The present invention relates to an optical disk drive, in particular to a rack structure which engages with the gearing screw in the gearing mechanism of an optical disk drive for driving the pick-up head moving back and forth.
Gearing mechanism of an optical disk drive moves the pick-up head to a precise position so the light beam emitted by the pick-up head can precisely focus on the tiny data marks on an optical disk to ensure the accuracy of data reading/writing. The main development trend in the industry is to enhance the competitiveness of optical disk drive products by actively miniaturizing and lowering the manufacture cost while improving the precision of the gearing mechanism.
However, the body 13 of the conventional gearing mechanism 10 for the pick-up head of an optical disk drive not only has a complex structure which is difficult to be manufactured, but also consists of many components that waste time on manufacturing/assembly and component cost. In addition, the two racks 16 of the conventional gearing mechanism 10 for the pick-up head of an optical disk drive are disposed on the outside of the toothed frame 15 together. When one rack 16 is pushed off the chute of the screw thread 18 due to the fast rotation of the screw 12, the other rack 16 that also takes the fixing end of the toothed frame 15 and the elastic plate 17 as a bending pivot will be pushed off the chute of the screw thread 18 as well, causing slip of the racks and failure in power transmission to maintain the precision of positioning the pick-up head by the body 13. Hence there are still problems to be solved on the conventional rack structure in an optical disk drive.
An objective of the present invention is to provide a rack structure in an optical disk drive, which reduces time on manufacturing/assembly and component cost by forming the rack structure integrally to enhance product competitiveness.
Another objective of the present invention is to provide a rack structure in an optical disk drive, wherein the rack structure is assembled rapidly with the rack structure formed by metal pressing along with the connecting part of the pick-up head to enhance the precision of gearing.
A further objective of the present invention is to provide a rack structure in an optical disk drive, wherein a reinforcement is formed integrally in the rack structure for enhancing the plate strength of the rack structure, so as to provide the elasticity for pushing the rack.
A still further objective of the present invention is to provide a rack structure in an optical disk drive, wherein racks with complementary bending pivots are formed for the rack structure, so that when one rack is pushed off, the other rack will be pushed tight against the screw spontaneously, whereby maintaining the regular power transmission.
A still further objective of the present invention is to provide a rack structure in an optical disk drive, wherein a stopper is formed on the front end of the body to enhance the elasticity of the engagement of the rack nearby and to strengthen the pivot of leverage for the rack to engage with the screw spontaneously, so as to maintain the power transmission.
In order to achieve the foregoing objectives of the invention, the rack structure in an optical disk drive according to the present invention is formed integrally by pressing a metal plate; a connecting fixing part is disposed on a body; a brace is formed by bending down a periphery of the body; a convex or a concave trench is pressed near a front end of the body to form a secondary reinforcement; a reinforcement is formed by bending down near the middle of the front end of the body, an elastic support is extended from the front end of the reinforcement and bent parallel to the front end of the body; a space is maintained between the elastic support and the body; a horizontal slot is pressed in the middle of the elastic support to form an upper support and a lower support; a first rack is disposed on one end connecting the upper support, of the lower support; the other end of the lower support is extended from the reinforcement to form a bending pivot; and a second rack is formed on the other end of the tipper support.
The optical disk drive equipped with the rack structure according to the present invention rotates a screw by a gearing mechanism using a gearing motor to drive a screw thread. A guiding pole is disposed next to the screw in parallel. A connecting part is disposed on the pick-up head and sleeves the guiding pole. The rack structure is formed integrally by pressing. A fixing part is disposed on the body for fixed connection with the connecting part. The front end of the body is bent down to form a reinforcement. An elastic support is extended from the front end of the reinforcement and bent parallel to the front end of the body. A space is maintained between the elastic support and the body. At least one rack is formed on the elastic support, so the elastic support is supported by the reinforcement and sticks out of the connecting part, causing the rack to engage with the screw thread.
The techniques employed by the present invention to achieve the foregoing objectives and the effects thereof are described hereinafter by way of examples with reference to the accompanying drawings.
