is present on the surface of the steel pipe, cracks are likely to occur during rolling processing due to cementite, a hard phase.
  • the remaining structure is as small as possible.
  • a fraction of the ferrite is more preferably 93% or more, and even more preferably 95% or more.
  • the ferrite may be one or more of polygonal ferrite, bainitic ferrite, and asymmetric ferrite.
  • a grain of the ferrite preferably have an average size of 15 ⁇ m or less.
  • the grain size of the ferrite is more preferably 12 ⁇ m or less, and even more preferably 10 ⁇ m or less.
  • the hot-rolled steel sheet of the present disclosure preferably includes by weight, 0.05% or more of a carbide containing Ti, Nb, and Mo alone or in combination thereof, wherein the carbide preferably has an average size of 20 nm or less.
  • a carbide containing Ti, Nb, and Mo alone or in combination thereof, wherein the carbide preferably has an average size of 20 nm or less.
  • a fraction of the carbides is more preferably 0.07% or more, by weight, and even more preferably 0.08% or more, by weight.
  • the average size of the carbides is more preferably 15 nm or less, and even more preferably 10 nm or less.
  • the more the carbides are formed, the more advantageous they are, so there an upper limit of the carbides is not particularly limited, but considering the contents of Ti, Nb, and Mo contained in steel, it is difficult to exceed 0.2% by weight.
  • the hot-rolled steel sheet of the present disclosure provided as described above may have a yield strength (YS) of 700MPa or more, a tensile strength (TS) of 750 MPa or more, and an elongation (EL) of 15% or more, thereby securing excellent strength and formability.
  • Yield strength 700MPa or more
  • TS tensile strength
  • EL elongation
  • the present disclosure may provide a steel pipe manufactured using the hot-rolled steel sheet.
  • the steel pipe of the present disclosure may have a yield strength (YS) of 800MPa or more, a tensile strength (TS) of 800MPa or more, and an elongation (EL) of 10% or more, thereby securing excellent strength and formability.
  • the steel pipe of the present disclosure has a deviation in hardness of 15% or less, which has an advantage of securing uniform hardness, which is advantageous for rolling processing.
  • the deviation in hardness may be defined as [(maximum hardness value - minimum hardness value)/maximum hardness value ⁇ 100] from each hardness value measured at points of 0.5mm, t/4, and t/2 points, where t is a thickness of a steel pipe, in the thickness direction from a surface of the steel pipe.
  • a steel slab satisfying the above-described alloy composition and Relational expressions 1 and 2 is reheated at a temperature within a range of 1150 to 1300°C. Reheating the steel slab at a temperature within a range of 1150 to 1300°C is to make the alloy composition and microstructure uniform.
  • the reheating temperature is lower than 1150°C, precipitates formed on the slab are not dissolved and an optimal precipitation strengthening effect cannot be obtained in a subsequent process.
  • the reheating temperature is higher than 1300°C, excessive grain growth occurs, making it difficult to secure the target material and quality. Therefore, it is preferable that the reheating temperature of the steel slab is in the range of 1150 to 1300°C.
  • a lower limit of the reheating temperature is more preferably 1170°C, even more preferably 1180°C, and most preferably 1200°C.
  • An upper limit of the reheating temperature is more preferably 1290°C, even more preferably 1270°C, and most preferably 1250°C.
  • the reheated steel slab is subjected to finish hot rolling at a temperature within a range of 800 to 950°C to obtain a hot-rolled steel sheet.
  • the finish hot rolling temperature is lower than 800°C, a portion of austenite may be transformed into ferrite, causing a final grain size thereof to become non-uniform, and when the finish hot rolling temperature is higher than 950°C, scale defects, or the like may occur. Therefore, it is preferable that the finish hot rolling temperature is in the range of 800 to 950°C.
  • a lower limit of the finish hot rolling temperature is more preferably 820°C, even more preferably 825°C, and most preferably 850°C.
  • An upper limit of the finish hot rolling temperature is more preferably 940°C, even more preferably 920°C, and most preferably 900°C.
  • the hot rolled steel sheet is coiled at a temperature within a range of 550 to 700°C.
  • the coiling temperature is lower than 550°C, not only can the microstructure desired by the present disclosure not be obtained, but also a sufficient precipitation strengthening effect cannot be obtained due to insufficient carbide formation.
  • the coiling temperature is higher than 700°C, coarsening of the carbide occurs and the target strength cannot be obtained. Therefore, the coiling temperature is preferably in the range of 550 to 700°C.
  • a lower limit of the coiling temperature is more preferably 600°C, even more preferably 620°C, and most preferably 640°C.
  • An upper limit of the coiling temperature is more preferably 680°C, even more preferably 665°C, and most preferably 650°C. Meanwhile, cooling after the finish hot rolling to coiling may be performed on a run-out table.
  • a steel pipe may be obtained by obtaining a hot-rolled steel sheet through the above-described process and then piping the hot-rolled steel sheet.
  • electric resistance welding EW
  • the present disclosure may further include an operation of rolling processing the steel pipe after obtaining the steel pipe.
  • the steel slab was reheated, finish hot rolled, and coiled under the conditions shown in Table 2 below to manufacture a hot-rolled steel sheet having a thickness of 2.8 to 6 mm. Thereafter, the manufactured hot-rolled steel sheet was piped to manufacture a steel pipe.
  • roll forming and electric resistance welding which are a common manufacturing method for electrically welded steel pipes, were used when manufacturing the pipe, pipe manufacturing conditions (t/D) according to a thickness of the material (t) and a diameter (D) of the steel pipe was applied at 14% or more.
  • t/D pipe manufacturing conditions according to a thickness of the material (t) and a diameter (D) of the steel pipe was applied at 14% or more.
  • a microstructure, precipitates, and mechanical properties of the hot-rolled steel sheets and steel pipes manufactured in this way manner measured, and the hardness of the steel pipes in each location in the thickness direction was additionally measured, and the results thereof were shown in Tables 3 and 4 below.
  • a type and fraction of the microstructure were measured using an optical microscope (OM).
