EP4584411A2 - High toughness press-hardened steel part and method of manufacturing the same - Google Patents

High toughness press-hardened steel part and method of manufacturing the same

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Publication number
EP4584411A2
EP4584411A2 EP23805180.9A EP23805180A EP4584411A2 EP 4584411 A2 EP4584411 A2 EP 4584411A2 EP 23805180 A EP23805180 A EP 23805180A EP 4584411 A2 EP4584411 A2 EP 4584411A2
Authority
EP
European Patent Office
Prior art keywords
steel
steel sheet
temperature
press
charpy impact
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
EP23805180.9A
Other languages
German (de)
French (fr)
Inventor
Clément PHILIPPOT
Alice DUMONT
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
ArcelorMittal SA
Original Assignee
ArcelorMittal SA
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by ArcelorMittal SA filed Critical ArcelorMittal SA
Priority to MA71461A priority Critical patent/MA71461A/en
Publication of EP4584411A2 publication Critical patent/EP4584411A2/en
Pending legal-status Critical Current

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    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/18Ferrous alloys, e.g. steel alloys containing chromium
    • C22C38/40Ferrous alloys, e.g. steel alloys containing chromium with nickel
    • C22C38/54Ferrous alloys, e.g. steel alloys containing chromium with nickel with boron
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    • 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
    • C21D1/00General methods or devices for heat treatment, e.g. annealing, hardening, quenching or tempering
    • C21D1/18Hardening; Quenching with or without subsequent tempering
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    • 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
    • C21D1/00General methods or devices for heat treatment, e.g. annealing, hardening, quenching or tempering
    • C21D1/26Methods of annealing
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    • 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
    • C21D1/00General methods or devices for heat treatment, e.g. annealing, hardening, quenching or tempering
    • C21D1/62Quenching devices
    • C21D1/673Quenching devices for die quenching
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    • C21D6/00Heat treatment of ferrous alloys
    • C21D6/002Heat treatment of ferrous alloys containing Cr
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    • C21D6/00Heat treatment of ferrous alloys
    • C21D6/005Heat treatment of ferrous alloys containing Mn
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    • C21D7/00Modifying the physical properties of iron or steel by deformation
    • C21D7/13Modifying the physical properties of iron or steel by deformation by hot working
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    • 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
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    • 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
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    • 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
    • C21D8/0236Cold rolling
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    • 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
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    • 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
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    • 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
    • C21D8/0273Final recrystallisation annealing
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    • 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
    • C21D8/0278Modifying the physical properties of ferrous metals or ferrous alloys by deformation combined with, or followed by, heat treatment during manufacturing of plates or strips involving a particular surface treatment 
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    • 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
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    • 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
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    • 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
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    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/008Ferrous alloys, e.g. steel alloys containing tin
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    • C22C38/02Ferrous alloys, e.g. steel alloys containing silicon
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    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/04Ferrous alloys, e.g. steel alloys containing manganese
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    • C22C38/06Ferrous alloys, e.g. steel alloys containing aluminium
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    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/18Ferrous alloys, e.g. steel alloys containing chromium
    • C22C38/20Ferrous alloys, e.g. steel alloys containing chromium with copper
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    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/18Ferrous alloys, e.g. steel alloys containing chromium
    • C22C38/28Ferrous alloys, e.g. steel alloys containing chromium with titanium or zirconium
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    • C22C38/32Ferrous alloys, e.g. steel alloys containing chromium with boron
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    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/18Ferrous alloys, e.g. steel alloys containing chromium
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    • C22C38/18Ferrous alloys, e.g. steel alloys containing chromium
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    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/18Ferrous alloys, e.g. steel alloys containing chromium
    • C22C38/40Ferrous alloys, e.g. steel alloys containing chromium with nickel
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    • C22C38/18Ferrous alloys, e.g. steel alloys containing chromium
    • C22C38/40Ferrous alloys, e.g. steel alloys containing chromium with nickel
    • C22C38/50Ferrous alloys, e.g. steel alloys containing chromium with nickel with titanium or zirconium
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    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/18Ferrous alloys, e.g. steel alloys containing chromium
    • C22C38/40Ferrous alloys, e.g. steel alloys containing chromium with nickel
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    • C21D2211/00Microstructure comprising significant phases
    • C21D2211/001Austenite
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    • C21D2211/00Microstructure comprising significant phases
    • C21D2211/002Bainite
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    • C21D2211/00Microstructure comprising significant phases
    • C21D2211/003Cementite
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    • C21D2211/00Microstructure comprising significant phases
    • C21D2211/005Ferrite
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    • C21D2211/00Microstructure comprising significant phases
    • C21D2211/008Martensite
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    • C21D2211/00Microstructure comprising significant phases
    • C21D2211/009Pearlite

