U.S. patent application number 11/844985 was filed with the patent office on 2008-02-14 for optical disk device.
This patent application is currently assigned to MATSUSHITA ELECTRIC INDUSTRIAL CO., LTD.. Invention is credited to Hisashi Arai, Masanobu Aramaki, Masanari Esaki, Hirohisa Koizumi, Hiroki Kokubu, Fumihide Maeda, Kazuo Matsumoto, Takashi Morishita, Shingo Sagata, Takeshi Sugimoto, Hidetaka Taguchi, Yuji TANAKA, Shinichi Tokumaru, Yuichi Uchikawa, Takeshi Watanabe.
Application Number | 20080037408 11/844985 |
Document ID | / |
Family ID | 33425785 |
Filed Date | 2008-02-14 |
United States Patent
Application |
20080037408 |
Kind Code |
A1 |
TANAKA; Yuji ; et
al. |
February 14, 2008 |
OPTICAL DISK DEVICE
Abstract
The present invention includes a frame, an optical pick-up
module fixed to the frame and a circuit board forming a control
circuit fixed to the frame. The frame has fixing parts to other
members.
Inventors: |
TANAKA; Yuji;
(Chikusino-shi, JP) ; Matsumoto; Kazuo;
(Kikuchi-gun, JP) ; Watanabe; Takeshi;
(Tamana-shi, JP) ; Aramaki; Masanobu; (Tamana-shi,
JP) ; Taguchi; Hidetaka; (Tamana-shi, JP) ;
Sagata; Shingo; (Tamana-shi, JP) ; Uchikawa;
Yuichi; (Miyaki-gun, JP) ; Morishita; Takashi;
(Tamana-shi, JP) ; Maeda; Fumihide; (Oomuta-shi,
JP) ; Esaki; Masanari; (Oomuta-shi, JP) ;
Koizumi; Hirohisa; (Tamana-shi, JP) ; Tokumaru;
Shinichi; (Yamaga-shi, JP) ; Kokubu; Hiroki;
(Kurume-shi, JP) ; Arai; Hisashi; (Fukuoka-shi,
JP) ; Sugimoto; Takeshi; (Miyaki-gun, JP) |
Correspondence
Address: |
STEVENS, DAVIS, MILLER & MOSHER, LLP
1615 L. STREET N.W.
SUITE 850
WASHINGTON
DC
20036
US
|
Assignee: |
MATSUSHITA ELECTRIC INDUSTRIAL CO.,
LTD.
OSAKA
JP
|
Family ID: |
33425785 |
Appl. No.: |
11/844985 |
Filed: |
August 24, 2007 |
Related U.S. Patent Documents
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Application
Number |
Filing Date |
Patent Number |
|
|
10827522 |
Apr 20, 2004 |
|
|
|
11844985 |
Aug 24, 2007 |
|
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Current U.S.
Class: |
369/292 ;
G9B/33.027 |
Current CPC
Class: |
G11B 33/121
20130101 |
Class at
Publication: |
369/292 |
International
Class: |
G11B 7/00 20060101
G11B007/00 |
Foreign Application Data
Date |
Code |
Application Number |
Apr 21, 2003 |
JP |
2003-115569 |
Apr 21, 2003 |
JP |
2003-115570 |
Apr 21, 2003 |
JP |
2003-115571 |
Apr 21, 2003 |
JP |
2003-115572 |
Apr 21, 2003 |
JP |
2003-115573 |
Apr 21, 2003 |
JP |
2003-115574 |
Claims
1. An optical disk device disposed in an electronic device, said
optical disk device comprising: a frame; fixing parts for directly
fixing the frame to the electronic device; an optical pick-up
module fixed to the frame, for reading an optical disk to be
mounted on the frame; and a circuit board including a control
circuit, said circuit board being fixed to the frame, wherein a
braking unit is provided on at least one of the frame and the
control board, and the braking unit is positioned to be adjacent to
the periphery of the optical disk when mounted on the frame.
2. The optical disk device according to claim 1, wherein the
braking unit includes a contact member mounted to be capable of
moving, and a surface of the contact member is positioned to be
adjacent to the periphery of the optical disk when mounted on the
frame.
3. The optical disk device according to claim 2, wherein the
contact member is mounted to move along an axis of movement, and
said surface of the contact member is inclined relative to a plane
that is perpendicular to said axis.
4. The optical disk device according to claim 3, wherein said
surface of the contact member is further inclined relative to the
surface of the optical disk when mounted on the frame.
5. The optical disk device according to claim 3, wherein said
surface of the contact member is oriented so as to be non-parallel
with a tangent of the edge of the optical disk at a contact region
between the contact member and the optical disk when the optical
disk is mounted on the frame.
6. The optical disk device according to claim 4, wherein said
surface of the contact member is oriented so as to be non-parallel
with a tangent of the edge of the optical disk at a contact region
between the contact member and the optical disk when the optical
disk is mounted on the frame.
7. The optical disk device according to claim 2, wherein the
braking unit further includes a resilient member for pushing out
the contact member so as to press against the optical disc when
mounted on the frame.
8. The optical disk device according to claim 7, wherein a pressing
force of the resilient member against the contact member has a
weight of about 10 g.
9. The optical disk device according to claim 3, wherein the
movable range of the contact member is from 58.5 mm to 61.5 mm.
10. The optical disk device according to claim 3, wherein said
surface of the contact member has a length of from 4 mm to 10 mm in
a direction parallel with the surface of the optical disk mounted
on the frame.
11. The optical disk device according to claim 3, wherein the
surface of the contact member has a length of from 4 mm to 10 mm in
a direction perpendicular to the surface of the optical disk
mounted on the frame.
