1. Technical Field
The present disclosure relates to sliding button mechanisms, and particularly to a sliding button mechanism used in a portable electronic device.
2. Description of Related Art
With the development of technology, many portable electronic devices (e.g., mobile phones and personal digital assistants) are designed to be multifunctional. For example, a mobile phone can also have the functions of capturing photos, receiving broadcasts, etc. In use, these multifunctional portable electronic devices can be switched into different working modes corresponding to these functions by sliding button mechanisms.
In many conventional sliding button mechanisms, the buttons are usually not in tight contact with the housings. Thus, portable electronic devices using these sliding button mechanisms have assembling clearances formed between their housings and the buttons, which unfortunately may allow contaminants to enter the device and cause problems. Moreover, the sliding button can control volume and etc. of the portable electronic devices. When the volume is turned up or down, the button must be continuously slid towards one direction in a sliding slot of the portable electronic devices. However, the sliding slot usually has a longer length so as to greatly affect the appearance of the portable electronic devices.
Therefore, there is a room for improvement within the art.
Many aspects of a sliding button mechanism can be better understood with reference to the following drawings. The components in the drawings are not necessarily to scale, the emphasis instead being placed upon clearly illustrating the principles of the sliding button mechanism. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Referring to the drawings,
The first housing 10 includes a first bottom wall 11 and a first peripheral wall 12 perpendicular to the bottom wall 11. The first peripheral wall 12 defines a first opening 122. The first housing 10 further includes two supporting portions 13, two stopping plates 14, two resisting plates 15, and a limiting plate 16. The two supporting portions 13 protrude from an interior surface of the first peripheral wall 12, and are symmetrically positioned at opposite sides of the first opening 122. The two stopping plates 14 perpendicularly extend from the supporting portions 13. The two resisting plates 15 extend from the bottom wall 11 adjacent to the first opening 122. Each of the resisting plates 15 connects to an end of supporting portions 13. The resisting plates 15 are L-shaped and face each other. Each of the resisting plates 15 slightly leans toward the first peripheral wall 12. The limiting plate 16 connects to the two resisting plates 15. The limiting plate 16, the first peripheral wall 12, and two resisting plates 15 cooperatively defines a receiving slot 17 for accommodating the printed circuit board 60.
The second housing 20 has a shape corresponding to the first housing 10 so as to attach to the first housing 10. The second housing 20 includes a second peripheral wall 21 defining a second opening 212 corresponding to the first opening 122.
The connecting member 30 is made of conductive elastic materials. The connecting member 30 includes a main section 31 and a plurality of arms 32. The main section 31 defines a through hole 311 and two notches 312. The through hole 311 is defined in a central portion of the main section 31. The two notches 312 are defined in opposite sides of the main section 31 correspondingly. Each of the arms 32 symmetrically extends from opposite sides of the main section 31 correspondingly. The arms 32 are all bent to a same side of the main section 31, thereby the connecting member 30 has a curved shape. Each of the arms 32 has a protrusion 321 formed on a distal end thereof. In the exemplary embodiment, there are four arms 32.
The button 40 includes a main portion 41, an operating portion 42, two latching portions 43, two clasp portions 44, and a projection 45. The main portion 41 includes a first surface 411 and a second surface 412 opposite to the first surface 411. The operating portion 42 protrudes from a center of the first surface 411. Each of the latching portions 43 includes a latching board 431 and a post 432. Each latching board 431 perpendicularly extends from two ends of the main portion 41. Each post 432 protrudes from the latching board 431, slightly leaning away from the main portion 41. Therefore, the resilient elements 50 are disposed between the latching board 431 and the resisting plate 15 presses the button 40 to tightly abut against the interior surface of the peripheral wall 12, thus avoid exposing a predetermined sliding space of the button 40. The two clasp portions 44 symmetrically extend from opposite peripheral edges of the first surface 411. Each of clasp portions 44 includes a latching bar 441 and a latching block 442 perpendicularly extending from a middle of the latching bar 441. The projection 45 corresponding to the through hole 311 is positioned on a central portion of the second surface 412.
The resilient elements 50 is sleeved on the posts 432 correspondingly, and are disposed between the resisting plate 15 and the latching board 431 for providing a resilient force to the button 40.
The printed circuit board 60 is a part of the inner circuitry of the portable electronic device. The printed circuit board 60 includes a main body 61, a first contact area 62, a second contact area 63, and a third contact area 64 separately formed on a surface of the main body 61. When the third contact area 64 and the first contact area 62 are conducted to each other, the portable electronic device performs a function, such as turning up volume of the portable electronic device. Accordingly, when the third contact area 64 and the second contact area 63 are conducted, the portable electronic device achieves the other function, such as turning down volume of the portable electronic device.
Referring to
Referring to
Conversely, when the button 40 is pushed by an opposite external force, the connecting member 30 simultaneously contacts with the third contact area 64 and the second contact area 63, the volume of the portable electronic device is turned down.
The sliding button mechanism 100 includes two resilient elements 50 sleevable on the post 432 and the resisting plate 15. The post 432 and the resisting plate 15 are tilted. Therefore, the resilient elements 50 are disposed between the latching board 431 and the resisting plate 15 can compress the button 40 to tightly abut against the interior surface of the peripheral wall 12, thus efficiently avoid exposing a predetermined sliding space of the button 40. Furthermore, the connecting member 30 can continuously and simultaneously contact with two contact areas, the printed circuit board 60 can achieve a continuous adjustment function.
It is to be understood, however, that even through numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and function of the invention, the disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
Number | Date | Country | Kind |
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2008 1 0306484 | Dec 2008 | CN | national |
Number | Name | Date | Kind |
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4983795 | Suzuki | Jan 1991 | A |
6313420 | Ohashi | Nov 2001 | B1 |
Number | Date | Country | |
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20100155215 A1 | Jun 2010 | US |