Definitions

  • the present invention relates to a high strength press hardened steel part with high toughness.
  • composition being iron and unavoidable impurities resulting from the smelting process and depending on the process route.
  • N ⁇ 0.02 % and comprising optionally one or more of the following elements, in weight percentage:
  • the steel sheet has a chemical composition comprising the following elements expressed in weight% :
  • composition being iron and unavoidable impurities resulting from the smelting process and depending on the process route.
  • the microstructure of the steel sheet according to the invention comprises 50% or more of ferrite in surface fraction, the rest being pearlite or cementite.
  • a steel sheet having the above chemical composition and microstructure is provided and cut to a predetermined shape, so as to obtain a steel blank.
  • the steel blank is then heated to a temperature Ti from 800°C to 980°C and maintained at said Ti temperature for a dwell time ti of 10s to 900s to obtain a heated steel blank.
  • the heated steel blank is then transferred to a forming press, and hot formed. After hot forming, the steel part is then die-quenched.
  • microstructure of the steel part according to the invention will now be described.
  • all microstructural elements are transformed into austenite.
  • the heated blank is then transferred to a forming press, and hot formed.
  • the steel part is then die-quenched, austenite being transformed in more than 95% of martensite, the rest being optional bainite and retained austenite.
  • the microstructure comprised more than 98% of martensite, the rest being optional bainite and retained austenite.
  • the toughness is measured by Charpy impact energy at 20°C, -40°C, -60° and - 80°C according to Standard ISO 148-1 :2006 (F) and ISO 148-1 :2017(F).
  • the press hardened steel part has a tensile strength TS above or equal to 950MPa. More preferably, the press hardened steel part has TS above or equal to 1350MPa. TS is measured according to Standard ISO 6892-1 .
  • this martensitic steel sheet has an average Charpy impact energy value calculated as the average of the Charpy impact energy values measured at 20°C, - 40°C, -60°C and -80°C, above or equal to 0.90 J/mm 2 .
  • this average value is above or equal to 0.95 J/mm 2 .
  • the martensitic steel sheet has a Charpy impact energy at -80°C higher than 0.75 J/mm 2 .
  • the martensitic steel sheet has a loss of ductility A between the Charpy impact energy measured at 20°C and the Charpy impact energy measured at -80°C lower than 25%.
  • the surface fractions are determined through the following method: a specimen is cut from the steel sheet, polished and etched with a reagent known per se, to reveal the microstructure. The section is afterwards examined through optical.

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  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Materials Engineering (AREA)
  • Metallurgy (AREA)
  • Organic Chemistry (AREA)
  • Crystallography & Structural Chemistry (AREA)
  • Physics & Mathematics (AREA)
  • Thermal Sciences (AREA)
  • Heat Treatment Of Steel (AREA)
  • Heat Treatment Of Sheet Steel (AREA)
  • Heat Treatment Of Articles (AREA)

Abstract

The invention deals with a steel sheet and press hardened steel part having a composition comprising, by weight percent: C 0.05-0.3%, Mn 0.5-4%, Si 0.24-1.7%, Al 0.01 -0.1 %, Cr 0.01 -1.0%, Ti 0.01 -0.1 %, B 0.0005-0.08%, Cu 0.05-0.4%, P ≤ 0.020%, S ≤ 0.010%, N ≤ 0.02% the remainder of the composition being iron and unavoidable impurities resulting from the production route. The press hardened steel part has a microstructure comprising, in surface fraction, more than 95% of martensite, the rest being optional bainite and retained austenite.