12. The optical disk device according to claim 2, wherein the
braking unit further includes a motor that is fixed to the frame
and rotates the optical disk mounted on the frame, and the contact
member faces a rotational center of the motor.
13. The optical disk device according to claim 2, wherein the
braking unit further includes a casing member housing the braking
unit.
14. The optical disk device according to claim 13, wherein the
casing member is formed integrally with the frame.
15. The optical disk device according to claim 13, wherein the
casing member has an opening part opening to the optical pick-up
module, and the contact member is mounted so as to move through the
opening part.
16. The optical disk device according to claim 1, wherein the
braking unit is caused to move by an external unit.
17. The optical disk device according to claim 16, wherein the
external unit is provided with the electronic device, and the
braking unit moves according to a motion of the eternal unit when
detaching the optical disk from the electronic device.
18. The optical disk device according to claim 1 further comprising
a switch provided on at least one of the circuit board and the
frame, said switch for detecting whether or not the disk cover
covers said optical disk device.
19. The optical disk device according to claim 1, wherein the frame
is formed so as to have a gap between the frame and the optical
disk when mounted on the frame.
20. The optical disk device according to claim 1 further comprising
an ejection unit provided on at least one of the circuit board and
the frame, said ejection unit for ejecting the optical disk mounted
on the frame.
21. The optical disk device according to claim 20, wherein at least
a part of the fixing parts to other members provided in the frame
has a form capable of being screwed.
22. The optical disk device according to claim 20, wherein at least
a part of the fixing parts to other members provided in the frame
has a form capable of being ultrasonic welded or thermally
welded.
23. The optical disk device according to claim 20, wherein at least
a part of the fixing parts to other members provided in the frame
has a form capable of being fixed by an adhesive agent and at least
a part of the fixing parts can be fixed by the adhesive agent or
can be fixed by using an adhesive material and other connecting
means to the other members.
24. The optical disk device according to claim 20, wherein at least
a part of the fixing parts to other members provided in the frame
has a form capable of being engaged between the fixing part and the
corresponding fixing part of other members.
25. The optical disk device according to claim 20, wherein at least
a part of the fixing parts to other members provided in the frame
is provided integrally with the frame.
26. The optical disk device according to claim 20, wherein at least
a part of the fixing parts to other members provided in the frame
comprises another member made of the same material as that of the
frame or a different material from that of the frame and attached
to a prescribed position of the frame.
27. The optical disk device according to claim 20, wherein at least
a part of the fixing parts to other members provided in the frame
has a substantially planar part and the substantially planar part
of the fixing part is substantially parallel to the surface of the
frame.
28. The optical disk device according to claim 20, wherein at least
a part of the fixing parts to other members provided in the frame
has a substantially planar part and the substantially planar part
of the fixing part is substantially perpendicular to the surface of
the frame.
29. The optical disk device according to claim 20, wherein at least
a part of the fixing parts to other members provided in the frame
is provided in the outer peripheral part of the frame.
30. The optical disk device according to claim 20, wherein the
fixing parts to other members provided in the frame, are disposed
at two to ten positions.
31. An optical disk device disposed in an electronic device, said
optical disk device comprising: a frame; fixing parts for directly
fixing the frame to the electronic device; an optical pick-up
module fixed to the frame, for reading an optical disk to be
mounted on the frame; and a circuit board including a control
circuit, said circuit board being fixed to the frame, wherein the
frame is formed so as to have a gap between the frame and the
optical disk when mounted on the frame.
32. An optical disk device disposed in an electronic device, said
optical disk device comprising: a frame; fixing parts for directly
fixing the frame to the electronic device; an optical pick-up
module fixed to the frame, for reading an optical disk to be
mounted on the frame; and a circuit board including a control
circuit, said circuit board being fixed to the frame, wherein the
frame has first and second regions, the first region has a surface
which is at a first distance from the surface of the optical disk
mounted on the frame and the second region has a second distance
from the surface of the optical disk mounted on the frame, and said
first distance is greater than said second distance.
33. The optical disk device according to claim 31, wherein said
frame includes a recessed area on the surface of the frame on which
the optical disk is to be mounted.
34. The optical disk device according to claim 33, the recessed
area has an uneven surface.
35. The optical disk device according to claim 31 further
comprising a switch provided on at least one of the circuit board
and the frame, said switch for detecting whether or not the disk
cover covers said optical disk device.
36. The optical disk device according to claim 31 further
comprising an ejection unit provided on at least one of the circuit
board and the frame, said ejection unit for ejecting the optical
disk mounted on the frame.
37. The optical disk device according to claim 31, wherein at least
a part of the fixing parts to other members provided in the frame
has a form capable of being screwed.
38. The optical disk device according to claim 31, wherein at least
a part of the fixing parts to other members provided in the frame
has a form capable of being ultrasonic welded or thermally
welded.
39. The optical disk device according to claim 31, wherein at least
a part of the fixing parts to other members provided in the frame
has a form capable of being fixed by an adhesive agent and at least
a part of the fixing parts can be fixed by the adhesive agent or
can be fixed by using an adhesive material and other connecting
means to the other members.
40. The optical disk device according to claim 31, wherein at least
a part of the fixing parts to other members provided in the frame
has a form capable of being engaged between the fixing part and the
corresponding fixing part of other members.
41. The optical disk device according to claim 31, wherein at least
a part of the fixing parts to other members provided in the frame
is provided integrally with the frame.
42. The optical disk device according to claim 31, wherein at least
a part of the fixing parts to other members provided in the frame
is composed of another member made of the same material as that of
the frame or a different material from that of the frame and
attached to a prescribed position of the frame.
43. The optical disk device according to claim 31, wherein at least
a part of the fixing parts to other members provided in the frame
has a substantially planar part and the substantially planar part
of the fixing part is substantially parallel to the surface of the
frame.
