Claims
- 1. A developer carrying member comprising:
- a substrate; and
- a conductive coat layer that covers a surface of the substrate,
- wherein said conductive coat layer contains at least a binder resin and conductive spherical particles having a number average particle diameter of from 0.3 .mu.m to 30 .mu.m and a true density of 3 g/cm.sup.3 or below, dispersed in the binder resin.
- 2. The developer carrying member according to claim 1, wherein said conductive spherical particles have a number average particle diameter of from 2 .mu.m to 20 .mu.m.
- 3. The developer carrying member according to claim 1, wherein said conductive spherical particles have a true density of from 0.9 g/cm.sup.3 to 2.7 g/cm.sup.3.
- 4. The developer carrying member according to claim 1, wherein said conductive spherical particles have a major axis/minor axis ratio in the range of from 1.0 to 1.5.
- 5. The developer carrying member according to claim 1, wherein said conductive spherical particles have a volume resistivity of 10.sup.6 .OMEGA..multidot.cm or below.
- 6. The developer carrying member according to claim 1, wherein said conductive spherical particles comprise carbon particles.
- 7. The developer carrying member according to claim 6, wherein surfaces of said carbon particles are coated with a conductive metal or a conductive metal oxide, or both.
- 8. The developer carrying member according to claim 1, wherein said conductive spherical particles comprise particles whose surfaces have been subjected to conductive treatment.
- 9. The developer carrying member according to claim 1, wherein said conductive spherical particles comprise resin particles with conductive fine particles dispersed therein.
- 10. The developer carrying member according to claim 1, wherein said conductive coat layer further contains a lubricating material in addition to said conductive spherical particles.
- 11. The developer carrying member according to claim 10, wherein said lubricating material comprises a member selected from the group consisting of graphite, molybdenum disulfide, boron nitride, mica, graphite fluoride, silver-niobium selenide, calcium chloride-graphite, talc, and a fatty acid metal salt.
- 12. The developer carrying member according to claim 10, wherein said lubricating material has a number average particle diameter of from 0.2 .mu.m to 20 .mu.m.
- 13. The developer carrying member according to claim 10, wherein said lubricating material is contained in the conductive coat layer in an amount of from 5 parts by weight to 120 parts by weight based on 100 parts by weight of said binder resin.
- 14. The developer carrying member according to claim 10, wherein said lubricating material is contained in the conductive coat layer in an amount of from 10 parts by weight to 100 parts by weight based on 100 parts by weight of said binder resin.
- 15. The developer carrying member according to claim 1, wherein said conductive coat layer has a volume resistivity of 10.sup.3 .OMEGA..multidot.cm or below.
- 16. The developer carrying member according to claim 1, wherein said conductive coat layer has a volume resistivity of from 10.sup.3 .OMEGA..multidot.cm to 10.sup.-2 .OMEGA..multidot.cm.
- 17. The developer carrying member according to claim 1, wherein said conductive coat layer further contains conductive fine particles in addition to said conductive spherical particles.
- 18. The developer carrying member according to claim 17, wherein said conductive fine particles comprise at least one member selected from the group consisting of carbon black, a metal oxide, a metal and an inorganic filler.
- 19. The developer carrying member according to claim 17, wherein said conductive fine particles are contained in the conductive coat layer in an amount not more than 40 parts by weight based on 100 parts by weight of said binder resin.
- 20. The developer carrying member according to claim 17, wherein said conductive fine particles are contained in the conductive coat layer in an amount of from 2 parts by weight to 35 parts by weight based on 100 parts by weight of said binder resin.
- 21. The developer carrying member according to claim 1, wherein said conductive spherical particles are contained in the conductive coat layer in an amount of from 2 parts by weight to 120 parts by weight based on 100 parts by weight of said binder resin.
- 22. The developer carrying member according to claim 1, wherein said conductive spherical particles are contained in the conductive coat layer in an amount of from 2 parts by weight to 80 parts by weight based on 100 parts by weight of said binder resin.
- 23. The developer carrying member according to claim 1, wherein a surface of said conductive coat layer has a center-line average height Ra of from 0.2 .mu.m to 4.5 .mu.m.
