Claims
- 1. An image forming method comprising:
- developing in a developing zone defined by a latent image bearing member and a developer carrying member provided opposingly thereto, a latent image beared on the latent image bearing member, using a toner of a two-component type developer carried on the developer carrying member and comprising a toner and a carrier, by applying to the developer carrying member developing voltage having a discontinuous alternating current component to form a developing electric field between the latent image bearing member and the developer carrying member; said toner comprising toner particles and an external additive, and said carrier comprising carrier particles, wherein;
- said carrier has a 50% average particle diameter (D.sub.50) from 15 .mu.m to 45 .mu.m; said carrier contains from 1% to 20% of carrier particles with a size smaller than 22 .mu.m, not more than 3% of carrier particles with a size smaller than 16 .mu.m, from 2% to 15% of carrier particles with a size of 62 .mu.m or larger, and not more than 2% of carrier particles with a size of 88 .mu.m or larger; and said carrier has a specific surface area S.sub.1 as measured by an air-permeability method and a specific surface area S.sub.2 as calculated by the following expression:
- S.sub.2 =(6.sub./p.D.sub.50).times.10.sup.4
- wherein .rho. is a specific gravity of carrier; satisfying the following condition:
- 1.2.ltoreq.S.sub.1 /S.sub.2 .ltoreq.2.0.
- 2.
- 2. An image forming method according to claim 1, wherein said carrier contains from 2% to 15% of the carrier particles with a size smaller than 22 .mu.m, and not more than 2% of the carrier particles with a size smaller than 16 .mu.m.
- 3. An image forming method according to claim 1, wherein said carrier contains from 4% to 15% of the carrier particles with a size smaller than 22 .mu.m, and not more than 1% of the carrier particles with a size smaller than 16 .mu.m.
- 4. An image forming method according to claim 1, wherein said carrier has the specific surface area S.sub.1 and the specific surface area S.sub.2 satisfying the following condition:
- 1.3.ltoreq.S.sub.1 /S.sub.2 .ltoreq.1.8.
- 5. An image forming method according to claim 1, wherein said carrier has the specific surface area S.sub.1 and the specific surface area S.sub.2 satisfying the following condition:
- 1.4.ltoreq.S.sub.1 /S.sub.2 .ltoreq.1.7.
- 6. An image forming method according to claim 1, wherein said carrier has a saturation magnetization of from 35 emu/g to 90 emu/g, a residual magnetization of 10 emu/g or less and a coercive force of 40 oersteds or less, in an applied magnetic field of 3,000 oersteds.
- 7. An image forming method according to claim 1, wherein said carrier has a saturation magnetization of from 35 emu/g to 90 emu/g, a residual magnetization of 10 emu/g or less and a coercive force of 30 oersteds or less, in an applied magnetic field of 3,000 oarsteds.
- 8. An image forming method according to claim 1, wherein said carrier has a residual magnetization of 5 emu/g or less and a coercive force of 30 oersteds or less, in an applied magnetic field of 3,000 oarsteds.
- 9. An image forming method according to claim 1, wherein particle surfaces of said carrier are coated with a coating resin.
- 10. An image forming method according to claim 1, wherein said carrier has a specific surface area S.sub.1 as measured by an air-permeability method within the range of;
- 350.ltoreq.S.sub.1 .ltoreq.600 cm.sup.2 /g
- and said carrier contains from 1% to 20% of the carrier particles with a size smaller than 22 .mu.m, not less than 75% of carrier particles with a size of from 22 .mu.m to less than 62 .mu.m and from 2% to 15% of the carrier particles with a size of 62 .mu.m or larger.
- 11. An image forming method according to claim 1, wherein said carrier has a specific surface area S.sub.1 as measured by an air-permeability method within the range of;
- 380.ltoreq.S.sub.1 .ltoreq.550 cm.sup.2 /g
- and said carrier contains from 2% to 15% of the carrier particles with a size smaller than 22 .mu.m, not less than 78% of the carrier particles with a size of from 22 .mu.m to less than 62 .mu.m and from 4% to 13% of the carrier particles with a size of 62 .mu.m or larger.
