Claims
        
                - 1. An image forming method, comprising:
 
                - (i) developing an electrostatic image formed on an electrostatic image-bearing member comprising an organic photoconductor with a developer to form thereon a developed image, said developer comprising 100 wt. parts of a magnetic toner and 0.05 to 3 wt. parts of fine powder treated with a silicone material selected from the group consisting of silicone oil and silicon varnish; wherein the magnetic toner
 
                - (1) contains 17-60% by number of magnetic toner particles having a particle size of 5 microns or smaller, and
 
                - (2) contains 5-50% by number of magnetic toner particles having a particle size of 6.35-10.08 microns; and
 
                - (3) has a true density of 1.45 to 1.8 g/cm.sup.3 ; and
 
                - (ii) electrostatically transferring the developed image on the electrostatic image-bearing member to a transfer material while pressing a transfer means supplied with a bias voltage against the electrostatic image-bearing member with the transfer material disposed between the electrostatic image-bearing member and the transfer means under a pressure condition.
 
                - 2. A method according to claim 1, wherein
 
                - the magnetic toner is insulating, and
 
                - the fine powder comprises silica fine powder treated with the silicone material.
 
                - 3. A method according to claim 1 wherein the developer is carried on a developing sleeve and is triboelectrically charged by the contact thereof with the developing sleeve.
 
                - 4. A method according to claim 1, wherein the transfer means comprises a device selected from the group consisting of a transfer roller and a transfer belt.
 
                - 5. A method according to claim 4, wherein the transfer means comprises a transfer roller comprising a metal core and an electroconductive elastic layer disposed thereon.
 
                - 6. A method according to claim 5, wherein the electroconductive elastic layer of the transfer roller has a volume resistivity of 10.sup.6 to 10.sup.8 ohm.cm.
 
                - 7. A method according to claim 1, wherein the developed image is electrostatically transferred to the transfer material while the transfer means is pressed against the electrostatic image-bearing member under a line pressure of 3 g/cm or higher.
 
                - 8. A method according to claim 7, wherein the transfer means is pressed against the electrostatic image-bearing member under a line pressure of 3-80 g/cm.
 
                - 9. A method according to claim 7, wherein the transfer means is pressed against the electrostatic image-bearing member under a line pressure of 20-80 g/cm.
 
                - 10. A method according to claim 1, wherein the developed image is electrostatically transferred to the transfer material by the transfer means to which a bias having a transfer current of 0.1-50 .mu.A, and a transfer voltage of 500-4000 V (absolute value) is applied.
 
                - 11. A method according to claim 1, wherein 100 wt. parts of the fine powder has been treated with 1-35 wt. parts of the silicone material.
 
                - 12. A method according to claim 1, wherein 100 wt. parts of the fine powder has been treated with 2-30 wt. parts of the silicone material.
 
                - 13. A method according to claim 1, wherein the silica fine powder comprises one obtained by treating a silica fine powder having a particle size of 0.001-2 microns with said silicone material.
 
                - 14. A method. according to claim 1, wherein the silica fine powder has been treated with a silane coupling agent and the silicone material.
 
                - 15. A method according to claim 1, wherein the insulating magnetic toner has a residual magnetization .sigma.r or 1-5 emu/g, a saturation magnetization .sigma..sub.s of 15-50 emu/g, and a coercive force of 20-100 oe.
 
                - 16. A method according to claim 1, wherein the magnetic toner
 
                - (1) contains 17-60% by number of magnetic toner particles having a particle size of 5 microns or smaller; and
 
                - (2) contains 5-50% by number of magnetic toner particles having a particle size of 6.35-10.08 microns;
 
                - wherein the magnetic toner particles having a particle size of 5 microns or smaller have a particle size distribution satisfying the following formula:
 
                - N/V=-0.5N+k,
 
                - wherein N is a positive number of 17 to 60 that denotes the percentage by number of magnetic toner particles having a particle size of 5 microns or smaller,
 
                - V denotes the percentage by volume of magnetic toner particles having a particle size of 5 microns or smaller, and
 
                - k denotes a positive number of 4.6 to 6.7.
 
                - 17. A method according to claim 1, wherein the magnetic toner
 
                - (1) contains 17-60% by number of magnetic toner particles having a particle size of 5 microns or smaller; and
 
                - (2) contains 5-50% by number of magnetic toner particles having a particle size of 6.35-10.08 microns; wherein
 
                - (a) the magnetic toner has a volume-average particle size of 6-8 microns; and
 
                - (b) the magnetic toner particles having a particle size of 5 microns or smaller have a particle size distribution satisfying the following formula:
 
                - N/V=-0.5N+k,
 
                - wherein
 
                - N is a positive number of 17 to 60 that denotes the percentage by number of magnetic toner particles having a particle size of 5 microns or smaller,
 
                - V denotes the percentage by volume of magnetic toner particles having a particle size of 5 microns or smaller, and
 
                - k denotes a positive number of 4.6 to 6.7.
 
