Claims
- 1-31 (Canceled).
- 32. A high-strength thin steel sheet drawable and having a particular shape fixation property, comprising:
at least one section,
wherein at least on a plane at a center of the thickness of the at least one section: a. a first average ratio of an X-ray strength in an orientation component group of {100}<011> to {223}<110> to a random X-ray diffraction strength is at least 3, and b. a second average ratio of the X-ray strength in three orientation components of {554}<225>, {111}<112> and {111}<110> to the random X-ray diffraction strength is at most 3.5, and wherein an arithmetic average of a roughness (Ra) of at least one of surfaces of the at least one section is approximately 1 μm to 3.5 μm; and a composition having a lubricating effect covering the surfaces of the at least one section.
- 33. The steel sheet according to claim 32, wherein the surfaces have a friction coefficient of 0.05 to 0.2 at a temperature approximately between 0° C. and 200° C.
- 34. The steel sheet according to claim 32, wherein the at least one section has a microstructure that is a compound structure containing ferrite as a first phase accounting for a largest volume percentage, and martensite substantially as a second phase.
- 35. The steel sheet according to claim 32, wherein the at least one section has a microstructure that is a compound structure containing retained austenite approximately by 5% to 25% in terms of a volume percentage, and having the balance consisting substantially of ferrite and bainite.
- 36. The steel sheet according to claim 32, wherein the at least one section has a microstructure that is a compound structure containing bainite and ferrite and one of bainite and ferrite as a phase accounting for a largest volume percentage.
- 37. The steel sheet according to claim 32, wherein the at least one section contains, in mass,
- 38. The steel sheet according to claim 37, wherein the at least one section further contains, in mass, at least one of:
- 39. The steel sheet according to claim 32, wherein the at least one section optionally contains, in mass, one of:
I. 15C:0.01 to 0.1%,S: 0.03% or less,N:0.005% or less, andTi:0.05 to 0.5%,so as to satisfy the following expression:Ti−(48/12)C−(48/14)N−(48/32)S≧0%,with the balance consisting of Fe and unavoidable impurities, II. Nb: 0.01 to 0.5%, and
Ti, so as to satisfy the following expression:Ti+(48/93)Nb−(48/12)C−(48/14)N−(48/32)S≧0%,with the balance consisting of Fe and unavoidable impurities, and II. 16Si: 0.01 to 2%,Mn: 0.05 to 3%,P:0.1% or less, andAl:0.005 to 1%.
- 40. The steel sheet according to claim 39, wherein the at least one section further optionally contains, in mass, one of
- 41. The steel sheet according to claim 37, wherein the at least one section further optionally contains, in mass, one of
- 42. The steel sheet according to claim 32, further comprising a zinc plating layer provided between the at least one section and the composition.
- 43. A method for producing a high-strength thin steel sheet drawable and having a particular shape fixation property, comprising the steps of:
in a hot rolling process for obtaining the steel sheet, providing a slab containing, in mass, 19C: 0.01 to 0.3%,Si: 0.01 to 2%,Mn: 0.05 to 3%,P: 0.1% or less,S:0.01% or less, andAl:0.005 to 1%, with the balance consistingof Fe and unavoidable impurities.rough-rolling the slab to produce the steel sheet; finish rolling the slab at a total reduction ratio of at least 25% in terms of a steel sheet thickness in a temperature range of an Ar3 transformation temperature + at most 100° C.; and applying a composition having a lubricating effect to surfaces of the steel sheet.
- 44. The method according to claim 43, further comprising the step of, in the hot rolling process, applying a lubrication rolling procedure to the finish rolling step after the rough-rolling step.
- 45. The method according to claim 43, further comprising the step of, in the finish rolling step, applying a descaling procedure after a completion of the rough-rolling step.
- 46. The method according to claim 43, further comprising the step of before the applying step, galvanizing the surfaces of the steel sheet by dipping the steel sheet in a zinc plating bath after a hot rolling procedure.
- 47. The method according to claim 46, further comprising the step of, after the galvanizing step and before the applying step, subjecting the steel sheet to an alloying treatment.
