Claims
- 1. A disk drive (HDD) subject to linear and rotational vibration, comprising:
an independent sensing unit for sensing a rotational velocity component of the HDD rotational vibration in a predetermined frequency range.
- 2. The disk drive of claim 1, further comprising:
a rotational vibration (RV) velocity controller coupled to said sensing unit, said sensing unit comprising a back-electromotive force (EMF) sensing unit.
- 3. The disk drive of claim 2, wherein said RV controller includes at least one of a complete digital circuit and a complete analog circuit.
- 4. The disk drive of claim 1, further comprising a base plate, said sensor sensing a rotational velocity component of the rotational vibration of the baseplate.
- 5. The disk drive of claim 2, wherein said RV controller is activated only when the vibration level exceeds a predetermined limit, thereby reducing a potential of unnecessary electrical noise being injected through said sensor.
- 6. The disk drive of claim 1, wherein said sensor comprises a rotational vibration (RV) Velocity sensor,
wherein a sensitivity of the RV velocity sensor is minimized against linear vibration and all of output signals from said RV velocity sensor are treated as resulting from RV excitation.
- 7. The disk drive of claim 1, further comprising a main voice coil motor (VCM), wherein a back electromotive force (EMF) of said main voice coil motor (VCM) is directly sensed by said sensor.
- 8. The disk drive of claim 1, wherein said independent sensing unit comprises an independent back-electromotive force (EMF) sensing unit.
- 9. A disk drive, comprising:
a sensor for directly sensing a rotational vibration velocity component of the disk drive.
- 10. The disk drive of claim 9, wherein said sensor comprises a back electromotive force (EMF) sensor to detect said rotation vibration velocity component.
- 11. The disk drive of claim 9, wherein said disk drive further includes a main voice coil motor (VCM), and
wherein said sensor is constructed to share a magnetic flux of said main VCM.
- 12. The disk drive of claim 9, further comprising an arm of an inertial latch, said inertial latch including first and second modes of activation,
wherein said sensor is mounted adjacent said arm.
- 13. The disk drive of claim 9, wherein said sensor includes a pivot made of flexures, said flexures being formed of materials having a predetermined damping level.
- 14. The disk drive of claim 9, wherein said sensor includes a coil and a plurality of pivot flexures for providing an electrical link to the coil.
- 15. The disk drive of claim 14, wherein said sensor comprises a back electromotive force (EMF) sensor and said coil comprises a back EMF coil.
- 16. The disk drive of claim 9, wherein a sensor transfer function is optimized to meet a performance range of 100-1000 Hz RV.
- 17. The disk drive of claim 9, wherein said sensor provides an output for feed forward compensation.
- 18. The disk drive of claim 17, wherein said output of said sensor for feedforward compensation is disabled during a seek of said disk drive, and is activated after a settle-out phase of said disk drive.
- 19. The disk drive of claim 17, wherein said output of said sensor for feedforward compensation is disabled during a track-follow mode of said disk drive if a threshold level rotation velocity is not reached.
- 20. The disk drive of claim 9, wherein a damping of said sensor is used for optimizing a feed forward compensation.
- 21. The disk drive of claim 9, wherein said sensor provides a write inhibit function during a “hot-swap” shock event.
- 22. A disk drive system, comprising:
a main voice coil motor; and a back-electromotive force (EMF) sensor which is rotatable around a point and is substantially insensitive to linear vibration which selectively shares a flux of said main voice coil motor (VCM).
- 23. A sensor for a disk drive, comprising:
a back electromotive force (EMF) sensor for directly sensing a rotational vibration velocity of said disk drive.
- 24. The sensor of claim 23, wherein said back EMF sensor includes:
a plurality of flexures; and a coil, adjacent said flexures, sharing a magnetic flux of a main voice coil motor of said disk drive.
- 25. The sensor of claim 23, wherein said back EMF sensor is insensitive to linear vibration and angular vibration in other coordinates.
- 26. The sensor of claim 23, wherein said back EMF sensor comprises a discrete sensor.
