Claims
- 1-33. (Canceled).
- 34. A steel sheet excellent in workability, comprising: steel including, in mass,
0.08 to 0.25% C, 0.001 to 1.5% Si, 0.01 to 2.0% Mn, 0.001 to 0.04% P, at most 0.05% S, 0.001 to 0.007% N, 0.008 to 0.2% Al, and at least 0.01% Fe; and having an average r-value of at least 1.2, an r-value in the rolling direction (rL) of at least 1.3; an r-value in the direction of 45 degrees to the rolling direction (rD) of at least 0.9, and an r-value in the direction of a right angle to the rolling direction (rC) of at least 1.2.
- 35. The steel sheet excellent in workability according to claim 1, wherein the steel sheet having ratios of X-ray diffraction intensities in the orientation components of {111}, {100} and {110} to random X-ray diffraction intensities on a reflection plane at the thickness center of said steel sheet are at least 2.0, at most 1.0 and at least 0.2, respectively.
- 36. The steel sheet excellent in workability according to claim 1, wherein the steel sheet having an average size of a plurality of grains of said steel sheet being at least 15 μm.
- 37. The steel sheet excellent in workability according to claim 3, wherein the steel sheet having an average aspect ratio of the plurality of grains of said steel sheet being in the range from 1.0 to 3.0.
- 38. The steel sheet excellent in workability according to claims 1, wherein the steel sheet having a yield ratio of said steel sheet is at most 0.65.
- 39. The steel sheet excellent in workability according to claim 1, wherein the steel sheet having a value of Al/N of said steel sheet is in the range from 3 to 25.
- 40. The steel sheet excellent in workability according to claim 1, wherein the steel further including by mass 0.0001 to 0.01% B.
- 41. The steel sheet excellent in workability according to claim 1, wherein the steel further including by mass 0.0001 to 0.5% of at least one of Zr and Mg in total.
- 42. The steel sheet excellent in workability according to claim 1, wherein the steel further including by mass 0.001 to 0.2% of at least one of Ti, Nb and V in total.
- 43. The steel sheet excellent in workability according to claim 1, wherein the steel further including by mass 0.001 to 2.5% of at least one of Sn, Cr, Cu, Ni, Co and W in total.
- 44. The steel sheet excellent in workability according to claim 1, wherein the steel further including by mass 0.0001 to 0.01% Ca.
- 45. The steel sheet excellent in workability according to claim 1, wherein the steel sheet is formed into a steel pipe having an aging index (AI) of 40 MPa or less, which is evaluated through a tensile test, and a surface roughness of 0.8 or less.
- 46. A method for producing a steel sheet excellent in formability, comprising the steps of:
hot rolling steel including by mass 0.08 to 0.25% C, 0.001 to 1.5% Si, 0.01 to 2.0% Mn, 0.001 to 0.06% P, at most 0.05% S, 0.001 to 0.007% N, 0.008 to 0.2% Al, and at least 0.01% Fe, at a finishing temperature of the Ar3 transformation temperature −50° C. or higher; coiling the steel at 700° C. or lower; cold rolling the steel at a reduction ratio of 25 to less than 60%; heating the steel at an average heating rate of 4 to 200° C./h.; annealing the steel at a maximum arrival temperature of 600° C. to 800° C.; and cooling the steel at a rate of 5 to 100° C./h.
- 47. The method according to claim 13, wherein the steel sheet having ratios of X-ray diffraction intensities in the orientation components of {111}, {100} and {110} to random X-ray diffraction intensities on a reflection plane at the thickness center of said steel sheet are at least 2.0, at most 1.0 and at least 0.2, respectively.
- 48. The method according to claim 13, wherein the steel sheet having an average size of a plurality of grains of said steel sheet being 15 μm or more.
- 49. The method according to claim 15, wherein the steel sheet having an average aspect ratio of the plurality of grains of said steel sheet being in the range from 1.0 to 3.0.
- 50. The method according to claim 13, wherein the steel sheet having a yield ratio of said steel sheet is at most 0.65.
- 51. A steel sheet excellent in deep drawability comprising: steel including, in mass,
0.03 to 0.25% C, 0.001 to 3.0% Si, 0.01 to 3.0% Mn, 0.001 to 0.06% P, at most 0.05% S, 0.0005 to 0.030% N, 0.005 to 0.3% Al, and at least 0.01% Fe; having an average r-value of 1.2 or more and a metallographic microstructure composed of ferrite and precipitates.
- 52. The steel sheet excellent in deep drawability according to claim 18, wherein the steel sheet having an r-value in the rolling direction (rL) of at least 1.1, an r-value in the direction of 45 degrees to the rolling direction (rD) of at least 0.9, and an r-value in the direction of a right angle to the rolling direction (rC) of at least 1.2.
- 53. The steel sheet excellent in deep drawability according to claim 18, wherein the steel including Mn and C so as to satisfy the expression Mn+I1C>1.5.