- 48. A method for producing a high-strength thin steel sheet drawable and having a particular shape fixation property, comprising the steps of:
in a hot rolling process for obtaining the steel sheet, providing a slab containing, in mass, 20C: 0.01 to 0.3%,Si: 0.01 to 2%,Mn: 0.05 to 3%,P: 0.1% or less,S:0.01% or less, andAl:0.005 to 1%, with the balance consisting ofFe and unavoidable impurities.rough-rolling the slab to produce the steel sheet; finish rolling the slab at a total reduction ratio of at least 25% in terms of a steel sheet thickness in a temperature range of an Ar3 transformation temperature + at most 100° C. to produced a hot-rolled sheet; retaining the hot-rolled steel sheet for 1 to 20 seconds in a temperature range from the Ar1 transformation temperature to the Ar3 transformation temperature; cooling the retained hot-rolled sheet at a cooling rate of at least 20° C./second; coiling cooled hot-rolled sheet at a coiling temperature of at most 350° C.; and applying a composition having a lubricating effect to surfaces of the steel sheet,
wherein at least on a plane at a center of the thickness of the steel sheet: a. a first average ratio of an X-ray strength in an orientation component group of {100}<011> to {223}<110> to a random X-ray diffraction strength is at least 3, and b. a second average ratio of the X-ray strength in three orientation components of {554}<225>, {111}<112> and {111}<110> to the random X-ray diffraction strength is at most 3.5, wherein an arithmetic average of a roughness (Ra) of at least one of surfaces of the at least one section is approximately 1 μm to 3.5 μm, and wherein the steel sheet has a microstructure that is a compound structure containing ferrite as a first phase accounting for a largest volume percentage, and martensite substantially as a second phase.
- 49. The method according to claim 48, further comprising the step of, in the hot rolling process, applying a lubrication rolling procedure to the finish rolling step after the rough-rolling step.
- 50. The method according to claim 48, further comprising the step of, in the finish rolling step, applying a descaling procedure after a completion of the rough-rolling step.
- 51. The method according to claim 48, further comprising the step of before the applying step, galvanizing the surfaces of the steel sheet by dipping the steel sheet in a zinc plating bath after a hot rolling procedure.
- 52. The method according to claim 51, further comprising the step of, after the galvanizing step and before the applying step, subjecting the steel sheet to an alloying treatment.
- 53. A method for producing a high-strength thin steel sheet drawable and having a particular shape fixation property, comprising the steps of:
in a hot rolling process for obtaining the steel sheet, providing a slab containing, in mass, 21C: 0.01 to 0.3%,Si: 0.01 to 2%,Mn: 0.05 to 3%,P: 0.1% or less,S:0.01% or less, andAl:0.005 to 1%, with the balance consisting ofFe and unavoidable impurities.rough-rolling the slab to produce the steel sheet; finish rolling the slab at a total reduction ratio of at least 25% in terms of a steel sheet thickness in a temperature range of an Ar3 transformation temperature+at most 100° C. to produced a hot-rolled sheet; retaining the hot-rolled steel sheet for 1 to 20 seconds in a temperature range from the Ar1 transformation temperature to the Ar3 transformation temperature; cooling the retained hot-rolled sheet at a cooling rate of at least 20° C./second; coiling cooled hot-rolled sheet at a coiling temperature of between 350° C. and 450° C.; and applying a composition having a lubricating effect to surfaces of the steel sheet,
wherein at least on a plane at a center of the thickness of the steel sheet: a. a first average ratio of an X-ray strength in an orientation component group of {100}<011> to {223}<110> to a random X-ray diffraction strength is at least 3, and b. a second average ratio of the X-ray strength in three orientation components of {554}<225>, {111}<112> and {111}<110> to the random X-ray diffraction strength is at most 3.5, wherein an arithmetic average of a roughness (Ra) of at least one of surfaces of the at least one section is approximately 1 μm to 3.5 μm, and wherein the steel sheet has a microstructure that is a compound structure containing retained austenite approximately by 5% to 25% in terms of a volume percentage, and having the balance consisting substantially of ferrite and bainite.
- 54. The method according to claim 53, further comprising the step of, in the hot rolling process, applying a lubrication rolling procedure to the finish rolling step after the rough-rolling step.
- 55. The method according to claim 53, further comprising the step of, in the finish rolling step, applying a descaling procedure after a completion of the rough-rolling step.
- 56. The method according to claim 53, further comprising the step of before the applying step, galvanizing the surfaces of the steel sheet by dipping the steel sheet in a zinc plating bath after a hot rolling procedure.