Description

High toughness press-hardened steel part and method of manufacturing the same
The present invention relates to a high strength press hardened steel part with high toughness.
High strength press-hardened parts can be used as structural elements in automotive vehicles for anti-intrusion or energy absorption functions.
In such type of applications, it is desirable to produce steel parts that combine high mechanical strength, high impact resistance and good corrosion resistance. Moreover, one of major challenges in the automotive industry is to decrease the weight of vehicles in order to improve their fuel efficiency in view of the global environmental conservation, without neglecting the safety requirements, including the harshest environments.
This weight reduction can be achieved in particular thanks to the use of steel parts with a martensitic or bainitic/martensitic microstructure.
The publication WO2016163469 relates to a martensitic heat-treated steel sheet member that has a good scale property and a high yield strength, and is excellent in toughness. The steel part having toughness higher than 35 J/cm2 (0.35J/mm2), measured by Charpy impact test at -80°C, are considered to be excellent in toughness. Nevertheless, none of the steel part reach a toughness value higher than 55J/mm2 (0.55J/mm2), which could lead to parts that fracture at high stress.
The purpose of the invention therefore is to solve the above-mentioned problem and to provide a press hardened steel part having a high toughness, with an average Charpy impact values calculated as the average of the Charpy impact energy values measured at 20°C, -40°C, -60°C and -80°C, above or equal to 0.90 J/mm2.
Preferably, the press hardened steel part according to the invention has a Charpy impact energy measured at -80°C, above or equal to 0.75 J/mm2.
Preferably, the press hardened steel part according to the invention has a loss of ductility A between the Charpy impact energy measured at 20°C and the Charpy impact energy measured at -80°C lower than 25%. Another purpose of the invention is to obtain a steel sheet that can be transformed by hot forming into such a press hardened steel part.
The object of the present invention is achieved by providing a steel sheet according to claim 1 . Another object is achieved by providing a steel part according to claim 2. The steel part can also comprise characteristics of anyone of claims 3 to 5. Another object is achieved by providing the method according to claim 6. Another object is achieved by providing the method according to claim 7.
The invention will now be described in detail and illustrated by examples without introducing limitations.
The composition of the steel sheet according to the invention will now be described, the content being expressed in weight percent (wt. %).
According to the invention the carbon content is from 0.05% to 0.3% to ensure a satisfactory strength. Above 0.3% of carbon, weldability and bendability of the steel may be reduced. If the carbon content is lower than 0.05%, the tensile strength will be too low.
The manganese content is from 0.5% to 4 %. Above 4% of addition, the risk of central segregation increases to the detriment of the toughness. Below 0.5% the hardenability of the steel is reduced. Preferably the manganese content is from 0.8% to 2%, more preferably from 0.8% to 1 .6%.
According to the invention, silicon content is from 0.24% to 1.7%. Silicon is an element participating in the hardening in solid solution. Silicon is added to limit carbides formation. Above 1 .7%, silicon is detrimental for toughness. Moreover, silicon oxides form at the surface, which impairs the coatability of the steel, and the weldability of the steel sheet and steel part may be reduced. Preferably, the silicon content is from 0.24% to 1 %, more preferably, from 0.24% to 0.5%, even more preferably from 0.24% to 0.4%.
The aluminium content is from 0.01 % and 0.1 % as it is a very effective element for deoxidizing the steel in the liquid phase during elaboration. Aluminium can protect boron if titanium content is not enough. The aluminium content is lower than 0.1 % to avoid oxidation problems and ferrite formation during press hardening. Preferably the aluminium content is from 0.01% to 0.05%.
According to the invention, the chromium content is from 0.01 % to 1.0 %. Chromium is an element participating in the hardenability of the steel sheet and must be higher than 0.01 %. The chromium content is below 1.0% to limit processability issues and cost.
According to the invention, the boron content is from 0.0005% to 0.08%. Boron improves the hardenability of the steel. The boron content is not higher than 0.08% to avoid a risk of breaking the slab during continuous casting.
The titanium content is from 0.01 % to 0.1 % in order to protect boron from formation of BN. Titanium content is limited to 0.1 % to avoid TiN formation. In a preferred embodiment, Ti/N >3.42 for the boron protection. Preferably, the tin content is from 0.02% to 0.05%.
