1. Field of the Invention
The present invention relates to a disc-conveying structure of a slot-in optical disc device, and more particularly, to a slot-in optical disc device providing a conveying mechanism and a positioning mechanism to load, operate and eject the optical storage media disc.
2. Description of Related Art
A conventional slot-in optical disc device, such as DVD-ROM, VCD-ROM, CD-ROM and onboard audio system, is provided with a sensor to automatically detect the insertion of an optical disc in the loading slot and start the conveying mechanism and procedure thereof.
Nowadays there are two main types of optical discs, i.e. 8-cm diameter disc and 12-diameter disc, but the slot-in optical disc device is usually designed for 12-cm diameter disc, not for 8-cm diameter disc. According to public technical literatures, it is known that through detecting the loading of the disc by optical sensors or two pairs of optical interceptors, the optical disc device is able to determine whether the disc is an 8-cm diameter disc or a 12-cm diameter disc. The device then is able to control a clamping/conveying device to hold and convey the optical disc according to different types of discs. There is another type of slot-in optical disc device having the similar structure as that mentioned above, but the principle of the technology is based on the time difference with which discs of different dimensions pass over the optical sensors. Furthermore, there is another different technology disclosed to determine the dimension of the disc passing through the optical sensor, which is related to the technology of the present invention. However, detailed description thereof is not going to be addressed hereinafter for brevity.
According to the aforementioned discussion, it is noted that none of the above patents is able to use the same clamping device to pickup discs of different dimensions. Therefore, the structure in the patents is complicated and thus the manufacture cost thereof is high.
The present invention is directed to a disc-conveying structure of slot-in optical disc device to resolve one or even more restrictions and deficiencies described above in prior art.
It is therefore that an objective of the present invention is to provide a switch device in mechanism form to start or close the optical disc-conveying procedure.
Another objective of the present invention is to provide a clamping device in mechanism form to clamp an 8-cm diameter disc which is shorter than the width of the loading slot to the correct working area of the disc read/write head, even though the disc is not put in the center of the loading slot. With the same mechanism, the 8-cm diameter disc or the 12-cm diameter disc can be positioned and ejected from the optical disc device.
To attain the disc-conveying structure of slot-in disc device, an optical disc device at least comprises a switch device, which is a mechanism to start or close the optical disc-conveying procedure according to the action of the optical disc; a roller device, which is a cylindrical rod pivotally connected to a main chassis of the optical disc device, and with driving of a motor, is formed as a conveying device for optical disc; and a clamping device, which is a caging mechanism for the optical disc to restrict the optical disc to be put in the correct working area such that the optical disc can be accessed successfully by the disc read/write head.
Other and further features, advantages and benefits of the invention will become apparent in the following description taken in conjunction with the following drawings. It is to be understood that the foregoing general description and following detailed description are exemplary and explanatory but are not to be restrictive of the invention. The accompanying drawings are incorporated in and constitute a part of this application and, together with the description, serve to explain the principles of the invention in general terms. Like numerals refer to like parts throughout the disclosure.
With reference to
As shown in
With reference to
The lock gate mechanism 11 has a plurality of guiding arms 111, and at one end of each guiding arm 111 a clamping bar 111a is extendedly formed at a certain angle to cooperate with the insertion of the optical disc A4 and the clamping bars 111a are located in opposite ends of the guiding arms. In the preferred embodiment, the angle is vertically downward. Moreover, each guiding arm 111 has grooves to mesh with a spur gear 111b pivotally connected to an appropriate location of the main chassis A2. At least one guiding arm 111 is connected to an elastic element 111c, which provides an elastic recovery force on the guiding arm 111 to retain the tendency of the guiding arm 111 toward unexpanded state when the guiding arm 111 is expanded. Guiding holes 111d are defined in the guiding arms 111 and parallel to slip directions of the guiding arms 111. A plurality of columns 113 mounted on the main chassis A2 pass into the guiding holes 111d respectively to restrict the guiding arms 111 to slip separately in opposite directions so as to avoid interference during expanding process, and the slip directions of the guiding arms 111 are confined to nearly parallel to the loading slot A3.
The limit switch 12 mounted on an appropriate location of the main chassis A2 is electrically connected to the on-off circuit of the roller device 2 (referring to
Based on the description and depiction above, the switch device 1 of the present invention is able to start or close the optical disc-conveying procedure.
With reference to
With reference to
As shown in
At the pivotal locations, the first lever arm 311 and the second lever arm 312 respectively radially elongate to form sectorial areas 311a, 312a each of which has an appropriate arc angle and an arc length thereof. The sectorial area 311a of the first lever arm 311 recesses inward along radial direction to form a first groove 311b and a second groove 311c. The difference in the arc angel between the first groove 311b and the second groove 311c in the sectorial area 311a is equal to the difference in the included angle between the minimum included angle θ1 and the maximum included angle θ2. A plurality of guiding pieces 315 are mounted on the main chassis A2 in relative positions to the arcs of the sectorial areas 311a, 312a and one face of each guiding piece 315 is above and close to the sectorial area 311a or 312a such that the first lever arm 311 and second lever arm 312 can gyrate more stably under the guiding pieces 315.
At least the first lever arm 311 or the second lever arm 312 is connected to an elastic element 314 disposed on the main chassis A2, and the elastic element 314 provides an elastic recovery force on the lever arm, which retains the tendency of the lever arm toward returning to the minimum included angle θ1.
The locking mechanism 32 includes a fixing lever 321 and a drawing lever 322.
The fixing lever 321 disposed on the main chassis A2 is designed to cooperate with the first lever arm 311. One end of the fixing lever 321 is initially held in the first groove 311b of the sectorial area 311a of the first lever arm 311, and a flange 321b is formed on a lateral side of the fixing lever 321. The fixing lever 321 is connected to an elastic element 321a disposed on the main chassis A2 and the elastic element 321a provides an elastic recovery force on the fixing lever 321. The fixing lever 321, therefore, has one dimensional movement and tends to be close to the sectorial areas 311a of the first lever arm 311 in the direction of the one dimensional movement.
The drawing lever 322 pivotally connected to the main chassis A2 of the optical disc device A has a front bar 322a and a rear bar 322b. One side of the drawing lever 322 is connected to an elastic element 322c disposed on the main chassis A2 and the elastic elements 322c provides an elastic recovery force to drive the drawing lever 322 to return to its initial position. The front bar 322a of the drawing lever 322 extends to the conveying route of the optical disc. The rear bar 322b of the drawing lever 322 extends close to the flange 321b formed on the fixing lever 321.
As shown in
With reference to
With reference to
It is the preferred condition that when the 8-cm diameter disc tangentially contacts with the first lever arm 311 and the second lever arm 312, the two tangential points form an included angle Φ (see in
With reference to
Based on the forementioned above, the clamping device of the disc-conveying structure of the slot-in optical disc device is able to accomplish the positioning of the 8-cm diameter disc and 12-cm diameter disc loaded into the disc device, and by the same mechanism, the optical disc is able to be ejected out of the disc device.
Although this invention has been disclosed and illustrated with reference to particular embodiments, the principles involved are susceptible for use in numerous other embodiments that will be apparent to persons skilled in the art. This invention is, therefore, to be limited only as indicated by the scope of the appended claims.