Claims
- 1. A biaxially stretched polyester film which contains 0.001 to 5% by weight of fine spherical silica particles obtained by subjecting alkoxysilane to hydrolysis reaction and condensation reaction, said fine spherical silica particles being amorphous and having an average diameter of 0.01 to 3.0 .mu.m, the diameter dispersion index of said fine spherical silica particles represented by the following formula (1) being in the range of 1.1 to 2.7: ##EQU11## wherein d.sub.10 is the diameter of the fine spherical silica particle when the cumulative number thereof is 10% of the total number of said particles, d.sub.90 is the diameter of the fine spherical silica particle when the cumulative number thereof is 90% of the total number of said particles, and d.sub.10 and d.sub.90 are measured under an electron microscope, said cumulative numbers being calculated beginning with the largest particle size, wherein said fine spherical silica particles have a specific surface area ratio (R) defined by the following formula (3) of 5.0 or above: ##EQU12## and wherein the refractive index is thicknesswise direction is at least 1.492.
- 2. The polyester film according to claim 1 wherein said fine spherical silica particles comprise 90% by weight or more of silicon dioxide.
- 3. The polyester film according to claim 1 wherein said fine spherical silica particles have a volumetric shape parameter defined by the following formula (2):
- 0.4.ltoreq..PHI..sub.v .ltoreq.II/6 (2)
- wherein .PHI..sub.v is defined as .PHI..sub.v =V/D.sup.3, wherein V is the volume of particle (.mu.m.sup.3) and D is the maximum diameter (.mu.m) of the particle in the projection plane.
- 4. The polyester film according to claim 1 which contains inactive particles (BII) precipitated as a result of the reaction of a phosphorous compound and residue of ester exchange catalyst in the preparation of said polyester in a polyester condensation reaction system in an amount of 0.05 to 1.0% by weight based on the polyester.
- 5. The polyester film according to claim 4 wherein each of said inactive particles (BII) is a particle containing calcium, lithium and phosphorous elements each in an amount of 1.0% by weight or more base on said inactive particles.
- 6. The polyester film according to claim 1 wherein the number of interference fringes of n-th order (H.sub.n, per 1 cm.sup.2) as measured by double beam interference method, satisfies the following formulae (5) and (6):
- .SIGMA.H.sub.n .ltoreq.20, 7.gtoreq.n.gtoreq.3 (5) ##EQU13##
- 7. The polyester film according to claim 1 which contains in additions to the fine spherical silica particles, 0.005 to 1.0% by weight of fine particles (B-I) having (D.sub.2 /D.sub.1) defined by the following formula of in the range of 1.1 to 3.0: ##EQU14##
- 8. The polyester film according to claim 7 wherein the Mohs hardness of said fine particles (B-I) is 4.0 or below.
- 9. The polyester film according to claim 1 wherein the F.sub.5 value of the film in the machine direction is 12 kg/mm.sup.2 or above.
- 10. A magnetic recording medium which comprises a biaxially stretched polyester film containing 0.001 to 5% by weight of fine spherical silica particles obtained by subjecting alkoxysilane to hydrolysis reaction and condensation reaction, said fine spherical silica particles being substantially amorphous and having an average diameter of 0.01 to 3.0 .mu.m, the diameter dispersion index of said fine spherical silica particles represented by the following formula (1) being in the range of 1.1 to 2.7: ##EQU15## wherein d.sub.10 is the diameter of the fine spherical silica particle when the cumulative number thereof is 10% of the total number of said particles, d.sub.90 is the diameter of the fine spherical silica particle when the cumulative number thereof is 90% of the total number of said particles, and d.sub.10 and d.sub.90 are measured under an electron microscope, said cumulative numbers being calculated beginning with the largest particle size, wherein said fine silica particles have a specific surface area ratio (R) defined by the following formula (3) of 5.0 or above: ##EQU16## and wherein the refractive index in thicknesswise direction is at least 1.492.
- 11. The magnetic recording medium according to claim 10 wherein said fine silica particles comprise 90% by weight or more of silicon dioxide.
- 12. The magnetic recording medium according to claim 10, wherein the fine spherical silica particles have a volumetric shape parameter defined by the following formula (2):
- 0.4.ltoreq..PHI..sub.v .ltoreq..pi./6 (2)
- wherein .PHI..sub.v is defined as .PHI..sub.v =V/D.sup.3, wherein V is the volume of particle (.mu.m.sup.3) and D is maximum projected diameter (.mu.m) of the projection of the particle.
- 13. The magnetic recording medium according to claim 10, wherein the specific resistance [.rho..nu.] in molten state of polyester is not more than 1.0.times.10.sup.8 .OMEGA..cm.
