An optical disc apparatus of the present invention is configured to include: a chassis which includes a supporting portion that supports an optical pickup, a pickup moving mechanism, and a disc motor, and coupling portions that are coupled to a tray at plural points, which is formed of a synthetic resin material, and in which the supporting portion and the coupling portions are integrated with each other; and a flexible flat cable which electrically couples between a first circuit substrate fixed to the bottom case side and a second circuit substrate fixed to the tray or the chassis side, and which is arranged between a bottom cover and a bottom case while its plane surface is folded in a state where the tray is inserted into an apparatus body.
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6. An optical disc apparatus which records or reproduces information onto/from an optical disc, the apparatus comprising:
an optical pickup which irradiates a laser beam onto the optical disc through an objective lens for recording or reproducing information;
a pickup moving mechanism which allows the optical pickup mounted on said pickup moving mechanism to be moved in a substantially radial direction of the optical disc;
a disc motor which drives the optical disc to rotate;
a tray which inserts or discharges the optical disc into/from an apparatus body; and
a chassis which is formed as a unified single body made of a synthetic resin material in which a supporting portion and coupling portions are formed as a part of the unified single body and moves together with the tray when the tray moves to insert or discharge the optical disc into/from the apparatus body, the supporting portion supporting the pickup moving mechanism and the disc motor, the coupling portions being coupled directly to the tray at plural points in a state where a part of the unified single body of the chassis directly contacts with the corresponding portions of the tray without interposing a vibration-proofing member, wherein:
when an impact force is applied to the optical disc apparatus at a time of a recording or reproducing operation, each of the coupling portions suppresses a displacement of the chassis to a low level and suppresses an oscillation of the optical pickup and a displacement of the disc motor to a low level through the supporting portion and the pickup moving mechanism, and the recording or reproducing operation is continued without a contact between a tip end of the objective lens and a disc surface even upon a condition of a short working distance.
4. An optical disc apparatus which records or reproduces information onto/from an optical disc, the apparatus comprising:
an optical pickup which irradiates a laser beam onto the optical disc through an objective lens for recording or reproducing information;
a pickup moving mechanism which allows the optical pickup mounted on said pickup moving mechanism to be moved in a substantially radial direction of the optical disc;
a disc motor which drives the optical disc to rotate;
a tray which inserts or discharges the optical disc into/from an apparatus body; and
a chassis which is formed as a unified single body made of a synthetic resin material in which a supporting portion and coupling portions are formed as a part of the unified single body and moves together with the tray when the tray moves to insert or discharge the optical disc into/from the apparatus body, the supporting portion supporting, the pickup moving mechanism and the disc motor, the coupling portions being coupled directly to the tray at plural points in a state where a part of the unified single body of the chassis directly contacts with the corresponding portions of the tray without interposing a vibration-proofing member, wherein:
the chassis is configured in such a manner that each of the coupling portions has a plane-like first portion and a protruding second portion, the protruding second portion being continued to the plane-like first portion, each protruding second portion protruding in the rotational axis direction of the disc motor and having a hole which penetrates in the rotational axis direction of the disc motor, and an end surface on a tray surface direction side of each protruding second portion contacting directly with the tray surface and the plane-like first portion being positioned at a predetermined height from the tray surface,
the tray has a protruding chassis engaging portion at a position corresponding to each respective hole of each protruding second portion of the coupling portions of the chassis, the protruding chassis engaging portion being inserted into each respective hole of each protruding second portion of the coupling portions of the chassis to fix the chassis directly to the tray in a state where an outer surface of the protruding chassis engaging portion contacts directly with a inner surface of the coupling portions of the chassis in the respective hole, and the bottom cover being fixed on an end surface of the protruding chassis engaging portion, and
when an impact force is applied to the optical disc apparatus at a time of a recording or reproducing operation, each of the coupling portions suppresses a displacement of the chassis to a low level and suppresses an oscillation of the optical pickup and a displacement of the disc motor to a low level through the supporting portion and the pickup moving mechanism, and the recording or reproducing operation is continued without a contact between a tip end of the objective lens and a disc surface even upon a condition of a short working distance.
