Claims
- 1. A suspension assembly comprising:
an upper suspension; a lower suspension arranged in parallel with the upper suspension; a piezoelectric structure arranged in conjunction with one of the upper suspension and the lower suspension; and a damping circuit electrically coupled to the piezoelectric structure; wherein the piezoelectric structure generates an electrical current in response to a vibration within the piezoelectric structure, the electrical current being dissipated as heat by passing through the damping circuit that becomes at least substantially resistive at the vibration frequency.
- 2. The suspension assembly of claim 1, further comprising an upper slider located on the upper suspension and a lower slider located on the lower suspension.
- 3. The suspension assembly of claim 1, further comprising another piezoelectric structure arranged in conjunction with the other of the upper suspension and the lower suspension.
- 4. The suspension assembly of claim 3, wherein the piezoelectric structure arranged in conjunction with the upper suspension and the piezoelectric structure arranged in conjunction with the lower suspension each comprise a piezoelectric micro-actuator.
- 5. The suspension assembly of claim 1, wherein the vibration frequency comprises a resonant frequency of the piezoelectric structure.
- 6. The suspension assembly of claim 1, wherein the piezoelectric structure is added to the actuator solely for damping purposes.
- 7. The suspension assembly of claim 1, wherein the damping circuit has a natural frequency FR that is defined by the formula:
- 8. The suspension assembly of claim 1, further comprising mechanical damping measures.
- 9. The suspension assembly of claim 1, wherein the actuator arm further comprises control circuitry and wherein the damping circuit is in line with the control circuitry.
- 10. The suspension assembly of claim 3, wherein when one of the upper suspension and the lower suspension is actively reading or writing, the piezoelectric structure arranged in conjunction with the other of the upper suspension and the lower suspension provides a current to the damping circuit, thereby damping vibration within the suspension arm that is actively involved in reading or writing.
- 11. An suspension assembly comprising:
energizing means that generate an electrical current in response to a resonant frequency vibration within the energizing means; and dissipation means that dissipates energy in the form of heat at the natural resonance frequency of the energizing means.
- 12. The suspension assembly of claim 11, wherein the energizing means comprises a piezoelectric element.
- 13. The suspension assembly of claim 11, wherein the dissipation means comprises a damping circuit that becomes resistive at the natural resonance frequency of the piezoelectric structure.
- 14. The suspension assembly of claim 13, wherein the natural frequency FR is defined by the formula:
- 15. The suspension assembly of claim 11, further comprising mechanical damping means for mechanically damping vibrations.
- 16. A method of damping vibrations in a disc drive component, the method comprising steps of:
providing the disc drive component with a piezoelectric element, the piezoelectric element being physically integrated into the disc drive component; determining a resonant frequency for the integrated disc drive component and piezoelectric element; designing a circuit that becomes resistive at the resonant frequency of the integrated disc drive component and piezoelectric element; and electrically connecting the piezoelectric element to the circuit, thereby dissipating resonant frequency vibrations as heat.
- 17. The method of claim 16, further comprising a step of augmenting the recited damping method with mechanical damping.
- 18. A method of damping vibrations in a suspension assembly comprising an upper suspension and a lower suspension, in which piezoelectric micro-actuators located in or near each of the upper suspension and the lower suspension are used for fine tracking control, the method comprising steps of:
determining a resonant frequency of the upper suspension and the lower suspension; connecting a damping circuit to the piezoelectric micro-actuators, the circuit being designed to become resistive at the resonant frequency of the upper and lower suspension; and damping vibrations by converting mechanical energy first into electrical energy and then into thermal energy.
- 19. The method of claim 18, wherein only one of the upper suspension and the lower suspension are actively reading or writing at a particular time.
- 20. The method of claim 19, wherein the step of damping vibrations comprises damping vibrations in the suspension that is actively reading or writing by electrically coupling the damping circuit to the piezoelectric micro-actuators located in the suspension that is not actively reading or writing.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of United States Provisional Application Serial No. 60/197,772, filed Apr. 14, 2000 entitled “PASSIVE DAMPING CIRCUIT FOR DATA STORAGE DEVICE ACTUATOR”, which application is incorporated by reference herein.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60197272 |
Apr 2000 |
US |