  • OM optical microscope
  • SEM scanning electron microscope
  • a size of precipitates was measured by collecting precipitates from a specimen using the carbon replica method and using a transmission electron microscope (TEM).
  • a fraction of the precipitates was obtained by measuring the contents of Ti, Nb, and Mo using a residue extraction method.
  • a yield strength (YS), tensile strength (TS), and elongation (EL) were measured by performing a tensile test using a tensile test method of the KS B 0802 standard.
  • test specimens were processed using a No. 5 test specimen of the KS B 0801 standard with a longitudinal direction aligned with a hot rolling direction.
  • a tensile test was performed using a No. 11 test specimen of the KS B 0801 standard.
  • the hardness in each location in the thickness direction was measured with a 1kg load using a Vickers hardness meter at points 0.5mm, t/4, and t/2, where t is a thickness of a steel pipe, in the thickness direction from an outer surface of the steel pipe. In this case, 5 points were measured at each location and an average value thereof was obtained.
  • the deviation in hardness shown in Table 3 below was calculated as [(maximum hardness value - minimum hardness value) / maximum hardness value ⁇ 100] from each hardness value measured in each location. [Table 1] Steel type No.

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Abstract

The present invention relates to: a hot rolled steel sheet for ground reinforcement and a steel pipe for ground reinforcement, which have excellent strength and formability; and manufacturing methods thereof.

Description

    Technical Field
  • The present disclosure relates to a hot-rolled steel sheet for ground reinforcement and a steel pipe for ground reinforcement, having excellent strength and formability, and manufacturing methods thereof.
  • Background Art
  • As the number of facilities such as underground tunnels, underground transfer centers and underground shopping centers for undergrounding of roads increases, the need for ground reinforcement materials serving as the basis for such facilities is increasing. Accordingly, a new steel pipe standard for ground reinforcement (KS D 3872) was established. A steel pipe for ground reinforcement used to reinforce ground structures in civil engineering, construction and the like should satisfy a YS of 800 MPa, TS of 860 MPa, and EL of 10% or more in a longitudinal direction. In order to satisfy the physical properties, a hot-rolled steel sheet is required to have high strength of a YS of 700 MPa or more and a TS of 750 MPa or more, and formability of EL of 15% or more. It is easy to obtain high strength by using a low-temperature structure such as bainite, martensite, and the like, but the structure has the disadvantage of causing softening in a weld zone due to a slow cooling rate after welding, thereby deteriorating the physical properties of the weld zone.
  • Meanwhile, in order to manufacture a small-diameter steel pipe, suitable for ground reinforcement, the formability thereof should be excellent, since the small diameter of the steel pipe is subject to a lot of work hardening during piping, and a microstructure thereof should be uniform to enable pipe production without shape defects.
  • Summary of Invention Technical Problem
  • An aspect of the present disclosure is to provide a hot-rolled steel sheet for ground reinforcement and a steel pipe for ground reinforcement, having excellent strength and formability, and manufacturing methods thereof.
  • Solution to Problem
  • According to an aspect of the present disclosure, provided is a hot-rolled steel sheet for ground reinforcement having excellent strength and formability, the hot-rolled steel sheet for ground reinforcement including by weight: 0.05 to 0.1% of C, 0.1% or less (excluding 0%) of Si, 1.5 to 1.9% of Mn, 0.05 to 0.15% of Ti, 0.03 to 0.1% of Nb, 0.03 to 0.1% of Mo, 0.02% or less (excluding 0%) of P, 0.02% or less (excluding 0%) of S, 0.01% or less (excluding 0%) of N, with a balance of Fe and inevitable impurities, wherein the following Relational expressions 1 and 2 are satisfied, wherein the hot-rolled steel sheet for ground reinforcement has a microstructure including by area, 90% or more of ferrite, wherein a grain of the ferrite has an average size of 15 µm or less, wherein the hot-rolled steel sheet includes by weight, 0.05% or more of a carbide containing Ti, Nb, and Mo, alone or in combination thereof, wherein the carbide has an average size of 20 nm or less. 0.002 ≤ (Ti/48 + Mo/96 + Nb/93) ≤ 0.004 0.002 ≤ (C/12) - (Ti/48 + Mo/93) ≤ 0.006
  • In the above Relational expressions 1 and 2, where a content of each alloy element refers to weight%.
  • Another aspect of the present disclosure is to provide a steel pipe for ground reinforcement having excellent strength and formability manufactured using the hot-rolled steel sheet.
  • According to an aspect of the present disclosure, provided is a method of manufacturing a hot-rolled steel sheet for ground reinforcement having excellent strength and formability, the method including: reheating a steel slab including, by weight: 0.05 to 0.1% of C, 0.1% or less (excluding 0%) of Si, 1.5 to 1.9% of Mn, 0.05 to 0.15% of Ti, 0.03 to 0.1% of Nb, 0.03 to 0.1% of Mo, 0.02% or less (excluding 0%) of P, 0.02% or less (excluding 0%) of S, 0.01% or less (excluding 0%) of N, with a balance of Fe and inevitable impurities, wherein the following Relational expressions 1 and 2 are satisfied, at a temperature within a range of 1150°C to 1300°C; finish hot rolling the reheated steel slab at a temperature within a range of 800 to 950°C to obtain a hot-rolled steel sheet; and coiling the hot-rolled steel sheet at a temperature within a range of 550°C to 700°C. 0.002 ≤ (Ti/48 + Mo/96 + Nb/93) ≤ 0.004 0.002 ≤ (C/12) - (Ti/48 + Mo/96 + Nb/93) ≤ 0.006
  • In the above Relational expressions 1 and 2, where a content of each alloy element refers to weight%.
  • Another aspect of the present disclosure is to provide a method of manufacturing a steel pipe for ground reinforcement having excellent strength and formability, including the operation of obtaining a steel pipe by piping the hot-rolled steel sheet manufactured by the above manufacturing method.
  • Advantageous Effects of Invention
  • As set forth above, according to an aspect of the present disclosure, a hot-rolled steel sheet for ground reinforcement having excellent strength and formability and manufacturing methods thereof may be provided.