44. The optical disk device according to claim 31, wherein at least
a part of the fixing parts to other members provided in the frame
has a substantially planar part and the substantially planar part
of the fixing part is substantially perpendicular to the surface of
the frame.
45. The optical disk device according to claim 31, wherein at least
a part of the fixing parts to other members provided in the frame
is provided in the outer peripheral part of the frame.
46. The optical disk device according to claim 31, wherein the
fixing parts to other members provided in the frame, are disposed
at two to ten positions.
Description
[0001] This is a divisional application of application Ser. No.
10/827,522 filed Apr. 20, 2004, the entire contents of which are
incorporated by reference herein.
BACKGROUND OF THE INVENTION
[0002] 1. Field of the Invention
[0003] The present invention relates to an optical disk device
preferably mounted on an electronic device such as a stationary
computer. More particularly, the present invention relates to an
optical disk device preferably mounted on a mobile electronic
device such as a mobile computer (notebook personal computer or the
like), a digital camera, an electronic notebook, etc.
[0004] 2. Description of the Related Art
[0005] A usual optical disk device contained in a computer main
body ordinarily has a structure that the whole of the device is
accommodated in a casing and the casing is attached to a space of
the computer main body so that the optical disk device is attached
to the computer main body. An attaching part is provided in the
casing and attached to the computer main body.
[0006] Now, a method for attaching the usual optical disk device to
a portable electronic device will be described below by referring
to the drawings.
[0007] FIG. 8 is a perspective view showing the structure of the
usual optical disk device contained in the portable electronic
device. Reference numeral 1 designates an optical pick-up. 2
designates a main shaft. 3 designates a sub-shaft. 4 designates a
spindle motor. 5 designates a base. 6 designates a pick-up module
(PUM). 7 designates a tray. 8 designates a carriage. 9 designates a
rail. 10 designates a casing. 11 designates an optical disk device.
12 designates attaching tapped holes of an optical disk device
side. 13 designates a circuit board forming a control circuit or
the like. 14 designates a frame (seen from the back side of a disk
attaching part)
[0008] FIG. 9 is a diagram for showing a method for attaching the
usual optical disk device 11 contained in the portable electronic
device to the portable electronic device. Reference numeral 15
designates the portable electronic device. 16 designates an
attachment provided for attaching the optical disk device to the
portable electronic device. 17 designates attaching holes of an
attachment side.
[0009] In FIG. 8, the optical pick-up 1 moves in the diametrical
direction of the spindle motor 4 through the main shaft 2 and the
sub-shaft 3 as guides to read or write data on a disk attached to
the spindle motor part. The main shaft 2 and the sub-shaft 3 are
attached to the base 5 to form the pick-up module 6 as a whole. The
pick-up module 6 is fixed to the tray 7. The tray 7 slides relative
to the casing 10 by the rail 9. The tray 7 is pulled out from the
casing 10 upon attaching and detaching the optical disk and is
accommodated in the casing 10 upon reading and writing data. The
circuit board 13 forming the control circuit or the like is
attached to at least one of the tray or the casing. The
above-described structure constitutes the optical disk device 11
contained in the portable electronic device as a whole.
[0010] In FIG. 9, on the casing 10 of the optical disk device 11,
the attaching tapped holes 12 are provided for attaching the device
to the computer main body. In the portable electronic device 15,
the attachment 16 is interposed for attaching the device to the
portable electronic device. The attaching holes 17 of the
attachment side are fixed to the attaching tapped holes 12 of the
optical disk device side by screws to mount the attachment 16 on
the portable electronic device 15 so that the optical disk device
is mounted on and fixed to the portable electronic device.
[0011] In the usual disk device, the casing 10 has functions, as
described above, for positioning the tray 7 on which the pick-up
module 6 or the spindle motor 4 or the like is mounted through the
rail 9 and for fixing the optical disk to the portable electronic
device 15. An optical disk device whose thickness is reduced
basically meets the above-described structure.
[0012] As examples of the related art, JP-A-8-171786 and
JP-A-7-201044 as described below are exemplified.
[0013] However, since the portable electronic device has needed to
be increasingly thinned or light, the optical disk device itself
has needed to be thinned or light in the usual structure.
Particularly, the optical disk device has extremely needed to be
light. However, in the above-described structure, the weight of the
optical disk device has been extremely hardly reduced.
[0014] The present invention solves the above-described usual
problem and it is an object of the present invention to provide an
optical disk device that can realize a thin and especially light
device.
SUMMARY OF THE INVENTION
[0015] The present invention provides an optical disk device
comprising a frame, an optical pick-up module fixed to the frame,
and a circuit board forming a control circuit fixed to the frame,
characterized in that the frame has fixing parts to other
members.
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] FIG. 1 is a perspective view showing an optical disk device
according to one embodiment of the present invention from its front
surface.
[0017] FIG. 2 is a perspective view showing the optical disk device
according to one embodiment of the present invention from its back
surface with a cover and connecting means removed.
[0018] FIG. 3 is a diagram showing the structure of the optical
system of the optical disk device according to one embodiment of
the present invention.
[0019] FIG. 4 is a perspective view showing the optical disk device
according to one embodiment of the present invention from its back
surface.
[0020] FIG. 5 is a front view of the optical disk device according
to one embodiment of the present invention.
[0021] FIG. 6 is a view showing another method for attaching the
optical disk device according to one embodiment of the present
invention.
[0022] FIG. 7 is a view showing an example of the arrangement of a
drive eject switch of the optical disk device according to one
embodiment of the present invention.
[0023] FIG. 8 is a perspective view showing the structure of a
usual optical disk device contained in a portable electronic
device.
