1. Field of the Invention
The present invention relates to a button mechanism and a related electronic device, and more particularly, to a button mechanism and a related electronic device with strong structure and stably touching feel.
2. Description of the Prior Art
Please refer to
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The present invention provides a button mechanism and a related electronic device with strong structure and stably touching feel for solving above drawbacks.
According to the claimed invention, a button mechanism is disposed on an optical disk drive. The button mechanism includes a base, a button and two resilient components. The base includes an accommodating slot structure and two guiding pillars, the guiding pillars are respectively disposed by sides of the accommodating slot structure. The button includes a pressing portion and two supporting portions. The pressing portion is movably disposed inside the accommodating slot structure. The supporting portions are respectively disposed by opposite sides of the pressing portion. A first end of the supporting portion is connected to the pressing portion, and a second end of the supporting portion opposite to the first end is slidably disposed on the guiding pillar. The resilient components are disposed on the corresponding guiding pillars. Two ends of the resilient component respectively contact against the optical disk driver and the second end of the supporting portion. The resilient component stores a resilient recovering force when the supporting portion slides relative to the guiding pillar at a predetermined direction to compress the resilient component, and the resilient recovering force drives the supporting portion to slide relative to the guiding pillar at a direction opposite to the predetermined direction.
According to the claimed invention, the first end of each supporting portion is substantially disposed on a middle of a side of the pressing portion.
According to the claimed invention, the supporting portion is a perpendicular stretching portion disposed on a side of the pressing portion adjacent to the guiding pillar.
According to the claimed invention, the supporting portion is an erect bar.
According to the claimed invention, the button mechanism further includes at least one clamping component disposed on the base. The clamping component includes two contacting blocks disposed by each other, and the contacting blocks respectively contact against two sides of the supporting portion.
According to the claimed invention, the supporting portion is a rectangular structure, the contacting blocks respectively clamp opposite lateral surfaces of the first end of the supporting portion.
According to the claimed invention, a guiding slot is formed between the contacting blocks, and a slotting direction of the guiding slot is substantially parallel to a structural direction of the guiding pillar.
According to the claimed invention, a first engaging portion is disposed on an inner lateral wall of the accommodating slot structure, a second engaging portion is disposed on an outer lateral wall of the pressing portion, and the first engaging portion is slidably engaged with the second engaging portion.
According to the claimed invention, the supporting portion is connected to the pressing portion in a resiliently bending manner.
According to the claimed invention, the resilient component is a compressive spring or an annular rubber.
According to the claimed invention, an electronic device includes an optical disk drive and a button mechanism. The button mechanism is disposed by the optical disk drive for actuating a switch of the optical disk drive. The button mechanism includes a base, a button and two resilient components. The base includes an accommodating slot structure and two guiding pillars, the guiding pillars are respectively disposed by sides of the accommodating slot structure. The button includes a pressing portion and two supporting portions. The pressing portion is movably disposed inside the accommodating slot structure. The supporting portions are respectively disposed by opposite sides of the pressing portion. A first end of the supporting portion is connected to the pressing portion, and a second end of the supporting portion opposite to the first end is slidably disposed on the guiding pillar. The resilient components are disposed on the corresponding guiding pillars. Two ends of the resilient component respectively contact against the optical disk driver and the second end of the supporting portion. The resilient component stores a resilient recovering force when the supporting portion slides relative to the guiding pillar at a predetermined direction to compress the resilient component, and the resilient recovering force drives the supporting portion to slide relative to the guiding pillar at a direction opposite to the predetermined direction.
The button mechanism of the present invention has advantages of simple structure and easy operation. The drawing die is not generated when manufacturing the erect supporting portion, so that structural strength and stability of the button (combined with the supporting portion and the pressing portion) can be increased. The button mechanism of the present invention disposes the erect supporting portion on two ends of the stretching line of the gravity of the pressing portion, and replaces the conventional arm by the resilient component for providing the uniformly resilient recovering force, so as to enhance the touching feel and product yield of the button mechanism for increasing market competition.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
Please refer to
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The button mechanism 24 further includes two resilient components 42 respectively disposed on the corresponding guiding pillars 32. The resilient component 42 can be a compressive spring or an annular rubber, selectively. The resilient component 42 can store a resilient recovering force when the button 34 is pressed and deformed. As the button 34 is pressed, the supporting portion 38 of the button 34 can slide along the guiding pillar 32 to compress the resilient component 42. Application of the resilient component 42 is not limited to the above-mentioned embodiment, which depends on actual demand, and a detailed description is omitted herein for simplicity. When the resilient component 42 is disposed on the guiding pillar 32, two ends of the resilient component 42 respectively contact against a supporting wall (not shown in the figures) of the optical disk drive 22 and the second end 383 of the supporting portion 38. The supporting portion 38 slides relative to the guiding pillar 32 at a predetermined direction when the button 34 is pressed. The resilient recovering force of the resilient component 42 can drive the supporting portion 38 to slide relative to the guiding pillar 32 at a direction opposite to the predetermined direction, so as to move the button 34 back to an initial position.