  • Best Mode for Invention
  • Hereinafter, a hot-rolled steel sheet according to an embodiment of the present disclosure will be described. First, an alloy composition of the present invention will be described. A content of the alloy composition described below is in weight percent.
  • Carbon (C): 0.05 to 0.1%
  • Carbon (C) is an element added not only for solid solution strengthening but also for forming a carbide with Ti, No, and Mo, and to secure a tensile strength. In order to obtain the above-described effects, C is preferably added in an amount of 0.05% or more. However, when a content of carbon (C) exceeds 0.1%, carbide coarsening occurs and a precipitation strengthening effect cannot be sufficiently secured, and a pearlite fraction may increase in the microstructure, making it impossible to secure 90% or more of ferrite desired in the present disclosure. Therefore, the content of carbon (C) is preferably in a range of 0.05 to 0.1%. A lower limit of the content of carbon (C) is more preferably 0.06%, more preferably 0.065%, and most preferably 0.07%. An upper limit of the C content is more preferably 0.09%, more preferably 0.085%, and most preferably 0.08%.
  • Silicon (Si): 0.1% or less (excluding 0%)
  • Silicon (Si) is not only useful for deoxidizing steel, but is also effective in securing strength through solid solution strengthening. However, when the Si content exceeds 0.1%, there is a disadvantage in that a silicon oxide is formed, making plating difficult. Therefore, it is preferable that the Si content is 0.1% or less. The Si content is more preferably 0.08% or less, even more preferably 0.065% or less, and most preferably 0.05% or less.
  • Manganese (Mn): 1.5 to 1.9%
  • Manganese (Mn) is added to achieve a solid solution strengthening effect and to secure hardenability of a weld zone when cooled after welding. In order to obtain the above-described effects, it is preferable that 1.5% or more of Mn is added. However, when a content of Mn exceeds 1.9%, Mn segregation increases, which may cause defects and material deviations during continuous casting. Therefore, the Mn content is preferably in the range of 1.5 to 1.9%. A lower limit of the Mn content is more preferably 1.55%, even more preferably 1.6%, and most preferably 1.65%. An upper limit of the Mn content is more preferably 1.85%, even more preferably 1.8%, and most preferably 1.75%.
  • Titanium (Ti): 0.05 to 0.15%
  • Titanium (Ti) is added for precipitation strengthening effect and suppression of grain coarsening. When the Ti content is less than 0.05%, it is difficult to obtain the high strength targeted by the present disclosure, and when the Ti content exceeds 0.15%, coarse carbides are formed, making precipitation strengthening ineffective. Therefore, the Ti content is preferably in the range of 0.05 to 0.15%. A lower limit of the Ti content is more preferably 0.07%, even more preferably 0.08%, and most preferably 0.09%. An upper limit of the Ti content is more preferably 0.14%, even more preferably 0.13%, and most preferably 0.12%.
  • Niobium (Nb): 0.03 to 0.1%
  • Niobium (Nb) is added to suppress recrystallization during hot rolling to obtain a finer grain size, in addition to the precipitation strengthening effect. When the Nb content is less than 0.03%, it may be difficult to obtain a sufficient precipitation strengthening effect, and when the Nb content exceeds 0.1%, the strength may decrease due to the formation of coarse precipitates. Therefore, it is preferable that the Nb content is in the range of 0.03 to 0.1%. A lower limit of the Nb content is more preferably 0.035%, even more preferably 0.038%, and most preferably 0.04%. An upper limit of the Nb content is more preferably 0.08%, even more preferably 0.07%, and most preferably 0.06%.
  • Molybdenum (Mo): 0.03 to 0.1%
  • Molybdenum (Mo)is added to suppress precipitate growth. In addition, Mo delays the formation of ferrite and allows ferrite to be formed at a low temperature, thereby contributing to grain refinement. When the Mo content is less than 0.03%, it may be difficult to sufficiently obtain the above-described effects. On the other hand, when the Mo content exceeds 0.1%, economic feasibility may decrease. Therefore, the Mo content is preferably in the range of 0.03 to 0.1%. A lower limit of the Mo content is more preferably 0.035%, even more preferably 0.04%, and most preferably 0.045%. An upper limit of the Mo content is more preferably 0.09%, even more preferably 0.08%, and most preferably 0.07%.
  • Phosphorous (P): 0.02% or less (excluding 0%)
  • Phosphorous (P)is an impurity element which segregates at grain boundaries and reduces toughness, so it is preferable that P is not included as much as possible, and in the present disclosure, an upper limit of the P content is limited to 0.02%. The P content is more preferably 0.018% or less, even more preferably 0.017% or less, and most preferably 0.015% or less.
  • Sulfur (S): 0.02% or less (excluding 0%)
  • Sulfur (S)is an impurity element and is the main element forming MnS. Since S reduces toughness due to the formation of coarse MnS, in the present disclosure, the S content is limited to 0.02% or less. The S content is more preferably 0.015% or less, even more preferably 0.01% or less, and most preferably 0.005% or less.
  • Nitrogen (N): 0.01% or less (excluding 0%)
  • Nitrogen (N)is an impurity element, and when the N content exceeds 0.01%, N reacts with Ti and Nb at high temperatures to form nitrides, so N has a disadvantage of lowering the strength of the steel material by reducing the content of Ti and Nb, substantially contributing to precipitation strengthening. Therefore, it is preferable that the N content is 0.01% or less. The N content is more preferably 0.008% or less, even more preferably 0.007% or less, and most preferably 0.006% or less.