1. An optical disc apparatus which records or reproduces information onto/from an optical disc, the apparatus comprising:
an optical pickup which irradiates a laser beam onto the optical disc through an objective lens for recording or reproducing information;
a pickup moving mechanism which allows the optical pickup mounted on said pickup moving mechanism to be moved in a substantially radial direction of the optical disc;
a disc motor which drives the optical disc to rotate;
a tray which inserts or discharges the optical disc into/from an apparatus body;
a chassis which is formed as a unified single body made of a synthetic resin material in which a supporting portion and coupling portions are formed as a part of the unified single body and moves together with the tray when the tray moves to insert or discharge the optical disc into/from the apparatus body, the supporting portion supporting the pickup moving mechanism and the disc motor, the coupling portions being coupled directly to the tray at plural points in a state where a part of the unified single body of the chassis directly contacts with corresponding portions of the tray without interposing a damper;
a bottom cover which is coupled to a surface opposite to a disc mounting surface of the tray;
a bottom case which is arranged outside the bottom cover to cover the rear surface side of the apparatus; and
a flexible flat cable which electrically couples a first circuit substrate and a second circuit substrate and is arranged between the bottom cover and the bottom case while its plane surface is folded in a state where the tray is inserted into the apparatus body, the first circuit substrate being fixed to the bottom case side, and the second circuit substrate being fixed to the tray or the chassis side, wherein:
the chassis is configured in such a manner that each of the coupling portions has a plane-like first portion and a protruding second portion, the protruding second portion being continued to the plane-like first portion, each protruding second portion protruding in the rotational axis direction of the disc motor and having a hole which penetrates in the rotational axis direction of the disk motor, and an end surface on a tray surface direction side of each protruding second portion contacting directly with the tray surface and the plane-like first portion being positioned at a predetermined height from the tray surface,
the tray has a protruding chassis engaging portion at a position corresponding to each respective hole of each protruding second portion of the coupling portions of the chassis, the protruding chassis engaging portion being inserted into each respective hole of each protruding second portion of the coupling portions of the chassis to fix the chassis directly to the tray in a state where an outer surface of the protruding chassis engaging portion contacts directly with an inner surface of the coupling portions of the chassis in the respective hole, and the bottom cover being fixed on an end surface of the protruding chassis engaging portion, and
when an impact force is applied to the optical disc apparatus at a time of a recording or reproducing operation, each of the coupling portions suppresses a displacement of the chassis to a low level and suppresses an oscillation of the optical pickup and a displacement of the disc motor to a low level through the supporting portion and the pickup moving mechanism, and the recording or reproducing operation is continued without a contact between a tip end of the objective lens and a disc surface even upon a condition of a short working distance.
2. The optical disc apparatus according to
3. The optical disc apparatus according to
5. The optical disc apparatus according to
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The present application claims priority from Japanese application serial No. P2007-226008, filed on Aug. 31, 2007, the content of which is hereby incorporated by reference into this application.
1. Technical Field
The present invention relates to an optical disc apparatus, and particularly to a configuration of a chassis which supports a disc motor and the like.
2. Description of the Related Art
Development of a thinner optical disc apparatus has recently been advanced so as to make the apparatus much thinner and lighter and to cut down the cost of the apparatus in response to diversification of its applications. For example, in an optical disc apparatus configured in such a manner that a unit mechanical portion is coupled to a tray, and the unit mechanical portion is moved together with the tray at the time of inserting or discharging a disc through the tray, it has been studied to make much lighter a chassis and to cut down the cost of the chassis which supports a disc motor, an optical pickup, and the like in the unit mechanical portion.
As techniques described in patent documents as conventional techniques relating to the present invention, techniques described in, for example, JP-A No. 2002-124071, JP-A No. 2007-4866, and JP-A No. 2000-357388 are given. In JP-A No. 2002-124071 and JP-A No. 2007-4866, there is described a configuration in which a chassis (base) on which a spindle motor is mounted is coupled to a tray through vibration-proofing rubbers (vibration-proofing members). In JP-A No. 2000-357388, there is described a configuration in which a buffer portion formed of a rubber-like elastic body is provided between a mechanical chassis and a chassis frame so as to be planarly integrated.
