Non-Right Angle Parallelogram PZT For Suspension Resonance Improvement
20230267955 · 2023-08-24
Inventors
Cpc classification
G11B5/4833
PHYSICS
G11B5/5578
PHYSICS
G11B5/4873
PHYSICS
G11B5/5552
PHYSICS
G11B5/4826
PHYSICS
International classification
G11B5/48
PHYSICS
Abstract
Examples of a suspension are provided. The suspension includes a mount plate attached to a load beam at a suspension assembly attachment point. The suspension may include a first actuator and a second actuator located at the mount plate. The first actuator is shaped as a non-right angle parallelogram spanning across a first opening in the mount plate. The second actuator is shaped as a non-right angle parallelogram spanning across a second opening in the mount plate. The first and second actuators are configured to deflect the distal end of the mount plate, which causes the load beam to rotate with a rotation center located along the load beam.
Claims
1. A suspension assembly, comprising: a tri-stage suspension comprising: a mount plate attached to a distal end of a load beam; a first actuator shaped as a non-right angle parallelogram and spanning across a first opening in the mount plate; and a second actuator shaped as a non-right angle parallelogram and spanning across a second opening in the mount plate.
2. The suspension assembly of claim 1, further comprising a gimbal assembly attached to the load beam, wherein the gimbal assembly includes a slider configured to write digital information on a rigid rotating disk.
3. The suspension assembly of claim 2, further comprising a first micro-actuator and a second micro-actuator integrated within the gimbal assembly.
4. The suspension assembly of claim 3, wherein the first and second micro-actuators are non-right angle parallelogram shaped.
5. The suspension assembly of claim 1, wherein the first and second actuators are integrated into the load beam.
6. The suspension assembly of claim 1, wherein each of the first and second actuators includes: a first set of parallel sides; a second set of parallel sides; and an acute angle of less than 45 degrees at an intersection of at least one of the first set of parallel sides and at least one of the second set of parallel sides.
7. The suspension assembly of claim 1, wherein: the first actuator is configured to expand toward the distal end and a first side edge of the mount plate; and the second actuator is configured to expand toward the distal end and a second side edge of the mount plate.
8. The suspension assembly of claim 7, wherein expansion of the first actuator causes the load beam to rotate with a rotation center located along the load beam.
9. A suspension assembly, comprising: a mount plate attached to a distal end of a load beam; a first actuator attached to the load beam, wherein the first actuator has a non-right angle parallelogram shape and is configured to deflect the distal end of the mount plate; and a second actuator attached to the load beam, wherein the second actuator has a non-right angle parallelogram shape and is configured to deflect the distal end of the mount plate.
10. The suspension assembly of claim 9, wherein: the first actuator spans across a first opening in the mount plate; and the second actuator spans across a second opening in the mount plate.
11. The suspension assembly of claim 9, further comprising a gimbal assembly attached to the load beam, wherein the gimbal assembly includes a slider configured to write digital information on a rigid rotating disk.
12. The suspension assembly of claim 11, further comprising a first micro-actuator and a second micro-actuator integrated within the gimbal assembly.
13. The suspension assembly of claim 12, wherein the first and second micro-actuators are non-right angle parallelogram shaped.
14. The suspension assembly of claim 9, wherein the first and second actuators are integrated into the load beam.
15. The suspension assembly of claim 9, wherein each of the first and second actuators includes: a first set of parallel sides; a second set of parallel sides; and an acute angle of less than 45 degrees at an intersection of at least one of the first set of parallel sides and at least one of the second set of parallel sides.
16. The suspension assembly of claim 9, wherein: the first actuator is configured to expand toward the distal end and a first side edge of the mount plate; and the second actuator is configured to expand toward the distal end and a second side edge of the mount plate.
17. The suspension assembly of claim 9, wherein the deflection of the distal end by the first actuator causes the load beam to rotate with a rotation center located along the load beam.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Examples of the present disclosure are illustrated by way of example and not limitation in the figures of the accompanying drawings, in which like references indicate similar elements and in which:
[0021]
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DETAILED DESCRIPTION
[0030] Examples of a suspension are provided. The suspension includes a mount plate attached to a load beam at a suspension assembly attachment point. The suspension may include a first actuator and a second actuator located at the mount plate. The first actuator is shaped as a non-right angle parallelogram spanning across a first opening in the mount plate. The second actuator is shaped as a non-right angle parallelogram spanning across a second opening in the mount plate. The advantages of using actuators having a non-right angle parallelogram shape is detailed below.
[0031] While one suspension design is referenced herein, it should be understood that any number of suspensions may be implemented herein. Furthermore, while a tri-stage suspension 100 is illustrated herein, it should be understood that the following disclosure may be implemented in a dual-stage suspension.
[0032] To achieve desired performance of the servo bandwidth, the tri-stage suspension is introduced to the industry with the PZT milli-actuators assembled on the mount plate and the PZT micro-actuators assembled on the flexure tongue. The PZT milli-actuators work to provide a larger stroke and coarser head positioning and the PZT micro-actuators work to provide better resonant performance and finer head positioning.
[0033]
[0034] The load beam 216 can be manufactured from planar stainless-steel sheets that are subsequently chemically etched to almost any two-dimensional design within the limitations of process tolerances. Typical etched features are holes, slots, beams and hinges. The flat patterned stainless-steel sheets are then formed into desired three-dimensional shapes.
[0035] The suspension 200 may include a pair of milli-actuators 210 and 212 in openings 243 and 244 in the mount plate 220, and a pair of micro-actuators 250 and 251 at the gimbal assembly 252 for fine track positioning. The micro-actuators at the gimbal assembly 252 include a first micro-actuator 250 and a second micro-actuator 251. The first and second micro-actuators 250, 251 have the micro-actuator integrated within the gimbal assembly 252.
[0036]
[0037] A parallelogram is a quadrilateral having four straight sides where opposite sides are of equal length and are parallel to each other. For this disclosure, a non-right angle parallelogram is a parallelogram where no adjacent sides meet at a right angle (i.e., two of the opposing interior angles are equal and acute (less than 90 degrees), and the other two opposing interior angles are equal and obtuse (greater than 90 degrees)). As illustrated in
[0038] The use of a non-right angle parallelogram shaped piezoelectric (PZT) device for each of the actuators 310, 312 helps optimize the arm sway gain of the PZT actuator frequency response function compared to the rectangular shaped actuators in
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[0043] It will be understood that terms such as “upper,” “lower,” “above,” “best,” and x-direction, y-direction, and z-direction as used herein as terms of convenience that denote the spatial relationships of parts relative to each other rather than to any specific spatial or gravitational orientation. Thus, the terms are intended to encompass an assembly of component parts regardless of whether the assembly is oriented in the particular orientation shown in the drawings and described in the specification, upside down from that orientation, or any other rotational variation.
[0044] It will be appreciated that the term “present disclosure” as used herein should not be construed to mean that only a single disclosure having a single essential element or group of elements is presented. Similarly, it will also be appreciated that the term “present disclosure” encompasses a number of separate innovations, which can each be considered separate disclosures. Although the present disclosure has been described in detail with regards to the preferred examples and drawings thereof, it should be apparent to those skilled in the art that various adaptations and modifications of examples of the present disclosure may be accomplished without departing from the spirit and the scope of the disclosure.