- 24. The developer carrying member according to claim 1, wherein a surface of said conductive coat layer has a center-line average height Ra of from 0.4 .mu.m to 3.5 .mu.m.
- 25. The developer carrying member according to claim 1, wherein said conductive spherical particles are produced by firing spherical resin particles having surfaces that are coated with bulk-mesophase pitch, thereby carbonizing and/or graphitizing the spherical resin particles.
- 26. A developing assembly comprising:
- a developer container holding a developer; and
- a developer carrying member for carrying the developer held in said developer container and for transporting the developer to a developing zone,
- wherein said developer carrying member comprises a substrate, and a conductive coat layer that covers a surface of the substrate, and wherein the conductive coat layer contains at least a binder resin and conductive spherical particles having a number average particle diameter of from 0.3 .mu.m to 30 .mu.m and a true density of 3 g/cm.sup.3 or below, dispersed in the binder resin.
- 27. The developing assembly according to claim 26, further comprising a developer layer thickness control member for forming a thin developer layer on an outer surface of said developer carrying member.
- 28. The developing assembly according to claim 27, wherein said developer layer thickness control member is a magnetic control blade.
- 29. The developing assembly according to claim 27, wherein said developer layer thickness control member is elastically brought into press-contact touch with said developer carrying member through said developer.
- 30. The developing assembly according to claim 29, wherein said developer layer thickness control member is an elastic control member.
- 31. The developing assembly according to claim 27, wherein a thickness of the developer layer formed on said outer surface of said developer carrying member is smaller than a minimum gap between an electrostatic latent image bearing member and said developer carrying member, which form the developing zone.
- 32. The developing assembly according to claim 27, further comprising means for generating a vibrating electric field at the developing zone, wherein a thickness of the developer layer formed on said outer surface of said developer carrying member is smaller than a minimum gap between an electrostatic latent image bearing member and said developer carrying member, which form the developing zone.
- 33. The developing assembly according to claim 26, wherein said developer is a magnetic one component type developer comprising a magnetic toner.
- 34. The developing assembly according to claim 26, wherein said developer is a non-magnetic one component type developer comprising a non-magnetic toner.
- 35. The developing assembly according to claim 26, wherein said developer is a two component type developer comprising a toner and a carrier.
- 36. The developing assembly according to claim 26, wherein said conductive spherical particles have a number average particle diameter of from 2 .mu.m to 20 .mu.m.
- 37. The developing assembly according to claim 26, wherein said conductive spherical particles have a true density of from 0.9 g/cm.sup.3 to 2.7 g/cm.sup.3.
- 38. The developing assembly according to claim 26, wherein said conductive spherical particles have a major axis/minor axis ratio in the range of from 1.0 to 1.5.
- 39. The developing assembly according to claim 26, wherein said conductive spherical particles have a volume resistivity of 10.sup.6 .OMEGA..multidot.cm or below.
- 40. The developing assembly according to claim 26, wherein said conductive spherical particles comprise carbon particles.
- 41. The developing assembly according to claim 40, wherein surfaces of said carbon particles are coated with a conductive metal or a conductive metal oxide, or both.
- 42. The developing assembly according to claim 26, wherein said conductive spherical particles comprise particles whose surfaces have been subjected to conductive treatment.
- 43. The developing assembly according to claim 26, wherein said conductive spherical particles comprise resin particles with conductive fine particles dispersed therein.
- 44. The developing assembly according to claim 26, wherein said conductive coat layer further contains a lubricating material in addition to said conductive spherical particles.
- 45. The developing assembly according to claim 44, wherein said lubricating material comprises a member selected from the group consisting of graphite, molybdenum disulfide, boron nitride, mica, graphite fluoride, silver-niobium selenide, calcium chloride-graphite, talc, and a fatty acid metal salt.
- 46. The developing assembly according to claim 44, wherein said lubricating material has a number average particle diameter of from 0.2 .mu.m to 20 .mu.m.