                - 18. A method according to claim 1, wherein the magnetic toner
 
                - (1) contains 17-60% by number of magnetic toner particles having a particle size of 5 microns or smaller,
 
                - (2) contains 5-50% by number of magnetic toner particles having a particle size of 6.35-10.08 microns; and
 
                - (3) contains 2.0% by volume or less of magnetic toner having a particle size of 12.7 microns or larger; wherein
 
                - (a) the magnetic toner has a volume-average particle size of 6-8 microns; and
 
                - (b) the magnetic toner particles having a particle size of 5 microns or smaller have a particle size distribution satisfying the following formula:
 
                - N/V=-0.5N+k,
 
                - wherein
 
                - N is a positive number of 17 to 60 that denotes the percentage by number of magnetic toner particles having a particle size of 5 microns or smaller,
 
                - v denotes the percentage by volume of magnetic toner particles having a particle size of 5 microns or smaller, and
 
                - k denotes a positive number of 4.6 to 6.7.
 
                - 19. A method according to claim 1, wherein the electrostatic image-bearing member has a curvature radius of no greater than 25 mm at the transfer position.
 
                - 20. A method according to claim 1, wherein the silicone oil comprises one comprising a partial structure of ##STR8## wherein R denotes an alkyl group having 1-3 carbon atoms and m denotes an integer.
 
                - 21. A method according to claim 1, wherein the fine powder has been treated with silicone oil represented by the following formula: ##STR9## wherein R is alkyl having 1-3 carbon atoms: R' is alkyl, halogen-substituted alkyl, substituted or unsubstituted phenyl: R" is alkyl or alkoxy having 1-3 carbon atoms and m and n are each an integer.
 
                - 22. A method according to claim 1, wherein the silicone oil comprises an amino-modified silicone oil.
 
                - 23. A method according to claim 1, wherein the fine powder has been treated with the amino-modified silicone oil represented by the following formula; ##STR10## wherein R.sub.1 and R.sub.6 respectively denote a hydrogen atom, an alkyl group, an aryl group, an alkoxy group, an alkyl group having an amino group, an aryl group having an amino group, an alkyl group having a halogen atom or an aryl group having a halogen atom;
 
                - R.sub.2 denotes an optional group selected from the group consisting of an alkylene group, a phenylene group, an alkylene group having an amino group, a phenylene group having an amino group, an alkylene group having a halogen atom, and a phenylene group having a halogen atom;
 
                - R.sub.3 denotes a nitrogen-containing heterocycle or a group having a heterocyclic structure;
 
                - R.sub.4 and R.sub.5 respectively are each a hydrogen atom, an alkyl group or an aryl group;
 
                - m denotes a number of 1 or larger;
 
                - n and 1 respectively denote 0 (zero) or a positive number; and
 
                - the sum of (n+1) is a positive number of 1 or larger.
 
                - 24. A method according to claim 1, wherein the silicone varnish includes a chemical structure represented by the following formula: ##STR11## wherein R.sup.31 denotes a methyl or phenyl group.
 
                - 25. A method according to claim 1, wherein the silicone varnish comprises an amino-modified silicone varnish.
 
                - 26. A method according to claim 1 including the step of developing the electrostatic image by reversal development.
 
        
                        Priority Claims (3)
        
            
                
                    | Number | 
                    Date | 
                    Country | 
                    Kind | 
                
            
            
                    
                        | 1-111006 | 
                        Apr 1989 | 
                        JPX | 
                         | 
                    
                    
                        | 1-18422 | 
                        Jul 1989 | 
                        JPX | 
                         | 
                    
                    
                        | 1-184421 | 
                        Jul 1989 | 
                        JPX | 
                         | 
                    
            
        
                        Parent Case Info
        This application is a division of application Ser. No. 08/145,702 filed Nov. 4, 1993 now U.S. Pat. No. 5,392,103 which is a division of application Ser. No. 07/902,808, now allowed, filed Jun. 25, 1992, now U.S. Pat. No. 5,270,770, which is a continuation of Ser. No. 07/514,914, filed Apr. 25, 1990, abandoned.
                
                
                
                            US Referenced Citations (22)
            
            Foreign Referenced Citations (1)
            
                
                    
                        | Number | 
                        
                        Date | 
                        Country | 
                    
                
                
                        
                            | 0270063 | 
                            
                            Jun 1988 | 
                            EPX | 
                        
                
            
                        Divisions (2)
        
            
                
                     | 
                    Number | 
                    Date | 
                    Country | 
                
            
            
    
        | Parent | 
            145702 | 
        Nov 1993 | 
         | 
    
    
        | Parent | 
            902808 | 
        Jun 1992 | 
         | 
    
            
        
        Continuations (1)
        
            
                
                     | 
                    Number | 
                    Date | 
                    Country | 
                
            
            
    
        | Parent | 
            514914 | 
        Apr 1990 | 
         |