The present invention relates to a key structure, and more particularly to a multiple key structure having a noise reduction function.
Generally, a keyboard device comprises plural keys. In addition to the ordinary keys, the plural keys comprise some keys with special appearance (e.g., multiple keys). Since the length of the multiple key is much larger than its width, some drawbacks occur. For example, while the multiple key is pressed down by the user, the multiple key is readily tilted and even jammed.
For solving this problem, a stabilizer bar is usually installed in the internal portion of the key structure. When the keycap is pressed down, the two lateral sides of the keycap can be maintained in the equilibrium state through the stabilizer bar.
In order to avoid the problem of the assembly interference caused by the manufacturing tolerance, it is a common method to reserve a gap at the junction between the stabilizer bar and the keycap. However, due to the gap, another problem occurs. For example, while the keycap is pressed down, the collision or movement between the keycap and the stabilizer bar is readily generated. Due to the collision or movement, unpleasant noise is generated and the operation of the user is adversely affected.
In other words, the conventional key structure needs to be further improved.
For solving the drawbacks of the conventional technologies, the present invention provides a key structure. The key structure is specially designed. Consequently, the gap that readily results in the collision or movement between the keycap and the stabilizer bar is eliminated, and the noise reduction efficacy is enhanced. In addition, the problem of the assembly interference caused by the manufacturing tolerance can be avoided or reduced.
In accordance with an aspect of the present invention, a key structure is provided. The key structure includes a frame member, a keycap and a stabilizer bar. The frame member includes at least one hook. The keycap including a bottom surface, a first clamping member and a second clamping member. The bottom surface faces the frame member. The first clamping member includes a first upper stopping part, a first lower stopping part and a first lateral stopping part. The second clamping member includes a second upper stopping part, a second lower stopping part and a second lateral stopping part. The stabilizer bar is arranged between the keycap and the frame member, and includes a shaft part, a first leg part and a second leg part. The first leg part and the second leg part are formed by bending two ends of the shaft part, respectively. The shaft part is received within the at least one hook. The first leg part is received within the first clamping member. The second leg part is received within the second clamping member. The first lateral stopping part is pushed against the first leg part along a first direction. The second lateral stopping part is pushed against the second leg part along a second direction. The first direction and the second direction are opposed to each other.
In an embodiment, the keycap further includes a first retaining wall, and the first retaining wall is protruded from the bottom surface of the keycap and toward the frame member.
In an embodiment, the first lower stopping part and the first lateral stopping part are disposed on the first retaining wall.
In an embodiment, the first retaining wall has a first opening.
In an embodiment, the first upper stopping part is protruded from the bottom surface of the keycap and toward the frame member, and the first upper stopping part is inserted into the first opening.
In an embodiment, the first opening is a closed-type opening or an open-type opening.
In an embodiment, the keycap further includes a first pillar structure, and the first pillar structure is protruded from the bottom surface of the keycap and toward the frame member. The frame member further includes a first sleeve, and the first sleeve has a first hollow portion.
In an embodiment, the key structure further includes an elastic element and a circuit board, and the first pillar structure is inserted into the first hollow portion and contacted with the elastic element. When the elastic element is subjected to deformation, the circuit board is triggered by the elastic element.
In an embodiment, the first leg part and the second leg part are arranged between the first lateral stopping part and the second lateral stopping part.
In an embodiment, the first lateral stopping part and the second lateral stopping part are arranged between the first leg part and the second leg part.
In accordance with another aspect of the present invention, a key structure is provided. The key structure includes a frame member, a keycap and a stabilizer bar. The frame member includes at least one hook. The keycap including a bottom surface, a first retaining wall and a second retaining wall. The bottom surface faces the frame member. The first retaining wall and the second retaining wall are protruded from the bottom surface of the keycap and toward the frame member. The first retaining wall has a first opening. The stabilizer bar is arranged between the keycap and the frame member, and includes a shaft part, a first leg part and a second leg part. The first leg part and the second leg part are formed by bending two ends of the shaft part, respectively. The shaft part is received within the at least one hook. The shaft part is only permitted to be rotated along an axial direction through the at least one hook. The first retaining wall is pushed against the first leg part along a first direction. The second retaining wall is pushed against the second leg part along a second direction. The first direction and the second direction are opposed to each other. In addition, the first retaining wall and the second retaining wall can stop the shaft part from being arbitrarily moved along the axial direction.
In an embodiment, the keycap further includes a first upper stopping part, a first lower stopping part and a first lateral stopping part. The first leg part is received within a region between the first upper stopping part, the first lower stopping part and the first lateral stopping part. The first lateral stopping part is pushed against the first leg part along the first direction.
In an embodiment, the first upper stopping part is protruded from the bottom surface of the keycap and toward the frame member, and the first upper stopping part is inserted into the first opening. The first lower stopping part and the first lateral stopping part are disposed on the first retaining wall.
In an embodiment, the first opening is a closed-type opening or an open-type opening.
In an embodiment, the keycap further includes a first pillar structure, and the first pillar structure is protruded from the bottom surface of the keycap and toward the frame member. The frame member further includes a first sleeve, and the first sleeve has a first hollow portion.