- 47. The developing assembly according to claim 44, wherein said lubricating material is contained in the conductive coat layer in an amount of from 5 parts by weight to 120 parts by weight based on 100 parts by weight of said binder resin.
- 48. The developing assembly according to claim 44, wherein said lubricating material is contained in the conductive coat layer in an amount of from 10 parts by weight to 100 parts by weight based on 100 parts by weight of said binder resin.
- 49. The developing assembly according to claim 26, wherein said conductive coat layer has a volume resistivity of 10.sup.3 .OMEGA..multidot.cm or below.
- 50. The developing assembly according to claim 26, wherein said conductive coat layer has a volume resistivity of from 10.sup.3 .OMEGA..multidot.cm to 10.sup.-2 .OMEGA..multidot.cm.
- 51. The developing assembly according to claim 26, wherein said conductive coat layer further contains conductive fine particles in addition to said conductive spherical particles.
- 52. The developing assembly according to claim 51, wherein said conductive fine particles comprise at least one member selected from the group consisting of carbon black, a metal oxide, a metal and an inorganic filler.
- 53. The developing assembly according to claim 52, wherein said conductive fine particles are contained in the conductive coat layer in an amount not more than 40 parts by weight based on 100 parts by weight of said binder resin.
- 54. The developing assembly according to claim 51, wherein said conductive fine particles are contained in the conductive coat layer in an amount of from 2 parts by weight to 35 parts by weight based on 100 parts by weight of said binder resin.
- 55. The developing assembly according to claim 26, wherein said conductive spherical particles are contained in the conductive coat layer in an amount of from 2 parts by weight to 120 parts by weight based on 100 parts by weight of said binder resin.
- 56. The developing assembly according to claim 26, wherein said conductive spherical particles are contained in the conductive coat layer in an amount of from 2 parts by weight to 80 parts by weight based on 100 parts by weight of said binder resin.
- 57. The developing assembly according to claim 26, wherein a surface of said conductive coat layer has a center-line average height Ra of from 0.2 .mu.m to 4.5 .mu.m.
- 58. The developing assembly according to claim 26, wherein a surface of said conductive coat layer has a center-line average height Ra of from 0.4 .mu.m to 3.5 .mu.m.
- 59. The developing assembly according to claim 26, wherein said conductive spherical particles are produced by firing spherical resin particles having surfaces that are coated with bulk-mesophase pitch, thereby carbonizing and/or graphitizing the spherical resin particles.
- 60. The developing assembly according to claim 26, further comprising means for generating a vibrating electric field at the developing zone.
- 61. The developing assembly according to claim 60, further comprising a power source for applying an alternating bias voltage to said developer carrying member.
- 62. An image forming apparatus comprising:
- a latent image bearing member for bearing an electrostatic latent image; and
- a developing assembly for developing the electrostatic latent image to form a developed image, said developing assembly comprising:
- a developer container holding a developer; and
- a developer carrying member for carrying the developer held in said developer container and for transporting the developer to a developing zone,
- wherein said developer carrying member comprises a substrate, and a conductive coat layer that covers a surface of the substrate, and wherein the conductive coat layer contains at least a binder resin and conductive spherical particles having a number average particle diameter of from 0.3 .mu.m to 30 .mu.m and a true density of 3 g/cm.sup.3 or below, dispersed in the binder resin.
- 63. The image forming apparatus according to claim 62, further comprising a developer layer thickness control member for forming a thin developer layer on an outer surface of said developer carrying member.
- 64. The image forming apparatus according to claim 63, wherein said developer layer thickness control member is a magnetic control blade.
- 65. The image forming apparatus according to claim 63, wherein said developer layer thickness control member is elastically brought into press-contact with said developer carrying member through said developer.
- 66. The image forming apparatus according to claim 65, wherein said developer layer thickness control member is an elastic control member.
- 67. The image forming apparatus according to claim 63, wherein a thickness of the developer layer formed on said outer surface of said developer carrying member is smaller than a minimum gap between said latent image bearing member and said developer carrying member, which form the developing zone.