In the optical disc apparatus 100′, an optical pickup 4′, a pickup moving mechanism, and a disc motor 3′ are mounted on a chassis 5′ of a unit mechanical portion (
Further, each of the dampers is configured by, for example, a cylindrical elastic member (for example, butyl rubber or the like), the chassis 5′ is engaged with grooves (a groove Ga in the case of the damper A 11a and a groove Gc in the case of the damper C 11c) formed at the outer circumferences of the dampers, and into center holes (a center hole Pa in the case of the damper A 11a and a center hole Pc in the case of the damper C 11c) of the dampers, corresponding damper engaging portions of the tray 6′ are inserted and engaged (a damper engaging portion A 12a is engaged with the center hole Pa of the damper A 11a and a damper engaging portion C 12c is engaged with the center hole Pc of the damper C 11c). Accordingly, the chassis 5′ is coupled to the tray 6′ through the respective vibration-proofing members (dampers). In the chassis 5′, the portions to be engaged with the respective dampers are formed in a concave shape having opening portions Fa, Fb, and Fc (
Further, as shown in
In such a conventional configuration, three vibration-proofing members (dampers) are necessary in order to couple the chassis 5′ to the tray 6′. When assembling the apparatus, the three vibration-proofing members (dampers) are incorporated into the concave portions of the chassis 5′ from the opening portions Fa, Fb, and Fc. Thereafter, into the center holes (Pa in the case of the damper A 11a and Pc in the case of the damper C 11c) of the respective vibration-proofing members (dampers), the corresponding damper engaging portions of the tray 6′ are inserted and engaged after adjusting the attitudes and positions of the respective vibration-proofing members (dampers). Therefore, the number of components of the apparatus becomes large, and a period of time required for assembling becomes long due to the large number of assembling steps including the adjustment. Thus, it is difficult to cut down the cost of the apparatus. Further, in the case where the chassis 5′ is configured by metal, for example, a steel plate, the weight of the chassis 5′ is as heavy as 17×10−3 to 20×10−3 kg, which makes it difficult to make the apparatus lighter. Furthermore, in the conventional configuration, the cost of the flexible printed circuit board (FPC) 80′ is high because it is configured in a U-shape and the plane area thereof is large. Also from this viewpoint, it is difficult to cut down the cost of the apparatus.
Even in the techniques described in JP-A No. 2002-124071 and JP-A No. 2007-4866, it is conceivable that the circumstances are the same as those in the case of the optical disc apparatus 100′. The technique described in JP-A No. 2000-357388 is not a technique for coupling the mechanical chassis to the tray. In addition, since the mechanical chassis is configured by a material different from that of the rubber-like elastic body which is planarly integrated with the mechanical chassis, it is necessary to control materials and steps in response thereto in manufacturing the apparatus. Thus, it is conceivable that this fact also becomes a factor to hinder the cut-down of the cost.
Further, in a blue-system laser optical disc such as a BD (Blu-ray Disc) and an HD-DVD, a working distance is short. Accordingly, the optical disc apparatus performs recording or reproducing of information in a state where a distance (opposed gap) between a tip end of the objective lens of the optical pickup and a surface on the recording-face side of the optical disc is made shorter. Therefore, in the case where, for example, an impact force or the like is applied to the apparatus and the optical pickup and the optical disc are largely oscillated during a recording or reproducing operation, a protector portion at a tip end of the objective lens is brought into contact with a disc surface being rotated, so that the optical disc surface is likely to be scratched. For example, in the configuration like the conventional optical disc apparatus 100′ in which the chassis made of metal is coupled to the tray through the dampers configured by an elastic member, when an impact force or the like is applied to the apparatus, the unit mechanical portion including the chassis and the optical pickup, and the optical disc are likely to oscillate with a large amplitude relative to the tray. The oscillation of the unit mechanical portion excites the oscillation with a phase different from that of the optical disc for the optical pickup that is mounted inside.
In view of the foregoing circumstances of the conventional techniques, a problem of the present invention is to further cut down the cost of an optical disc apparatus and to make the apparatus much lighter, and to prevent the oscillation of an optical pickup and an optical disc even when an impact force or the like is applied.