In an embodiment, the key structure further includes an elastic element and a circuit board. The first pillar structure is inserted into the first hollow portion and contacted with the elastic element. When the elastic element is subjected to deformation, the circuit board is triggered by the elastic element.
In an embodiment, the first leg part and the second leg part are arranged between the first retaining wall and the second retaining wall.
In an embodiment, the first retaining wall and the second retaining wall are arranged between the first leg part and the second leg part.
The above objects and advantages of the present invention will become more readily apparent to those ordinarily skilled in the art after reviewing the following detailed description and accompanying drawings, in which:
The present invention will now be described more specifically with reference to the following embodiments. It is to be noted that the following descriptions of preferred embodiments of this invention are presented herein for purpose of illustration and description only. In the following embodiments and drawings, the elements irrelevant to the concepts of the present invention are omitted and not shown.
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The keycap 3 further comprises two retaining walls 33 and 34. The two retaining walls 33 and 34 are protruded from the bottom surface 32 of the keycap 3 and toward the frame member 2. The retaining wall 33 has an opening 331. The retaining wall 34 has an opening 341.
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The upper stopping part 351 of the clamping member 35 is protruded from the bottom surface 32 of the keycap 3 and toward the frame member 2. In addition, the upper stopping part 351 is inserted into the opening 331 of the retaining wall 33. The lower stopping part 352 and the lateral stopping part 353 are disposed on the retaining wall 33. Since the retaining wall 33 is equipped with the opening 331 near the bottom surface 32 of the keycap 3, the lower stopping part 352 and the lateral stopping part 353 disposed on the retaining wall 33 have resettable elasticity. As shown in the drawings, the upper stopping part 351 is linked with the lower stopping part 352 and the lateral stopping part 353 through the retaining wall 33. In other words, the upper stopping part 351 is not directly contacted with the lower stopping part 352 or the lateral stopping part 353. Consequently, a specified gap between the upper stopping part 351 and the lower stopping part 352 or between the upper stopping part 351 and the lateral stopping part 353 is maintained. This structural design is helpful for maintaining the resettable elasticity of the lower stopping part 352 and the lateral stopping part 353.
The upper stopping part 361 of the clamping member 36 is protruded from the bottom surface 32 of the keycap 3 and toward the frame member 2. In addition, the upper stopping part 361 is inserted into the opening 341 of the retaining wall 34. The lower stopping part 362 and the lateral stopping part 363 are disposed on the retaining wall 34. Since the retaining wall 34 is equipped with the opening 341 near the bottom surface 32 of the keycap 3, the lower stopping part 362 and the lateral stopping part 363 disposed on the retaining wall 34 have resettable elasticity. As shown in the drawings, the upper stopping part 361 is linked with the lower stopping part 362 and the lateral stopping part 363 through the retaining wall 34. In other words, the upper stopping part 361 is not directly contacted with the lower stopping part 362 or the lateral stopping part 363. Consequently, a specified gap between the upper stopping part 361 and the lower stopping part 362 or between the upper stopping part 361 and the lateral stopping part 363 is maintained. This structural design is helpful for maintaining the resettable elasticity of the lower stopping part 362 and the lateral stopping part 363.
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Due to the above structural design, the gap that readily results in the collision or movement between the keycap 3 and the stabilizer bar 4 is eliminated. Consequently, the noise reduction efficacy is enhanced, and the tactile feel of pressing the key structure 1 is improved. Moreover, since the lateral stopping part 353 on the retaining wall 33 and the lateral stopping part 363 on the retaining wall 34 have resettable elasticity, the problem of the assembly interference caused by the manufacturing tolerance of the keycap 3 and the stabilizer bar 4 can be avoided or reduced.
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In an embodiment, the circuit board 6 is disposed on a supporting member 7. The supporting member 7 and the frame member 2 are fixed on each other or assembled with each other. In an embodiment, the supporting member 7 is a part of the key structure 1. Alternatively, in another embodiment, the supporting member 7 is a component outside the key structure 1. For example, in case that the key structure 1 is installed in a keyboard device, the supporting member 7 is a base plate or a bracket of the keyboard device.
In the above embodiment of the key structure 1, the pillar structure 37 is moved downwardly to compress the elastic element 5, and the deformed elastic element 5 triggers the underlying circuit board 6 to generate the pressing signal. It is noted that numerous modifications and alterations may be made while retaining the teachings of the invention. For example, in another embodiment, the key structure is equipped with a switch under the keycap 3. For example, the switch is installed on the frame member 2. Since the switch itself comprises a resettable pillar, an elastic element (e.g., a spring) and pins, the keycap 3 can directly trigger the switch to generate a pressing signal.
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While the invention has been described in terms of what is presently considered to be the most practical and preferred embodiments, it is to be understood that the invention needs not be limited to the disclosed embodiments. On the contrary, it is intended to cover various modifications and similar arrangements included within the spirit and scope of the appended claims which are to be accorded with the broadest interpretation so as to encompass all modifications and similar structures.
Number | Date | Country | Kind |
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110112097 | Apr 2021 | TW | national |
Number | Name | Date | Kind |
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8957332 | Yamada | Feb 2015 | B2 |
20140367240 | Lin | Dec 2014 | A1 |
20180025859 | Chen | Jan 2018 | A1 |