- 68. The developing assembly according to claim 63, further comprising means for generating a vibrating electric field at the developing zone, wherein a thickness of the developer layer formed on an outer surface of said developer carrying member is smaller than a minimum gap between said latent image bearing member and said developer carrying member, which form the developing zone.
- 69. The image forming apparatus according to claim 62, wherein said developer is a magnetic one component type developer comprising a magnetic toner.
- 70. The image forming apparatus according to claim 62, wherein said developer is a non-magnetic one component type developer comprising a non-magnetic toner.
- 71. The image forming apparatus according to claim 62, wherein said developer is a two component type developer comprising a toner and a carrier.
- 72. The image forming apparatus according to claim 62, wherein said latent image bearing member is an electrophotographic photosensitive member.
- 73. The image forming apparatus according to claim 62, further comprising transfer means for transferring said developed image to a recording medium.
- 74. The image forming apparatus according to claim 62, further comprising fixing means for fixing said developed image to a recording medium.
- 75. An image forming apparatus according to claim 62, wherein said conductive spherical particles have a number average particle diameter of from 2 .mu.m to 20 .mu.m.
- 76. An image forming apparatus according to claim 62, wherein said conductive spherical particles have a true density of from 0.9 g/cm.sup.3 to 2.7 g/cm.sup.3.
- 77. An image forming apparatus according to claim 62, wherein said conductive spherical particles have a major axis/minor axis ratio in the range of from 1.0 to 1.5.
- 78. An image forming apparatus according to claim 62, wherein said conductive spherical particles have a volume resistivity of 10.sup.6 .OMEGA..multidot.cm or below.
- 79. An image forming apparatus according to claim 62, wherein said conductive spherical particles comprise carbon particles.
- 80. An image forming apparatus according to claim 79, wherein surfaces of said carbon particles are coated with a conductive metal or a conductive metal oxide, or both.
- 81. An image forming apparatus according to claim 62, wherein said conductive spherical particles comprise particles whose surfaces have been subjected to conductive treatment.
- 82. An image forming apparatus according to claim 62, wherein said conductive spherical particles comprise resin particles with conductive fine particles dispersed therein.
- 83. An image forming apparatus according to claim 62, wherein said conductive coat layer further contains a lubricating material in addition to said conductive spherical particles.
- 84. An image forming apparatus according to claim 83, wherein said lubricating material comprises a member selected from the group consisting of graphite, molybdenum disulfide, boron nitride, mica, graphite fluoride, silver-niobium selenide, calcium chloride-graphite, talc, and a fatty acid metal salt.
- 85. An image forming apparatus according to claim 83, wherein said lubricating material has a number average particle diameter of from 0.2 .mu.m to 20 .mu.m.
- 86. An image forming apparatus according to claim 83, wherein said lubricating material is contained in the conductive coat layer in an amount of from 5 parts by weight to 120 parts by weight based on 100 parts by weight of said binder resin.
- 87. An image forming apparatus according to claim 83, wherein said lubricating material is contained in the conductive coat layer in an amount of from 10 parts by weight to 100 parts by weight based on 100 parts by weight of said binder resin.
- 88. An image forming apparatus according to claim 62, wherein said conductive coat layer has a volume resistivity of 10.sup.3 .OMEGA..multidot.cm or below.
- 89. An image forming apparatus according to claim 62, wherein said conductive coat layer has a volume resistivity of from 10.sup.3 .OMEGA..multidot.cm to 10.sup.-2 .OMEGA..multidot.cm.
- 90. An image forming apparatus according to claim 62, wherein said conductive coat layer further contains conductive fine particles in addition to said conductive spherical particles.
- 91. An image forming apparatus according to claim 90, wherein said conductive fine particles comprise at least one member selected from the group consisting of carbon black, a metal oxide, a metal and an inorganic filler.
- 92. An image forming apparatus according to claim 90, wherein said conductive fine particles are contained in the conductive coat layer in an amount not more than 40 parts by weight based on 100 parts by weight of said binder resin.
- 93. An image forming apparatus according to claim 90, wherein said conductive fine particles are contained in the conductive coat layer in an amount of from 2 parts by weight to 35 parts by weight based on 100 parts by weight of said binder resin.