According to the invention, the copper content is from 0.05 to 0.4% in order to increase the toughness of the steel part. Copper content is limited to 0.4% in order to limit the hot shortness risk which may weaken the slab. Preferably, the copper content is from 0.05 to 0.25%, more preferably from 0.07% to 0.25%. More preferably the copper content is from 0.08% to 0.25%, even more preferably from 0.08% to 0.20%. More preferably the copper content is from 0.08% to 0.18%.
Some elements can optionally be added.
Tin can be added up to 0.1 % to improve hardenability of the steel. Above 0.1 %, tin can emphasize the risk of hot shortness and limit the processability of slabs.
Preferably, the sum of copper and tin contents is from 0.08% to 0.3%.
Nickel can be added up to 0.4% to limit hydrogen intake of the steel during its production and limiting the risk of delayed fracture due to hydrogen embrittlement. The nickel content is considered as a residual element up to 0.020%. Preferably, if added, the nickel content is up to 0.1 %, more preferably up to 0.05%.
Molybdenum content can optionally be added up to 0.40%. As boron, molybdenum improves the hardenability of the steel. Molybdenum is not higher than 0.40% to limit cost. Niobium can optionally be added up to 0.08% to improve ductility of the steel. Above 0.08% of addition, the risk of formation of NbC or Nb(C,N) carbides increases to the detriment of the bendability. Preferably the niobium content is below or equal to 0.05%.
Calcium may be also added as an optional element up to 0.1 % and preferably in a minimal amount of 0.0001 %. Addition of Ca at the liquid stage makes it possible to create fine oxides which promote castability of continuous casting. Moreover, calcium can help to limit the formation of detrimental MnS by promoting the formation of CaO-CaS.
The remainder of the composition of the steel is iron and unavoidable impurities resulting from the smelting process and depending on the process route. In the case of a production route using a blast furnace, the level of unavoidable impurities is very low. In the case of a production route using an Electric Arc Furnace loaded with scraps, the steel sheet can further comprise residual elements coming from such scraps such as Antimony, Arsenic and Lead, up to 0.03% which are considered as unavoidable impurities.
P, S and N are also part of the unavoidable impurities whatever the process route. Their content is less than or equal to 0.010 % for S, less than or equal to 0.020 % for P and less than or equal to 0.02 % for N.
In a particular embodiment, the steel sheet has a chemical composition comprising the following elements expressed in weight% :
C: 0.062 - 0.095 %
Mn: 1.4 - 1.9 %
Si: 0.24 - 0.5 %
Al: 0.020 - 0.070 %
Cr: 0.02- 0.1 %
Wherein 1 .5 % < (C+Mn+Si+Cr) < 2.7
Nb 0.040-0.060 %
Ti : 0.01 - 0.1 %
B: 0.0005 - 0.004 %
Cu : 0.05-0.4% S < 0.003 %
P < 0.020 %
N < 0.009 % and comprising optionally one or more of the following elements, in weight percentage:
Sn : 0.002-0.1 %
0.0001 <Ca < 0.003 %
The remainder of the composition being iron and unavoidable impurities resulting from the smelting process and depending on the process route.
In another particular embodiment, the steel sheet has a chemical composition comprising the following elements expressed in weight% :
C: 0.15 - 0.3 %
Mn: 0.5 - 3 %
Si: 0.24 - 0.5 %
Cr 0.01 -1 %
Ti 0.01 - 0.1 %
Al 0.01 - 0.1 %
B: 0.0005 - 0.08%
Cu : 0.05-0.4%
S < 0.010 %
P < 0.020 %
N < 0.02 % and comprising optionally one or more of the following elements, in weight percentage:
Sn : 0.002-0.1 % the remainder of the composition being iron and unavoidable impurities resulting from the smelting process and depending on the process route.
In another particular embodiment, the steel sheet has a chemical composition comprising the following elements expressed in weight% :
C: 0.15 - 0.25 %
Mn: 0.5 - 1.8 %
Si: 0.24 - 1.25 % Cr 0.1-1 %
Ti 0.01 -0.1 %
Al 0.01 -0.1 %
B: 0.001 - 0.004 %
Cu : 0.05-0.4%
S< 0.010%
P < 0.020 %
N < 0.02 % and comprising optionally one or more of the following elements, by weight percent:
Sn : 0.002-0.1 %
Mo < 0.40 %
Nb < 0.08 %
Ca<0.1 %
The remainder of the composition being iron and unavoidable impurities resulting from the smelting process and depending on the process route.
In another particular embodiment, the steel sheet has a chemical composition comprising the following elements expressed in weight% :
C : 0.24 - 0.3 %
Mn: 0.5 - 3 %
Si: 0.24-1.7%
Al: 0.015-0.070
Cr: 0.1 -1.0%
Ni: 0.25-0.4%
Nb: 0-0.060%
B: 0.0005-0.0040
Cu : 0.05-0.4%
S <0.010%
P < 0.020 %
N < 0.02 %
Ti 0.01 -0.1 %
2.6 + (Mn/5.3) + (Cr/13) + (Si/15) >1.1 % and comprising optionally one or more of the following elements, by weight percent:
Sn : 0.002-0.1 %
Mo: 0.05-0.40%
Ca 0.0005-0.005% the remainder of the composition being iron and unavoidable impurities resulting from the production route.
The steel sheet according to the invention can be produced by any appropriate manufacturing method and the man skilled in the art can define one. It is however preferred to use the method according to the invention comprising the following steps:
