METHOD AND MECHANISM OF PZT MICRO-ACTUATOR ATTACHMENT FOR THE HARD DISK DRIVER ARM
A fixture with a shaped molding may hold a first micro-actuator part and a second micro-actuator part in place for coupling while maintaining the structure of the first micro-actuator part. The first micro-actuator part and the second micro-actuator part may be a frame or a strip of piezoelectric material. A vacuum nozzle system embedded in the fixture may hold the first micro-actuator part in place. A mobile vacuum nozzle system may hold the second micro-actuator in place and positions the second micro-actuator part relative to the first micro-actuator part. A camera system may monitor the process. A dispense may apply epoxy between the first and second micro-actuator part. An ultraviolet source may provide ultraviolet radiation for curing.
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The present invention relates to magnetic hard disk drives. More specifically, the present invention relates to a method of assembling micro-actuators.
In the art today, different methods are utilized to improve recording density of hard disk drives.
One embodiment of a method of manufacturing the metallic frame 209 is shown in
A fixture with a shaped molding may hold a first micro-actuator part and a second micro-actuator part in place for coupling while maintaining the structure of the first micro-actuator part. The first micro-actuator part and the second micro-actuator part may be a frame or a strip of piezoelectric material. A vacuum nozzle system embedded in the fixture may hold the first micro-actuator part in place. A mobile vacuum nozzle system may hold the second micro-actuator in place and positions the second micro-actuator part relative to the first micro-actuator part. A camera system may monitor the process. A dispenser may apply epoxy between the first and second micro-actuator part. An ultraviolet source may provide ultraviolet radiation for curing.
One embodiment of a method for using the fixture of
Although several embodiments are specifically illustrated and described herein, it will be appreciated that modifications and variations of the present invention are covered by the above teachings and within the purview of the appended claims without departing from the spirit and intended scope of the invention.
Claims
1. A method, comprising:
- placing a first micro-actuator part in a molding of a fixture;
- coupling a second micro-actuator part to the first micro-actuator part; and
- using the fixture to maintain a structure of the first micro-actuator part and the second micro-actuator part.
2. The method of claim 1, further comprising holding the first micro-actuator part in place with an embedded vacuum nozzle system.
3. The method of claim 1, further comprising positioning the second micro-actuator part relative to the first micro-actuator part for coupling using a first mobile vacuum nozzle system.
4. The method of claim 1, wherein the first micro-actuator part is a micro-actuator frame.
5. The method of claim 4, wherein the micro-actuator frame is metal.
6. The method of claim 4, wherein the molding is a shaped protrusion that matches the interior of the first micro-actuator frame.
7. The method of claim 4, wherein the second micro-actuator part is a first strip of piezoelectric material.
8. The method of claim 7, further comprising positioning a second strip of piezoelectric material with a second mobile vacuum nozzle system.
9. The method of claim 7, further comprising holding a second strip of piezoelectric material with the first mobile vacuum nozzle system.
10. The method of claim 1, wherein the molding is a shaped indentation that matches the exterior of the first micro-actuator part, the second micro-actuator part, and a third micro-actuator part.
11. The method of claim 10, wherein the first micro-actuator part is a first strip of piezoelectric material and the third micro-actuator part is a second strip of piezoelectric material.
12. The method of claim 10, wherein the second micro-actuator part is a micro-actuator frame.
13. The method of claim 12, wherein the micro-actuator frame is metal.
14. The method of claim 1, further comprising maintaining the structure of multiple frames simultaneously with multiple moldings.
15. The method of claim 1, further comprising observing the fixture with a camera system.
16. The method of claim 1, further comprising applying an adhesive between the first micro-actuator part and the second micro-actuator part.
17. The method of claim 16, further comprising curing the adhesive is cured with ultraviolet radiation.
18. A fixture, comprising:
- a molding to hold a first micro-actuator part to be coupled to a second micro-actuator part and shaped to maintain a structure of the first micro-actuator part and the second micro-actuator part.
