This application is based upon and claims the benefit of priority from the prior Japanese Patent Application No. 2004-222795, filed on Jul. 30, 2004; the entire contents of which are incorporated herein by reference.
1. Field of the Invention
The present invention relates to a wiring board and a magnetic disk apparatus, and more particularly, to a wiring board suitable for a small magnetic disk apparatus and the like and to a magnetic disk apparatus having such a wiring board.
2. Description of the Related Art
As portable devices and electronic devices get more highly functional and more reduced in size and weight, downsizing has come in demand also for a magnetic disk apparatus which is a typical apparatus for storing a large volume of digital information. A disk enclosure of such a small magnetic disk apparatus housing disks and so on itself is small in size, and thus wiring boards provided therein or attached thereto also need to respond to the downsizing.
As a wiring board as described above, known is one that has a through hole for screwing in an end portion of its wiring board main body and is fixed to an apparatus main body and the like with a fixing screw inserted in the through hole. It is also known that for the purpose of grounding in this fixing portion, a ring-shaped pad or a C-shaped pad made of a conductive material is provided around the through hole (see, for example, U.S. Pat. No. 4,851,614).
For example, in a magnetic disk apparatus or the like, in order to respond to its downsizing, improvement in density and reduction in size have been under progress also in a wiring board. Therefore, it is desired that the aforesaid through hole for screwing and the like be disposed as close to the end portion of the wiring board main body as possible to secure a wide area usable for forming an electric circuit. Further, it is also desired that the aforesaid fixing screw protrude from the wiring board main body as little as possible, thereby reducing the dimension in a thickness direction.
The aforesaid through hole 2 and land 30 are preferably disposed in the end portion of the wiring board main body 1, as previously described. However, in the end portion of the wiring board main body 1, an area of, for example, about 0.3 mm is an area where a wiring pattern or a land cannot be provided due to restrictions in its manufacturing processes. Therefore, if the through hole 2 and the land 30 are disposed close to the end portion of the wiring board main body 1, the land 30 comes to have not a ring shape but a substantially C-shape or the like having a lacking part on the end portion side of the wiring board main body 1, as shown in
It has been found, however, that the C-shaped land 3 has a high possibility of causing a displacement of the component 5 to the opposite side (left side in the drawing) of the end portion, as shown in
The present invention was made to solve the conventional problems as described above, and it is an object of the present invention to provide a highly reliable wiring board and magnetic disk apparatus capable of preventing the displacement in fixing a component to a land and capable of responding to downsizing and higher density design.
A wiring board according to one of the aspects of the present invention includes: a wiring board main body on which a conductor pattern in a predetermined shape is formed; a land provided near an end portion of the wiring board main body and having partly lacking portions symmetrically formed on an end portion side of the wiring board main body and on an opposite side of the end portion side; and a component fixed to the land by a fixing member.
A wiring board according to another aspect of the present invention includes: a wiring board main body on which a conductor pattern in a predetermined shape is formed; a through hole for screwing provided near an end portion of the wiring board main body; a land formed around the through hole and having partly lacking portions symmetrically formed on an end portion side of the wiring board main body and on an opposite side of the end portion side; and a plate-shaped component fixed to the land by a fixing member and having in a center portion an insertion hole to which a screw is inserted.
A magnetic disk apparatus according to still another aspect of the present invention includes: a wiring board having a wiring board main body on which a conductor pattern in a predetermined shape is formed, a through hole for screwing provided near an end portion of the wiring board main body, a land formed around the through hole and having partly lacking portions symmetrically formed on an end portion side of the wiring board main body and on an opposite side of the end portion side, and a plate-shaped component fixed to the land by a fixing member and having in a center portion an insertion hole to which a screw is inserted; and a magnetic disk apparatus main body that includes a head carriage provided with a magnetic head for input/output of an electrical signal, and a magnetic disk from/to which magnetic information is read/written by the magnetic head provided in the head carriage, and that is fixed to the wiring board by the screw inserted to the through hole and the insertion hole.
Hereinafter, embodiments of the present invention will be described with reference to the drawings for detailed description of the present invention.
As shown in
As shown in
As shown in
An example of processes for fixing the component 5 to the land 3 structured above will be described with reference to
A displacement amount when the land 3 and the component 5 were fixed to each other through the above processes was measured on ten samples, and the measurement result showed that the minimum value (absolute value) of the displacement amount was 0.01 mm and the maximum value (absolute value) thereof was 0.03 mm. Further, the same measurement was conducted for comparison regarding the land 30 having the aforesaid C-shape, and the measurement result showed that the minimum value (absolute value) was 0.06 mm and the maximum value (absolute value) was 0.1 mm. As is seen from the results, this embodiment can greatly reduce the displacement amount of the component 5 compared to the conventional example.
As shown in
At this time, as shown in
Electrical connection of signal lines and so on between the wiring board 10 and the magnetic disk apparatus main body 20 is realized by connection of the aforesaid connector 11 on the wiring board 10 side and a not-shown connector provided on the magnetic disk apparatus main body 20 side. At this time, since the wiring board 10 and the magnetic disk apparatus main body 20 are fixed in accurate alignment by the screws 6, stress application to the connector 11 and so on can be prevented.
The structure of a magnetic disk apparatus including the wiring board structured above will be described. As shown in
The magnetic disk 31 is a disk-shaped medium retaining information as magnetic patterns in a circumferential direction, and a magnetic signal is written/read thereto/therefrom by the magnetic head 34 provided at a tip of the head carriage 33 moving in a radial direction of the magnetic disk 31. The disk damper 32 fastens and fixes a rotation center of the magnetic disk 31 to a spindle motor (not shown) side provided on an underside thereof. The head carriage 33 moves the magnetic head 34 provided at the tip thereof in the radial direction while keeping the magnetic head 34 lifted above the magnetic disk.
The magnetic head 34 converts an electrical signal to a magnetic signal in order to write information to the magnetic disk 31 and converts a magnetic signal to an electrical signal in order to read information from the magnetic disk 31. Write/read electrical signals are transferred from/to the head carriage communication wiring board 37 connected to the head carriage 33. The pivot 35 is the center of the movement (rotation) of the head carriage 33 and rotatable supports the head carriage 33. The voice coil motor 36 is a driving source for rotating the head carriage 33 with respect to the pivot 35.
The head carriage communication wiring board 37 communicates with (is connected to) the head carriage 33 to transfer signals exchanged with the magnetic head 34. These signals may include a signal to the voice coil motor 36. Further, as shown in the drawing, the head carriage communication wiring board 37 has two parts: one is a portion changing in its flexure state according to the rotation of the head carriage 33 and functioning mainly as a cable for signal transfer; the other is an area in a fixed shape, continuing from this portion and mainly serving as a mounting area of electronic components.
It should be noted that, though the foregoing embodiment has described the case where the land 3 in the parenthesis shape is used, the shape of the land is not limited to such a shape. For example, as shown in
Number | Date | Country | Kind |
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2004-222795 | Jul 2004 | JP | national |