- 12. An image forming method according to claim 10, wherein said carrier has a saturation magnetization of from 35 emu/g to 90 emu/g, a residual magnetization of 10 emu/g or less and a coercive force of 40 oersteds or less, in an applied magnetic field of 3,000 oersteds.
- 13. An image forming method according to claim 10, wherein said carrier has a residual magnetization of 5 emu/g or less and a coercive force of 30 oersteds or less, in an applied magnetic field of 3,000 oersteds.
- 14. An image forming method according to claim 10, wherein said carrier has an apparent density of from 1.8 g/cm3 to 3.2 g/cm3.
- 15. An image forming method according to claim 1, wherein said toner has a weight average particle diameter of from 3 .mu.m to 7 .mu.m; and contains more than 40% by number of toner particles with a particle diameter of 5.04 .mu.m or smaller, from 10% to 70% by number of toner particles with a particle diameter of 4 .mu.m or smaller, from 2% to 20% by volume of toner particles with a particle diameter of 8 .mu.m or larger, and not more than 6% by volume of toner particles with a particle diameter of 10.08 .mu.m or larger.
- 16. An image forming method according to claim 1, wherein said toner has a weight average particle diameter of from 3 .mu.m to 7 .mu.m; and contains more than 40% by number to not more than 90% by number of toner particles with a particle diameter of 5.04 .mu.m or smaller, from 15% to 60% by number of toner particles with a particle diameter of 4 .mu.m or smaller, from 3.0% to 18.0% by volume of toner particles with a particle diameter of 8 .mu.m or larger, and not more than 4% by volume of toner particles with a particle diameter of 10.08 .mu.m or larger.
- 17. An image forming method according to claim 1 wherein said external additive comprises fine titanium oxide particles.
- 18. An image forming method according to claim 17, wherein said fine titanium oxide particles comprises anatase type fine titanium oxide particles.
- 19. An image forming method according to claim 17, wherein said fine titanium oxide particles are surface-treated with a coupling agent.
- 20. An image forming method according to claim 19, wherein said fine titanium oxide particles are surface-treated while hydrolyzing a coupling agent in an aqueous system.
- 21. An image forming method according to claim 17, wherein said fine titanium oxide particles have a hydrophobicity of from 20% to 98%.
- 22. An image forming method according to claim 17, wherein said fine titanium oxide particles have a hydrophobicity of from 30% to 90%.
- 23. An image forming method according to claim 1, wherein said toner satisfies the following condition:
- 1.0.ltoreq.S.sub.B .ltoreq.1.8 (m.sup.2 /g),
- 1.20.ltoreq.S.sub.B /S.sub.A .ltoreq.1.70
- wherein S.sub.A is a specific surface area directly calculated from a weight average particle diameter of toner calculated from volume average distribution data of a Coulter counter and S.sub.B is a specific surface area calculated from number average distribution data of a Coulter counter;
- and said toner contains from 10% to 70% by number of toner particles with a particle diameter of 4.0 .mu.m or smaller.
- 24. An image forming method according to claim 1, wherein said toner satisfies the following condition:
- 1.05.ltoreq.S.sub.B .ltoreq.1.7 (m.sup.2 /g),
- 1.20.ltoreq.S.sub.B /S.sub.A .ltoreq.1.60
- wherein S.sub.A is a specific surface area directly calculated from a weight average particle diameter of toner calculated from volume average distribution data of a Coulter counter and S.sub.B is a specific surface area calculated from number average distribution data of a Coulter counter;
- and said toner contains from 15% to 60% by number of toner particles with a particle diameter of 4.0 .mu.m or smaller.
- 25. An image forming method according to claim 1, wherein said carrier has a saturation magnetization from 35 emu/g to 90 emu/g and a residual magnetization of 10 emu/g or less in an applied magnetic field of 3,000 oersteds; and said toner contains toner particles and fine titanium oxide particles as the external additive, has a weight average particle diameter from 3 .mu.m to 7 .mu.m, and contains more than 40% by number of toner particles with a particle diameter of 5.04 .mu.m or smaller, from 10% to 70% by number of toner particles with a particle diameter of 4 .mu.m or smaller, from 2% to 20% by volume of toner particles with a particle diameter of 8 .mu.m or larger, and not more than 6% by volume of toner particles with a particle diameter of 10.08 .mu.m or larger.
