The invention relates to a loading mechanism for loading an interchangeable disc-like storage medium onto a disk drive arranged in a housing, for example a housing of the PCMCIA size, in particular for loading an approximately coin-size disk (coin disk) with a diameter of substantially 30 mm.
A loading mechanism of this type is used to move a disc-like storage medium, for example an optical storage medium, in a mechanical way into a predetermined position on a disk drive arranged in the housing. For this purpose, JP 09-306078 discloses a loading mechanism for a storage medium which is arranged in a cartridge on a tray. In order to move it onto the disk drive, the tray having the storage medium is pulled out of the predeterminedly positioned cartridge until it is above the disk drive and is then lowered. In this case, the storage medium is deposited in a predetermined position on a support on the disk drive. The loading mechanism takes up a great deal of space. In the case of a coin-size disk, the problem is additionally posed that relatively small disk motors also have relatively small shaft bearings, which means that these are less robust than the disk drive motors used in disk drives for larger storage media, for example having a diameter of 120 mm, and are loaded considerably by the abrupt separation of the storage medium from the disk drive.
The object of the invention is to provide a loading mechanism for loading an interchangeable disc-like storage medium into a housing according to the precharacterizing clause of claim 1 which saves space and permits loading and unloading which takes care of the motor of the disk drive and of the storage medium.
This object is achieved by the features of claim 1. Advantageous refinements are listed in the subclaims.
The invention consists in a loading mechanism for a housing in which a disk drive having a holder for the storage medium and a scanning device for the latter are arranged, which has a loading table which can be pivoted between a loading position at a distance from the holder and a deposition position on the holder and is provided with an actuating apparatus. In this case, the loading table is preferably attached on one side and is loaded by a spring force in the direction of the loading position. The actuating apparatus acts on the loading table and presses the latter into the deposition position and holds this in this position. By means of an opposing movement of the actuating apparatus, the spring-force-loaded loading table is freed from its pressed-down deposition position and pivoted into the loading position by the loading spring means. The loading table is cut out, at least in the scanning region predetermined by the scanning device.
This loading mechanism is advantageous in particular in the case of small disk drives in which, during fitting and removal, only low, defined forces must act, since the loading table having the storage medium is lowered counter to the spring force in a highly damped manner by means of a pivoting movement about an axis of rotation outside the holder and is held on the latter. As it is lowered, the storage medium is positioned accurately by a centring unit arranged on the holder, preferably designed as a lengthened axle of the disk drive motor formed as a centring mandrel. The loading mechanism is simple and not very complicated and needs only little overall space. The pivoting angle of the loading table is substantially 3° to 10°.
The holding of the storage medium on the holder can be carried out mechanically by latching means or preferably magnetically. Magnetic holding of the storage medium is carried out either directly by a magnetically effective material that is integrated into the storage medium and which is attracted by the permanent magnet rotor of the disk drive motor, or as a clamping action between two magnetically attracting parts, one part being firmly connected to the rotor of the disk drive motor. In the preferred embodiment, magnetic holding is carried out by the storage medium being attracted by the magnetic field of the rotor permanent magnet of the disk drive motor. During loading and unloading, the storage medium is lowered onto the holder and lifted off the holder by the loading table. Since the loading table is pivoted about an axis at a distance from the holder, the storage medium is not lowered onto the holder or pulled off the holder in a plane-parallel manner but is lowered gradually into the magnetic field and released from the magnetic field by means of slight tilting, coupled with a continuous increase and reduction, respectively, in the attraction forces. As a result, the forces acting in the axial direction are minimized and the disk drive motor is loaded to only a minimal extent.
The actuating apparatus is formed by a cam arranged on the loading table, preferably on one of the side edges adjacent to the attachment side, designed by way of example as a ramp, and a sliding element that can be brought into engagement therewith and is arranged on the housing. This sliding element is pushed against the cam which, in the process, with the loading table, is pressed towards the holder until in the deposition position, counter to the force of the spring means acting on said loading table. The sliding element is preferably formed by a sliding cover closing the housing. In this case, no separate fixing of the loading table has to be provided, since it is held in the deposition position against a spring element via the cam having the sliding cover.
Further advantages, in particular for mobile applications, are, firstly, the omission of a motor drive for the loading mechanism, since mechanical actuation by hand is provided. In the case of mobile applications operated with a battery or rechargeable battery, the energy requirements must be reduced as far as possible. Secondly, the loading operation of a storage medium is implemented in the smallest possible space since, as compared with known flap cover solutions, the sliding cover is moved parallel to the housing and the space requirement during the loading operation arising from projecting components around the housing is minimized.
The loading table can be attached in the manner of a hinge to a bearing shaft, on which at least one spiral torsion spring supported at one end on the housing and at the other end on the loading table is arranged, acting on the latter in the direction of the loading position. On the side facing away from the bearing shaft, depending on its size, the loading table can be provided with a cut-out in the region of the holder of the disk drive, in order that the storage medium can be deposited on the holder.
In order that a storage medium can be loaded even in a virtually vertical position of the loading table located in its loading position, in a further embodiment, said loading table is provided on its attached side edge and the two side edges adjacent to the latter with hook-like holding elements for the storage medium which, when one such is inserted, engage over its edge. A storage medium can thus be pushed under these holding elements and held by them.
The invention will be explained below by using two exemplary embodiments. In this case, reference is made to an optical storage medium. Of course, the invention can also be used for other storage media, for example magnetic storage media. In the associated drawings:
To this end, the loading mechanism has a cam 10 arranged firmly on the edge of the loading table 7 and having a sliding surface which is formed on the side facing away from the loading table 7, which rises in the direction of the loading table 7 and with which the sliding cover 2 can be brought into engagement during its closing movement parallel to the bearing shaft 8, so that the loading table 7 is pressed into its deposition position, in which the storage medium 4 located on said loading table 7 is deposited on the motor (3,
In
If the storage medium 4 is to be exchanged, the PCMCIA housing 1 is opened by pushing the sliding cover 2 back. At the end of the opening movement (
A further design variant provides a loading table which, in its geometry, is designed to hold a storage medium 4 mounted in a protective housing (cartridge). In this case, the configuration of the holding elements 17 is adapted to the geometry of the protective housing in a manner similar to
Number | Date | Country | Kind |
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10 2005 021 338.3 | May 2005 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2006/061487 | 4/10/2006 | WO | 00 | 11/2/2007 |