- 14. The magnetic recording medium according to claim 10, wherein the film surface roughness (Ra), double refractive index (.DELTA.n) and the number of broken protuberances per 1 mm.sup.2 (Bp) on the film surface satisfy the following formulae (11)-(13):
- 0.005.ltoreq.Ra.ltoreq.0.030 (.mu.m) (11)
- .DELTA.n.ltoreq.20.times.10.sup.3 ( 12)
- Bp.ltoreq.10 (13)
- 15. The magnetic recording medium according to claim 10, wherein said film has a thickness of 4 to 30 .mu.m and said medium is a magnetic tape.
- 16. The magnetic recording medium according to claim 10, wherein said film has a thickness of 30 to 100 .mu.m and said medium is a magnetic disc.
- 17. The magnetic recording medium according to claim 10, wherein the number of coarse protuberances having a height of 0.81 .mu.m or greater on the film surface is 10 or less per 25 cm.sup.2 and the number of coarse protuberances having a height of 0.54 .mu.m to less than 0.81 .mu.m is 50 or less per 25 cm.sup.2.
- 18. The magnetic recording medium according to claim 10, wherein the average surface roughness Ra (.mu.m) of the film and the ratio of the maximum height of protuberance Rt (.mu.m) of the film to Ra satisfy the following formulae (14) and (15), respectively, and the number of broken protuberances on the film surface is 20 or less per mm.sup.2 :
- 0.003.ltoreq.Ra.ltoreq.0.015 (14)
- 5.ltoreq.Rt/Ra.ltoreq.20 (15)
- 19. The magnetic recording medium according to claim 10 wherein the F.sub.5 value of the film in the machine direction is 12 kg/mm.sup.2 or above.
- 20. A film capacitor which comprises as the dielectric a biaxially stretched polyester film containing 0.001 to 5% by weight of fine spherical silica particles obtained by subjecting alkoxysilane to hydrolysis reaction and condensation reaction, said fine spherical silica particles being amorphous and having an average diameter of 0.01 to 3.0 .mu.m, the diameter dispersion index of said fine spherical silica particles represented by the following formula (1) being in the range of 1.1 to 2.7: ##EQU17## wherein d.sub.10 is the diameter of the fine spherical silica particle when the cumulative number thereof is 10% of the total number of said particles, d.sub.90 is the diameter of the fine spherical silica particle when the cumulative number thereof is 90% of the total number of said particles, and d.sub.10 and d.sub.90 are measured under an electron microscope, said cumulative numbers being calculated beginning with the largest particle size, wherein said fine spherical silica particles have a specific surface area ratio (R) defined by the following formula (3) of 5.0 or above: ##EQU18## the refractive index in the thicknesswise direction of said film being at least 1.492 and the specific resistance in the molten state of said film being 2.0.times.10.sup.8 (.OMEGA..cm) or above.
- 21. The film capacitor according to claim 20 wherein said fine silica particles are the particles which comprise 90% by weight or more of silicon dioxide.
- 22. The film capacitor according to claim 20 wherein said fine spherical silica particles have a volumetric shape parameter defined by the following formula (2):
- 0.4.ltoreq..PHI..sub.v .ltoreq..pi./6 (2)
- wherein .PHI..sub.v is defined as .PHI..sub.v =V/D.sup.3, wherein V is the volume of particle (.mu.m.sup.3) and D is maximum diameter (.mu.m) of the particle in the projection plane.
- 23. The film capacitor according to claim 20, wherein the number of protuberances on the film surface is 1.0.times.10.sup.3 or more per mm.sup.2, and the difference .DELTA.d between micrometric film thickness as measured by 10-ply lamination and gravimetric film thickness satisfies the following formula (16):
- 0.1.ltoreq..DELTA.d.ltoreq.0.40 (16)
Priority Claims (10)
Number |
Date |
Country |
Kind |
62-30393 |
Feb 1987 |
JPX |
|
62-82481 |
Apr 1987 |
JPX |
|
62-125056 |
May 1987 |
JPX |
|
62-145752 |
Jun 1987 |
JPX |
|
62-146302 |
Jun 1987 |
JPX |
|
62-152222 |
Jun 1987 |
JPX |
|
62-152223 |
Jun 1987 |
JPX |
|
62-152570 |
Jun 1987 |
JPX |
|
62-155174 |
Jun 1987 |
JPX |
|
62-156214 |
Jun 1987 |
JPX |
|
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of application Ser. No. 07/155,512 filed Feb. 12, 1988 now abandoned.
US Referenced Citations (14)
Foreign Referenced Citations (4)
Number |
Date |
Country |
257611 |
Mar 1988 |
EPX |
2242417 |
Mar 1975 |
FRX |
56-91231 |
Jul 1981 |
JPX |
61-31429 |
Feb 1986 |
JPX |
Non-Patent Literature Citations (1)
Entry |
"Controlled Growth of Monodisperse Silica Spheres in the Micron Size Range", Journal of Collied and Interface Science 26, 62-69 (1968). |