- 94. An image forming apparatus according to claim 62, wherein said conductive spherical particles are contained in the conductive coat layer in an amount of from 2 parts by weight to 120 parts by weight based on 100 parts by weight of said binder resin.
- 95. An image forming apparatus according to claim 62, wherein said conductive spherical particles are contained in the conductive coat layer in an amount of from 2 parts by weight to 80 parts by weight based on 100 parts by weight of said binder resin.
- 96. An image forming apparatus according to claim 62, wherein a surface of said conductive coat layer has a center-line average height Ra of from 0.2 .mu.m to 4.5 .mu.m.
- 97. An image forming apparatus according to claim 62, wherein a surface of said conductive coat layer has a center-line average height Ra of from 0.4 .mu.m to 3.5 .mu.m.
- 98. The image forming apparatus according to claim 62, wherein said conductive spherical particles are produced by firing spherical resin particles having surfaces that are coated with bulk-mesophase pitch, thereby carbonizing and/or graphitizing the spherical resin particles.
- 99. The image forming apparatus according to claim 62, further comprising means for generating a vibrating electric field at the developing zone.
- 100. The image forming apparatus according to claim 99, further comprising a power source for applying an alternating bias voltage to said developer carrying member.
- 101. A process cartridge detachably mountable on a main assembly of an image forming apparatus, said process cartridge comprising:
- a latent image bearing member for bearing an electrostatic latent image; and
- developing means for developing the electrostatic latent image, said developing means comprising;
- a developer; and
- a developer carrying member for carrying and transporting the developer to a developing zone,
- wherein said developer carrying member comprises a substrate, and a conductive coat layer that covers a surface of the substrate, and the conductive coat layer contains at least a binder resin and conductive spherical particles having a number average particle diameter of from 0.3 .mu.m to 30 .mu.m and a true density of 3 g/cm.sup.3 or below, dispersed in the binder resin.
- 102. The process cartridge according to claim 101, further comprising a developer layer thickness control member for forming a thin developer layer on an outer surface of said developer carrying member.
- 103. The process cartridge according to claim 102, wherein said developer layer thickness control member is a magnetic control blade.
- 104. The process cartridge according to claim 102, wherein said developer layer thickness control member is elastically brought into pressure touch with said developer carrying member through said developer.
- 105. The process cartridge according to claim 104, wherein said developer layer thickness control member is an elastic control member.
- 106. The process cartridge according to claim 102, wherein a thickness of the developer layer formed on said outer surface of said developer carrying member is smaller than a minimum gap between said latent image bearing member and said developer carrying member, which form the developing zone.
- 107. The process cartridge according to claim 101, wherein said developer is a magnetic one component type developer comprising a magnetic toner.
- 108. The process cartridge according to claim 101, wherein said developer is a non-magnetic one component type developer comprising a non-magnetic toner.
- 109. The process cartridge according to claim 101, wherein said developer is a two component type developer comprising a toner and a carrier.
- 110. The process cartridge according to claim 101, wherein said latent image bearing member is an electrophotographic photosensitive member.
- 111. The process cartridge according to claim 101, further comprising at least one of cleaning means and primary charging means, joined into one unit as said process cartridge in addition to said latent image bearing member, said latent image bearing member comprising an electrophotographic photosensitive member.
- 112. A process cartridge according to claim 101, wherein said conductive spherical particles have a number average particle diameter of from 2 .mu.m to 20 .mu.m.
- 113. A process cartridge according to claim 101, wherein said conductive spherical particles have a true density of from 0.9 g/cm.sup.3 to 2.7 g/cm.sup.3.
- 114. A process cartridge according to claim 101, wherein said conductive spherical particles have a major axis/minor axis ratio in the range of from 1.0 to 1.5.
- 115. A process cartridge according to claim 101, wherein said conductive spherical particles have a volume resistivity of 10.sup.6 .OMEGA..multidot.cm or below.
- 116. A process cartridge according to claim 101, wherein said conductive spherical particles comprise carbon particles.