- 54. The steel sheet excellent in deep drawability according to claim 18, wherein the steel sheet having ratios of X-ray diffraction intensities in the orientation components of {111} and {100} to random X-ray diffraction intensities on a reflection plane at the thickness center of said steel sheet are at least 3.0 and at most 3.0, respectively.
- 55. The steel sheet excellent in deep drawability according to claim 18, wherein the steel sheet having ratios of the X-ray diffraction intensities in the orientation components of {111} and {100} to random X-ray diffraction intensities on a reflection plane at the thickness center of said steel sheet are at least 3.0 and at most 3.0, respectively.
- 56. The steel sheet excellent in deep drawability according claim 18, wherein the steel sheet having an average size of a plurality of ferrite grains of said steel sheet being at least 15 μm.
- 57. The steel sheet excellent in deep drawability according to claim 23, wherein the steel sheet having an average aspect ratio of the plurality of ferrite grains in the range from 1.0 to 5.0.
- 58. The steel sheet excellent in deep drawability according to claim 18, wherein the steel sheet having a yield ratio of said steel sheet being at most 0.7.
- 59. The steel sheet excellent in deep drawability according to claim 18, wherein the steel sheet having a value of Al/N of said steel sheet in the range from 3 to 25.
- 60. The steel sheet excellent in deep drawability according to claim 18, wherein the steel further including by mass 0.0001 to 0.01% B.
- 61. The steel sheet excellent in deep drawability according to claim 18, wherein the steel further including by mass 0.0001 to 0.5% of at least one of Zr and Mg in total.
- 62. The steel sheet excellent in deep drawability according to claim 18, wherein the steel further including by mass 0.001 to 0.2% of at least one of Ti, Nb and V in total.
- 63. The steel sheet excellent in deep drawability according to claim 18, wherein the steel further including by mass 0.001 to 2.5% of at least one of Sn, Cr, Cu, Ni, Co, W and Mo in total.
- 64. The steel sheet excellent in deep drawability according to claim 18, wherein the steel including by mass 0.0001 to 0.01% Ca.
- 65. The steel sheet excellent in deep drawability according to claim 18, wherein the steel sheet having a plating layer on each of the surfaces of said steel sheet.
- 66. A high strength steel sheet excellent in deep drawability, comprising: steel including, by mass,
0.03 to 0.25% C, 0.001 to 3.0% Si, 0.01 to 3.0% Mn, 0.001 to 0.06% P, at most 0.05% S, 0.0005 to 0.030% N, 0.005 to 0.3% Al, and at least 0.01% Fe; having an average r-value of 1.3 or more and containing at least one of bainite, martensite and austenite by 3 to 100% in total in the metallographic microstructure of said steel sheet.
- 67. The high strength steel sheet excellent in deep drawability according to claim 33, wherein the steel sheet having an r-value in the rolling direction (rL) of at least 1.1, an r-value in the direction of 45 degrees to the rolling direction (rD) of at least 0.9, and an r-value in the direction of a right angle to the rolling direction (rC) of at least 1.2.
- 68. The high strength steel sheet excellent in deep drawability according to claim 33, wherein the steel including Mn and C so as to satisfy the expression Mn+I1C>1.5.
- 69. The high strength steel sheet excellent in deep drawability according to claim 33, wherein the steel sheet having ratios of X-ray diffraction intensities in the orientation components of {111} and {100} to random X-ray diffraction intensities on a reflection plane at the thickness center of said steel sheet are at least 3.0 and at most 3.0, respectively.
- 70. The high strength steel sheet excellent in deep drawability according to claim 33, wherein the steel sheet having ratios of the X-ray diffraction intensities in the orientation components of {111} and {100} to random X-ray diffraction intensities on a reflection plane at the thickness center of said steel sheet are at least 3.0 and at most 3.0, respectively.
- 71. The high strength steel sheet excellent in deep drawability according claim 33, wherein the steel sheet having an average size of a plurality of ferrite grains of said steel sheet being at least 15 μm.
- 72. The high strength steel sheet excellent in deep drawability according to claim 38, wherein the steel sheet having an average aspect ratio of the plurality of ferrite grains in the range from 1.0 to 5.0.
- 73. The high strength steel sheet excellent in deep drawability according to claim 33, wherein the steel sheet having a yield ratio of said steel sheet being at most 0.7.
- 74. A method for producing a high strength cold-rolled steel sheet excellent in deep drawability, comprising the steps of:
subjecting a hot-rolled steel sheet including by mass 0.03 to 0.25% C, 0.001 to 3.0% Si, 0.01 to 3.0% Mn, 0.001 to 0.06% P, at most 0.05% S, 0.0005 to 0.030% N, 0.005 to 0.3% Al, and at least 0.01% Fe, having an average r-value of at least 1.2, and having a metallographic microstructure wherein the volume percentage of at least one of a bainite phase and a martensite phase is 70 to 100% at least in the region from ¼ to ¾ of the thickness of the steel sheet, to cold rolling at a reduction ratio of 25 to 95%; and annealing the steel sheet in the temperature range from the recrystallization temperature to 1,000° C.
