The present invention relates to information recording hard disk drive devices, and more particularly to a voice coil motor (VCM) for a hard disk drive with special structure for increasing stiffness of the coil and improving heat conduction of the hard disk drive.
Hard disk drive is an information storage device that use magnetic media to store data and a movable read/write head positioned over the magnetic media to selectively read data from and write data to the magnetic media.
As shown in
Typically, a VCM 36 is employed to position the head 34 with reference to data tracks across the disk surface. The HSA 30 generally comprises a HSA E-block 32 with a tip end and a tail end. A head gimbal assembly (HGA) 33 with the head 34 thereon is mounted to the tip end of the E-block 32, and a fantail 35 is mounted to the tail end of the E-block 32. The HSA 30 pivots about a pivot shaft 31 mounted to the disk drive base plate at a position closely adjacent to the outer extreme of the disk 10 so that the head 34 moves in a plane parallel with the surface of the disk 10.
The VCM 36 includes a coil 37 mounted radially outward from the pivot shaft 31 and partially embedded (e.g. by epoxy potting or overmolding) in the fantail 35, the coil 37 being immersed in the magnetic field of a magnetic circuit of the VCM 36. The magnetic circuit comprises one or more permanent magnet pairs 38 and magnetically permeable plates 39. When a predetermined driving current flows through the coil 37, rotational forces or torques about the pivot shaft are generated on the coil 37 by the interaction between the current and the magnetic field in accordance with the well-known Lorentz relationship, such that the head 34 can be moved to the expected position.
There are typically three principal torques experienced by the VCM 36 and the HSA 30 as a result of the application of current to the coil 37. The first torque, often called the main torque, causes the coil 37 and the HSA 30 to rotate about a Z-axis of the pivot shaft 31, as shown by arrow 42. The second torque, referred to as torsion torque, causes the coil 37 and the HSA 30 to rotate or twist about an X-axis of the pivot shaft 31, as shown by arrow 44. The third torque, referred to as pitch torque, causes the coil 37 and the HSA 30 to rotate or bend about a Y-axis of the pivot shaft 31, as shown by arrow 46. As is known, the main torque is the primary means by which the voice coil 37, and thus the head 34, is moved radially across the disk 10. Stated another way, the main torque is a desired force which causes the HSA 30 and the head 34 to move in a plane parallel with the disk 10. In contrast, both the torsion and pitch torques cause motions in the HSA 30, the head 34, and the coil 37 which are not parallel to the plane of the disk 10. As such, the torsion and pitch torques adversely affect the head's ability to maintain optimal flying height and to stay parallel to the disk over the data tracks, thereby interfering with the read/write operation of the head in the disk drive.
Turning back to
Referring to
In addition, when a current passes through the coil 37, heat is generated in the coil 37. As shown in
Hence, a need has arisen for providing an improved voice coil motor and a hard disk drive to solve the above-mentioned problem.
Accordingly, an objective of the present invention is to provide a VCM for a hard disk drive with special structure for increasing stiffness of the coil and improving heat conduction of the hard disk drive.
Another objective of the present invention is to provide a hard disk drive which is capable of reducing coil torsion in the VCM and has improved heat conduction performance.
To achieve the above-mentioned objectives, a VCM for a hard disk drive according to an aspect of the present invention comprises an inner core having an inner surface, an outer plate having an inner surface, a permanent magnet, and a coil of wire. The outer plate is positioned in spaced relation to the inner core such that a gap is defined between the inner surfaces of the inner core and the outer plate. The permanent magnet is located in the gap and attached to the inner surface of the outer plate. The coil of wire wraps around the inner core to form a solenoid coil.
Preferably, the inner core, the outer plate, and the permanent magnet are all arc-shaped and concentric.
In an embodiment of the present invention, the coil and the inner core are bonded together so that the inner core moves together with the coil to further improve the stiffness of the coil.
In another embodiment of the present invention, a clearance exists between the coil and the inner core to permit the coil to move along the inner core. The outer plate is connected with the inner core by a pair of side plates at opposite sides thereof to close the gap, and thus to prevent magnetic flux leakage.
According to another aspect of the present invention, a hard disk drive comprises a disk, a spindle motor to spin the disk, a HSA having a head and an E-block at opposite ends thereof, and a VCM. The E-block is pivotally mounted on a pivot shaft. The VCM drives the HSA rotation about the pivot shaft and in turn causes the head to move radially across the disk. The VCM comprises an inner core having an inner surface, an outer plate having an inner surface, a permanent magnet, and a coil of wire. The inner core is configured to be perpendicular to the disk. The outer plate is also configured to be perpendicular to the disk and positioned in spaced relation to the inner core such that a gap is defined between the inner surfaces of the inner core and the outer plate. The permanent magnet is located in the gap and attached to the inner surface of the outer plate. The coil wraps around the inner core in a direction perpendicular to the disk to form a solenoid coil and is bonded to the E-block.
In an embodiment of the hard disk drive according to the present invention, the coil is bonded to the E-block with heat conductive adhesive.
In another embodiment of the hard disk drive according to the present invention, the E-block defines a groove in an outer surface thereof, and the coil is partially pressed into the groove so as to be fixed to the E-block.
Since the coil is attached to the E-block directly, the stiffness of the coil 14 can be increased dramatically. The inner core inside the coil can further improve the stiffness of the coil, thereby reducing the coil torsion in the VCM.
In addition, the heat generated in the coil can be directly conducted to the E-block and then the out surface of the hard disk drive, so the heat conduction performance of the hard disk drive can also be improved. Moreover, the contact surface between the coil and the E-block increases a lot, which further improves the heat conduction performance of the hard disk drive.
The accompanying drawings facilitate an understanding of the various embodiments of this invention. In such drawings:
Various preferred embodiments of the invention will now be described with reference to the figures, wherein like reference numerals designate similar parts throughout the various views. As indicated above, the invention is directed to a VCM for a hard disk drive with special structure for increasing stiffness of the coil and improving heat conduction of the hard disk drive.
Several example embodiments of the VCM will now be described.
Referring to
As shown in
Referring to
Generally speaking, magnetic flux lines are representative of the magnetic fields generated by a permanent magnet or by a current flowing in a wire. With respect to permanent magnets, magnetic flux lines are represented by dashed lines of force or flux that emerge from the magnet's north pole and enter the magnet's south pole, as shown in
The foregoing description of the present invention has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed, and obviously many modifications and variations are possible in light of the above teaching. Such modifications and variations that may be apparent to those skilled in the art are intended to be included within the scope of this invention as defined by the accompanying claims.
Number | Date | Country | Kind |
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200710147014.6 | Aug 2007 | CN | national |