IP Library Granted Patent US 10,475,481
Granted Patent B2
US 10,475,481 · App. 15/422,821 · Granted Nov 12, 2019

Magnetic tape having characterized backcoat layer and method of manufacturing the same

Inventors: Masahito Oyanagi (Minami-ashigara, JP); Norihito Kasada (Minami-ashigara, JP); Eiki Ozawa (Minami-ashigara, JP)
Assignee: FUJIFILM Corporation
G11B5/735G11B5/70G11B5/733G11B5/7305G11B5/78G11B5/8404G11B5/8412G11B5/00813
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,475,481
App. No.
15/422,821
Granted
Nov 12, 2019
Kind
B2
Abstract

The magnetic tape has a magnetic layer and a backcoat layer. The Ra on the magnetic layer side surface is less than or equal to 1.8 nm, the coefficient of friction measured on the base portion of the magnetic layer side surface is less than or equal to 0.35, and the Ra measured on the backcoat layer side surface is less than or equal to 5.0 nm. The backcoat layer contains a fatty acid ester. In addition, the FWHM before measured on the backcoat layer side surface before vacuum heating is greater than 0 nm but less than or equal to 10.0 nm, the FWHM after after vacuum heating is greater than 0 nm but less than or equal to 10.0 nm, and the difference between the spacing measured on the backcoat layer side surface after and before vacuum heating is greater than 0 nm but less than or equal to 8.0 nm.

Claims (54)

1. A magnetic tape,

which comprises, on one surface of a nonmagnetic support, a magnetic layer comprising ferromagnetic powder and binder, and on the other surface of the nonmagnetic support, a backcoat layer comprising nonmagnetic powder and binder, wherein:

a centerline average surface roughness Ra on a surface on the magnetic layer side of the magnetic tape is less than or equal to 1.8 nm;

a coefficient of friction measured on a base portion of the surface on the magnetic layer side of the magnetic tape is less than or equal to 0.35;

a centerline average surface roughness Ra measured on a surface on the backcoat layer side of the magnetic tape is less than or equal to 5.0 nm;

the backcoat layer comprises a fatty acid ester;

a full width at half maximum of a spacing distribution measured by optical interferometry on the surface on the backcoat layer side of the magnetic tape before vacuum heating the magnetic tape is greater than 0 nm but less than or equal to 10.0 nm;

a full width at half maximum of a spacing distribution measured by optical interferometry on the surface on the backcoat layer side of the magnetic tape after vacuum heating the magnetic tape is greater than 0 nm but less than or equal to 10.0 nm; and

a difference, S after −S before , between a spacing S after measured by optical interferometry on the surface on the backcoat layer side of the magnetic tape after vacuum heating the magnetic tape and a spacing S before measured by optical interferometry on the surface on the backcoat layer side of the magnetic tape before vacuum heating the magnetic tape is greater than 0 nm but less than or equal to 8.0 nm.

2. The magnetic tape according to claim 1 ,

wherein the centerline average surface roughness Ra measured on the surface on the magnetic layer side is greater than or equal to 1.2 nm but less than or equal to 1.8 nm.

3. The magnetic tape according to claim 1 ,

wherein the centerline average surface roughness Ra measured on the surface of the backcoat layer is greater than or equal to 1.5 nm but less than or equal to 5.0 nm.

4. The magnetic tape according to claim 1 ,

wherein the full width at half maximum of the spacing distribution measured by optical interferometry on the surface on the backcoat layer side of the magnetic tape before vacuum heating the magnetic tape falls within a range of 1.0 nm to 8.0 nm.

5. The magnetic tape according to claim 1 ,

wherein the full width at half maximum of the spacing distribution measured by optical interferometry on the surface on the backcoat layer side of the magnetic tape after vacuum heating the magnetic tape falls within a range of 1.0 nm to 8.0 nm.

6. The magnetic tape according to claim 1 ,

wherein the difference, S after −S before , falls within a range of 1.0 nm to 7.0 nm.

7. The magnetic tape according to claim 1 ,

wherein the coefficient of friction measured on the base portion of the surface on the magnetic layer side of the magnetic tape falls within a range of 0.15 to 0.30.

8. The magnetic tape according to claim 1 ,

wherein the nonmagnetic powder contained in the backcoat layer is one or more types of nonmagnetic powder selected from the group consisting of inorganic powder and carbon black.

