1. Technical Field
The present invention generally relates to sliding mechanisms and, more particularly, to a sliding mechanism used for a portable electronic device with two or more housings.
2. Discussion of the Related Art
Sliding mechanisms are widely used in portable electronic devices, such as slide-type mobile phones and slide-type personal digital assistants. A typical slide mechanism generally includes a first sheet, a second sheet, and a torsion spring positioned between the first sheet and the second sheet. The first sheet is slidably connected to the second sheet. The torsion spring includes a spiral portion, and a first arm and a second arm extending from the spiral portion. The first arm is fixed to the second sheet, and the second arm is fixed to the first sheet.
In use, the torsion spring provides an elastic force enabling the first plate to slide along the second plate after the first plate is manually moved to a predetermined position with respect to the second plate.
However, when the torsion spring is deformed, the force applied on the torsion spring is concentrated on a portion between the first and second arms and the spiral portion. Thus, the portions between the first and second arms and the spiral portion are easily damaged, and a work life of the sliding mechanism is unduly shortened.
What is needed, therefore, is a sliding mechanism which overcomes the above-described shortcomings.
The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present sliding mechanism and portable electronic device. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views, and all the views are schematic.
Referring to
The sliding mechanism 200 includes a slide plate 21, a main plate 22, a clock spring 23, and a pair of guiding rails 24. The slide plate 21 is slidably connected to the main plate 22. The clock spring 23 is positioned between the slide plate 21 and the main plate 22. An end of the clock spring 23 is fixed to the slide plate 21 and another end is fixed to the main plate 22. The clock spring 23 may be a spiral torsion spring. The clock spring 23 is on substantially a same plane as the main plate 22 and the slide plate 21.
Referring to
In the illustrated embodiment, the main plate 22 of the sliding mechanism 200 is substantially rectangular shaped. The main plate 22 includes a main body 221 and a pair of slide strips 223 extending from opposite sides of the main body 221. The main body 221 defines an oblong opening 224 adjacent to an end portion and a fixing hole 2213. The oblong opening 224 is configured for assembling the sliding mechanism 200 easily. The fixing hole 2213 is adjacent to the slide strips 223. The main plate 22 and the slide plate 21 may be metallic and made by punching.
The sliding mechanism 200 further includes a first limiting portion 225 and a second limiting portion 226. The first limiting portion 225 extends from a first end of the main plate 22, and the second limiting portion 226 extends from a second end of the main plate 22 opposite to the first end of the main plate 22. The first limiting portion 225 and the second limiting portion 226 are configured to restrict a sliding range of the slide plate 21. In the illustrated embodiment, the sliding mechanism includes two first limiting portions 225 and two second limiting portions 226.
The clock spring 23 includes a first spiral portion 235, a second spiral portion 236, and a connecting portion 238 connecting the first spiral portion 235 to the second spiral portion 236. A cross-section of the clock spring 23 may be circular, rectangular, or elliptical. The connecting portion 238 may be substantially curved. The first spiral portion 235 is positioned symmetrically to the second spiral portion 236. The coil direction of the first spiral portion 235 is opposite to the coil direction of the second spiral portion 238. The first spiral portion 235 has a first free end 2311, and the second spiral portion 236 has a second free end 2321. The first free end 2311 and the second free end 2321 are substantially ring-shaped.
The guiding rails 24 may be substantially rectangular shaped. A first sidewall (not labeled) forms a latching protrusion 242, and a second sidewall (not labeled) opposite to the first sidewall defines a guiding slot 244. The guiding rails 24 may be integrally formed with the slide plate 21 by an insert-molded technology. The slide plate 21, as an insert member, is inserted into an injection mold, and then melted plastic is injected into the injection mold to form the guiding rails 24 on the slide plate 21. In an insert-molding process, the melted plastic flows into the latching holes 2131 and the receiving grooves 213 of the slide plate 21. The melted plastic is joined around the latching holes 2131 to form a bonding structure for improving the bonding strength between the slide plate 21 and the guiding rails 24.
The sliding mechanism 200 further includes a first rivet 251 and a second rivet 252.
In assembly of the sliding mechanism 200, the first spiral portion 235 of the clock spring 23 is attached to the main plate 22, via the first rivet 251 engaging in the first free end 2311 and the fixing hole 2213 of the main plate 22. The second spiral portion 236 of the clock spring 23 is attached to the slide plate 21, by engaging the second rivet 252 in the second free end 2321 and the engaging hole 2113 of the slide plate 21. The clock spring 23 is positioned between the slide plate 21 and the main plate 22. The slide strips 223 of the main plate 22 are inserted into the guiding slots 244 of the corresponding guiding rails 24, so that the guiding rails 24 are slidably connected to the main plate 22. Accordingly, the slide plate 21 is slidable relative to the main plate 22 because the slide plate 21 is integrally formed with the guiding rails 24.
Referring to
Referring to
As shown in
When moving the slide plate 21 to the open or close position, the first spiral portion 235 and the second spiral portion 236 of the clock spring 23 simultaneously compresses, and then the first spiral portion 235 and the second spiral portion 236 simultaneously decompresses. In this way, the force applied on the clock spring 23 is distributed evenly on the clock spring 23, thereby preventing a stress concentration.
The sliding mechanism 200 has many advantages. One advantage is that the clock spring 23 includes a first spiral portion 235 and a second spiral portion 236. When the clock spring 23 is compressed, the external force applied on the clock spring 23 is distributed evenly on the whole clock spring 23. Therefore, the life of the clock spring 23 is prolonged. Another advantage is that the clock spring 23 is on a same plane. Thus, the clock spring 23 occupies a relatively small space. Lastly, since the guiding rails 24 are integrally formed with the slide plate 21, the sliding of the guiding rails 24 and the slide plate 21 is stable.
It is believed that the present embodiments and their advantages will be understood from the foregoing description, and it will be apparent that various changes may be made thereto without departing from the spirit and scope of the embodiments or sacrificing all of its material advantages, the examples hereinbefore described merely being preferred or exemplary embodiments.
Number | Date | Country | Kind |
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200810303064.3 | Jul 2008 | CN | national |