Claims
- 1. A toner comprising:at least a binding resin and a coloring agent, wherein said toner has the following characteristics (i) to (iv): (i) its weight mean particle size is 5 μm to 12 μm; (ii) not less than 90%, (in terms of cumulative value based on the number of particles of particles of not less than 3 μm has a circularity “a” of not less than 0.900 given by the following equation (1): Circularity a=Lo/L (1) where, Lo denotes a periphery length of a circle having the same projected area as a particle image and L denotes a periphery length of the particle image;(iii) a relationship between a cut ratio Z and a weight mean size X of said toner fulfills the following equation (2): Cut ratio Z≦5.3×X (2) where the cut ratio Z is a value calculated with the following equation (3):Z=(1−B/A)×100 (3) wherein A in a particle density (the number of particles/μl) is of all measured particles measured with a flow type particle image analyzer and B is a particle density (the number of particles/μl) of measured particles having a circular equivalent size of not less than 3 μm; and(iv) a relationship between a cumulative value based on the number of particles Y of particles having a circularity of not less than 0.950 and a weight mean size X fulfills the following equation (4): Y≧exp 5.51×X−0.645 (4) where the weight mean size X is 5 to 12 μm, and the number of the particles Y is 63.01% to 80.42%;the toner has 5 to 35% by number of particles with a particle size of less than 4.00 μm and of 0 to 20% by volume of particles with particle size of not less than 10.08 μm; and the toner has been produced by (a) melt-kneading a mixture containing at least a binding resin having a glass transition temperature (Tg) of 45 to 75° C. and a coloring agent to obtain a kneaded product, (b) cooling the obtained kneaded product and thereafter roughly pulverizing the cooled product with grinding means to obtain a roughly pulverized product, (c) introducing a powder raw material of the resulting pulverized product into a first metering feeder and introducing a predetermined quantity of powder raw material from the first metering feeder into a mechanical mill, wherein said mechanical mill has been provided at least with a rotor mounted on a center rotary shaft, a stator disposed around the rotor with a constant distance from surfaces of said rotor being maintained, a powder introducing orifice for introducing a powder raw material and a powder discharging orifice for discharging ground powder and has been so configured than an annular space formed by maintaining the distance in an airtight state, (d) finely pulverizing the powder raw material to obtain a finely pulverized product by rotating said rotor of said mechanical mill at high speed to obtain a finely pulverized product; and (e) classifying the finely pulverized product to obtain the toner.
- 2. The toner according to claim 1, whereinsaid toner has a circularity standard deviation (SD) of 0.030 to 0.045 μm.
- 3. The toner according to claim 1, whereinsaid binding resin has glass transition temperature (Tg) of 45 to 80° C.
- 4. The toner according to claim 1, whereinin terms of molecular weight distribution by means of gel permeation chromatography (GPC), said binding resin has a number mean molecular weight (Mn) of 2,500 to 50,000 and a weight mean molecular weight (Mw) of 10,000 to 1,000,000.
- 5. The toner according to claim 1, whereinsaid binding resin is a polyester resin having acid value of not more than 90 mgKOH/g and a hydroxyl value of not more than 50 mgkoh/g.
- 6. The toner according to claim 1, whereinsaid binding resin has a polyester resin having a glass transition temperature (Tg) of 50 to 75° C.
- 7. The toner according to claim 1, whereinsaid binding resin has a polyester resin having, in terms of a molecular weight distribution by means of gel permeation chromatography (GPC), a number mean molecular weight (Mn) of 1,500 to 50,000 and a weight mean molecular weight (Mw) of 6,000 to 100,000.
- 8. The toner according to claim 1, whereinsaid toner contains a magnetic material as a coloring agent.
- 9. The toner according to claim 8 whereinsaid toner contains said magnetic material of 10 to 200 parts by weight for 100 parts by weight of binding resin.
- 10. The toner according to claim 1, wherein said toner contains a dye or a pigment as a coloring agent.
- 11. The toner according to claim 10, wherein said toner contains said dye or pigment of 0.1 to 20 parts by weight for 100 part by weight of binding resin.
- 12. The toner according to claim 1, wherein said toner contains a release agent of 0.1 to 20 parts by weight for 100 parts by weight of binding resin.
- 13. The toner according to claim 1, wherein:said toner has a flowability improver as an external additive.
- 14. The toner according to claim 1, wherein:said toner has hydrophobic silica micro powder as a flowability improver.