9. The magnetic tape according to claim 8 ,

wherein a ratio accounted for by the inorganic powder falls within a range of 50.0 weight parts to 100.0 weight parts per 100.0 weight parts of a total quantity of the nonmagnetic powder contained in the backcoat layer.

10. A method of manufacturing a magnetic tape,

wherein the magnetic tape is a magnetic tape which comprises, on one surface of a nonmagnetic support, a magnetic layer comprising ferromagnetic powder and binder, and on the other surface of the nonmagnetic support, a backcoat layer comprising nonmagnetic powder and binder, wherein:

a centerline average surface roughness Ra on a surface on the magnetic layer side of the magnetic tape is less than or equal to 1.8 nm;

a coefficient of friction measured on a base portion of the surface on the magnetic layer side of the magnetic tape is less than or equal to 0.35;

a centerline average surface roughness Ra measured on a surface on the backcoat layer side of the magnetic tape is less than or equal to 5.0 nm;

a full width at half maximum of a spacing distribution measured by optical interferometry on the surface on the backcoat layer side of the magnetic tape before vacuum heating the magnetic tape is greater than 0 nm but less than or equal to 10.0 nm;

a full width at half maximum of a spacing distribution measured by optical interferometry on the surface on the backcoat layer side of the magnetic tape after vacuum heating the magnetic tape is greater than 0 nm but less than or equal to 10.0 nm; and

a difference, S after −S before , between a spacing S after measured by optical interferometry on the surface on the backcoat layer side of the magnetic tape after vacuum heating the magnetic tape and a spacing S before measured by optical interferometry on the surface on the backcoat layer side of the magnetic tape before vacuum heating the magnetic tape is greater than 0 nm but less than or equal to 8.0 nm; and

the method comprises:

coating and drying a backcoat layer-forming composition comprising nonmagnetic powder, binder, and a fatty acid ester on one surface of a nonmagnetic support to form a coating layer; and

applying vibration to the coating layer that has been formed to form a backcoat layer.

11. The method of manufacturing a magnetic tape according to claim 10 ,

wherein the vibration is ultrasonic vibration.

12. The method of manufacturing a magnetic tape according to claim 10 ,

wherein, in the magnetic tape, the centerline average surface roughness Ra measured on the surface on the magnetic layer side is greater than or equal to 1.2 nm but less than or equal to 1.8 nm.

13. The method of manufacturing a magnetic tape according to claim 10 ,

wherein, in the magnetic tape, the centerline average surface roughness Ra measured on the surface of the backcoat layer is greater than or equal to 1.5 nm but less than or equal to 5.0 nm.

14. The method of manufacturing a magnetic tape according to claim 10 ,

wherein, in the magnetic tape, the full width at half maximum of the spacing distribution measured by optical interferometry on the surface on the backcoat layer side of the magnetic tape before vacuum heating the magnetic tape falls within a range of 1.0 nm to 8.0 nm.

15. The method of manufacturing a magnetic tape according to claim 10 ,

wherein, in the magnetic tape, the full width at half maximum of the spacing distribution measured by optical interferometry on the surface on the backcoat layer side of the magnetic tape after vacuum heating the magnetic tape falls within a range of 1.0 nm to 8.0 nm.

16. The method of manufacturing a magnetic tape according to claim 10 ,

wherein, in the magnetic tape, the difference, S after −S before , falls within a range of 1.0 nm to 7.0 nm.

17. The method of manufacturing a magnetic tape according to claim 10 ,

wherein, in the magnetic tape, the coefficient of friction measured on the base portion of the surface on the magnetic layer side of the magnetic tape falls within a range of 0.15 to 0.30.

18. The method of manufacturing a magnetic tape according to claim 10 ,

wherein, in the magnetic tape, the nonmagnetic powder contained in the backcoat layer is one or more types of nonmagnetic powder selected from the group consisting of inorganic powder and carbon black.

19. The method of manufacturing a magnetic tape according to claim 18 ,

wherein, in the magnetic tape, a ratio accounted for by the inorganic powder falls within a range of 50.0 weight parts to 100.0 weight parts per 100.0 weight parts of a total quantity of the nonmagnetic powder contained in the backcoat layer.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 2, 2017
From: OYANAGI, MASAHITO; KASADA, NORIHITO; OZAWA, EIKI
To: FUJIFILM CORPORATION
Reel/Frame 041159/0182 →
Priority Claims (1)
JP 2016-018821 · Feb 3, 2016 · national
Continuity (1)
Related Publication 20170221516A1 · Aug 3, 2017