19. The fixture of claim 18, further comprising an embedded vacuum nozzle system to hold the first micro-actuator part in place.
20. The fixture of claim 18, wherein a first mobile vacuum nozzle system positions the second micro-actuator part relative to the first micro-actuator part for coupling.
21. The fixture of claim 18, wherein the first micro-actuator part is a micro-actuator frame.
22. The fixture of claim 21, wherein the micro-actuator frame is metal.
23. The fixture of claim 21, wherein the molding is a shaped protrusion that matches the interior of the micro-actuator frame.
24. The fixture of claim 21, wherein the second micro-actuator part is a first strip of piezoelectric material.
25. The fixture of claim 24, wherein a second strip of piezoelectric material is positioned with a second mobile vacuum nozzle system.
26. The fixture of claim 24, wherein the first mobile vacuum nozzle system holds a second strip of piezoelectric material.
27. The fixture of claim 18, wherein the molding is a shaped indentation that matches the exterior of the first micro-actuator part, the second micro-actuator part, and a third micro-actuator part.
28. The fixture of claim 27, wherein the first micro-actuator part is a first strip of piezoelectric material and the third micro-actuator part is a second strip of piezoelectric material.
29. The fixture of claim 27, wherein the second micro-actuator part is a micro-actuator frame.
30. The fixture of claim 29, wherein the micro-actuator frame is metal.
31. The fixture of claim 18, further comprising multiple moldings capable of maintaining the structure of multiple frames simultaneously.
32. The fixture of claim 18, wherein a camera system observes the fixture.
33. The fixture of claim 18, wherein an adhesive applicator applies an adhesive between the first micro-actuator part and the second micro-actuator part.
34. The fixture of claim 33, wherein the adhesive is cured with ultraviolet radiation.
35. A system, comprising:
- an embedded vacuum nozzle system to hold a first micro-actuator part to be coupled to a second micro-actuator part;
- a first mobile vacuum nozzle system positions the second micro-actuator part relative to the first micro-actuator part for coupling; and
- a molding shaped to maintain a structure of the first micro-actuator part and the second micro-actuator part.
36. The system of claim 35, wherein the molding is a shaped protrusion that matches the interior of the first micro-actuator part.
37. The system of claim 35, wherein the first micro-actuator part is a micro-actuator frame.
38. The system of claim 37, wherein the micro-actuator frame is metal.
39. The system of claim 37, wherein the second micro-actuator part is a first strip of piezoelectric material.
40. The system of claim 39, further comprising a second mobile vacuum nozzle system to position a second strip of piezoelectric material.
41. The system of claim 39, wherein the first mobile vacuum nozzle system holds a second strip of piezoelectric material.
42. The system of claim 35, wherein the molding is a shaped indentation that matches the exterior of the first micro-actuator part, the second micro-actuator part, and a third micro-actuator part.
43. The system of claim 42, wherein the first micro-actuator part is a first strip of piezoelectric material and the third micro-actuator part is a second strip of piezoelectric material.
44. The system of claim 43, wherein the second micro-actuator part is a micro-actuator frame.
45. The system of claim 44, wherein the micro-actuator frame is metal.
46. The system of claim 35, further comprising multiple moldings capable of maintaining the structure of multiple frames simultaneously.
47. The system of claim 35, further comprising a camera system to observe the fixture.
48. The system of claim 35, further comprising an adhesive applicator to apply an adhesive between the first micro-actuator part and the second micro-actuator part.
49. The system of claim 48, wherein curing the adhesive is cured with ultraviolet radiation.
Type: Application
Filed: Mar 10, 2009
Publication Date: Aug 13, 2009
Applicant: SAE MAGENTICS (H.K.) LTD. (Shatin)
Inventors: Ming Gao YAO (Dongguan City), Masashi SHIRAISHI (Kowloon), Yi Ru XIE (Dongguan City)
Application Number: 12/401,521
International Classification: H04R 17/00 (20060101);