The body 21 is flat for being fixed to the connecting part 31 of the pick-up head 30, and the shape thereof may vary with the shape of the connecting part 31 of the pick-up head 30 to match with each other. The fixing part 22 is disposed in the back of the body 21 and formed with a plurality of holes by punch pressing the body 21 as a connecting structure. The plurality of holes includes a positioning hole 27, an adjusting hole 28, and a fixing hole 29. The positioning hole 27 is circular for forming relative positioning to the connecting part 31. The adjusting hole 28 is a slightly elongated circular hole for adjusting the positioning error relative to the connecting part 31 for easy assembly. The fixing hole 29 is a circular hole with a greater diameter for forming connection with the connecting part 31. The braces 23 are formed by bending down several legs in the periphery of the body 21, which are mainly used for leaning against the connecting part 31 laterally to enhance the horizontal support of the rack structure 20. The braces 23 may also be formed by bending down several legs of different heights on the connecting part 31 in accordance with the height drop of the connecting part 31, so as to provide the rack structure 20 with vertical support.
In addition, the reinforcement 24 is formed by bending down near the middle of the front end of the body 21. The reinforcement 24 is substantially perpendicular to the body 21 for reinforcing the structural strength in the middle of the flat body 21. The elastic support 25 is extended from the front end of the reinforcement 24 and bent substantially parallel to the front end of the body 21 along the direction in which the reinforcement 24 is perpendicular to the body 21. A space is maintained between the elastic support 25 and the body 21 for allowing free swing of the elastic support 25. Further, the rack 26 is formed by pressing the front end of the elastic support 25 substantially in a vertical direction, and the surface of the rack faces the outside of the front end of the body 21. The elastic support 25, however, may also be bent to adjust the direction of the engagement of the rack 26.
Referring to
As a result, the rack structure in an optical disk drive according to the first embodiment of the present invention may manufacture multiple components by pressing once in accordance with the rack structure formed integrally by metal pressing, which not only enhances the competitiveness of optical disk drive products by reducing time on manufacturing/assembly of the rack structure and component cost, but also securely fixes the rack structure along with the connecting part of the pick-up head, as well as improving the structural strength of the rack by the reinforcement formed integrally in the rack structure to provide the elasticity of pushing the rack, whereby achieving the purpose of enhancing the precision of gearing.
The rack structure 40 may be formed integrally by pressing metal to reduce time on manufacturing/assembly of the rack structure and component cost in this embodiment. Referring to
Accordingly, in the rack structure 40 in an optical disk drive according to the second embodiment of the present invention, a rack is pressed on both ends of the elastic support 45 respectively, and a bending pivot is formed using the middle of the U-shaped elastic support 45, so that among the racks having complementary force, when one rack is pushed off, the other rack will be pushed tight against the screw spontaneously, whereby maintaining the regular power transmission of the gearing mechanism of the pick-up head.
In addition, the secondary reinforcement 69 is pressed near the front end of the body 61 in this embodiment. The secondary reinforcement 69 may be a convex or a concave trench formed by pressing. In this embodiment, the secondary reinforcement 69 is formed in the shape of a cross to enhance the structural strength of the flat rack structure 60, which not only provides the rack structure 60 with greater strength to support the pick-up head moving rapidly, but also provides the elastic support 65 sticking out with better support to improve the reliability of engagement.
When the first rack 75 or the second rack 76 is pushed off the screw thread, the stud 78 of the stopper 77 may lean against the upper support 79 to enhance the elasticity of the rack engaging with the screw. In the meantime, a rack is pushed off the screw thread. One end of the upper support 79 may also be pushed to force the other end of the upper support 79 to countermove and engage with the screw thread in accordance with the leverage using the pivot of the stud 78, whereby providing the rack structure 70 with greater reliability of engagement.
When the first rack 87 or the second rack 88 is pushed off the screw thread, the studs 84, 85 of the stoppers 82, 83 may lean against the upper support 86 respectively to enhance the elasticity of each rack engaging with the screw nearby. In the meantime, a rack is pushed off the screw thread. One end of the upper support 86 may also be pushed to force the other end of the upper support 86 to countermove and engage with the screw thread in accordance with the leverage using the pivots of the studs 84, 85, whereby providing the rack structure 80 with greater reliability of engagement.
Accordingly, the rack structure in an optical disk drive according to the present invention may enhance the elasticity of the engagement of the rack by the stopper formed in the front of the body using the pivot of stud nearby, and strengthen the leverage of the upper support to push the two racks against each other, whereby achieving the purpose of engaging with the screw spontaneously.
The preferred embodiments of the present invention have been disclosed in the examples. However the examples should not be construed as a limitation on the actual applicable scope of the invention, and as such, all modifications and alterations without departing from the spirits of the invention and appended claims shall remain within the protected scope and claims of the invention.
Number | Date | Country | Kind |
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096150417 | Dec 2007 | TW | national |