An object of the present invention is to provide an optical disc apparatus by which the above-described problem can be solved.
The present invention is the technique by which the above-described problem can be solved and the above-described object can be achieved.
An optical disc apparatus according to one aspect of the present invention is configured to include a chassis which includes (1) a supporting portion that supports an optical pickup, a pickup moving mechanism, and a disc motor, and coupling portions that contact with and are coupled to a tray at plural points, and in which the supporting portion and the coupling portions are formed of the same synthetic resin material and are integrated with each other. Further, an optical disc apparatus according to another aspect of the present invention is configured to include: (2)(a) a chassis which includes a supporting portion that supports an optical pickup, a pickup moving mechanism, and a disc motor, and coupling portions that contact with and are coupled to a tray at plural points, which is formed of a synthetic resin material, and in which the supporting portion and the coupling portions are integrated with each other; and (b) a flexible flat cable which electrically couples between a first circuit substrate fixed to the bottom case side and a second circuit substrate fixed to the tray or the chassis side, and which is arranged between a bottom cover and a bottom case while its plane surface is folded in a state where the tray is inserted into an apparatus body.
Hereinafter, an embodiment of the present invention will be described using the drawings.
In
Further, in
It should be noted that the constituent elements in
In
It should be noted that the constituent elements in
In
In
In
In
According to the optical disc apparatus 100 as the embodiment of the present invention described above, it is possible to further cut down the cost of the apparatus and to make the apparatus much lighter. Further, the impact resistance can be improved. For example, in the case where an impact force or the like is applied to the apparatus at the time of a recording or reproducing operation, the displacement of the chassis 5 in the ±Z axis direction can be suppressed due to small displacement of each coupling portion of the chassis 5. Thus, it is possible to avoid the abutment of the clamper 3b on the top cover 200 and the removal of the optical disc 2 from the clamper 3b caused when the disc motor 3 is sunk on the bottom case 50 side (the −Z axis direction side). The oscillation of the optical pickup 4 and the optical disc 2 accompanied by the impact force or the like can be suppressed to a lower level, and it is possible to easily avoid the contact between a tip end of the objective lens 4a and a disc surface even when recording or reproducing is to be performed onto/from an optical disc having a short working distance, such as a BD. Further, in the optical disc apparatus 100, since the mass of the chassis 5 is small and the rigidity of each coupling portion is high, the resonant frequency of oscillation systems formed by the chassis 5 itself is high. Therefore, a disturbance of a low frequency range can be blocked, and thus the oscillation and noise of the apparatus during a recording or reproducing operation can be suppressed. It has been found by an experiment that the levels of oscillation and noise of the optical disc apparatus 100 can be made substantially equal to those in the case of the conventional optical disc apparatus 100′. Further, in the optical disc apparatus 100, distances between the respective components can be reduced in the ±Z axis direction as compared to the case of the conventional optical disc apparatus 100′, and thus it is possible to make the apparatus much thinner.
According to the present invention, it is possible to further cut down the cost of an optical disc apparatus and to make the apparatus much lighter. Further, it is possible to easily avoid the contact between a tip end of an objective lens and a disc surface even when recording or reproducing is to be performed onto/from an optical disc having a short working distance, such as a BD.
The present invention can be implemented in embodiments other than the above-described embodiment without departing from its spirit or principal characteristics. Therefore, the above-described embodiment is merely an example of the present invention in terms of all aspects, and should not be construed in a limited way. The scope of the present invention is shown by the claims. Further, all of modifications and changes pursuant to a scope equivalent to the scope of the claims are within the scope of the present invention.
Matsumoto, Koji, Takatsuka, Shinsuke, Ishizuka, Yosuke
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Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Jan 18 2008 | ISHIZUKA, YOSUKE | Hitachi-LG Data Storage, Inc | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 020605 | /0792 | |
Jan 18 2008 | TAKATSUKA, SHINSUKE | Hitachi-LG Data Storage, Inc | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 020605 | /0792 | |
Jan 18 2008 | MATSUMOTO, KOJI | Hitachi-LG Data Storage, Inc | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 020605 | /0792 | |
Feb 25 2008 | Hitachi-LG Data Storage, Inc. | (assignment on the face of the patent) | / |
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