- 26. An image forming method according to claim 1, wherein;
- said carrier has a specific surface area S.sub.1 as measured by an air-permeability method within the range of;
- 350.ltoreq.S.sub.1 .ltoreq.600 cm.sup.2 /g
- and said carrier contains from 1% to 20% of the carrier particles with a size smaller than 22 .mu.m, not less than 75% of carrier particles with a size of from 22 .mu.m to less than 62 .mu.m and from 2% to 15% of the carrier particles with a size of 62 .mu.m or larger; and
- said toner satisfies the following condition:
- 1.0.ltoreq.S.sub.B .ltoreq.1.8 (m.sup.2 /g),
- 1.20.ltoreq.S.sub.B /S.sub.A .ltoreq.1.70
- wherein S.sub.A is a specific surface area directly calculated from a weight average particle diameter of toner calculated from volume average distribution data of a Coulter counter and S.sub.B is a specific surface area calculated from number average distribution data of a Coulter counter;
- and contains from 10% to 70% by number of toner particles with a particle diameter of 4.0 .mu.m or smaller.
- 27. An image forming method according to claim 1, wherein said developing voltage comprises (i) at least once a combination of a first voltage for directing a toner from the latent image bearing member toward the developer carrying member and a second voltage for directing the toner from the developer carrying member toward the latent image bearing member, and (ii) a third voltage in which the alternating current component is discontinued at a position intermediate between the first voltage and the second voltage.
- 28. An image forming method comprising:
- forming in a developing zone defined by a latent image bearing member and a developer carrying member provided opposingly thereto, a developing electric field between the latent image bearing member and the developer carrying member by applying to the developer carrying member developing voltage having a discontinuous alternating current component to develop a latent image beared on the latent image bearing member, using a toner of a developer carried on the developer carrying member, wherein;
- said toner contains at least toner particles and an external additive; said toner has a weight average particle diameter of from 3 .mu.m to 7 .mu.m; and said toner contains more than 40% by number of toner particles with a particle diameter of 5.04 .mu.m or smaller, from 10% to 70% by number of toner particles with a particle diameter of 4 .mu.m or smaller, from 2% to 20% by volume of toner particles with a particle diameter of 8 .mu.m or larger, and not more than 6% by volume of toner particles with a particle diameter of 10.08 .mu.m or larger.
- 29. An image forming method according to claim 28, wherein said toner has a weight average particle diameter of from 3 .mu.m to 7 .mu.m; and contains more than 40% by number to not more than 90% by number of toner particles with a particle diameter of 5.04 .mu.m or smaller, from 15% to 60% by number of toner particles with a particle diameter of 4 .mu.m or smaller, from 3.0% to 18.0% by volume of toner particles with a particle diameter of 8 .mu.m or larger, and not more than 4% by volume of toner particles with a particle diameter of 10.08 .mu.m or larger.
- 30. An image forming method according to claim 28, wherein said external additive comprises fine titanium oxide particles.
- 31. An image forming method according to claim 30, wherein said fine titanium oxide particles comprises anatase type fine titanium oxide particles.
- 32. An image forming method according to claim 30, wherein said fine titanium oxide particles are surface-treated with a coupling agent.
- 33. An image forming method according to claim 32, wherein said fine titanium oxide particles are surface-treated while hydrolyzing a coupling agent in an aqueous system.
- 34. An image forming method according to claim 30, wherein said fine titanium oxide particles have a hydrophobicity of from 20% to 98%.
- 35. An image forming method according to claim 30, wherein said fine titanium oxide particles have a hydrophobicity of from 30% to 90%.
- 36. An image forming method according to claim 28, wherein said developing voltage comprises (i) at least once a combination of a first voltage for directing a toner from the latent image bearing member toward the developer carrying member and a second voltage for directing the toner from the developer carrying member toward the latent image bearing member, and (ii) a third voltage in which the alternating current component is discontinued at a position intermediate between the first voltage and the second voltage.