- 15. The toner according to claim 1,which is produced by a process comprising a melt-kneading step, a finely pulverizing step and a classifying step, these steps comprising:melt-kneading a mixture containing at least the binder resin and the coloring agent, after cooling the resulting melt-kneaded product, roughly pulverizing the cooled product with a pulverizing means, introducing a raw powdered material consisting of the resulting roughly pulverized product into a first metering feeder, then introducing a predetermined amount of the raw powdered material from the first metering feeder into a mechanical mill which is provided at least with a rotator composed of a rotor fixed on a central rotating shaft and a stator disposed around the rotor at a constant interval from the rotor surface and is so constructed that a ring-like space formed at the certain interval between the rotor and the stator is in an airtight state, and rotating the rotor of said mechanical mill at high speed to finely pulverize the raw powdered material, thereby producing a finely pulverized product which has a weight average diameter of 5 to 12 μm and includes 70% by number of particles having a particle diameter of 4.00 μm or less and 25% by volume of particles having a particle diameter of 10.08 μm or more, and producing the toner from the finely pulverized product.
- 16. The toner according to claim 15, wherein the process further comprises the steps of:discharging the finely pulverized product from the mechanical mill to introduce it into a second metering feeder, then introducing a certain amount of the finely pulverized product from the second metering feeder into a multi-split air classifier which utilizes cross air currents and the Coanda effect and classifies powder, classifying the finely pulverized product into at least fine powder, intermediate powder and coarse powder, and mixing the coarse powder thus classified with the raw powdered material, introducing the resulting mixture into the multi-split air classifier to pulverize it, and producing the toner from the classified intermediate powder.
- 17. The toner according to claim 16, whereinsaid multisegment airflow classifier is provided on its upper face with a raw material supply nozzle, a raw material powder introducing nozzle and a high pressure air supplying nozzle, and has a classifying edge block installed with a classifying edge, which classifying edge block can be changed in its position so as to convert the shape of a classification area.
- 18. The process according to claim 1, whereinthe toner is produced by a process comprising a melt-kneading step, a finely pulverizing step and a classifying step, these steps comprising: melt-kneading a mixture containing at least the binder resin and the coloring agent, after cooling the resulting melt-kneaded product, roughly pulverizing the cooled product with a pulverizing means, introducing a raw powdered material consisting of the resulting roughly pulverized product into a first metering feeder, then introducing a predetermined amount of the raw powdered material from the first metering feeder into a mechanical mill which is provided at least with a rotator composed of a rotor fixed on a central rotating shaft and a stator disposed around the rotor at a constant interval from the rotor surface and is so constructed that a ring-like space formed at the certain interval between the rotor and the stator is in an airtight state, and rotating the rotor of said mechanical mill at high speed to finely pulverize the raw powdered material, thereby producing a finely pulverized product which has a weight average diameter of 5 to 12 μm and includes 70% by number of particles having a particle diameter of 4.00 μm or less and 25% by volume of particles having a particle diameter of 10.08 μm or more, and producing the toner from the finely pulverized product.
- 19. The process according to claim 18, wherein the process further comprises the steps of:discharging the finely pulverized product from the mechanical mill to introduce it into a second metering feeder, then introducing a certain amount of the finely pulverized product from the second metering feeder into a multi-split air classifier which utilizes cross air currents and the Coanda effect and classifies powder, classifying the finely pulverized product into at least fine powder, intermediate powder and coarse powder, and mixing the coarse powder thus classified with the raw powdered material, introducing the resulting mixture into the multi-split air classifier to pulverize it, and producing the toner from the classified intermediate powder.
- 20. The process according to claim 19, whereinsaid multi-split air classifier is provided on its upper face a raw material supply nozzle, a raw material powder introducing nozzle and a high pressure air supplying nozzle, and has a classifying edge block installed with a classifying edge, which classifying edge block can be changed in its position so as to convert the shape of a classification area.
