This non-provisional application claims priority under 35 U.S.C. §119(a) to Patent Application No(s). 100103267 filed in Taiwan, R.O.C. on Jan. 28, 2011, the entire contents of which are hereby incorporated by reference.
The present invention relates to a key structure, and more particularly to a key structure of a keyboard device.
Generally, the common input device of a computer system includes for example a mouse device, a keyboard device, a trackball device, and the like. Via the keyboard device, the user may directly input characters and commands into the computer system. As a consequence, most users and most manufacturers of the input devices pay much attention to the development of the keyboard devices.
Hereinafter, the configurations and the functions of a conventional keyboard device will be illustrated with reference to
Hereinafter, the key structure of the conventional keyboard device will be illustrated with reference to
The scissors-type connecting member 21 comprises a first frame 211 and a second frame 212. A first end 2111 of the first frame 211 is connected with the base plate fixing structure 201. In addition, the first end 2111 of the first frame 211 is fixed between the base plate fixing hook 2011 and the stopping structure 2012. A second end 2112 of the first frame 211 is connected with the keycap sliding hook 222. In addition, the second end 2112 of the first frame 211 may be slid in the keycap sliding hook 222. A first end 2121 of the second frame 212 is connected with the keycap fixing structure 221. In addition, the first end 2121 of the second frame 212 is fixed in the keycap fixing structure 221. A second end 2122 of the second frame 212 is connected with the base plate sliding hook 202. In addition, the second end 2122 of the second frame 212 may be slid in the base plate sliding hook 202.
When the key structure 2 is depressed, the keycap 22 is moved downwardly to push against the elastic element 23, and thus the membrane switch 24 is triggered by the elastic element 23 to generate a key signal. At the same time, the second end 2112 of the first frame 211 and the second end 2122 of the second frame 212 of the scissors-type connecting member 21 are moved within the keycap sliding hook 222 and the base plate sliding hook 202, respectively. Under this circumstance, the scissors-type connecting member 21 is switched from an open-scissors state to a folded state. Whereas, when the depressing force exerted on the key structure 2 is eliminated, an elastic force provided by the elastic element 23 is exerted on the keycap 22. Due to the elastic force, the keycap 22 is moved upwardly with respect to the base plate 20, and thus the scissors-type connecting member 21 is switched from the folded state to the open-scissors state. Consequently, the keycap 22 is returned to its original position.
The configurations of the key structure 2 of the conventional keyboard device have been described above. However, some problems occur during the process of assembling the key structure 2. For example, the first end 2111 of the first frame 211 is firstly introduced into the entrance 2011A of the base plate fixing hook 2011 from the second side 204 of the base plate 20, then the scissors-type connecting member 21 is pressed down to have the first end 2111 of the first frame 211 locate between the base plate fixing hook 2011 and the stopping structure 2012, and finally the second end 2122 of the second frame 212 is introduced into the entrance 2021 of the base plate sliding hook 202 through the entrance 2021 of the base plate sliding hook 202 from the first side 203 of the base plate 20. Since the process of assembling the key structure 2 is very complicated, it is necessary to manually assemble the key structure 2. During the assembling process, since the complicated assembling tasks may fatigue the workers, the assembling efficiency is usually unsatisfied. Moreover, during the assembling process, the improper working postures of the user may damage the base plate 20 or the scissors-type connecting member 21.
The present invention relates to a key structure of a keyboard device that is easily assembled.
In accordance with an aspect of the present invention, there is provided a key structure of a keyboard device. The key structure includes a scissors-type connecting member and a base plate. The scissors-type connecting member includes a first frame and a second frame. The first frame includes a base plate fixing shaft and a keycap sliding shaft. The base plate fixing shaft is arranged at a first end of the first frame. The keycap sliding shaft is arranged at a second end of the first frame. The second frame is connected with the first frame, and includes a base plate sliding shaft and a keycap fixing shaft. The keycap fixing shaft is arranged at a first end of the second frame. The keycap fixing shaft is arranged at a second end of the second frame. The base plate is connected with the scissors-type connecting member. The base plate includes a first base plate perforation, a base plate fixing hook, a stopping structure and a base plate sliding hook. The first base plate perforation is arranged at a second side of the base plate for accommodating the first end of the first frame. The base plate fixing hook is arranged at a second side of the first base plate perforation to be contacted with the base plate fixing shaft. An entrance of the base plate fixing hook faces a first side of the base plate. The stopping structure is arranged at a first side of the first base plate perforation and protruded from a top surface of the base plate for stopping the base plate fixing shaft from being out of a space between the base plate fixing hook and the stopping structure. A gap between the stopping structure and the entrance of the base plate fixing hook is smaller than a diameter of the base plate fixing shaft. The base plate sliding hook is arranged at the first side of the base plate. An entrance of the base plate sliding hook faces the first side of the base plate for accommodating the base plate sliding shaft.