A semi-product able to be further hot rolled, is provided with the steel composition described above. Such semi-product can for example be a slab.
The semi product is obtained by casting liquid steel, which can be produced by a steelmaking process using for example the Basic Oxygen Furnace (BOF) route. In BOF route, hot metal or pig iron obtained for example in a blast furnace or a smelting furnace, is decarburized to be turned into liquid steel. Optionally, ferrous scraps comprising elements such as copper, nickel, chromium, molybdenum, tin, arsenic, antimony, or lead are loaded in the furnace together with this hot metal or pig iron. Direct Reduced Iron (DRI) may also be charged.
The liquid steel can also be produced in an Electric Arc Furnace (EAF) by melting ferrous scraps to directly produce liquid steel. DRI may also be charged together with ferrous scrap in the EAF.
The semi product is heated to a temperature from 1100°C to 1300°C. The steel sheet is then hot rolled at a finish hot rolling temperature (FRT) from 830°C to 950°C. Preferably, the FRT is comprised 850°C to 950°C, even more preferably from 880°C to 950°C. The hot-rolled steel is then cooled and coiled at a temperature lower than 670°C, and optionally pickled to remove oxidation.
In one preferred embodiment of the invention the hot rolled steel sheet is then cooled to room temperature. In another preferred embodiment, the hot rolled steel sheet is annealed to an annealing temperature TA from 700°C to 850°C and maintained at said annealing temperature TA for a holding time tA of 10s to 1200s, and optionally coated with an aluminium coating, or aluminium alloy coating, or zinc coating or zinc alloy coating and cooled down to room temperature.
In another preferred embodiment of the invention, the hot rolled steel sheet is cold rolled and annealed to an annealing temperature TA from 700°C to 850°C and maintained at said annealing temperature TA for a holding time tA of 10s to 1200s, and optionally coated with an aluminium coating, or aluminium alloy coating, or zinc coating or zinc alloy coating and cooled down to room temperature.
In another preferred embodiment of the invention, the hot rolled steel sheet is cold rolled and annealed to an annealing temperature TA from 500°C to 750°C and maintained at said annealing temperature TA for a holding time tA of 300s to 80h.
The microstructure of the steel sheet according to the invention comprises 50% or more of ferrite in surface fraction, the rest being pearlite or cementite.
The steel part according to the invention can be produced by any appropriate manufacturing method and the man skilled in the art can define one. It is however preferred to use the method according to the invention comprising the following steps:
A steel sheet having the above chemical composition and microstructure is provided and cut to a predetermined shape, so as to obtain a steel blank.
The steel blank is then heated to a temperature Ti from 800°C to 980°C and maintained at said Ti temperature for a dwell time ti of 10s to 900s to obtain a heated steel blank. The heated steel blank is then transferred to a forming press, and hot formed. After hot forming, the steel part is then die-quenched.
The microstructure of the steel part according to the invention will now be described. During the heating of the steel blank cut out of the steel sheet, all microstructural elements are transformed into austenite. The heated blank is then transferred to a forming press, and hot formed. After hot forming, the steel part is then die-quenched, austenite being transformed in more than 95% of martensite, the rest being optional bainite and retained austenite. Preferably, the microstructure comprised more than 98% of martensite, the rest being optional bainite and retained austenite.
The press hardened steel part according to the invention has an average Charpy impact energy value calculated as the average of the Charpy impact energy values measured at 20°C, -40°C, -60°C and -80°C, above or equal to 0.90 J/mm2. Preferably, this average value is above or equal to 0.95 J/mm2.
The toughness is measured by Charpy impact energy at 20°C, -40°C, -60° and - 80°C according to Standard ISO 148-1 :2006 (F) and ISO 148-1 :2017(F).
Preferably, the press hardened steel part has a Charpy impact energy at -80°C higher than 0.75 J/mm2.
Preferably, the press hardened steel part according to the invention has a loss of ductility A between the Charpy impact energy measured at 20°C and the Charpy impact energy measured at -80°C lower than 25%.
Preferably, the press hardened steel part has a tensile strength TS above or equal to 950MPa. More preferably, the press hardened steel part has TS above or equal to 1350MPa. TS is measured according to Standard ISO 6892-1 .