[0024] FIG. 9 is a view showing a method for attaching the usual
optical disk device contained in the portable electronic device to
the portable electronic device.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0025] FIG. 1 is a perspective view showing an optical disk device
according to one embodiment of the present invention from its front
surface. FIG. 2 is a perspective view showing the optical disk
device according to one embodiment of the present invention from
its back surface with a cover and connecting means removed (In FIG.
2, a cover and a flat cable are omitted). Further, FIG. 3 is a
diagram showing the structure of the optical system of the optical
disk device according to one embodiment of the present invention.
FIG. 4 is a perspective view showing the optical disk device
according to one embodiment of the present invention from its back
surface. FIG. 5 is a front view of the optical disk device
according to one embodiment of the present invention. FIG. 6 is a
view showing another method for attaching the optical disk device
according to one embodiment of the present invention. FIG. 7 is a
view showing an example of the arrangement of a drive eject switch
of the optical disk device according to one embodiment of the
present invention.
[0026] In FIGS. 1 and 2, reference numeral 18 designates a frame
for holding respective parts. A material with which the frame 18 is
formed is composed of at least one of resin materials such as
denatured polyphenylene oxide, an ABS resin, polycarbonate, a
mixture of the ABS resin and polycarbonate, polybutylene
terephthalate, polyoximethylene, liquid crystal polymer,
polyphenylene sulfide, polystyrene, polyacetal, polyamide, etc. or
a resin material by adding an inorganic material such as glass or
alumina to the resin material or an electric conductive resin
material. Particularly, as the material of the frame 18, the
denatured polyphenylene oxide or the mixture of the denatured
polyphenylene oxide and inorganic fibers or powder is preferable.
These materials are used so that rigidity can be improved and a
curve prevention can be realized and a weight can be more
reduced.
[0027] In this embodiment, the frame 18 is entirely Integrally
formed with one kind of resin material, however, other materials
may be partly used, or a plurality of members made of different
materials may be arranged on a plane and these members may be
mechanically connected together or bonded by an adhesive agent to
form the frame 18. Further, the members made of the same material
may be connected together in the same manner as described above to
form the frame 18.
[0028] Further, a plurality of members (made of the same material
of different materials) may be laminated in the direction of
thickness and laminated by a method of adhesion to from the frame
18. For instance, a metal plate or a ceramic plate high in its
rigidity may be sandwiched in between a pair of plate type resin
plates to form the frame 18.
[0029] When the frame 18 is formed mainly by a resin, members such
as plate pieces or wire shaped metal or ceramic materials capable
of improving the rigidity may be dispersed in the resin to reduce
the weight of the frame 18 itself and increase the rigidity.
[0030] The frame 18 has the above structure or the combination of
the above-described structures to realize the rigidity or the low
weight.
[0031] The frame 18 has a through hole 18a into which a pick-up
module 19 is inserted. In the frame 18, an uplift part 18c rising
from a front surface 18b is provided from a back surface 18d to the
front surface 18b. The pick-up module 19 is inserted into the
through hole 18a from the back surface 18d. The uplift part 18c
covers the end part of the pick-up module 19 and is provided
outside the maximum diameter of the diameter of a mounted disk.
Thus, a part of the outer periphery of the through hole 18a of the
frame 18 has a thickness to reinforce the through hole without
interfering with the disk upon mounting the disk. Specifically, as
shown in FIG. 2, the thickness L1 of the side part 18e of the
uplift part 18c is made larger than the thickness L2 of a side part
18f near the uplift part 18c so that a mechanical strength can be
increased. The side part 18e of the uplift part 18c is provided
integrally with a top part 18g. That is, the uplift part 18c is
composed of at least the side part 18e and the top part 18g.
Further, the thickness L1 of the side part 18e is larger than the
thickness L3 of the top part 18g. Further, a part not smaller than
1/2 times as much as the side part 18e forming the uplift part 18c
is desirably larger than the thickness L2 of the side part 18f near
the side part 18e to increase the mechanical strength. The inner
end part 18h of the top part 18g has a circular arc form to form a
part of the through hole 18a. On the top part 18g, one or a
plurality of through holes 18i are provided to reduce the weight.
When the frame 18 is formed, if the through holes 18i are not
provided by considering productivity, a structure becomes simple to
manufacture the frame 18 easily. Accordingly, when the productivity
is to be improved, the through holes 18i are not preferably
provided.
[0032] Further, on the front surface 18b of the frame 18, a disk
taking out recess 18j is provided for easily inserting fingers
between the disk and the frame 18 upon detaching the attached disk.
The range of the disk taking out recess 18j is set to 22 mm to 55
mm in the diametrical direction D from the center of the axis of a
spindle motor 19e, to 12 mm to 26 mm in the circumference direction
and to 1 mm to 2.5 mm in depth. Thus, the small diameter type disk
can be easily taken out.
[0033] In the frame 18 formed as described above, while a strength
is ensured, the weight can be suppressed to 15 g or lower
(preferably, 13 g or lower) to reduce the weight of the optical
disk device.
[0034] In the pick-up module 19, a frame 19a and a cover 19b
attached to an upper surface are provided. In the cover 19b, a
through hole 19c is provided. The spindle motor 19e is attached to
the frame 19a by screws or the like through a bottom plate 19d. A
part of the spindle motor 19e on which the disk is mounted
protrudes from the through hole 19c of the cover 19b to the front
surface 18b side of the frame 19a.
[0035] A carriage 20 is movably held by two substantially parallel
shafts 19f and 19g fixed to the frame 19a.
[0036] A motor 21 is fixed to the frame 19a to rotate a rotating
shaft 21b attached to the frame 19a so as to freely rotate through
a group of gears 21a. The rotating shaft 21b is provided in the
vicinity of the shaft 19f and attached substantially in parallel
with the shaft 19f. The rotating shaft 21b is provided in an
opposite side to the shaft 19g with respect to the shaft 19f. In
the rotating shaft 21b, a spiral groove is provided. A guide 20a
provided in the carriage 20 is fitted thereto. When the rotating
shaft 21b rotates, the guide 20a and the carriage 20 move in two
directions (arrows A shown in FIG. 1) along the shafts 19f and 19g.