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In addition, the button mechanism 24 further can include at least one clamping component 44 disposed on the base 28. Please refer to
A plurality of first engaging portions 46 can be disposed on an inner lateral wall 301 of the accommodating slot structure 30, and a plurality of second engaging portions 48 can be disposed on an outer lateral wall 361 of the pressing portion 36. The pressing portion 36 inserts into the accommodating slot structure 30 for relative slide when the button 34 moves relative to the base 28. In the meantime, each first engaging portion 46 is slidably engaged with the corresponding second engaging portion 48, to effectively prevent the button 34 from unexpected twisting as pressing and to accurately actuate the switch 26 by the actuating portion 40 of the button 34. Generally, the button mechanism 24 in this embodiment of the present invention preferably utilizes the resilient recovering force of the resilient component 42 to recover the button 34. The supporting portion 38 can be made of resilient material, which means the supporting portion 38 is connected to the pressing portion 36 is a resiliently bending manner, and the button mechanism 24 can integrate the resilient recovering force of the resilient component 42 and the supporting portion 38 for preferred operationally recovering feel.
Please refer to
In conclusion, the button mechanism of the present invention disposes the supporting portion on the middle of the lateral side of the pressing portion adjacent to the guiding pillar, so that the moment is not generated and the pressing portion is not twisted when operating the button. In addition, the supporting portion, which has no resilience, is recovered by the resilient recovering force of the resilient component. The button mechanism of the present invention utilizes the resilient component disposed on the guiding pillar to transform the external force applied to the button into the resilient recovering force, and the resilient recovering force can drive the button to recover when the external force is removed. Because the button mechanism does not utilize the supporting portion to provide the resilient recovering force, the supporting portion can be designed as the erect bar with perpendicular stretching form, to effectively prevent conventional drawbacks of the thin-curved resilient arm, such as difficult manufacturing (drawing die is formed accordingly) and resilient fatigue (the thin-curved resilient arm is broken easily). The button mechanism of the present invention further utilizes the clamping component disposed on the first end of the supporting portion to effectively prevent the button from unexpected rotation by constraint design of a clamped position of the supporting portion whereon the clamping component is disposed, and the lateral surfaces of the rectangular supporting portion clamped by the clamping component.
Comparing to the prior art, the button mechanism of the present invention has advantages of simple structure and easy operation. The drawing die is not generated when manufacturing the erect supporting portion, so that structural strength and stability of the button (combined with the supporting portion and the pressing portion) can be increased. The button mechanism of the present invention disposes the erect supporting portion on two ends of the stretching line of the gravity of the pressing portion, and replaces the conventional arm by the resilient component for providing the uniformly resilient recovering force, so as to enhance the touching feel and product yield of the button mechanism for increasing market competition.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Number | Date | Country | Kind |
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2013 1 0050864 | Feb 2013 | CN | national |
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7278147 | Pen | Oct 2007 | B2 |
8493742 | Li et al. | Jul 2013 | B2 |
8495666 | Fan | Jul 2013 | B1 |
8547704 | Kuo | Oct 2013 | B2 |
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Number | Date | Country |
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M277974 | Oct 2005 | TW |
201039367 | Nov 2010 | TW |
I373056 | Sep 2012 | TW |
I377566 | Nov 2012 | TW |
I380334 | Dec 2012 | TW |
Entry |
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Office action mailed on Sep. 11, 2014 for the Taiwan application No. 102109650, filing date: Mar. 19, 2013, p. 1 line 12˜14, p. 2˜5 and p. 6 line 1˜11. |
Number | Date | Country | |
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20140224630 A1 | Aug 2014 | US |