In a preferred embodiment of the invention, a martensitic steel sheet can be produced by a method comprising the following steps: the hot rolled steel sheet having the above chemical composition is provided and optionally annealed to a temperature T from 500°C to 750°C and maintained at said annealing temperature for a holding time t of 300s to 80h and optionally cold rolled. The steel sheet is then annealed to a temperature Ti comprised from 800°C to 980°C during ti comprised from 10s to 900s, and cooled below Ms. The steel sheet is optionally reheated to a temperature from 150°C and 270°C and maintained at said temperature for a holding time of 1 s to 600s, before being cooled to room temperature, to obtain a martensitic steel sheet having a microstructure comprising more than 90% of martensite, the rest being optional bainite and retained austenite.
Preferably, this martensitic steel sheet has an average Charpy impact energy value calculated as the average of the Charpy impact energy values measured at 20°C, - 40°C, -60°C and -80°C, above or equal to 0.90 J/mm2. Preferably, this average value is above or equal to 0.95 J/mm2.
Preferably, the martensitic steel sheet has a Charpy impact energy at -80°C higher than 0.75 J/mm2.
5 Preferably, the martensitic steel sheet has a loss of ductility A between the Charpy impact energy measured at 20°C and the Charpy impact energy measured at -80°C lower than 25%.
Preferably, the martensitic steel sheet has a tensile strength TS above or equal to0 950MPa. More preferably, the martensitic steel sheet has TS above or equal to
1350MPa.
The invention will be now illustrated by the following examples, which are by no way limitative. 5
Example
5 grades, which compositions are gathered in table 1 , were cast in semiproducts and processed into steel sheets, then steel parts, following the process parameters gathered in table 3. 0
Table 1 - Compositions
The tested compositions are gathered in the following table wherein the element contents are expressed in weight percent (wt.%). 5 Steels A-B are according to the invention, C-E are references.
Underlined values: not corresponding to the invention Table 2 - Microstructure of the steel sheets
Steel semi-products, as cast, were reheated at 1200 °C, hot rolled with a finish hot rolling temperature of 890°C and coiled at 550°C. The microstructures of the steel sheets are gathered in the following table:
The surface fractions are determined through the following method: a specimen is cut from the steel sheet, polished and etched with a reagent known per se, to reveal the microstructure. The section is afterwards examined through optical.
Table 3 - Process parameters
The steel sheets were then cut to obtain a steel blank, heated to a temperature Ti and maintained at said temperature for a dwell time ti and hot-formed. The following specific conditions were applied:
Underlined values: not corresponding to the invention
The steel parts were analyzed and the corresponding microstructure, is gathered in table 4. Mechanical properties are gathered in Table 5. Table 4 - Microstructure of the press hardened steel part
Underlined values: not corresponding to the invention
The surface fractions are determined through the following method: a specimen is cut from the press hardened steel part, polished and etched with a reagent known per se, to reveal the microstructure. The section is afterwards examined through optical or scanning electron microscope, for example with a Scanning Electron Microscope with a Field Emission Gun (“FEG-SEM”) at a magnification greater than 5000x, coupled to a EBSD (Electron Back Scattered Diffraction) device.
Table 5 - Mechanical properties of the press hardened steel part
The toughness of the parts was measured by Charpy impact test at four temperatures Ttest 20°C, -40°C, -60° and -80°C, and gathered in the following table. The average Charpy impact energy value is calculated by an average of the four toughness values. The loss of ductility A between 20°C and -80°C is calculated by the difference between the Charpy impact energy measured at 20°C and the Charpy impact energy measured at -80°C.
Underlined values: do not match the targeted value
The examples show that the steel parts according to the invention, namely trials 1 and 2 are the only ones to show the targeted property, thanks to their specific compositions and microstructures.
The steel part of trial 3 has a chemical composition similar to the steel part of trial 1 , excepted a lower level of copper. At the same Charpy test temperature, the toughness of trial 3 is much lower than trial 1 . The lower the temperature at which the Charpy impact is measured, the greater the difference of toughness between the two trials. This can be evidenced by the average Charpy impact energy value, calculated by an average of the four toughness values. The higher the average, the higher the toughness. Moreover, the copper content according to the invention allows to shift the ductile- to-brittle transition temperature (DBTT) to lower temperatures. This DBTT is the temperature at which a ductile material become brittle. This shift of the DBTT can be evidenced by the average Charpy impact energy value. The higher the average value, the more the DBTT is shifted to low temperature. Trials 4 and 5 concern steel parts with low levels of copper. The average Charpy impact energy value is lower than 0.90 J/mm2, meaning that the toughness of the steel part is low, and the DBTT is high.