As described above, the motor 21, the rotating shaft 21b and the
group of gears 21a as means for moving the carriage 20 are
collectively accommodated in an opposite side to the shaft 19g with
respect to the shaft 19f.
[0037] In the cover 19b on the pick-up module 19, a range
substantially opposed to a range in which the carriage 20 moves
rises toward a direction separating from the carriage 20 relative
to a range that is not substantially opposed to the range in which
the carriage 20 moves to form an uplift part 19h. The height of the
uplift part 19h is set not to interfere with the carriage 20 in the
moving range of the carriage 20. Thus, a step is formed between the
uplift part 19h of the cover 19b and a part except it to reinforce
the cover 19b. Accordingly, even when the thickness of the cover
19b is reduced, the deterioration of strength can be suppressed to
a minimum.
[0038] The carriage 20 is provided with a frame 20b formed by
die-casting a metal material. On the frame 20b, an optical system
for reading or writing the disk is mounted. In FIG. 3, an example
of the structure of the optical system mounted on the frame 20b
will be described below.
[0039] Laser beam for a DVD emitted from a semiconductor laser 200
for a DVD that emits the laser beam having wavelength of 677 nm or
shorter is reflected by a reflecting mirror 20c to change its
optical path, and then enters a collimator lens 20d to become
parallel lights. The laser beam that becomes the parallel lights
passes through a prism 20e, changes their optical paths in a rise
prism 20f, passes a 1/4 .lamda. plate 20g, and then converges on an
objective lens 20h and is applied to a disk 20i. A reflected beam
from the disk 20i passes through the objective lens 20h, the 1/4
.lamda. plate 20g, changes its direction in the rise prism 20f and
the prism 20e, converges on the collimator lens 20j, is incident on
a laminated prism 20k to change its direction and is incident on a
sensor 201.
[0040] On the other hand, a laser beam for a CD emitted from a
semiconductor laser 20m for a CD for emitting a laser beam having
wavelength of 765 nm to 795 nm passes through the laminated prism
20k, enters the collimator lens 20j to be parallel lights and the
parallel lights are incident on the prism 20e. The parallel lights
change their directions in the prism 20e and the rise prism 20f,
pass the 1/4 .lamda. plate 20g, converge on the objective lens 20h
and are applied to the disk 20i. A reflected light from the disk
20i passes through the objective lens 20h, the 1/4 .lamda. plate
20g, changes its direction in the rise prism 20f and the prism 20e,
converges on the collimator lens 20j, is incident on the laminated
prism 20k to change its direction and is incident on the sensor
201. Further, on a front light monitor 300, outgoing lights are
partly incident and used to control the adjustment of a quantity of
light of a light source.
[0041] The rise prism 20f, the 1/4 .lamda. plate 20g and the
objective lens 20h are formed on an actuator 22. The actuator 22 is
attached to the carriage 20 through a damper 22a. On the actuator
22, an actuator coil 22b is formed. The actuator coil 22b
dynamically corrects the movement of the laser beam on the disk to
move the actuator 22, the objective lens 20h and correct the
position of the laser beam.
[0042] The objective lens 20h faces the front surface 18b side of
the frame and all movable range is located within the range of the
through hole 19c.
[0043] The frame 19a of the pick-up module 19 is provided with an
attaching part 19i that is fixed to the frame 18 through a
vibration isolating damper 19j. The vibration isolating damper 19j
is made of an elastic material, and, specifically, butyl rubber or
silicon rubber is used. The attaching parts 19i are provided at
least three or more positions and at substantially equal intervals.
Especially, at least one of the attaching parts 19i is provided
near the spindle motor 19e to effectively prevent the vibration of
the spindle motor 19e.
[0044] A circuit board is divided into a first circuit board 23 and
a second circuit board 24. The first circuit board 23 is formed in
a polygonal shape. The second circuit board 24 is formed in a
polygonal shape having an arcuate cut out part 24a. The first
circuit board 23 forms a circuit for controlling a signal of the
laser beam for mainly reading and writing the disk. The second
circuit board 24 forms a circuit for controlling the motor 21 or
the actuator 22 for mainly moving the spindle motor 19e or the
carriage 20.
[0045] Further, the first circuit board 23 and the second circuit
board 24 are respectively fixed to the back surface 18d opposite to
side of the frame 18 on which the disk is mounted. The first
circuit board 23 and the second circuit board 24 are respectively
provided in the right and left sides with respect to a straight
line connecting the spindle motor 19e and the objective lens 20h as
a boundary. In such a way, the circuit board for controlling the
optical disk device is divided into two and fixed to the frame 18.
Thus, the form of the optical disk device, that is, the form of the
frame 18 can be configured to an arbitrary form adapted to an
electronic device on which the optical disk device is mounted.
Further, the mounting characteristics of the optical disk device on
the electronic device can be improved.
[0046] In this embodiment, the circuit board is divided into two,
however, the circuit board may be divided into three.