In an embodiment, the key structure further includes a membrane switch, a keycap and an elastic element. The membrane switch is disposed on the base plate. When the membrane switch is triggered, the membrane switch generates a key signal. The keycap is connected with the scissors-type connecting member. When the keycap is depressed, the membrane switch is triggered. The elastic element is disposed on the membrane switch. An upper portion of the elastic element is in contact with the keycap, and a lower portion of the elastic element is in contact with the membrane switch. When the elastic element is pushed by the keycap, the membrane switch is triggered by the elastic element. Whereas, when a depressing force exerted on the keycap is eliminated, an elastic force provided by the elastic element is exerted on the keycap.
In an embodiment, the keycap includes a keycap fixing structure and a keycap sliding hook. The keycap fixing structure is disposed over the base plate fixing hook for accommodating the keycap fixing shaft of the scissors-type connecting member and fixing the keycap fixing shaft therein. The keycap sliding hook is arranged at a first side of the keycap for accommodating the keycap sliding shaft.
In an embodiment, when the keycap is depressed, the keycap fixing shaft and the base plate fixing shaft are respectively rotated within the keycap fixing structure and the base plate fixing hook, and the keycap sliding shaft and the base plate sliding shaft are respectively moved within the keycap sliding hook and the base plate sliding hook and toward the first side of the base plate, so that the scissors-type connecting member is switched from an open-scissors state to a folded state and the elastic element is pushed by the keycap to trigger the membrane switch to generate the key signal. Whereas, when the depressing force exerted on the keycap is eliminated, the elastic force provided by the elastic element is exerted on the keycap. In response to the elastic force, the keycap fixing shaft and the base plate fixing shaft are respectively rotated within the keycap fixing structure and the base plate fixing hook, and the keycap sliding shaft and the base plate sliding shaft are respectively moved within the keycap sliding hook and the base plate sliding hook and toward the second side of the base plate, so that the keycap is moved to an original position.
In an embodiment, the first frame has a first bottom surface, and the second frame has a second bottom surface. The base plate fixing shaft is protruded from the first bottom surface. The base plate sliding shaft is protruded from the second bottom surface.
In an embodiment, the base plate further includes a second base plate perforation, which is arranged at the first side of the base plate, and disposed in the vicinity of the base plate sliding hook for accommodating the base plate sliding shaft.
In an embodiment, the membrane switch includes a first membrane slot and a second membrane slot. The first membrane slot is arranged at a second side of the membrane switch, wherein the base plate fixing shaft and the base plate fixing hook are penetrated through the first membrane slot. The second membrane slot is arranged at a first side of the membrane switch, wherein the base plate sliding shaft and the base plate sliding hook are penetrated through the second membrane slot.
In accordance with an aspect of the present invention, there is provided a key structure of a keyboard device. The key structure includes a scissors-type connecting member and a base plate. The scissors-type connecting member includes a first frame and a second frame. The first frame includes a base plate fixing shaft, a keycap sliding shaft and a bulge. The base plate fixing shaft is arranged at a first end of the first frame. The bulge is arranged at a middle portion of the base plate fixing shaft. The keycap sliding shaft is arranged at a second end of the first frame. The second frame is connected with the first frame, and includes a base plate sliding shaft and a keycap fixing shaft. The keycap fixing shaft is arranged at a first end of the second frame, and the keycap fixing shaft is arranged at a second end of the second frame. The base plate is connected with the scissors-type connecting member. The base plate includes a first base plate perforation, a base plate fixing hook, a second base plate perforation and a base plate sliding hook. The first base plate perforation is arranged at a second side of the base plate for accommodating the first end of the first frame. The base plate fixing hook is arranged at a second side of the first base plate perforation to be contacted with the base plate fixing shaft. An entrance of the base plate fixing hook faces a first side of the base plate. The second base plate perforation is arranged at a first side of the first base plate perforation for accommodating the bulge, wherein a sidewall of the second base plate perforation is in contact with a sidewall of the bulge. The base plate sliding hook is arranged at the first side of the base plate, wherein an entrance of the base plate sliding hook faces the first side of the base plate for accommodating the base plate sliding shaft.
In an embodiment, the key structure further includes a membrane switch, a keycap and an elastic element. The membrane switch is disposed on the base plate. When the membrane switch is triggered, the membrane switch generates a key signal. The keycap is connected with the scissors-type connecting member. When the keycap is depressed, the membrane switch is triggered. The elastic element is disposed on the membrane switch. An upper portion of the elastic element is in contact with the keycap, and a lower portion of the elastic element is in contact with the membrane switch. When the elastic element is pushed by the keycap, the membrane switch is triggered by the elastic element. Whereas, when a depressing force exerted on the keycap is eliminated, an elastic force provided by the elastic element is exerted on the keycap.