Claims

CLAIMS A steel sheet made of a steel having a composition comprising, by weight percent:
C : 0.05 - 0.3 %
Mn : 0.5 - 4 %
Si : 0.24 - 1 .7 %
Al : 0.01 - 0.1 %
Cr : 0.01 - 1.0 %
B : 0.0005 - 0.08 %
Ti : 0.01 - 0.1 %
Cu : 0.05-0.4%
P < 0.020 %
S < 0.010 %
N < 0.02 % and comprising optionally one or more of the following elements, by weight percent:
Sn < 0.1 %
Ni < 0.4%
Mo < 0.40 %
Nb < 0.08 %
Ca < 0.1 % the remainder of the composition being iron and unavoidable impurities resulting from the smelting, said steel sheet having a microstructure comprising, in surface fraction, 50% or more of ferrite, the rest being pearlite or cementite. A press hardened steel part made of a steel according to claim 1 , said steel part having a microstructure comprising, in surface fraction, more than 95% of martensite, the rest being optional bainite and retained austenite. A press hardened steel part according to claim 2, wherein the press hardened steel part has an average Charpy impact energy value, calculated as the average of Charpy impact energies measured at 20°C, -40°C, -60°C and - 80°C, that is above or equal to 0.90 J/mm2. A press hardened steel part according to any one of claims 2 to 3, wherein the press hardened steel part has a Charpy impact energy measured at - 80°C higher than 0.75 J/mm2. A press hardened steel part according to any one of claims 2 to 4, wherein the press hardened steel part has a loss of ductility A between the Charpy impact energy measured at 20°C and the Charpy impact energy measured at -80°C lower than 25%. A process for manufacturing a press hardened steel part comprising the following successive steps:
- providing a steel sheet according to claim 1 ,
- cutting said steel sheet to a predetermined shape, so as to obtain a steel blank,
- heating the steel blank to a temperature Ti from 800°C to 980°C and maintaining at said Ti temperature during a dwell time ti of 10s to 900s to obtain a heated steel blank,
- transferring the heated steel blank to a forming press,
- hot-forming the heated steel blank in the forming press to obtain a formed part,
- die-quenching the formed part. A process for manufacturing a martensitic steel sheet comprising the following successive steps:
- providing a steel sheet according to claim,
- optionally annealing the steel sheet to an annealing temperature T from 500°C to 750°C and maintaining at said annealing temperature for a holding time t of 300s to 80h
- optionally cold rolling the steel sheet, - annealing the steel sheet to a temperature Ti from 800°C to 980°C and maintaining at said Ti temperature for a holding time ti of 10s to 900s,
- cooling the steel sheet below Ms
- optionally reheating the steel sheet to a temperature from 150°C to 270°C and maintaining at said temperature for a holding time of 1 s to 600s,
- cooling the steel sheet to room temperature, to obtain a martensitic steel sheet having a microstructure comprising, in surface fraction, more than 95% of martensite, the rest being optional bainite and retained austenite.
EP23805180.9A 2022-11-14 2023-11-13 High toughness press-hardened steel part and method of manufacturing the same Pending EP4584411A2 (en)

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