- 57. The method according to claim 56, further comprising the step of, after the galvanizing step and before the applying step, subjecting the steel sheet to an alloying treatment.
- 58. A method for producing a high-strength thin steel sheet drawable and having a particular shape fixation property, comprising the steps of:
in a hot rolling process for obtaining the steel sheet, providing a slab containing, in mass, 22C: 0.01 to 0.3%,Si: 0.01 to 2%,Mn: 0.05 to 3%,P: 0.1% or less,S:0.01% or less, andAl:0.005 to 1%, with the balance consisting ofFe and unavoidable impurities.rough-rolling the slab to produce the steel sheet; finish rolling the slab at a total reduction ratio of at least 25% in terms of a steel sheet thickness in a temperature range of an Ar3 transformation temperature + at most 100° C. to produced a hot-rolled sheet; cooling the retained hot-rolled sheet at a cooling rate of at least 20° C./second; coiling cooled hot-rolled sheet at a coiling temperature of at least 450° C.; and applying a composition having a lubricating effect to surfaces of the steel sheet,
wherein at least on a plane at a center of the thickness of the steel sheet: a. a first average ratio of an X-ray strength in an orientation component group of {100}<011> to {223}<110> to a random X-ray diffraction strength is at least 3, and b. a second average ratio of the X-ray strength in three orientation components of {554}<225>, {111}<112> and {111}<110> to the random X-ray diffraction strength is at most 3.5, wherein an arithmetic average of a roughness (Ra) of at least one of surfaces of the at least one section is approximately 1 μm to 3.5 μm, and wherein the at least one section has a microstructure that is a compound structure containing bainite and ferrite and one of bainite and ferrite as a phase accounting for a largest volume percentage.
- 59. The method according to claim 58, further comprising the step of, in the hot rolling process, applying a lubrication rolling procedure to the finish rolling step after the rough-rolling step.
- 60. The method according to claim 58, further comprising the step of, in the finish rolling step, applying a descaling procedure after a completion of the rough-rolling step.
- 61. The method according to claim 58, further comprising the step of before the applying step, galvanizing the surfaces of the steel sheet by dipping the steel sheet in a zinc plating bath after a hot rolling procedure.
- 62. The method according to claim 61, further comprising the step of, after the galvanizing step and before the applying step, subjecting the steel sheet to an alloying treatment.
- 63. A method for producing a high-strength thin steel sheet drawable and having a particular shape fixation property, comprising the steps of:
in a hot rolling process for obtaining the steel sheet, providing a slab containing, in mass, 23C:0.01 to 0.1%,S: 0.03% or less,N:0.005% or less,Nb:0.01 to 0.5%, andTi:0.05 to 0.5%, so as to satisfy the following expression:Ti + (48/93)Nb − (48/12)C −(48/14)N − (48/32)S ≧ 0%,with the balance consisting of Fe and unavoidable impurities, finish rolling the slab at a total reduction ratio of at least 25% in terms of a steel sheet thickness in a temperature range of an Ar3 transformation temperature+ at most 100° C.; cooling and coiling the steel sheet produced in the finish rolling step; and applying a composition having a lubricating effect to surfaces of the steel sheet.
- 64. The method according to claim 63, further comprising the step of, in the hot rolling process, applying a lubrication rolling procedure to the finish rolling step after the rough-rolling step.
- 65. The method according to claim 63, further comprising the step of, in the finish rolling step, applying a descaling procedure after a completion of the rough-rolling step.
- 66. The method according to claim 63, further comprising the step of before the applying step, galvanizing the surfaces of the steel sheet by dipping the steel sheet in a zinc plating bath after a hot rolling procedure.
- 67. The method according to claim 66, further comprising the step of, after the galvanizing step and before the applying step, subjecting the steel sheet to an alloying treatment.