[0047] The first circuit board 23 is adjacent to the pick-up module
19 in the back surface 18d side of the frame 18 and attached to the
shaft 19f side with respect to the spindle motor 19e. In the end
side of the first circuit board 23, a plurality of cut-out type
engaging parts 23d are provided and engaged with a plurality of
hook shaped engaging parts 18k provided in the end side of the
frame 18. Further, screw fastening parts are screwed and fixed to
the frame 18. The engaging parts 18k are formed integrally with the
frame 18. However, the engaging parts 18k or parts including the
engaging parts 18k may be composed of separate members made of the
same material or different materials. Then, the engaging parts 18k
or the parts including the engaging parts 18k may be mechanically
connected to the prescribed positions of the frame 18 by screwing,
welding or fitting in forms or stuck and fixed thereto by an
adhesive agent or the like. To the first circuit board 23, two
connectors 23a and 23b are attached. The long sides of the
connectors 23a and 23b are respectively arranged substantially in
parallel with the sides of the first circuit board 23. The cable
insert parts of the connectors 23a and 23b are respectively
directed outward of the board. Further, the long side of the
connector 23b is attached substantially in parallel with one side
23c of the first circuit board 23 facing the pick-up module 19.
[0048] The second circuit board 24 is adjacent to the pick-up
module 19 in the back surface 18d side of the frame 18 and attached
to the shaft 19g side with respect to the spindle motor 19e. The
second circuit board 24 is fixed to the frame 18 by engaging with a
plurality of hook shaped engaging parts 18l located in the end side
of the frame 18 and further screwing screw fastening parts. The
engaging parts 18l are formed integrally with the frame 18.
However, the engaging parts 18l or parts including the engaging
parts 18l may be composed of separate members made of the same
material or different materials. Then, the engaging parts 18l or
the parts including the engaging parts 18l may be mechanically
connected to the prescribed positions of the frame 18 by screwing,
welding or fitting in forms or stuck and fixed thereto by an
adhesive agent or the like.
[0049] To the second circuit board 24, three connectors 24b, 24c
and 24d are attached and a connecting part 24e is provided. The
long sides of the connectors 24b and 24c are respectively arranged
substantially in parallel with the sides of the second circuit
board 24. The long side of the connector 24b is attached in
substantially parallel with one side 24f of the second circuit
board 24 facing the pick-up module 19. The cable insert part of the
connector 24b is directed inward of the board. The cable insert
part of the connector 24c is directed outward of the board. The
connector 24b is connected to the carriage 20 through connecting
means (not shown) such as a flat cable or a flexible board. The
connector 24c is connected to the first circuit board 23 through
connecting means (not shown) such as a flat cable or a flexible
board. The connector 24d is connected to the motor 21 for moving
the carriage 20 through connecting means (not shown) such as a flat
cable or a flexible board. The connecting part 24e is arranged in
the back surface (a surface opposite to a surface on which the
connectors 24b, 24c and 24d are arranged) of the second circuit
board 24 and connected to the spindle motor 19e through connecting
means (not shown) such as a flat cable or a flexible board.
[0050] The circuit of the first circuit board 23 and the circuit of
the second circuit board 24 may be formed on one board to form one
circuit board. In this case, since the connecting means for
connecting the boards is not necessary, a more inexpensive
structure may be obtained.
[0051] Further, the circuit board is formed with one or a plurality
of boards and they may be accommodated in the diameter of the disk
or in the vicinity of the diameter. In this case, the area of the
optical disk device on which the disk is mounted that is viewed
from a front surface may be made minimum.
[0052] A solenoid 25 is related to an eject operation of the disk,
sandwiched in between the first circuit board 23 and the pick-up
module 19 and fixed to the back surface 18d side of the frame
18.
[0053] To the back surface 18d side of the frame 18, a cover 26
with which the pick-up module 19 and the second circuit board 24
are covered is attached. When there is another method for shielding
the second circuit board 24, the cover 26 does not need to shield
the second circuit board 24. A part of a cover fixing part 26a for
fixing the cover 26 to the frame 18 directly comes into contact
with the earth parts of the first circuit board 23 and the second
circuit board 24 or comes into contact therewith through a spring
to fix and ground the cover 26 by screwing and further fix the
circuit board 23 and the second circuit board 24.
[0054] In the cover 26, a plurality of through holes 26b are
provided to avoid the interference with a part of parts forming the
pick-up module 19 or reduce the weight. Especially when the weight
does not need to be further reduced, the through holes for reducing
the weight can be omitted. In the cover 26, a protruding part 26c
pushed out toward a direction separating from the second circuit
board 24 is provided within a range substantially opposed to the
second circuit board 24. The connector 24b on the second circuit
board 24 is covered with the protruding part 26c.
[0055] The first circuit board 23 is connected to the second
circuit board 24 by connecting means 27 connected to the connector
23b on the first circuit board 23 and the connector 24c on the
second circuit board 24. The connecting means 27 is arranged so as
to cover at least a part of the cover 26 therewith. As the
connecting means 27, a flat belt type such as the flat cable or the
flat board is desired to thin the optical disk device. The
connecting means 27 connected to the connector 24c on the second
circuit board 24 is folded back so as to bypass the end part of the
cover 26 in the vicinity of the connector 24b and pulled out to a
position for covering the cover 26. When linear connecting means
cannot be used due to the positional relation between the connector
23b on the first circuit board 23 and the connector 24c on the
second circuit board 24, curved connecting means may be used to
meet the positional relation of the connectors. Thus, the circuit
boards can be connected together without preventing the thickness
of the optical disk device from decreasing. Further, the linear and
flat belt type connecting means 27 is provided with a bent part 27a
so that the inexpensive linear connecting means can meet the
positional relation between the connector 23b on the first circuit
board 23 and the connector 24c on the second circuit board 24. The
bent part 27a is provided at least on a vertical bisector B of the
long side of the connector 23b or a vertical bisector C of the long
side of the connector 24c to reduce the torsion or swell on the
surface of the flat belt type connecting means. The bent part 27a
is bent even number of times so that contact parts at both the ends
of the flat belt type connecting means 27 with the connectors come
to the same side of the flat surface of the flat belt. Thus, most
of connectors for a flat cable whose contact parts with the cable
are on its single surfaces can meet the flat belt type connecting
means. For instance, FIG. 4 shows an example of bending the flat
belt type connecting means twice. The flat belt type connecting
means 27 coming from the connector 23b on the first circuit board
23 is bent at the bent part 27a, pulled out once to an opposite
side to the connector 24c relative to the vertical bisector B of
the long side of the connector 23b and folded again on the bent
part 27a and pulled out to the connector 24 side.