- 117. A process cartridge according to claim 116, wherein surfaces of said carbon particles are coated with a conductive metal or a conductive metal oxide, or both.
- 118. A process cartridge according to claim 101, wherein said conductive spherical particles comprise particles whose surfaces have been subjected to conductive treatment.
- 119. A process cartridge according to claim 101, wherein said conductive spherical particles comprise resin particles with conductive fine particles dispersed therein.
- 120. A process cartridge according to claim 101, wherein said conductive coat layer further contains a lubricating material in addition to said conductive spherical particles.
- 121. A process cartridge according to claim 120, wherein said lubricating material comprises a member selected from the group consisting of graphite, molybdenum disulfide, boron nitride, mica, graphite fluoride, silver-niobium selenide, calcium chloride-graphite, talc, and a fatty acid metal salt.
- 122. A process cartridge according to claim 120, wherein said lubricating material has a number average particle diameter of from 0.2 .mu.m to 20 .mu.m.
- 123. A process cartridge according to claim 120, wherein said lubricating material is contained in the conductive coat layer in an amount of from 5 parts by weight to 120 parts by weight based on 100 parts by weight of said binder resin.
- 124. A process cartridge according to claim 120, wherein said lubricating material is contained in the conductive coat layer in an amount of from 10 parts by weight to 100 parts by weight based on 100 parts by weight of said binder resin.
- 125. A process cartridge according to claim 101, wherein said conductive coat layer has a volume resistivity of 10.sup.3 .OMEGA..multidot.cm or below.
- 126. A process cartridge according to claim 101, wherein said conductive coat layer has a volume resistivity of from 10.sup.3 .OMEGA..multidot.cm to 10.sup.-2 .OMEGA..multidot.cm.
- 127. A process cartridge according to claim 101, wherein said conductive coat layer further contains conductive fine particles in addition to said conductive spherical particles.
- 128. A process cartridge according to claim 127, wherein said conductive fine particles comprise at least one member selected from the group consisting of carbon black, a metal oxide, a metal and an inorganic filler.
- 129. A process cartridge according to claim 127, wherein said conductive fine particles are contained in the conductive coat layer in an amount not more than 40 parts by weight based on 100 parts by weight of said binder resin.
- 130. A process cartridge according to claim 127, wherein said conductive fine particles are contained in the conductive coat layer in an amount of from 2 parts by weight to 35 parts by weight based on 100 parts by weights of said binder resin.
- 131. A process cartridge according to claim 101, wherein said conductive spherical particles are contained in the conductive coat layer in an amount of from 2 parts by weight to 120 parts by weight based on 100 parts by weight of said binder resin.
- 132. A process cartridge according to claim 101, wherein said conductive spherical particles are contained in the conductive coat layer in an amount of from 2 parts by weight to 80 parts by weight based on 100 parts by weight of said binder resin.
- 133. A process cartridge according to claim 101, wherein a surface of said conductive coat layer has a center-line average height Ra of from 0.2 .mu.m to 4.5 .mu.m.
- 134. A process cartridge according to claim 101, wherein a surface of said conductive coat layer has a center-line average height Ra of from 0.4 .mu.m to 3.5 .mu.m.
- 135. The process cartridge according to claim 101, wherein said conductive spherical particles are produced by firing spherical resin particles having surfaces that are coated with bulk-mesophase pitch, thereby carbonizing and/or graphitizing the spherical resin particles.
Priority Claims (1)
Number |
Date |
Country |
Kind |
6-337616 |
Dec 1994 |
JPX |
|
Parent Case Info
This application is a continuation of application Ser. No. 08/578,343, filed Dec. 26, 1995, now abandoned.
US Referenced Citations (7)
Foreign Referenced Citations (5)
Number |
Date |
Country |
0410456 |
Jan 1991 |
EPX |
0421331 |
Apr 1991 |
EPX |
0516419 |
Dec 1992 |
EPX |
3-200986 |
Feb 1991 |
JPX |
3-95574 |
Apr 1991 |
JPX |
Continuations (1)
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Number |
Date |
Country |
Parent |
578343 |
Dec 1995 |
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