- 37. An image forming method according to claim 36, wherein (T.sub.1) is a total time for which the combination of the first voltage and the second voltage is applied to the developer carrying member and the third voltage is applied to the developer carrying member for a period longer than the total time (T.sub.1).
- 38. An image forming method according to claim 28, wherein said alternating current component is substantially rectangular wave.
- 39. An image forming method according to claim 28, wherein said developing voltage is a voltage in which the discontinuous alternating current component is superposed on the direct current component.
- 40. An image forming method according to claim 1, wherein said alternating current component is substantially a rectangular wave.
- 41. An image forming method according to claim 1, wherein said developing voltage is a voltage in which the discontinuous alternating current component is superposed on the direct current component.
- 42. An image forming method comprising:
- developing in a developing zone defined by a latent image bearing member and a developer carrying member provided opposingly thereto, a latent image beared on the latent image bearing member, using a toner of a two-component type developer carried an the developer carrying member and comprising a toner and a carrier; said toner comprising toner particles and an external additive, and said carrier comprising carrier particles, wherein;
- said toner has a weight average particle diameter of from 3 .mu.m to 7 .mu.m and contains more than 40% by number of toner particles with a particle diameter of 5.04 .mu.m or smaller, from 10% to 70% by number of toner particles with a particle diameter of 4 .mu.m or smaller, and from 2% to 20% by volume of toner particles with a particle diameter of 8 .mu.m or larger, and
- said carrier has a 50% average particle diameter (D.sub.50) of from 15 .mu.m to 45 .mu.m; said carrier contains from 1% to 20% of carrier particles with a size smaller than 22 .mu.m, not more than 3% of carrier particles with a size smaller than 16 .mu.m, from 2% to 15% of carrier particles with a size of 62 .mu.m or larger, and not more than 2% of carrier particles with a size of 88 .mu.m or larger; and said carrier has a specific surface area S.sub.1 as measured by an air-permeability method and a specific surface area S.sub.2 as calculated by the following expression:
- S.sub.2 =(6/p.D.sub.50).times.10.sup.4
- wherein p in a specific gravity of carrier; satisfying the following condition:
- 1. 2.ltoreq.S.sub.1 /S.sub.2 .ltoreq.2.0.
- 43. An image forming method according to claim 42, wherein said carrier contains from 2% to 15% of the carrier particles with a size smaller than 22 .mu.m, and not more than 2% of the carrier particles with a size smaller than 16 .mu.m.
- 44. An image forming method according to claim 42, wherein said carrier contains from 4% to 15% of the carrier particles with a size smaller than 22 .mu.m, and not more than 1% of the carrier particles with a size smaller than 16 .mu.m.
- 45. An image forming method according to claim 42, wherein said carrier has the specific surface area S.sub.1 and the specific surface area S.sub.2 satisfying the following condition:
- 1.3.ltoreq.S.sub.1 /S.sub.2 .ltoreq.1.8.
- 46. An image forming method according to claim 42, wherein said carrier has the specific surface area S.sub.1 and the specific surface area S.sub.2 satisfying the following condition:
- 1.4.ltoreq.S.sub.1 /S.sub.2 .ltoreq.1.7.
- 47. An image forming method according to claim 42, wherein said carrier has a saturation magnetization of from 35 emu/g to 90 emu/g, a residual magnetization of 10 emu/g or less and a coercive force of 40 oersteds or less, in an applied magnetic field of 3,000 oersteds.
- 48. An image forming method according to claim 42, wherein said carrier has a saturation magnetization of from 35 emu/g to 90 emu/g, a residual magnetization or 10 emu/g or less and a coercive force of 30 oersteds or less, in an applied magnetic field of 3,000 oersteds.
- 49. An image forming method according to claim 42, wherein said carrier has a residual magnetization of 5 emu/g or less and a coercive force of 30 oersteds or less, in an applied magnetic field of 3,000 oersteds.
- 50. An image forming method according to claim 42, wherein particle surfaces of said carrier are coated with a coating resin.