[0056] Fixing means 27b is used for fixing the flat belt type
connecting means 27 to the cover 26. As the connecting means 27b, a
method for fixing the connecting means 27 to the cover 26 by using
an adhesive tape or a method in which a flexible member as the
fixing means 27b is connected to the cover with a space provided to
pass the connecting means 27 between the connected parts and
detachably fix the connecting means to the cover is preferable. A
double side tape may be sandwiched in between the connecting means
27 and the cover 26 to fix the connecting means to the cover.
[0057] A through hole 18m is provided in the vicinity of a part
opposed to the first circuit board 23 of the frame 18. A press
button switch 23f disposed in the first circuit board 23 passes
through the through hole 18m and protrudes from the front surface
18b of the frame 18. The movable direction of a press button 23g of
the press button switch 23f is substantially perpendicular to the
surface of the first circuit board 23. The dimension of the through
hole 18m is determined in view of the required degree of decrease
of weight as well as the decrease of weight of the frame 18.
[0058] The press button switch 23f serves to detect the opening and
closing state of an opening and closing cover attached to a
portable electronic device side and can supply a detected control
signal to the portable electronic device side. The press button
switch 23f may be provided on the front surface 18b of the frame
18.
[0059] Further, on the frame 18, another through hole 18n is
provided and a part of the solenoid 25 is exposed when viewed from
the front surface 18b side of the frame 18.
[0060] Further, on the front surface 18b of the frame 18, a brake
28 for stopping the rotation of the disk is provided as required.
The brake 28 comprises a case 28a, a movable part 28b, a part 28c
and a spring 28d. The case 28a is formed integrally with the frame
18. However, the case 28a may be composed of another member made of
the same material as that of the frame 18 or a different material
from that of the frame and may be attached to a prescribed position
of the frame 18. Further, the case 28a has side walls formed
integrally with the frame, protruding on the front surface side of
the frame and surrounding at least three sides and a top plate
provided integrally with the side walls to cover an upper part with
an optical pick-up module side opened. In FIG. 5, a moving axis of
the movable part 28b passes the center of rotation of the spindle
motor 19e to regulate a movable range by the case 28a. The spring
28d is set so as to push out the movable part 28b toward the
diametrical center of the spindle motor 19e. The part 28c is
provided on a surface of the movable part 28c facing the
diametrical center of the spindle motor 19e and made of a material
high in its friction coefficient relative to a material of the disk
such as silicon rubber, felt, etc. The surface of the part 28c that
comes into contact with the disk has an inclination of an angle of
.theta. on a surface parallel to the disk relative to the vertical
surface of the moving axis 28e. Thus, even when there is unevenness
in the outer form of the disk, the amount of contraction of the
spring 28d when the part 28c comes into contact with the disk is
constant, so that the pressing force of the part 28c to the disk is
constant. Specifically, an expected uneven width of the outer form
of the disk is 0.3 mm to 0.6 mm. An amount of inclination .theta.
of the surface of the part 28c coming into contact with the disk
and width G shown in FIG. 5 are set so as to meet the expected
uneven width of the diameter of the disk. The movable range of the
movable part 28b and the part 28c is set to a distance F from the
center of the spindle motor 19e to the center of the surface of the
part 28c, that is, 58.5 mm to 61.5 mm. G is set to 4 mm to 10 mm.
Further, the spring 28d is set so that a pressing force of a
prescribed load (for instance, the weight of about 10 g) is exerted
on the disk from the part 28c when the disk having the diameter of
120 mm is mounted and the part 28c collides with the disk for
braking. In such a setting, the rotation of the disk having the
diameter of 120 mm can be adequately stopped. Further, the
dimension H of the surface of the part 28c in contact with the disk
in the direction of thickness of the disk is set to 4 mm to 10 mm.
Thus, upon stopping the disk, the side surface of the disk can
assuredly abut on the part 28c including a backlash of the disk in
the direction of thickness of the disk or a curve of the disk
within a prescribed range upon mounting the disk. The movable part
28b is provided with an inclined surface 28f. An external pressing
rod presses the inclined surface 28f to obtain the movement of the
movable part 28b in the diametrical direction of the spindle motor
19e. Specifically, the pressing rod is provided on the disk taking
out movable disk cover of the portable electronic device. The
movable disk cover is closed so that the pressing rod presses the
inclined surface 28f. Then, the movable part 28b separates from the
disk 28g to release a brake.
[0061] The outer form of the frame 18 is set to a form that can
hold the pick-up module 19, the first circuit board 23 and the
second circuit board 24, for instance, a form that can surround the
outer periphery of the pick-up module 19, with which the first
circuit board 23 and the second circuit board 24 can be covered and
to which a holding part can be attached.
[0062] Further, an optical disk device fixing part 29 protrudes
from the side part 18e or the side part 18f of the frame 18, or
enters the inside of the frame 18 from the side part of the frame
18 or is provided in the surface of the frame 18.
[0063] The optical disk device fixing part 29 is provided
integrally with the frame 18. However, the optical disk device
fixing part 29 or a part including the optical disk device fixing
part 29 may be composed of another member made of the same material
or a different material. The optical disk device fixing part 29 or
the part including the optical disk device fixing part 29 may be
mechanically connected to the prescribed position of the frame 18
by screwing, welding or fitting in form or may be stuck and
attached thereto by an adhesive agent or the like.
