This disclosure relates to a key structure, in particular to a key structure applied to a keyboard.
Keyboards are common physical input devices used to assist users in operating or inputting signals to a personal desktop, laptop or tablet computer, or other electronic products with keyboards or external keyboards.
Specifically, the keyboard is composed of multiple key structures, in each of which a lifting member is used to support the keycap and ensure that the keycap is raised and lowered in a specific direction relative to the carrier. The specific implementation of the lifting member may be scissor structure or butterfly structure, and has a first end connected to the keycap and a second end connected to the carrier. The second end of the lifting member is a positioning hook slidably or rotatably engaged with the carrier. In the process of repeated lifting and lowering, the positioning hook is pulled by the second end of the lifting member, and it is easy to break due to insufficient structural strength, resulting in the floating of the second end of the lifting member, which affects the reliability of the operation.
The disclosure provides a key structure that helps to improve reliability of operation.
The key structure of the disclosure includes a carrier, a keycap, a lifting member, and an elastic member. The carrier includes a carrier body and multiple positioning hooks protruding from the carrier body. The carrier body has multiple vias, and the positioning hooks are respectively disposed corresponding to the vias. Orthographic projection of each of the positioning hooks falls in the corresponding via. Each of the positioning hooks includes a first positioning portion and a second positioning portion connected to the first positioning portion, and the first positioning portion and the second positioning portion of each of the positioning hooks are respectively connected to two inner wall surfaces connected to each other or two inner wall surfaces opposite to each other in the corresponding via. The keycap is disposed above the carrier body. The lifting member is disposed between the carrier body and the keycap. One end of the lifting member is connected to the keycap, and an other end of the lifting member is connected to the positioning hooks. The elastic member is disposed between the carrier body and the keycap.
According to an embodiment of the disclosure, the first positioning portion and the second positioning portion of each of the positioning hooks are respectively connected to the two inner wall surfaces connected to each other in the corresponding via. One of the inner wall surfaces of each of the vias is protruded with an extension support portion, and is connected to the first positioning portion or the second positioning portion of the corresponding positioning hook.
According to an embodiment of the disclosure, the key structure further includes a thin film circuit disposed on the carrier body, and located between the elastic member and the carrier body.
According to an embodiment of the disclosure, the thin film circuit has multiple through holes overlapping the vias, and the positioning hooks penetrate the through holes.
According to an embodiment of the disclosure, the key structure further includes a backlight module and the thin film circuit respectively disposed at two opposite sides of the carrier body. The thin film circuit has multiple through holes overlapping the vias.
According to an embodiment of the disclosure, the backlight module includes a circuit board, a light source, and a light guide plate. The light source and the light guide plate are disposed on the circuit board, the light guide plate has a recess for accommodating the light source. The light guide plate is located between the carrier body and the circuit board.
According to an embodiment of the disclosure, the backlight module includes a circuit board and multiple light sources. The light sources are disposed on the circuit board.
According to an embodiment of the disclosure, the key structure further includes an optical switch disposed on the thin film circuit. The keycap has a light blocking portion protruding toward the carrier body, and the optical switch is located on a moving path of the light blocking portion.
According to an embodiment of the disclosure, the other end of the lifting member contacts multiple bottom surfaces of the first positioning portions and multiple side surfaces of the second positioning portions of the positioning hooks.
According to an embodiment of the disclosure, the lifting member includes two lifting stands pivotally connected to each other. Each of the lifting stands has a first end and a second end opposite to the first end. The first end of each of the lifting stands is connected to the keycap, and the second end of each of the lifting stands is connected to two of the positioning hooks. The second end of each of the lifting stands contacts two of the bottom surfaces of two of the first positioning portions and two of the side surfaces of two of the second positioning portions of two of the positioning hooks.
According to an embodiment of the disclosure, the first positioning portion of each of the positioning hooks is partially protruding relative to the side surface of the second positioning portion to form a notch.
Based on the above, the key structure of the disclosure improves the structural strength of the positioning hooks and the strength of the connection between the positioning hooks and the carrier body to prevent the positioning hooks from breaking when they are pulled or to prevent the cracks between the positioning hooks and the carrier body when they are pulled, so as to improve the reliability of the operation.