In an embodiment, the keycap includes a keycap fixing structure and a keycap sliding hook. The keycap fixing structure is disposed over the base plate fixing hook for accommodating the keycap fixing shaft of the scissors-type connecting member and fixing the keycap fixing shaft therein. The keycap sliding hook is arranged at a first side of the keycap for accommodating the keycap sliding shaft.
In an embodiment, when the keycap is depressed, the keycap fixing shaft and the base plate fixing shaft are respectively rotated within the keycap fixing structure and the base plate fixing hook, and the keycap sliding shaft and the base plate sliding shaft are respectively moved within the keycap sliding hook and the base plate sliding hook and toward the first side of the base plate, so that the scissors-type connecting member is switched from an open-scissors state to a folded state and the elastic element is pushed by the keycap to trigger the membrane switch to generate the key signal. Whereas, when the depressing force exerted on the keycap is eliminated, the elastic force provided by the elastic element is exerted on the keycap. In response to the elastic force, the keycap fixing shaft and the base plate fixing shaft are respectively rotated within the keycap fixing structure and the base plate fixing hook, and the keycap sliding shaft and the base plate sliding shaft are respectively moved within the keycap sliding hook and the base plate sliding hook and toward the second side of the base plate, so that the keycap is moved to an original position.
In an embodiment, the first frame has a first bottom surface, and the second frame has a second bottom surface. The base plate fixing shaft is protruded from the first bottom surface. The base plate sliding shaft is protruded from the second bottom surface.
In an embodiment, the base plate further includes a third base plate perforation, which is arranged at the first side of the base plate, and disposed in the vicinity of the base plate sliding hook for accommodating the base plate sliding shaft.
In an embodiment, the membrane switch includes a first membrane slot and a second membrane slot. The first membrane slot is arranged at a second side of the membrane switch, wherein the base plate fixing shaft and the base plate fixing hook are penetrated through the first membrane slot. The second membrane slot is arranged at a first side of the membrane switch, wherein the base plate sliding shaft and the base plate sliding hook are penetrated through the second membrane slot.
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:
For obviating the drawbacks encountered from the prior art, the present invention provides a key structure of a keyboard device.
Please refer to
Hereinafter, a process of connecting the scissors-type connecting member 30 with the base plate 31 of the key structure 3 will be illustrated with reference to
The base plate sliding shaft 3021 of the second frame 302 is accommodated within the base plate sliding hook 314 and in contact with the base plate sliding hook 314. The base plate sliding shaft 3021 is movable in the base plate sliding hook 314. In response to a depressing action of the key structure 3, the base plate sliding shaft 3021 and the base plate fixing shaft 3011 are synchronously rotated. Moreover, the first end 3013 of the first frame 301 and the part of the base plate fixing shaft 3011 protruded from the first bottom surface 3015 are inserted into the first base plate perforation 311. In addition, the base plate sliding shaft 3021 is inserted into the second base plate perforation 315.
Please refer to
When the keycap 32 of the key structure 3 of the keyboard device is depressed, the keycap fixing shaft 3022 and the base plate fixing shaft 3011 are rotated within the keycap fixing structure 321 and the base plate fixing hook 312, respectively. At the same time, the keycap sliding shaft 3012 and the base plate sliding shaft 3021 are respectively moved within the keycap sliding hook 322 and the base plate sliding hook 314 and toward the first side 317 of the base plate 31. Under this circumstance, the scissors-type connecting member 30 is switched from an open-scissors state to a folded state. Since the keycap 32 is moved downwardly to push against the elastic element 34, the membrane switch 33 is triggered by the elastic element 34 to generate a key signal (see
Whereas, when the depressing force exerted on the keycap 32 is eliminated, an elastic force provided by the elastic element 34 is exerted on the keycap 32. Due to the elastic force, the keycap fixing shaft 3022 and the base plate fixing shaft 3011 are rotated within the keycap fixing structure 321 and the base plate fixing hook 312, respectively. At the same time, the keycap sliding shaft 3012 and the base plate sliding shaft 3021 are respectively moved within the keycap sliding hook 322 and the base plate sliding hook 314 and toward the second side 318 of the base plate 31. Consequently, the keycap 32 is moved to an original position where the keycap 32 has not been depressed.