- 68. A method for producing a high-strength thin steel sheet drawable and having a particular shape fixation property, comprising the steps of:
in a hot rolling process for obtaining the steel sheet, providing a slab containing, in mass, 24C: 0.01 to 0.3%,Si: 0.01 to 2%,Mn: 0.05 to 3%,P: 0.1% or less,S:0.01% or less, andAl:0.005 to 1%, with the balance consisting ofFe and unavoidable impurities.subjecting the slab to, sequentially, hot rolling, pickling, cold rolling procedures at a reduction ratio that is below 80% in terms of a steel sheet thickness to produce the steel sheet; applying a heat treatment to the slab by retaining the cold-rolled steel sheet for 5 to 150 sec. in the temperature range from a recovery temperature to an Ac3 transformation temperature + approximately 100° C., and then cooling the heated steel sheet; and applying a composition having a lubricating effect to surfaces of the steel sheet.
- 69. The method according to claim 68, further comprising the step of galvanizing the surfaces of the steel sheet by dipping the steel sheet in a zinc plating bath after the completion of the heat treatment application step before the application of the composition.
- 70. The method according to claim 69, further comprising the step of, after the galvanizing step and before the applying step, subjecting the steel sheet to an alloying treatment.
- 71. A method for producing a high-strength thin steel sheet drawable and having a particular shape fixation property, comprising the steps of:
in a hot rolling process for obtaining the steel sheet, providing a slab containing, in mass, 25C: 0.01 to 0.3%,Si: 0.01 to 2%,Mn: 0.05 to 3%,P: 0.1% or less,S:0.01% or less, andAl:0.005 to 1%, with the balance consistingof Fe and unavoidable impurities.subjecting the slab to, sequentially, hot rolling, pickling, cold rolling procedures at a reduction ratio that is below 80% in terms of a steel sheet thickness to produce the steel sheet; applying a heat treatment to the slab by retaining the cold-rolled steel sheet for 5 to 150 sec. in the temperature range from an Ac1 transformation temperature to an Ac3 transformation temperature+approximately 100° C., cooling the heated steel sheet at a cooling rate of at least 20° C./second to a temperature range of at most 350° C.; and applying a composition having a lubricating effect to surfaces of the steel sheet, wherein the steel sheet has a microstructure that is a compound structure containing ferrite as a first phase accounting for a largest volume percentage, and martensite substantially as a second phase.
- 72. The method according to claim 71, further comprising the step of galvanizing the surfaces of the steel sheet by dipping the steel sheet in a zinc plating bath after the completion of the heat treatment application step before the application of the composition.
- 73. The method according to claim 72, further comprising the step of, after the galvanizing step and before the applying step, subjecting the steel sheet to an alloying treatment.
- 74. A method for producing a high-strength thin steel sheet drawable and having a particular shape fixation property, comprising the steps of:
in a hot rolling process for obtaining the steel sheet, providing a slab containing, in mass, 26C: 0.01 to 0.3%,Si: 0.01 to 2%,Mn: 0.05 to 3%,P: 0.1% or less,S:0.01% or less, andAl:0.005 to 1%, with the balance consistingof Fe and unavoidable impurities.subjecting the slab to, sequentially, hot rolling, pickling, cold rolling procedures at a reduction ratio that is below 80% in terms of a steel sheet thickness to produce the steel sheet; applying a heat treatment to the slab by retaining the cold-rolled steel sheet for 5 to 150 sec. in the temperature range from an Ac1 transformation temperature to an Ac3 transformation temperature+approximately 100° C., cooling the heated steel sheet at a cooling rate of at least 20° C./second to a temperature range of between 350° C. and 450° C.; retaining the cooled steel sheet in the temperature range for approximately 5 seconds to 600 seconds, and cooling the retained steel sheet at a cooling rate of at least 5° C./second to a further temperature range of at most 200° C.; and applying a composition having a lubricating effect to surfaces of the steel sheet,
wherein at least on a plane at a center of the thickness of the steel sheet: a. a first average ratio of an X-ray strength in an orientation component group of {100}<011> to {223}<110> to a random X-ray diffraction strength is at least 3, and b. a second average ratio of the X-ray strength in three orientation components of {554}<225>, {111}<112> and {111}<110> to the random X-ray diffraction strength is at most 3.5, wherein an arithmetic average of a roughness (Ra) of at least one of surfaces of the at least one section is approximately 1 μm to 3.5 μm, and wherein the steel sheet has a microstructure that is a compound structure containing retained austenite approximately by 5% to 25% in terms of a volume percentage, and having the balance consisting substantially of ferrite and bainite.
- 75. The method according to claim 74, further comprising the step of galvanizing the surfaces of the steel sheet by dipping the steel sheet in a zinc plating bath after the completion of the heat treatment application step before the application of the composition.
