The example embodiments herein relate to information recording disk drive devices and, more particularly, to disk drive devices having single stopper pins for controlling magnetic head placement and methods of making the same.
One known type of information storage device is a disk drive device that uses magnetic media to store data and a movable read/write head that is positioned over the media to selectively read from or write to the disk.
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While these structures traditionally have been suitable for conventional disk drive devices, further refinements still are possible. For example, when the disk drive device is in the process of shutting down (or already shut down), there typically is no controlling signal to control and/or maintain the exact unloading position. Thus, the head and/or the entire HGA 116 may crash into the base 122 and/or the disk 100, causing damage to certain components of the disk drive device. Similarly, it is difficult to control the flexing of the FPC 120, for example, to cause a flex bias force to be applied, the flex bias force being suitable for fixing a certain unloading position for the HGA 116 and for ensuring that the head is parked on ramp. Accordingly, the usefulness of the stopper pin 200b is reduced. Additionally, the requirement of two stopper pins located apart from each other serves to increase the size of the overall disk drive device.
Thus, it will be appreciated that there is a need in the art for improved techniques for controlling the outer limits of magnetic head placement.
One aspect of certain example embodiments described herein relates to a single stopper pin being used to set the outer limits of magnetic head placement in a disk drive device.
Another aspect of certain example embodiments described herein relates to a coil overmold extrusion design to cooperate with a single stopper pin to set the outer limits of magnetic head placement in a disk drive device.
Still another aspect of certain example embodiments described herein relates to smaller and/or more compact disk drive devices.
According to certain example embodiments, a voice coil motor for use in a disk drive device suitable for causing rotation of a head gimbal assembly connected to a first end of the voice coil motor is provided. At least one protrusion may protrude from a second end of the voice coil motor, with the second end of the voice coil motor being opposed to the first end. The voice coil motor may be rotatable to move a head connected to the head gimbal assembly for a read and/or write operation and for parking. The protrusion may be disposed on the voice coil motor so as to cooperate with a pin to define first and second maximum positions beyond which the voice coil motor cannot rotate.
According to certain other example embodiments, a disk drive device is provided. The disk drive device may comprise a disk; a spindle motor operable to spin the disk; a pin; and, a voice coil motor suitable for causing rotation of a head gimbal assembly connected to a first end of the voice coil motor, with the voice coil motor including at least one protrusion protruding from a second end of the voice coil motor, and with the second end of the voice coil motor being opposed to the first end. The voice coil motor may be rotatable to move a head connected to the head gimbal assembly for a read and/or write operation and for parking. The protrusion may be disposed on the voice coil motor so as to cooperate with the pin to define first and second maximum positions beyond which the voice coil motor cannot rotate.
According to still other example embodiments, a method of making a voice coil motor for use in a disk drive device suitable for causing rotation of a head gimbal assembly connected to a first end of the voice coil motor is provided. The method may comprising providing at least one protrusion on a second end of the voice coil motor, with the second end of the voice coil motor being opposed to the first end. The protrusion may be disposed on the voice coil motor so as to cooperate with a pin to define first and second maximum positions beyond which the voice coil motor cannot rotate.
In certain example embodiments, the first maximum position may be a load position limit beyond which the voice coil motor cannot rotate during a read/write operation, and the second maximum position may be a park position limit beyond which the voice coil motor cannot rotate when the head is parked.
Other aspects, features, and advantages of this invention will become apparent from the following detailed description when taken in conjunction with the accompanying drawings, which are a part of this disclosure and which illustrate, by way of example, principles of this invention.
The accompanying drawings facilitate an understanding of the various embodiments of this invention. In such drawings:
Currently, two separate stopper pins are used to define maximum head read/write and unloading positions. Such pins stop the distal end of the HGA from over-rotation, which could cause damage to one or more elements in the disk drive device (e.g., the head, VCM, disk, etc.). In particular, the VCM typically has an overmold formed thereon, and one stopper pin stops the overmold to reduce the likelihood of the HGA crashing into the clamp of the spindle motor during read/write operations, whereas the other stopper pin holds the overmold when the disk drive device is powered down to keep the HGA away from the disk. As such, according to these conventional techniques, both pins are needed, requiring additional mechanical structures and space for the same.
By contrast, certain example embodiments require only a single stopper pin. An extrusion (or protrusion) projects from the overmold, and the extrusion design may cooperate with the single stopper pin. The single stopper pin and overmold extrusion may reduce the likelihood of the HGA crashing into the clamp of the spindle motor during read/write operations while also reducing the likelihood of the HGA and/or head crashing into the disk or other portion of the disk drive device when the disk drive device is powered down. Thus, certain example embodiments may reduce the size needed for disk drive devices because of the simplified single stopper/overmold protrusion design approach. Thus, as shown in
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In certain other example embodiments, the overmold extrusion may be substantially U-shaped. The stopper pin 604 may be located within the cavity of the substantially U-shaped overmold extrusion such that the legs of this overmold extrusion at least partially surround the stopper pin 604. Thus, one leg of the substantially U-shaped overmold extrusion may help to set the load position limit (rather than the VCM overmold 600 itself setting the load position limit as in
It will be appreciated that although certain example embodiments have been described as relating to a VCM overmold having an overmold extrusion associated therewith, the present invention is no so limited. By way of example and without limitation, any protrusion extending from the distal portion suitable for cooperating with a single stopper pin may be used. That is, the protrusion itself need not be extruded from the VCM molding. Furthermore, such protrusion may be formed from the same material as a VCM overmold, or it may be formed on and/or connected in some other way to a VCM overmold or to the VCM itself.
It also will be appreciated that the stopper pin 604 may be formed from any suitable material(s). For example, the stopper pin 604 may extend upward by molding, mechanical assembly, or any other suitable means. Also, the VCM overmold may be formed from any suitable material.
While the invention has been described in connection with what are presently considered to be the most practical and preferred embodiments, it is to be understood that the invention is not to be limited to the disclosed embodiments, but on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the invention.