During the process of connecting the scissors-type connecting member 30 with the base plate 31, the base plate sliding shaft 3021 of the second frame 302 is introduced into the base plate sliding hook 314 through the entrance 3141 of the base plate sliding hook 314. In addition, the base plate fixing shaft 3011 of the first frame 301 is introduced into the base plate fixing hook 312 through the entrance 3121 of the base plate fixing hook 312. In the base plate fixing hook 312, a gap g2 between the entrance 3121 of the base plate fixing hook 312 and the stopping structure 313 is smaller than the diameter d of the base plate fixing shaft 3011. Normally, the base plate fixing shaft 3011 is stopped from entering the space between the entrance 3121 of the base plate fixing hook 312 and the stopping structure 313. Whereas, for connecting the scissors-type connecting member 30 with the base plate 31, the base plate fixing shaft 3011 is pushed against the base plate fixing hook 312 and the stopping structure 313 to result in deformation of the stopping structure 313. Due to deformation of the stopping structure 313, the gap g2 between the entrance 3121 of the base plate fixing hook 312 and the stopping structure 313 is greater than or equal to the diameter d of the base plate fixing shaft 3011. Under this circumstance, the base plate fixing shaft 3011 is allowed to be introduced into and accommodated within the space between the base plate fixing hook 312 and the stopping structure 313. After the base plate fixing shaft 3011 is transported through the space between the entrance 3121 of the base plate fixing hook 312 and the stopping structure 313, the deformed stopping structure 313 is restored to its original shape. Meanwhile, the gap g2 is returned to be smaller than the diameter d of the base plate fixing shaft 3011, thereby stopping the base plate fixing shaft 3011 from being out of the space between the base plate fixing hook 312 and the stopping structure 313. The configurations and operating principles of the key structure of the keyboard device according to the first embodiment of the present invention has been described above.
The present invention further provides a second embodiment of the key structure.
Please refer to
Hereinafter, a process of connecting the scissors-type connecting member 40 with the base plate 41 of the key structure 4 will be illustrated with reference to
The base plate sliding shaft 4021 of the second frame 402 is accommodated within the base plate sliding hook 414 and in contact with the base plate sliding hook 414. The base plate sliding shaft 4021 is movable in the base plate sliding hook 414. In response to a depressing action of the key structure 4, the base plate sliding shaft 4021 and the base plate fixing shaft 4011 are synchronously rotated. The depressing actions of the key structure 4 are similar to those of the first embodiment, and are not redundantly described herein. Moreover, the first end 4014 of the first frame 401 and the part of the base plate fixing shaft 4011 protruded from the first bottom surface 4015 are inserted into the first base plate perforation 411. The bulge 4013 at the middle portion of the first end 4014 of the first frame 401 (e.g. at the middle portion of the base plate fixing shaft 4011) is inserted into the second base plate perforation 413. In addition, the base plate sliding shaft 4021 is inserted into the third base plate perforation 415 (see
Please refer to
Please refer to
During the scissors-type connecting member 40 is connected with the base plate 41, the base plate sliding shaft 4021 of the second frame 402 should be introduced into the base plate sliding hook 414 through the entrance 4141 of the base plate sliding hook 414. In addition, the base plate fixing shaft 4011 of the first frame 401 is introduced into the base plate fixing hook 412 through the entrance 4121 of the base plate fixing hook 412. However, during the base plate sliding shaft 4021 introduced into the base plate sliding hook 414, since the bulge 4013 at the middle portion of the base plate fixing shaft 4011 is hindered by a top surface 416 of the base plate 41 and fails to be accommodated within the second base plate perforation 413, the base plate sliding shaft 4021 is not in direct contact with the base plate sliding hook 414. Whereas, for connecting the scissors-type connecting member 40 with the base plate 41, the base plate fixing shaft 4011 is pushed against the top surface 416 to result in deformation of the base plate fixing shaft 4011. Due to deformation of the base plate fixing shaft 4011, the bulge 4013 at the middle portion of the base plate fixing shaft 4011 can be inserted into and accommodated within the second base plate perforation 413. After the bulge 4013 is accommodated within the second base plate perforation 413, the deformed base plate fixing shaft 4011 is restored to its original shape, thereby stopping the bulge 4013 from being out of the second base plate perforation 413.
From the above description, in the key structure of the keyboard device of the present invention, the entrance of the base plate fixing hook and the entrance of the base plate sliding hook face the same side. In such way, the scissors-type connecting member can be easily transported through the entrance of the base plate fixing hook and the entrance of the base plate sliding hook, so that the key structure can be easily assembled. In addition to the benefit of being easily assembled, the key structure of the keyboard device of the present invention uses the stopping structure or the second base plate perforation to confine the base plate fixing shaft, thereby stopping the base plate fixing shaft from being out of base plate fixing hook. In comparison with the key structure of the conventional keyboard device, the key structure of the keyboard device of the present invention is assembled more easily.
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 embodiment. 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 such modifications and similar structures.
Number | Date | Country | Kind |
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100103267 A | Jan 2011 | TW | national |
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Number | Date | Country | |
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20120193202 A1 | Aug 2012 | US |