  • In addition, it is preferable that the hot-rolled steel sheet of the present disclosure satisfies the following Relational expressions 1 and 2. 0.002 ≤ (Ti/48 + Mo/96 + Nb/93) ≤ 0.004
  • The above Relational expression 1 is a parameter for improving strength by controlling the contents of Ti, Mo, and Nb, which are precipitation strengthening elements. When the value of (Ti/48 + Mo/96 + Nb/93) is less than 0.002, an amount of precipitates may be too small to be effective in improving strength. On the other hand, when the value of (Ti/48 + Mo/96 + Nb/93) exceeds 0.004, effective precipitation strengthening effect may not be obtained due to coarsening of the precipitates. 0.002 ≤ (C/12) - (Ti/48 + Mo/96 + Nb/93) ≤ 0.006
  • The above Relational expression 2 is a parameter representing the content of C used in the solid solution strengthening effect excluding the content of C used in the precipitation strengthening effect. When the value of (C/12) - (Ti/48 + Mo/96 + Nb/93) is less than 0.002, the high strength targeted in the present disclosure cannot be obtained since a ferrite phase does not obtain sufficient strength. On the other hand, when the value of (C/12) - (Ti/48 + Mo/96 + Nb/93) exceeds 0.006, as the content of remaining C increases excessively, the precipitates may easily become coarse, so that the target strength cannot be obtained, and as a pearlite fraction increases, it may be difficult to obtain 90% or more of ferrite, targeted in the present disclosure. In addition, as the formation of pearlite is promoted in a central portion of the steel sheet in which a cooling rate is relatively slow, a large difference in hardness between the surface and the interior thereof occurs. As a result, a difference in hardness occurs in the thickness direction even in a steel pipe. In addition, during rolling processing, certain parts may undergo a large amount of processing, which may cause problems such as shape defects, occurrence of cracks and the like. Rolling processing refers to a process of forming protrusions on a surface of the steel pipe.
  • The remaining component of the present disclosure is iron (Fe). However, since in the common manufacturing process, unintended impurities may be inevitably incorporated from raw materials or the surrounding environment, the component may not be excluded. Since these impurities are known to any person skilled in the common manufacturing process, the entire contents thereof are not particularly mentioned in the present specification.
  • It is preferable that the hot-rolled steel sheet of the present disclosure has a microstructure including by area, 90% or more of ferrite. In the present disclosure, it is important to secure 90% or more of ferrite to secure excellent formability. In theory, the microstructure of the present disclosure is preferably a single phase of ferrite, but one or more of pearlite, retained austenite, bainite, and martensite may inevitably be formed in the microstructure during the manufacturing process. However, if a low-temperature transformation phase such as bainite or martensite increases, the formability deteriorates. In addition, if pearlite is present on the surface of the steel pipe, cracks are likely to occur during rolling processing due to cementite, a hard phase. Therefore, it is preferable that the remaining structure is as small as possible. A fraction of the ferrite is more preferably 93% or more, and even more preferably 95% or more. Meanwhile, the ferrite may be one or more of polygonal ferrite, bainitic ferrite, and asymmetric ferrite.
  • In this case, a grain of the ferrite preferably have an average size of 15 µm or less. When the size of the grain of the ferrite exceed 15 um, sufficient strength may not be obtained due to grain coarsening. The grain size of the ferrite is more preferably 12 µm or less, and even more preferably 10 µm or less.
  • The hot-rolled steel sheet of the present disclosure preferably includes by weight, 0.05% or more of a carbide containing Ti, Nb, and Mo alone or in combination thereof, wherein the carbide preferably has an average size of 20 nm or less. As described above, by forming by weight, a large amount of fine carbides in an amount of 0.05% or more with an average size of 20 nm or less, an excellent strength improvement effect may be obtained without destruction of the carbides. A fraction of the carbides is more preferably 0.07% or more, by weight, and even more preferably 0.08% or more, by weight. The average size of the carbides is more preferably 15 nm or less, and even more preferably 10 nm or less. Meanwhile, in the present disclosure, the more the carbides are formed, the more advantageous they are, so there an upper limit of the carbides is not particularly limited, but considering the contents of Ti, Nb, and Mo contained in steel, it is difficult to exceed 0.2% by weight.
  • The hot-rolled steel sheet of the present disclosure provided as described above may have a yield strength (YS) of 700MPa or more, a tensile strength (TS) of 750 MPa or more, and an elongation (EL) of 15% or more, thereby securing excellent strength and formability.
  • Meanwhile, the present disclosure may provide a steel pipe manufactured using the hot-rolled steel sheet.
  • The steel pipe of the present disclosure may have a yield strength (YS) of 800MPa or more, a tensile strength (TS) of 800MPa or more, and an elongation (EL) of 10% or more, thereby securing excellent strength and formability.
  • On the other hand, during rolling processing, the steel pipe should be uniformly deformed in a thickness direction to ensure stable rolling processing without defects occurring due to stress concentration during processing. The steel pipe of the present disclosure has a deviation in hardness of 15% or less, which has an advantage of securing uniform hardness, which is advantageous for rolling processing. The deviation in hardness may be defined as [(maximum hardness value - minimum hardness value)/maximum hardness value ×100] from each hardness value measured at points of 0.5mm, t/4, and t/2 points, where t is a thickness of a steel pipe, in the thickness direction from a surface of the steel pipe.
  • Hereinafter, a manufacturing method of a hot-rolled steel sheet according to an embodiment of the present disclosure will be described.
  • First, a steel slab satisfying the above-described alloy composition and Relational expressions 1 and 2 is reheated at a temperature within a range of 1150 to 1300°C. Reheating the steel slab at a temperature within a range of 1150 to 1300°C is to make the alloy composition and microstructure uniform. When the reheating temperature is lower than 1150°C, precipitates formed on the slab are not dissolved and an optimal precipitation strengthening effect cannot be obtained in a subsequent process. In addition, when the reheating temperature is higher than 1300°C, excessive grain growth occurs, making it difficult to secure the target material and quality. Therefore, it is preferable that the reheating temperature of the steel slab is in the range of 1150 to 1300°C. A lower limit of the reheating temperature is more preferably 1170°C, even more preferably 1180°C, and most preferably 1200°C. An upper limit of the reheating temperature is more preferably 1290°C, even more preferably 1270°C, and most preferably 1250°C.
