Claims
- 1. A disc drive, comprising:
a disc; and a read/write head accessing the disc, comprising:
a substrate formed of thermally conductive material; a write coil window surrounded by a shared pole piece thermally coupled to the substrate, a central core, a write pole piece and a write gap; a bottom coil adjacent the shared pole piece having a bottom plurality of coil turns that have bottom narrowed regions passing through the window; and a top coil adjacent the write pole piece having a top plurality of coil turns that have top narrowed regions passing through the window; the top plurality of coil turns being fewer in number and flattened relative to the bottom plurality of coil turns.
- 2. The disc drive of claim 1 wherein the top plurality of coil turns have top widened regions opposite the top narrowed regions.
- 3. The disc drive of claim 2 wherein the shared pole is truncated along a line between the central core and the top widened regions.
- 4. The disc drive of claim 2 wherein a portion of heat generated in the top narrowed regions is conducted through the top widened regions to the substrate.
- 5. The disc drive of claim 1 wherein the bottom coil and the top coil are embedded in a refractory material that is electrical insulating and thermally conductive.
- 6. The disc drive of claim 5 wherein the refractory material comprises material selected from the group: alumina, silicon nitride and diamond-like carbon.
- 7. The disc drive of claim 1 wherein the top narrowed regions in the write coil window include an inner turn adjacent the central core with a cross-section that is small relative to a cross-section of an outer turn of the top narrowed region in the write coil window.
- 8. The disc drive of claim 7 wherein a portion of the heat generated in the inner turn is conducted through the central core to the substrate.
- 9. The disc drive of claim 1 wherein the write gap includes a nonmagnetic metallic layer.
- 10. The disc drive of claim 9 wherein the nonmagnetic metallic layer conducts heat from the write pole piece to the shared pole piece.
- 11. A disc drive, comprising:
a read/write head with a top coil and a bottom coil in a write portion of the head formed on a substrate; the read/write head accessing a disc; and means for conducting heat from a top coil in the read/write head to a substrate in the read/write head.
- 12. A method of manufacturing a disc drive, comprising:
providing a disc; forming a read/write head substrate of thermally conductive material; surrounding a write coil window in the read/write head with a shared pole piece thermally coupled to the substrate, a central core, a write pole piece and a write gap; providing a bottom coil adjacent the shared pole piece having a bottom plurality of coil turns that have bottom narrowed regions passing through the window; and providing a top coil adjacent the write pole piece with a top plurality of coil turns that have top narrowed regions passing through the window; the top plurality of coil turns being fewer in number and flattened relative to the bottom plurality of coil turns.
- 13. The method of claim 12 and further comprising:
providing the top plurality of coil turns with top widened regions opposite the top narrowed regions.
- 14. The method of claim 13 further comprising:
truncating the shared pole along a line between the central core and the top widened regions.
- 15. The method of claim 13 further comprising:
conducting a portion of heat generated in the top narrowed regions through the top widened regions to the substrate.
- 16. The method of claim 12 further comprising:
embedding the bottom coil and the top coil in a refractory material that is electrical insulating and thermally conductive.
- 17. The method of claim 16 further comprising:
selecting the refractory material from the group: alumina, silicon nitride and diamond-like carbon.
- 18. The method of claim 1 further comprising:
including, in the top narrowed regions in the write coil window, an inner turn adjacent the central core with a cross-section that is small relative to a cross-section of an outer turn of the top narrowed region in the write coil window.
- 19. The method of claim 18 further comprising:
conducting a portion of the heat generated in the inner turn through the central core to the substrate.
- 20. The method of claim 12 further comprising:
including a nonmagnetic metallic layer in the write gap.
- 21. A magnetic coil assembly, comprising:
a substrate formed of thermally conductive material; a magnetic core structure surrounding a write coil window, the magnetic core structure including a core portion that is thermally coupled to the substrate; a bottom coil adjacent the core portion, the bottom coil having a bottom plurality of coil turns that have bottom narrowed regions passing through the window; and a top coil overlying the bottom coil, the top coil having a top plurality of coil turns that have top narrowed regions passing through the window; the top plurality of coil turns being fewer in number and flattened relative to the bottom plurality of coil turns.
- 22. The magnetic coil assembly of claim 21 wherein a portion of heat generated in the top narrowed regions is conducted through the top widened regions to the substrate.
- 23. The magnetic coil assembly of claim 21 wherein the bottom coil and the top coil are embedded in a refractory material that is electrical insulating and thermally conductive.
- 24. The magnetic coil assembly of claim 21 wherein the refractory material comprises material selected from the group: alumina, silicon nitride and diamond-like carbon.
- 25. The magnetic coil assembly of claim 21 further comprising a central core, wherein the top narrowed regions in the write coil window include an inner turn adjacent the central core with a cross-section that is small relative to a cross-section of an outer turn of the top narrowed region in the write coil window.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims priority benefits from U.S. Provisional Application 60/213,088 titled “Reduced Thermal Susceptibility MR Head design,” filed Jun. 20, 2000 and identified as Docket Number SEA9772.01.
Provisional Applications (1)
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Number |
Date |
Country |
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60213088 |
Jun 2000 |
US |