- 21. An image forming process comprising:a charging step to charge a latent image holding body; a latent image forming step to form an electrostatic latent image onto the charged latent image holding body; a developing step to develop said electrostatic latent image with toner and to form a toner image; a transferring step to transfer the developed toner image onto a recording material via an intermediate transfer body or otherwise directly; and a fixing step to fix the toner image transferred onto the recording material onto said recording material with fixing means: wherein said toner at least has a binding resin and a coloring agent and has the following characteristics (i) to (iv): (i) its weight mean particle size is 5 μm to 12 μm; (ii) not less than 90% in (terms of cumulative value based on the number of particles) of particles of not less than 3 μm has a circularity “a” of not less than 0.900 given by the following equation (1): Circularity a=Lo/L (1) where, Lo denotes a periphery length of a circle having the same projected area as a particle image and L denotes a periphery length of the particle image;(iii) a relationship between a cut ratio Z and a weight mean size X of said toner fulfills the following equation (2): Cut ratio Z≦5.3×X (2) where the cut ratio Z is a value calculated with the following equation (3):Z=(1−B/A)×100 (3) wherein A is a particle density (the number of particles/μl) of all measured particles measured with a flow type particle image analyzer and B is a particle density (the number of particles/μl) of measured particles having a circular equivalent size of not less than 3 μm; and(iv) a relationship between a cumulative value (based on the number of particles Y) of particles having a circularity of not less than 0.950 and a weight means size X fulfills the following equation (4): Y≧e5.51×X−0.645 (4) where the weight mean size X is 5 to 12 μm, and the number of the particles Y is 63.01% to 80.42%;the toner has 5 to 35% by number of particles with a particle size of less than 4.00 μm and of 0 to 20% by volume of particles with particle size of not less than 10.08 μm; and the toner has been produced by (a) melt-kneading a mixture containing at least a binding resin having a glass transition temperature (Tg) of 45 to 75° C. and a coloring agent to obtain a kneaded product, (b) cooling the obtained kneaded product and thereafter roughly pulverizing the cooled product with grinding means to obtain a roughly pulverized product, (c) introducing a powder raw material of the resulting pulverized product into a first metering feeder and introducing a predetermined quantity of powder raw material from the first metering feeder into a mechanical mill, wherein said mechanical mill has been provided at least with a rotor mounted on a center rotary shaft, a stator disposed around the rotor with a constant distance from surfaces of said rotor being maintained, a powder introducing orifice for introducing a powder raw material and a powder discharging orifice for discharging ground powder and has been so configured than an annular space formed by maintaining the distance in an airtight state, (d) finely pulverizing the powder raw material to obtain a finely pulverized product by rotating said rotor of said mechanical mill at high speed to obtain a finely pulverized product; and (e) classifying the finely pulverized product to obtain the toner.
- 22. The process according to claim 21, whereinsaid toner has a circularity standard deviation (SD) of 0.030 to 0.045 μM.
- 23. The process according to claim 21, wherein said binding resin has a glass transition temperature (Tg) of 45 to 80° C.
- 24. The process according to claim 21, whereinin terms of molecular weight distribution by means of gel permeation chromatography (GPC), said binding resin has a number mean molecular weight (Mn) of 2,500 to 50,000 and a weight mean molecular weight (Mw) of 10,000 to 1,000,000.
- 25. The process according to claim 21, whereinsaid binding resin is a polyester resin having an acid value of not more than 90 mgKOH/g and a hydroxyl value of not more than 50 mgKOH/g.
- 26. The process according to claim 21, whereinsaid binding resin has a polyester resin of having a glass transition temperature (Tg) of 50 to 75° C.
- 27. The process according to claim 21, whereinsaid binding resin has a polyester resin having, in terms of molecular weight distribution by means of gel permeation chromatography (GPC), a number mean molecular weight (Mn) of 1,500 to 50,000 and a weight mean molecular weight (Mw) of 6,000 to 100,000.
- 28. The process according to claim 21, whereinsaid toner contains a magnetic material as a coloring agent.
- 29. The process according to claim 28, wherein said toner contains said magnetic material of 10 to 200 parts by weight for 100 parts by weight of binding resin.
- 30. The process according to claim 21, whereinsaid toner contains a dye or a pigment as a coloring agent.
- 31. The process according to claim 30 whereinsaid toner contains said dye or pigment of 0.1 to 20 parts by weight for 100 part by weight of binding resin.
- 32. The process according to claim 21, whereinsaid toner contains a release agent of 0.1 to 20 parts by weight for 100 parts by weight of binding resin.
- 33. The process according to claim 21, wherein said toner has a flowability improver as an external additive.
- 34. The process according to claim 21, whereinsaid toner has hydrophobic silica micro powder as a flowability improver.
- 35. The process according to claim 21, whereinsaid latent image holding body is a photosensitive body for electrophotography.
- 36. The process according to claim 21, whereinin said charging step, said latent image holding body is brought into contact with a contact charging member to which a bias voltage is applied so that a surface of said latent image holding body is charged.
- 37. The process according to claim 21, whereinin said transfer step, a surface of said latent image holding body or a surface of said intermediate transferring member is brought into contact with contact transferring member to which a bias voltage is applied via a recording member so that said toner image on said latent image holding body or on said intermediate transferring member undergoes electrostatic transferring.
- 38. The process according to claim 21, whereinin said developing step, an electrostatic latent image formed on surfaces of said latent image holding body undergoes development with toner carried on a toner carrier.
- 39. The process according to claim 38, whereinin said developing step, an alternate bias voltage to which a direct voltage is overlapped is applied to said toner carrier, which undergoes development.
Priority Claims (3)
Number |
Date |
Country |
Kind |
11-285118 |
Oct 1999 |
JP |
|
11-285119 |
Oct 1999 |
JP |
|
2000-228080 |
Jul 2000 |
JP |
|
CROSS-REFERENCE TO RELATED APPLICATION
This Application is a division of copending application Ser. No. 09/679,554, filed Oct. 6, 2000 now U.S. Pat. No. 6,586,151.
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