  • Thereafter, the reheated steel slab is subjected to finish hot rolling at a temperature within a range of 800 to 950°C to obtain a hot-rolled steel sheet. When the finish hot rolling temperature is lower than 800°C, a portion of austenite may be transformed into ferrite, causing a final grain size thereof to become non-uniform, and when the finish hot rolling temperature is higher than 950°C, scale defects, or the like may occur. Therefore, it is preferable that the finish hot rolling temperature is in the range of 800 to 950°C. A lower limit of the finish hot rolling temperature is more preferably 820°C, even more preferably 825°C, and most preferably 850°C. An upper limit of the finish hot rolling temperature is more preferably 940°C, even more preferably 920°C, and most preferably 900°C.
  • Thereafter, the hot rolled steel sheet is coiled at a temperature within a range of 550 to 700°C. When the coiling temperature is lower than 550°C, not only can the microstructure desired by the present disclosure not be obtained, but also a sufficient precipitation strengthening effect cannot be obtained due to insufficient carbide formation. When the coiling temperature is higher than 700°C, coarsening of the carbide occurs and the target strength cannot be obtained. Therefore, the coiling temperature is preferably in the range of 550 to 700°C. A lower limit of the coiling temperature is more preferably 600°C, even more preferably 620°C, and most preferably 640°C. An upper limit of the coiling temperature is more preferably 680°C, even more preferably 665°C, and most preferably 650°C. Meanwhile, cooling after the finish hot rolling to coiling may be performed on a run-out table.
  • Meanwhile, in the present disclosure, a steel pipe may be obtained by obtaining a hot-rolled steel sheet through the above-described process and then piping the hot-rolled steel sheet. In this case, electric resistance welding (ERW), or the like may be used as a welding method during the piping. In addition, the present disclosure may further include an operation of rolling processing the steel pipe after obtaining the steel pipe.
  • Mode for Invention
  • Hereinafter, the present disclosure will be specifically described through the following Examples. However, it should be noted that the following examples are only for describing the present disclosure by illustration, and not intended to limit the right scope of the present disclosure. The reason is that the right scope of the present disclosure is determined by the matters described in the claims and reasonably inferred therefrom.
  • (Example)
  • After preparing a steel slab having the alloy composition shown in Table 1 below, the steel slab was reheated, finish hot rolled, and coiled under the conditions shown in Table 2 below to manufacture a hot-rolled steel sheet having a thickness of 2.8 to 6 mm. Thereafter, the manufactured hot-rolled steel sheet was piped to manufacture a steel pipe. In this case, roll forming and electric resistance welding, which are a common manufacturing method for electrically welded steel pipes, were used when manufacturing the pipe, pipe manufacturing conditions (t/D) according to a thickness of the material (t) and a diameter (D) of the steel pipe was applied at 14% or more. A microstructure, precipitates, and mechanical properties of the hot-rolled steel sheets and steel pipes manufactured in this way manner measured, and the hardness of the steel pipes in each location in the thickness direction was additionally measured, and the results thereof were shown in Tables 3 and 4 below.
  • A type and fraction of the microstructure were measured using an optical microscope (OM). In addition, a size of ferrite grains was photographed using a scanning electron microscope (SEM) and then measured using the circular intercept method of ASTM E 112.
  • A size of precipitates was measured by collecting precipitates from a specimen using the carbon replica method and using a transmission electron microscope (TEM). A fraction of the precipitates was obtained by measuring the contents of Ti, Nb, and Mo using a residue extraction method.
  • A yield strength (YS), tensile strength (TS), and elongation (EL) were measured by performing a tensile test using a tensile test method of the KS B 0802 standard. In the case of a hot-rolled steel sheet, test specimens were processed using a No. 5 test specimen of the KS B 0801 standard with a longitudinal direction aligned with a hot rolling direction. In addition, in the case of a steel pipe, a tensile test was performed using a No. 11 test specimen of the KS B 0801 standard.
  • The hardness in each location in the thickness direction was measured with a 1kg load using a Vickers hardness meter at points 0.5mm, t/4, and t/2, where t is a thickness of a steel pipe, in the thickness direction from an outer surface of the steel pipe. In this case, 5 points were measured at each location and an average value thereof was obtained. In addition, the deviation in hardness shown in Table 3 below was calculated as [(maximum hardness value - minimum hardness value) / maximum hardness value × 100] from each hardness value measured in each location. [Table 1]
    Steel type No. Alloy composition (weight!)
    C Si Mn P S Ti Nb Mo N Expres sion 1 Expres sion 2
    Invent ive Steel 1 0.069 9 0.012 1.668 0.013 8 0.003 8 0.092 9 0.041 0.049 0.003 0.0028 9 0.0029 4
    Invent ive Steel 2 0.098 9 0.015 1.692 0.013 4 0.003 2 0.089 5 0.038 0.051 0.003 0.0028 0 0.0054 4