- 27. The sensor of claim 23, wherein said back EMF sensor includes:
a coil for back EMF sensing; magnets for producing an air gap flux; a predetermined low friction pivot; a mass balance for making a center of gravity of moving components of said drive to coalesce with the low friction pivot; a shroud for providing against an airflow induced vibration and electromagnetic interference; and a moving member covered by said shroud.
- 28. The sensor of claim 23, wherein said back EMF sensor includes a coil, a pair of magnets for producing an air gap flux, a mass for center of gravity balancing, a sensor beam, and a back EMF pickup.
- 29. The sensor of claim 27, wherein said back EMF sensor further includes a flexured pivot inner hub attached to a shaft and an outer ring is attached to a yoke, wherein said flexure assemblies carries electrical links from the coil,
wherein the shaft comprises a preloaded shaft with a point contact providing a Z-stiffness.
- 30. The sensor of claim 23, wherein said back EMF sensor includes a flexured system comprising a flexured pivot of having a multi-turn cross-sectional coil, a sensor beam, and a mass for center of gravity balancing,
wherein the flexured pivot comprises one of a sheet metal assembly with visco-elastic damping, and plastic having an intrinsic damping property.
- 31. The sensor of claim 29, wherein said flexured pivot includes a plurality of flexure members coupled to an inner hub attached.
- 32. The sensor of claim 23, wherein said back EMF sensor includes a coil sharing an air gap of a main voice coil actuator, said VCM including magnets,
the back EMF sensor being formed behind the magnets of the main VCM.
- 33. The sensor of claim 23, wherein said drive includes a main VCM coil and a plurality of magnets, said back EMF sensor including a coil formed to a side of said magnets.
- 34. The sensor of claim 32, wherein said magnets include a voice coil magnet which is extended, said coil of said sensor being supported by said extended voice coil magnet.
- 35. The disk drive of claim 9, further comprising:
a latch system for protecting said drive in a shock environment, said latch system including a latch having a spring coupled thereto, said latch further coupling to a lever via a contact point, wherein said latch latches an main actuator coil of said drive, and is activated by acceleration, wherein a coil of said back EMF sensor is supported by said lever.
- 36. The disk drive of claim 34, further comprising:
a second spring for maintaining a neutral position of the lever for no contact thereof, said drive having an actuator magnet with an extension for the sensor air gap flux, and said lever having mounted thereon a low friction pivot.
- 37. The disk drive of claim 9, wherein said sensor is mounted one of into an electrical card of said drive, onto an electrical card of said drive, and onto a baseplate of said drive.
- 38. The disk drive of claim 9, wherein said drive includes a main voice coil motor (VCM) which include a plurality of magnets having an extension, and
wherein said back EMF sensor is coupled to magnetic yokes of said VCM and shares the magnetic flux by said extension to the VCM magnets.
- 39. The disk drive of claim 37, wherein said back EMF sensor makes contact with an electrical connector, such that as said sensor is mounted into the disk drive, said sensor automatically makes connection with the connector.
- 40. The disk drive of claim 9, wherein said sensor includes a body assembly comprising one of a cast metal and a molded plastic.
- 41. The disk drive of claim 39, wherein said sensor further includes flexures, said flexures comprising one of plastic molded, etched and stamped metal flexures assembled onto a metallic pivot element.
- 42. The disk drive of claim 40, wherein said flexures comprise two-piece members with links.
- 43. The disk drive of claim 9, wherein said sensor includes metallic flexural elements integrally cast or molded into a sensor body.
- 44. The disk drive of claim 9, wherein said sensor includes flexural elements integrally formed with an injection molded plastic part to form a sensor body.
- 45. The disk drive of claim 43, wherein said sensor body includes a plurality of holes formed therein and said flexure elements have a plurality of holes formed therein so as to minimize stiffness to achieve a predetermined low rotational resonance.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] The present application is related to U.S. patent application No. 10/______,______, filed concurrently herewith, to Sri M. Sri-Jayantha et al. entitled “METHOD AND SYSTEM FOR ROTATIONAL VELOCITY-BASED ALGORITHM FOR VIBRATION COMPENSATION IN DISK DRIVES” having IBM Docket No. YOR920010081US1, assigned to the present assignee, and incorporated herein by reference.