- 75. The method for producing a high strength cold-rolled steel sheet excellent in deep drawability according to claim 41, further comprising the step of applying at least one of hot-dip plating and electrolytic plating to surfaces of the steel sheet after annealing for producing a steel sheet having a plating layer on each of the surfaces of the steel sheet.
- 76. A method for producing a high strength steel sheet excellent in deep drawability, comprising the steps of:
hot rolling steel including by mass 0.03 to 0.25% C, 0.001 to 3.0% Si, 0.01 to 3.0% Mn, 0.001 to 0.06% P, at most 0.05% S, 0.0005 to 0.030% N, 0.005 to 0.3% Al, and at least 0.01% Fe, and having an average r-value of at least 1.2, at a finishing temperature of the Ar3 transformation temperature −50° C. or higher; coiling the steel in a temperature range from room temperature to 700° C.; cold rolling the steel at a reduction ratio of 30 to 95%; heating the steel at an average heating rate of 4 to 200° C./h.; annealing the steel at a maximum arrival temperature of 600° C. to 800° C.; and heating the steel to a temperature in the range from the Ac1 transformation temperature to 1,050° C.
- 77. The method for producing a high strength cold-rolled steel sheet excellent in deep drawability according to claim 43, further comprising the step of applying at least one of hot-dip plating and electrolytic plating to surfaces of the steel sheet after annealing for producing a steel sheet having a plating layer on each of the surfaces of the steel sheet.
- 78. A method for producing a high strength steel sheet excellent in deep drawability, comprising the steps of:
subjecting a hot-rolled steel sheet including by mass 0.03 to 0.25% C, 0.001 to 3.0% Si, 0.01 to 3.0% Mn, 0.001 to 0.06% P, at most 0.05% S, 0.0005 to 0.030% N, 0.005 to 0.3% Al, and at least 0.01% Fe, having an average r-value of at least 1.2, and a metallographic structure wherein the volume percentage of at least one of a bainite phase and a martensite phase is 70 to 100% at least in the region from ¼ to ¾ of the thickness of said steel sheet, to cold rolling at a reduction ratio of 30 to 95%; heating the steel sheet at an average heating rate of 4 to 200° C./h.; annealing the steel sheet at a maximum arrival temperature of 600° C. to 800° C.; and heating the steel sheet to a temperature in the range from the Ac1 transformation temperature to 1,050° C.
- 79. The method for producing a high strength cold-rolled steel sheet excellent in deep drawability according to claim 45, further comprising the step of applying at least one of hot-dip plating and electrolytic plating to surfaces of the steel sheet after annealing for producing a steel sheet having a plating layer on each of the surfaces of the steel sheet.
- 80. A method for producing a steel sheet excellent in deep drawability, comprising the steps of:
subjecting steel including by mass 0.03 to 0.25% C, 0.001 to 3.0% Si, 0.01 to 3.0% Mn, 0.001 to 0.06% P, at most 0.05% S, 0.0005 to 0.030% N, 0.005 to 0.3% Al, and at least 0.01% Fe, having an average r-value of at least 1.2, to hot rolling at a finishing temperature of the Ar3 transformation temperature or higher; cooling the steel at an average cooling rate of at least 30° C./sec. from the hot rolling finishing temperature to 550° C.; coiling the steel at 550° C. or lower; cold rolling the steel at a reduction ratio of 35 to 85%; heating the steel at an average heating rate of 4 to 200° C./h.; annealing the steel at a maximum arrival temperature of 600° C. to 800° C.; and cooling the steel at a rate of 5 to 100° C./h.
- 81. The method for producing a high strength cold-rolled steel sheet excellent in deep drawability according to claim 47, further comprising the step of applying at least one of hot-dip plating and electrolytic plating to surfaces of the steel sheet after cooling for producing a steel sheet having a plating layer on each of the surfaces of the steel sheet.
Priority Claims (3)
Number |
Date |
Country |
Kind |
2001-255384 |
Aug 2001 |
JP |
|
2001-255385 |
Aug 2001 |
JP |
|
2002-153030 |
May 2002 |
JP |
|
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a national stage application of PCT Application No. PCT/JP02/006518 which was filed on Jun. 27, 2002, and published on Mar. 6, 2003 as International Publication No. WO 03/018857 (the “International Application”). This application claims priority from the International Application pursuant to 35 U.S.C. § 365. The present application also claims priority under 35 U.S.C. § 119 from Japanese Patent Application Nos. ______, ______ and ______, filed on ______, ______ and ______, respectively, the entire disclosures of which are incorporated herein by reference.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/JP02/06518 |
6/27/2002 |
WO |
|