    Invent ive Steel 3 0.058 0.013 1.702 0.013 8 0.002 8 0.086 0.041 0.054 0.003 0.0028 0 0.0020 4
    Invent ive Steel 4 0.071 0.015 1.892 0.013 2 0.004 2 0.103 0.04 0.052 0.003 0.0031 2 0.0028 0
    Invent ive Steel 5 0.074 0.013 1.525 0.013 3 0.004 2 0.098 9 0.038 0.054 0.003 0.0030 3 0.0031 4
    Invent ive Steel 6 0.084 6 0.012 1.725 0.013 3 0.003 0.141 0.05 0.044 0.003 0.0039 3 0.0031 2
    Invent ive Steel 7 0.086 2 0.012 1.742 0.013 5 0.003 8 0.052 0.052 0.041 0.003 0.0020 7 0.0051 1
    Invent ive Steel 8 0.063 4 0.013 1.696 0.013 8 0.004 1 0.069 0.095 1 0.064 0.004 0.0031 3 0.0021 6
    Invent ive Steel 9 0.065 3 0.014 1.667 0.014 5 0.004 2 0.082 0.032 0.065 0.004 0.0027 3 0.0027 1
    Invent ive Steel 10 0.068 0.022 1.712 0.017 5 0.003 5 0.101 1 0.043 0.092 0.003 0.0035 3 0.0021 4
    Invent ive Steel 11 0.068 0.022 1.712 0.017 5 0.003 5 0.101 1 0.043 0.033 0.003 0.0029 1 0.0027 5
    Compar ative Steel 1 0.068 0.012 1.702 0.015 1 0.004 8 0.048 0.018 0.042 0.004 0.0016 3 0.0040 4
    Compar ative Steel 2 0.072 0.013 1.682 0.013 1 0.003 5 0.16 0.041 0.049 0.003 0.0042 8 0.0017 2
    Compar ative Steel 3 0.070 2 0.015 1.435 0.011 1 0.004 2 0.101 1 0.04 0.058 0.003 0.0031 4 0.0028 1
    Compar ative Steel 4 0.073 0.014 1.698 0.011 0.004 2 0.095 6 0.12 0.051 0.003 0.0038 1 0.0027 4
    Compar ative Steel 5 0.043 0.013 1.703 0.011 3 0.003 4 0.102 0.041 0.053 0.003 0.0031 2 0.0004 7
    Compar ative Steel 6 0.115 0.018 1.688 0.014 2 0.004 4 0.101 1 0.04 0.048 0.003 0.0030 4 0.0065 5
    Compar ative Steel 7 0.098 9 0.013 1.172 0.011 3 0.003 3 0.062 0.035 0.032 0.004 0.0020 0 0.0062 4
    Compar ative Steel 8 0.082 0.014 1.55 0.013 5 0.004 2 0.123 0.072 0.082 0.003 0.0041 9 0.0026 4
    [Expression 1] (Ti/48 + Mo/96 + Nb/93)
    [Expression 2] (C/12) - (Ti/48 + Mo/96 + Nb/93)
    [Table 2]
    Division Steel type No. Reheating temperature (°C) Finish hot rolling temperature (°C) Coiling temperature(°C)
    Inventive Example 1 Inventive Steel 1 1214 892 612
    Inventive Example 2 Inventive Steel 1 1156 888 614
    Inventive Example 3 Inventive Steel 1 1208 806 624
    Inventive Example 4 Inventive Steel 1 1231 945 631
    Inventive Example 5 Inventive Steel 1 1210 878 552
    Inventive Example 6 Inventive Steel 1 1212 869 692
    Comparativ e Example 1 Inventive Steel 1 1121 891 614
    Comparativ e Example 2 Inventive Steel 1 1213 789 621
    Comparativ e Example 3 Inventive Steel 1 1215 972 622
    Comparativ e Example 4 Inventive Steel 1 1208 885 518
    Comparativ e Example 5 Inventive Steel 1 1209 886 711
    Inventive Example 7 Inventive Steel 2 1210 895 615
    Inventive Example 8 Inventive Steel 3 1205 900 612
    Inventive Example 9 Inventive Steel 4 1214 895 613
    Inventive Example 10 Inventive Steel 5 1222 873 624
    Inventive Example 11 Inventive Steel 6 1205 865 618
    Inventive Example 12 Inventive Steel 7 1198 857 614
    Inventive Example 13 Inventive Steel 8 1202 858 611
    Inventive Example 14 Inventive Steel 9 1195 868 608
    Inventive Example 15 Inventive Steel 10 1194 884 603
    Inventive Example 16 Inventive Steel 11 1213 868 603
    Comparativ e Example 6 Comparative Steel 1 1211 890 620
    Comparativ e Example 7 Comparative Steel 2 1201 912 608
    Comparativ e Example 8 Comparative Steel 3 1205 968 612
    Comparativ e Example 9 Comparative Steel 4 1211 867 608
    Comparativ e Example 10 Comparative Steel 5 1205 901 621
    Comparativ e Example 11 Comparative Steel 6 1209 895 612
    Comparativ e Example 12 Comparative Steel 7 1210 876 618
    Comparativ e Example 13 Comparative Steel 8 1205 865 582
    [Table 3]
    Divisio n Microstructure Carbide containing alone or combination of Ti, Nb, and Mo
    Ferrite (area %) Remainder (area %) Ferrite grain size (µm) fraction(weig ht%) Average size (nm)
    Inventi ve Example 1 98.9 P: 1.1 8.8 0.107 5.6
    Inventi ve Example 2 99.0 P:1.0 8.5 0.095 5.5
    Inventi ve Example 3 97.2 P:2.8 6.7 0.123 10.8
    Inventi ve Example 4 95.9 P:4.1 13.5 0.122 6.2
    Inventi ve Example 5 92.8 B:6.1, M:1.1 7.8 0.076 4.8
    Inventi ve Example 6 90.3 P : 9.7 7.9 0.128 7.5
    Compara tive Example 1 98.8 P:1.2 8.3 0.046 6.2
    Compara tive Example 2 97.5 P:2.5 6.5 0.102 28.4
    Compara tive Example 3 98.2 P:1.8 15.3 0.093 6.8
    Compara tive Example 4 86.3 B:12.5, M:1.2 8.0 0.044 5.5
    Compara tive Example 5 86.8 P:13.2 10.3 0.106 23.1
    Inventi ve Example 7 91.2 P:8.8 8.8 0.111 14.2
    Inventi ve Example 8 99.2 P:0.8 9.2 0.092 4.8
    Inventi ve Example 9 99.0 P:1.0 9.8 0.087 7.0
    Inventi ve Example 10 98.5 P:1.5 9.7 0.114 4.5
    Inventi ve Example 11 98.0 P:2.0 7.5 0.141 18.2
    Inventi ve Example 12 98.2 P:1.8 8.3 0.072 5.9
    Inventi ve Example 13 98.1 P:1.9 5.2 0.115 6.8
    Inventi ve Example 14 99.5 P:0.5 9.2 0.106 7.2
    Inventi ve Example 15 96.8 B:2.1, RA:1.1 8.5 0.110 3.8
    Inventi ve Example 16 98.2 P:1.8 9.8 0.101 6.7
    Compara tive Example 6 97.8 P:2.2 10.2 0.046 6.5
    Compara tive Example 7 97.5 P:2.5 8.1 0.156 52.5
    Compara tive Example 8 99.5 P:0.5 14.6 0.049 9.8
    Compara tive Example 9 98.2 P:1.8 4.8 0.131 51.3
    Compara tive Example 10 99.2 P:0.8 9.2 0.059 6.6
    Compara tive Example 11 87.7 P:12.3 9.5 0.113 22.1
    Compara tive Example 12 90.5 P:9.5 7.5 0.047 6.7
    Compara tive Example 13 94.8 P:5.2 6.9 0.175 48.2
    P: Pearlite, RA: Retained Austenite, B: Bainite, M: Martensite
    [Table 4]
    Divisi on Hot-rolled steel sheet Steel pipe
    YS (MPa) TS (MPa) EL (%) YS (MPa) TS (MPa) EL (%) Hardness in each location in a thickness direction (Hv) Devia tions in hardn ess (%)