- 76. The method according to claim 75, further comprising the step of, after the galvanizing step and before the applying step, subjecting the steel sheet to an alloying treatment.
- 77. A method for producing a high-strength thin steel sheet drawable and having a particular shape fixation property, comprising the steps of:
in a hot rolling process for obtaining the steel sheet, providing a slab containing, in mass, 27C: 0.01 to 0.3%,Si: 0.01 to 2%,Mn: 0.05 to 3%,P: 0.1% or less,S:0.01% or less, andAl:0.005 to 1%, with the balance consistingof Fe and unavoidable impurities.subjecting the slab to, sequentially, hot rolling, pickling, cold rolling procedures at a reduction ratio that is below 80% in terms of a steel sheet thickness to produce the steel sheet; applying a heat treatment to the slab by retaining the cold-rolled steel sheet for 5 to 150 sec. in the temperature range from an Ac1 transformation temperature to an Ac3 transformation temperature + approximately 100° C., cooling the heated steel sheet; and applying a composition having a lubricating effect to surfaces of the steel sheet,
wherein at least on a plane at a center of the thickness of the steel sheet: a. a first average ratio of an X-ray strength in an orientation component group of {100}<011> to {223}<110> to a random X-ray diffraction strength is at least 3, and b. a second average ratio of the X-ray strength in three orientation components of {554}<225>, {111}<112> and {111}<110> to the random X-ray diffraction strength is at most 3.5, wherein an arithmetic average of a roughness (Ra) of at least one of surfaces of the at least one section is approximately 1 μm to 3.5 μm, and wherein the at least one section has a microstructure that is a compound structure containing bainite and ferrite and one of bainite and ferrite as a phase accounting for a largest volume percentage.
- 78. The method according to claim 77, further comprising the step of galvanizing the surfaces of the steel sheet by dipping the steel sheet in a zinc plating bath after the completion of the heat treatment application step before the application of the composition.
- 79. The method according to claim 78, further comprising the step of, after the galvanizing step and before the applying step, subjecting the steel sheet to an alloying treatment.
- 80. A method for producing a high-strength thin steel sheet drawable and having a particular shape fixation property, comprising the steps of:
in a hot rolling process for obtaining the steel sheet, providing a slab containing, in mass, 28C:0.01 to 0.1%,S: 0.03% or less,N:0.005% or less,Nb:0.01 to 0.5%, andTi:0.05 to 0.5%, so as to satisfy the following expression:Ti + (48/93)Nb − (48/12)C −(48/14)N − (48/32)S ≧ 0%,with the balance consisting of Fe and unavoidable impurities, subjecting the slab to, sequentially, hot rolling, pickling, cold rolling procedures at a reduction ratio that is below 80% in terms of a steel sheet thickness to produce the steel sheet; applying a heat treatment to the slab by retaining the cold-rolled steel sheet for 5 to 150 sec. in the temperature range from a recovery temperature to an Ac3 transformation temperature+approximately 1000 ° C., cooling the heated steel sheet; and applying a composition having a lubricating effect to surfaces of the steel sheet.
- 81. The method according to claim 80, further comprising the step of galvanizing the surfaces of the steel sheet by dipping the steel sheet in a zinc plating bath after the completion of the heat treatment application step before the application of the composition.
- 82. The method according to claim 81, further comprising the step of, after the galvanizing step and before the applying step, subjecting the steel sheet to an alloying treatment.
Priority Claims (2)
Number |
Date |
Country |
Kind |
2001-308285 |
Oct 2001 |
JP |
|
2001-360084 |
Nov 2001 |
JP |
|
Parent Case Info
[0001] The application is a national phase application of International Patent Application No. PCT/JP02/10386 filed on Oct. 4, 2002, and which published on Apr. 17, 2003 as International Patent Publication No. WO 03/031669. Accordingly, the present application claims priority from the above-referenced International application under 35 U.S.C. § 365. In addition, the present application claims priority from Japanese Patent Application Nos. 2001-308285 and 2001-360084, filed Oct. 4, 2001 and Nov. 26, 2001, respectively, under 35 U.S.C. § 119. The entire disclosures of these International and Japanese patent application are incorporated herein by reference.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/JP02/10386 |
10/4/2002 |
WO |
|