- 51. An image forming method according to claim 42, wherein said carrier has a specific surface area S.sub.1 as measured by an air-permeability method within the range of:
- 350.ltoreq.S.sub.1 .ltoreq.600 cm.sup.2 /g
- and said carrier contains from 1% to 20% of the carrier particles with a size smaller than 22 .mu.m, not less than 75% of carrier particles with a size of from 22 .mu.m to less than 62 .mu.m and from 2% to 15% of the carrier particles with a size of 62 .mu.m or larger.
- 52. An image forming method according to claim 42, wherein said carrier has a specific surface area S.sub.1 as measured by an air-permeability method within the range of;
- 380.ltoreq.S.sub.1 .ltoreq.550 cm.sup.2 /g
- and said carrier contains from 2% to 15% of the carrier particles with a size smaller than 22 .mu.m, not less than 78% of the carrier particles with a size of from 22 .mu.m to less than 62 .mu.m and from 4% to 13% of the carrier particles with a size of 62 .mu.m or larger.
- 53. An image forming method according to claim 51, wherein said carrier has a saturation magnetization of from 35 emu/g to 90 emu/g, a residual magnetization of 10 emu/g or less and a coercive force of 40 oersteds or less, in an applied magnetic field of 3,000 oersteds.
- 54. An image forming method according to claim 51, wherein said carrier has a residual magnetization of 5 emu/g or less and a coercive force of 30 oersteds or less, in an applied magnetic field of 3,000 oersteds.
- 55. An image forming method according to claim 51, wherein said carrier has an apparent density of from 1.8 g/cm.sup.3 to 3.2 g/cm.sup.3.
- 56. An image forming method according to claim 42, wherein said toner contains not more than 6% by volume of toner particles with a particle diameter of 10.08 .mu.m or larger.
- 57. An image forming method according to claim 42, wherein said toner contains more than 40% by number to not more than 90% by number of toner particles with a particle diameter of 5.04 .mu.m or smaller, from 15% to 60% by number of toner particles with a particle diameter of 4 .mu.m or smaller, from 30% to 18% by volume of toner particles with a particle diameter of 8 .mu.m or larger, and not more than 4% by volume of toner particles with a particle diameter of 10.08 .mu.m or larger.
- 58. An image forming method according to claim 42, wherein said external additive comprises fine titanium oxide particles.
- 59. An image forming method according to claim 58, wherein said fine titanium oxide particles comprise anatase type fine titanium oxide particles.
- 60. An image forming method according to claim 58, wherein said fine titanium oxide particles are surface-treated with a coupling agent.
- 61. An image forming method according to claim 60, wherein said fine titanium oxide particles are surface-treated while hydrolyzing a coupling agent in an aqueous system.
- 62. An image forming method according to claim 58, wherein said fine titanium oxide particles have a hydrophobicity of from 20% to 98%.
- 63. An image forming method according to claim 58, wherein said fine titanium oxide particles have a hydrophobicity of from 30% to 90%.
- 64. An image forming method according to claim 42, wherein said toner satisfies the following condition:
- 1.0.ltoreq.S.sub.B .ltoreq.1.8 (m.sup.2 /g),
- 1.20.ltoreq.S/S.sub.A .ltoreq.1.70
- wherein S.sub.A is a specific surface area directly calculated from a weight average particle diameter of toner calculated from volume average distribution data of a Coulter counter and S.sub.B is a specific surface area calculated from number average distribution data of a Coulter counter.
- 65. An image forming method according to claim 42, wherein said toner satisfies the following condition:
- 1.05.ltoreq.S.sub.B 1.7 (m.sup.2 /g),
- 1.20.ltoreq.S.sub.B /S.sub.A .ltoreq.1.60
- wherein S.sub.A is a specific surface area directly calculated from a weight average particle diameter of toner calculated from volume average distribution data of a Coulter counter and S.sub.B is a specific surface area calculated from number average distribution data of a Coulter counter; and said toner contains from 15% to 60% by number of toner particles with a particle diameter of 4.0 .mu.m or smaller.