[0064] 2 to 10 optical disk device fixing parts 29 are preferably
provided, and about 4 to 8 fixing parts are especially preferably
provided. One optical disk device fixing part 29 hardly realizes an
attachment with a sufficient strength. More than 10 optical disk
device fixing parts need much time to attach them so that a
productivity may be possibly deteriorated.
[0065] For instance, when screws are stood substantially vertically
on the front surface 18b of the frame 18 in the outer periphery of
the frame 18 to be screwed, the form of the optical disk device
fixing part 29 comprises, as shown in a part D of FIG. 2, a land
29a protruding substantially in parallel with the front surface 18b
of the frame 18 from the side part 18e or the side part 18f of the
frame 18 and a hole 29b substantially perpendicular to the surface
of the frame 18 for passing a screw. Further, as shown in a part E
of FIG. 2, the optical disk device fixing part 29 comprises a land
29c entering the front surface 18b of the frame 18 substantially in
parallel therewith from the side part 18e or the side part 18f of
the frame 18 and a hole 29d substantially perpendicular to the
surface of the frame 18 for passing a screw. Further, the optical
disk device fixing part 29 may be formed with a flat plate having a
form shown in the part D of FIG. 2 that protrudes substantially
vertically to the front surface 18b of the frame 18. A tapped hole
may be provided substantially vertically to the protruding flat
plate and the screw may be directed to be parallel to the front
surface 18b of the frame 18 so that the screw is attached to the
opposed fixing part of the portable electronic device.
[0066] Further, the form of the optical disk device fixing part 29
may have a connecting part capable of being thermally welded or
ultrasonic welded so that the optical disk device can be fixed to
the portable electronic device by a thermally welding method or a
ultrasonic welding method.
[0067] Further, as other method for fixing the optical disk device
to the portable electronic device, a method may be employed that
both the optical disk and the portable electronic device have forms
(preferably, fixing parts having flat parts) capable of being fixed
by an adhesive agent to partly fix the optical disk device to the
portable electronic device by the adhesive agent or fix the optical
disk device thereto by using an adhesive material and other
connecting means. In this case, the use of the adhesive agent makes
it possible to fix the optical disk device even in a position where
a screwing is difficult and the degree of freedom in design is
increased.
[0068] Further, as other method for fixing the optical disk device
to the portable electronic device, FIG. 6 is a diagram showing
other method for attaching the optical disk device according to the
embodiment of the present invention. On the frame 18 of the optical
disk device, the optical disk device fixing parts 29 are provided
so that the optical disk device is fixed by screwing or welding or
fixed by the adhesive agent. Further, one or a plurality of
engaging hooks 30 are provided. In the inner surface of the
portable electronic device 15, engaging parts 31 for the engaging
hooks 30 are provided. Thus, after the engaging hooks 30 of the
frame 18 of the optical disk device 11 are engaged with the
engaging parts 31 in the inner surface of the portable electronic
device 15, the optical disk device is fixed by the optical disk
device fixing parts 29. Thus, the optical disk device 11 is fixed
to the inner bottom surface of the portable information terminal
15. In this attaching method, fitting hooks are partly used so that
screwed positions can be reduced and an assembly possibility can be
improved.
[0069] Further, FIG. 7 is a diagram showing an example of an
arrangement of a drive eject switch in this embodiment. In order to
take out the disk, the drive eject switch 32 provided in the
portable electronic device 15 is operated. Thus, a movable disk
cover 33 provided in a computer main body is opened and control
operations such as finishing a performed application, stopping the
spindle motor or the like are carried out. In the related art, the
drive eject switch is provided in the optical disk device side.
However, the drive eject switch is not attached to the optical disk
device, but the drive eject switch is attached to a portable
electronic device main body as described above. Accordingly, a
mechanism for holding the drive eject switch can be omitted from
the optical disk device side to make the device compact. The whole
of the computer can be miniaturized.
[0070] In the optical disk device constructed as described above,
since the respective members are attached to the frame 18 and the
frame 18 is directly attached to the portable electronic device by
screwing or the like, which is different from the usual structure
that the members are respectively attached to the casing 10 which
is attached to the portable electronic device, the casing 10 is not
necessary. Accordingly, a thinner and lighter portable electronic
device than the portable electronic device to which the usual
optical disk device is attached can be provided.
[0071] The optical disk device according to this embodiment may be
attached not only to the portable electronic device but also to a
fixed electronic device.
[0072] The optical disk device as shown in the above-described one
example can realize the weight of 135 g or lower (preferably, 120 g
or lower, and more preferably, 100 g or lower). Such an optical
disk device is mounted on an electronic device, so that the
electronic device itself can be miniaturized.
[0073] The optical disk device according to one embodiment of the
present invention is especially useful for a structure in which a
disk with a diameter whose maximum diameter of a disk capable of
being mounted ranges from 110 mm to 130 mm can be mounted.
[0074] Further, a lead-free material is used for the members
forming the pick-up module or the connecting materials of the
members, electronic parts forming the circuit board or the
connecting materials of the electronic parts and other members
mounted on the frame or the connecting materials of the members.
Thus, the device gentle for an environment can be provided.
CROSS REFERENCE TO RELATED APPLICATION
[0075] This application is based upon and claims the benefit of
priority of Japanese Patent Application No 2003-115569 filed on
Mar. 4, 1921 and Japanese Patent Application No 2003-115570 filed
on Mar. 4, 1921 and Japanese Patent Application No 2003-115571
filed on Mar. 4, 1921 and Japanese Patent Application No
2003-115572 filed on Mar. 4, 1921 and Japanese Patent Application
No 2003-115573 filed on Mar. 4, 1921 and Japanese Patent
Application No 2003-115574 filed on Mar. 4, 1921, the contents of
which are incorporated herein by reference in its entirety.
* * * * *