    0.5mm from surface t/4 t/2
    Invent ive Exampl e 1 733 793 22.4 867 922 14 267 288 296 10
    Invent ive Exampl e 2 712 769 23.1 825 882 14 273 275 297 8
    Invent ive Exampl e 3 717 760 20.3 835 878 13 268 274 282 5
    Invent ive Exampl e 4 734 797 21.5 872 922 14 272 290 288 6
    Invent ive Exampl e 5 715 762 22.4 847 890 14 268 275 276 3
    Invent ive Exampl e 6 712 775 21.8 821 894 14 268 279 288 7
    Compar ative Exampl e 1 679 735 23.3 789 852 15 257 267 264 4
    Compar ative Exampl e 2 651 743 24.1 774 848 15 260 265 267 3
    Compar ative Exampl e 3 671 735 22.3 788 842 14 251 263 265 5
    Compar ative Exampl e 4 672 752 21.1 781 862 14 255 272 277 8
    Compar ative Exampl e 5 685 760 19.1 792 876 13 255 273 276 8
    Invent ive Exampl e 7 711 798 20.1 838 932 14 273 291 294 7
    Invent ive Exampl e 8 705 760 24.4 824 877 15 268 275 272 3
    Invent ive Exampl e 9 736 807 21.4 843 911 14 271 285 278 5
    Invent ive Exampl e 10 711 761 19.4 829 875 15 268 273 268 2
    Invent ive Exampl e 11 781 853 18.4 935 1012 13 298 315 311 5
    Invent ive Exampl e 12 706 759 23.1 816 861 14 254 265 268 5
    Invent ive Exampl e 13 738 792 19.5 880 906 13 272 288 292 7
    Invent ive Exampl e 14 711 761 21.5 836 878 14 260 272 276 6
    Invent ive Exampl e 15 754 812 22.3 868 911 15 271 284 284 5
    Invent ive Exampl e 16 714 772 22.3 851 885 14 264 275 272 4
    Compar ative Exampl e 6 626 728 24.6 745 844 17 255 264 268 5
    Compar ative Exampl e 7 679 746 23.2 786 856 16 257 269 266 4
    Compar ative Exampl e 8 692 767 23.1 782 815 15 252 268 275 8
    Compar ative Exampl e 9 675 772 24.0 781 878 16 265 274 285 7
    Compar ative Exampl e 10 682 745 28.2 782 848 20 255 268 274 7
    Compar ative Exampl e 11 684 788 18.3 782 887 13 258 315 278 18
    Compar ative Exampl e 12 648 736 24.8 756 848 17 251 304 272 17
    Compar ative Exampl e 13 681 742 20.2 787 851 14 259 272 268 5
  • As can be seen from Tables 1 to 4, in the case of Inventive Examples 1 to 16 satisfying the alloy composition, Relational expressions 1 and 2, and manufacturing conditions proposed by the present disclosure, it can be seen that excellent mechanical properties may be secured as the microstructure and precipitates targeted by the present disclosure are secured, and deviations in hardness of the steel pipe in each location in the thickness direction was also low.
  • In the case of Comparative Example 1, the alloy composition of the present disclosure was satisfied, but due to the low reheating temperature of the steel slab, redissolving of precipitation strengthening elements was insufficient, and sufficient precipitation strengthening effect was not obtained. Thus, the high strength targeted in the present disclosure was not secured.
  • In the case of Comparative Example 2, the alloy composition of the present disclosure was satisfied, but due to the low finish hot rolling temperature, coarse precipitates were formed during rolling so that a sufficient precipitation strengthening effect was not obtained. Thus, the high strength targeted in the present disclosure was not secured.
  • In the case of Comparative Example 3, the alloy composition of the present disclosure was satisfied, but due to the high finish hot rolling temperature, grains become coarse, so that the high strength targeted in the present disclosure was not secured.
  • In the case of Comparative Example 4, the alloy composition of the present disclosure was satisfied, but due to the low coiling temperature, not only was the microstructure desired in the present disclosure not obtained, but the sufficient precipitation strengthening effect was not obtained, so that the high strength targeted by the present disclosure was not secured.
  • In the case of Comparative Example 5, the alloy composition of the present disclosure was satisfied, but due to the high coiling temperature, coarse carbides were formed, and the high strength targeted by the present disclosure was not secured.
  • In the case of Comparative Example 6, due to the low contents of Ti and Nb, a sufficient precipitation strengthening effect was not obtained, and the high strength targeted by the present disclosure was not secured.
  • In the case of Comparative Example 7, due to the formation of coarse carbides due to the high Ti content, the high strength targeted by the present disclosure was not secured.
  • In the case of Comparative Example 8, due to the low content of Mn, the solid solution strengthening effect was low, and the sufficient precipitation strengthening effect was not obtained due to a change in phase transformation conditions during cooling, so the high strength targeted by the present disclosure was not secured.
  • In the case of Comparative Example 9, due to the formation of coarse carbides due to the high Nb content, the high strength targeted by the present disclosure was not secured.
  • In the case of Comparative Example 10, due to the low content of C, not only did it not satisfy Relational expression 2, but also the high strength targeted by the present disclosure was not secured.
  • In the case of Comparative Example 11, due to the high content of C, a solid solution C increased and a pearlite content increased, so the microstructure desired by the present disclosure was not obtained, and as Relational expression 2 was not satisfied, it can be seen that not only was the high strength targeted by the present disclosure not secured, but deviations in hardness of the steel pipe in each location in the thickness direction also increased.