- 66. An image forming method according to claim 42, wherein said carrier has a saturation magnetization of from 35 emu/g to 90 emu/g and a residual magnetization of 10 emu/g or less in an applied magnetic field of 3,000 oersteds; and said toner contains toner particles and fine titanium oxide particles as the external additive, and contains not more than 6% by volume of toner particles with a particle diameter of 10.08 .mu.m or larger.
- 67. An image forming method according to claim 42, wherein;
- said carrier has a specific surface area S.sub.1 as measured by an air-permeability method within the range of;
- 350.ltoreq.S.sub.1 .ltoreq.600 cm.sup.2 /g
- and said carrier contains from 15% to 20% of the carrier particles with a size smaller than 22 .mu.m, not less than 75% of carrier particles with a size of from 22 .mu.m or less than 62 .mu.m and from 2% to 15% of the carrier particles with a size of 62 .mu.m or larger: and
- said toner satisfies the following condition:
- 1.0.ltoreq.S.sub.B 1.8 (m.sup.2 /g),
- 1.20.ltoreq.S.sub.B /S.sub.A .ltoreq.1.70
- wherein S.sub.A is a specific surface area directly calculated from a weight average particle diameter of toner calculated from volume average distribution data of a Coulter counter and S.sub.B is a specific surface area calculated from number average distribution data of a Coulter counter, and contains from 10% to 70% by number of toner particles with a particle diameter of 4.0 .mu.m or smaller.
- 68. An image forming method according to claim 42, which comprises;
- forming in a developing zone defined by a latent image bearing member and a developer carrying member provided opposingly thereto, a developing electric field between the latent image bearing member and the developer carrying member by applying to the developer carrying member developing voltage having discontinuous alternating current component to develop a latent image beared on the latent image bearing member, using a toner of the developer carried on the developer carrying member.
- 69. An image forming method according to claim 68, wherein said developing voltage comprises (i) at least once a combination of a first voltage for directing a toner from the latent image bearing member toward the developer carrying member and a second voltage for directing the toner from the developer carrying member toward the latent image bearing member, and (ii) a third voltage in which the alternating current component is discontinued at a position intermediate between the first voltage and the second voltage.
- 70. An image forming method according to claim 69, wherein (T.sub.1) is a total time for which the combination of the first voltage and the second voltage is applied to the developer carrying member and the third voltage is applied to the developer carrying member for a period longer than the total time (T.sub.1).
- 71. An image forming method according to claim 68, wherein said alternating current component is substantially a rectangular wave.
- 72. An image forming method according to claim 68, wherein said developing voltage is a voltage in which the discontinuous alternating current component is superposed on the direct current component.
- 73. An image forming method according to claim 70, wherein said developer carrying member comprises a magnetic roller, both of said developer carrying member and the magnetic roller being set rotary, or the magnetic roller being set stationary and the developer carrying member being set rotary, and said two-component type developer is circulatively transported onto the developer carrying member to carry out development:
- said magnetic roller having a repulsion pole, and a magnetic flux density in said developing zone being from 600 gauss to 1,200 gauss.
- 74. An image forming method according to claim 27, wherein (T.sub.1) is a total time for which the combination of the first voltage and the second voltage is applied to the developer carrying member and the third voltage is applied to the developer carrying member for a period longer then the total time (T.sub.1).
- 75. An image forming method according to claim 74, wherein said developer carrying member comprises a magnetic roller, both of said developer carrying member and the magnetic roller being set rotary, or the magnetic roller being set stationary and the developer carrying member being set rotary, and said two-component type developer is circulatively transported onto the developer carrying member to carry out development;
- said magnetic roller having a repulsion pole, and a magnetic flux density in said developing zone being from 600 gauss to 1,200 gauss.
Priority Claims (3)
Number |
Date |
Country |
Kind |
5-139925 |
May 1993 |
JPX |
|
5-173583 |
Jun 1993 |
JPX |
|
5-195309 |
Jul 1993 |
JPX |
|
Parent Case Info
This application is a division of application Ser. No. 08/246,146 filed May 19, 1994, now U.S. Pat. No. 5,512,402.
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Divisions (1)
|
Number |
Date |
Country |
Parent |
246146 |
May 1994 |
|