  • In the case of Comparative Example 12, as Relational expression 2 was not satisfied, it can be seen that an appropriate balance between the precipitate and the solid solution C proposed in the present disclosure was not obtained, so not only was high strength not secured, and deviations in hardness of the steel pipe in each location in the thickness direction increased.
  • In the case of Comparative Example 13, as Relational expression 1 was not satisfied, a sufficient precipitation strengthening effect was not obtained, so that the high strength targeted by the present disclosure was not secured.

Claims (9)

  1. A hot-rolled steel sheet for ground reinforcement, comprising by weight:
    0.05 to 0.1% of C, 0.1% or less (excluding 0%) of Si, 1.5 to 1.9% of Mn, 0.05 to 0.15% of Ti, 0.03 to 0.1% of Nb, 0.03 to 0.1% of Mo, 0.02% or less (excluding 0%) of P, 0.02% or less (excluding 0%) of S, 0.01% or less (excluding 0%) of N, with a balance of Fe and inevitable impurities, wherein the following Relational expressions 1 and 2 are satisfied,
    wherein the hot-rolled steel sheet for ground reinforcement has a microstructure including by area, 90% or more of ferrite,
    wherein a grain of the ferrite has an average size of 15 µm or less,
    wherein the hot-rolled steel sheet includes by weight, 0.05% or more of a carbide containing Ti, Nb, and Mo alone or in combination thereof,
    wherein the carbide has an average size of 20 nm or less, 0.002 ≤ (Ti/48 + Mo/96 + Nb/93) ≤ 0.004 0.002 ≤ (C/12) - (Ti/48 + Mo/96 + Nb/93) ≤ 0.006
    in the above Relational expressions 1 and 2, where a content of each alloy element refers to weight%.
  2. The hot-rolled steel sheet for ground reinforcement of claim 1, wherein the microstructure comprises one or more of pearlite, retained austenite, bainite, and martensite, as a remaining structure thereof.
  3. The hot-rolled steel sheet for ground reinforcement of claim 1, wherein the hot-rolled steel sheet has a yield strength (YS) of 700 MPa or more, a tensile strength (TS) of 750 MPa or more, and an elongation (EL) of 15% or more.
  4. A steel pipe for ground reinforcement manufactured using the hot-rolled steel sheet described in any one of claims 1 to 3.
  5. The steel pipe for ground reinforcement of claim 4, the steel pipe has a yield strength (YS) of 800 MPa or more, a tensile strength (TS) of 860 MPa or more, and an elongation (EL) of 10% or more.
  6. The steel pipe for ground reinforcement of claim 4, the steel pipe has a deviation in hardness of 15% or less,
    where the deviation in hardness is defined as [(maximum hardness value- minimum hardness value)/maximum hardness value × 100] from each hardness value measured at points of 0.5 mm, t/4, and t/2, where t is a thickness of the steel pipe, in a thickness direction from a surface of the steel pipe.
  7. A method for manufacturing a hot-rolled steel sheet for ground reinforcement, comprising:
    reheating a steel slab including, by weight:
    0.05 to 0.1% of C, 0.1% or less (excluding 0%) of Si, 1.5 to 1.9% of Mn, 0.05 to 0.15% of Ti, 0.03 to 0.1% of Nb, 0.03 to 0.1% of Mo, 0.02% or less (excluding 0%) of P, 0.02% or less (excluding 0%) of S, 0.01% or less (excluding 0%) of N, with a balance of Fe and inevitable impurities, wherein the following Relational expressions 1 and 2 are satisfied, at a temperature within a range of 1150°C to 1300°C;
    finish hot rolling the reheated steel slab at a temperature within a range of 800 to 950°C to obtain a hot-rolled steel sheet; and
    coiling the hot-rolled steel sheet at a temperature within a range of550°C to 700°C, 0.002 ≤ (Ti/48 + Mo/96 + Nb/93) ≤ 0.004 0.002 ≤ (C/12) - (Ti/48 + Mo/96 + Nb/93) ≤ 0.006
    in the above Relational expressions 1 and 2, where a content of each alloy element refers to weight%.
  8. A method for manufacturing a steel pipe for ground reinforcement, comprising:
    piping the hot-rolled steel sheet manufactured by the manufacturing method described in claim 7 to obtain a steel pipe.
  9. The method for manufacturing a steel pipe for ground reinforcement of claim 8, further comprising, after obtaining the steel pipe:
    rolling processing the steel pipe.
EP22907796.1A 2021-12-16 2022-12-02 Hot rolled steel sheet for ground reinforcement and steel pipe for ground reinforcement, and manufacturing methods thereof Pending EP4450664A4 (en)

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PCT/KR2022/019505 WO2023113327A1 (en) 2021-12-16 2022-12-02 Hot rolled steel sheet for ground reinforcement and steel pipe for ground reinforcement, and manufacturing methods thereof

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JP3869747B2 (en) * 2002-04-09 2007-01-17 新日本製鐵株式会社 High-strength steel plate, high-strength steel pipe and manufacturing method excellent in deformation performance
JP5058508B2 (en) * 2005-11-01 2012-10-24 新日本製鐵株式会社 Low yield ratio type high Young's modulus steel plate, hot dip galvanized steel plate, alloyed hot dip galvanized steel plate and steel pipe, and production method thereof
CA2832021C (en) * 2011-08-23 2014-11-18 Nippon Steel & Sumitomo Metal Corporation Thick wall electric resistance welded steel pipe and method of production of same
KR20150025952A (en) * 2013-08-30 2015-03-11 현대제철 주식회사 High strength plated hot-rolled steel sheet and method of manufacturing the same
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JP6128042B2 (en) * 2014-03-31 2017-05-17 Jfeスチール株式会社 Low yield ratio high strength spiral steel pipe pile and manufacturing method thereof
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KR20230091585A (en) 2023-06-23
WO2023113327A1 (en) 2023-06-22
CN118318057A (en) 2024-07-09

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