To make the aforementioned more comprehensible, several accompanied with drawings are described in detail as follows.
The accompanying drawings are included to provide a further understanding of the disclosure, and are incorporated in and constitute a part of this specification. The drawings illustrate exemplary embodiments of the disclosure and, together with the description, serve to explain the principles of the disclosure.
The key structure 100 further includes a thin film circuit 150. The thin film circuit 150 is disposed on the carrier 110 and located between the elastic member 140 and the carrier 110. Specifically, top and bottom ends of the elastic member 140 contact the keycap 120 and the thin film circuit 150 respectively. When the keycap 120 is pressed and lowered (i.e., moved toward the carrier 110), the elastic member 140 is squeezed by the keycap 120 and deformed elastically, and the elastic member 140 is further squeezed to the thin film circuit 150, causing the circuit in the thin film circuit 150 to conduct to generate a trigger signal.
The two first positioning hooks 112 are symmetrically disposed and protrude from the carrier body 111. The two second positioning hooks 113 are symmetrically disposed and protrude from the carrier body 111. One end of the lifting member 130 is connected to the keycap 120, and an other end of the lifting member 130 is connected to the positioning hooks (including the two first positioning hooks 112 and the two second positioning hooks 113). Further, the lifting member 130 includes a first lifting stand 131 and a second lifting stand 132 pivotally connected to each other. A first end 131a of the first lifting stand 131 is connected to the keycap 120, and a second end 131b of the first lifting stand 131 is connected to the two first positioning hooks 112. On the other hand, a first end 132a of the second lifting stand 132 is connected to the keycap 120, and a second end 132b of the second lifting stand 132 is connected to the two second positioning hooks 113.
Each of the first positioning hooks 112 includes a first positioning portion 112a and a second positioning portion 112b connected to each other. A bottom surface 112c of the first positioning portion 112a serves as a stop surface of the second end 131b of the first lifting stand 131 in a first direction D1 (e.g., vertical direction), and the second end 131b of the first lifting stand 131 contacts the bottom surface 112c of the first positioning portion 112a. In addition, a side surface 112d of the second positioning portion 112b serves as a stop surface of the second end 131b of the first lifting stand 131 in a second direction D2 (e.g., horizontal direction), and the second end 131b of the first lifting stand 131 contacts the side surface 112d of the second positioning portion 112b. The second end 131b of the first lifting stand 131 is rotatably or slidably engaged with the first positioning hook 112 to rotate or slide relative to the carrier 110 within a defined range or stroke without disengaging from the carrier 110.
Each of the second positioning hooks 113 includes a first positioning portion 113a and a second positioning portion 113b connected to each other. A bottom surface 113c of the first positioning portion 113a serves as a stop surface of the second end 132b of the second lifting stand 132 in the first direction D1 (e.g., vertical direction), and the second end 132b of the second lifting stand 132 contacts the bottom surface 113c of the first positioning portion 113a. In addition, a side surface 113d of the second positioning portion 113b serves as a stop surface of the second end 132b of the second lifting stand 132 in the second direction D2 (e.g., horizontal direction), and the second end 132b of the second lifting stand 132 contacts the side surface 113d of the second positioning portion 113b. The second end 132b of the second lifting stand 132 is rotatably or slidably engaged with the second positioning hook 113 to rotate or slide relative to the carrier 110 within a defined range or stroke without disengaging from the carrier 110.
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Structures of each of the first positioning hooks 112 and each of the second positioning hooks 113 are the same or similar. The bottom surface 112c of the first positioning portion 112a of each of the first positioning hooks 112 faces the corresponding first via 111a, and the bottom surface 113c of the first positioning portion 113a of each of the second positioning hooks 113 faces the corresponding second via 111b. In addition, the side surface 112d of the second positioning portion 112b of each of the first positioning hooks 112 faces away from the side surface 113d of the second positioning portion 113b of each of the second positioning hooks 113.
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To sum up, in the key structure of the disclosure, the positioning hooks are formed on the carrier body by drawing technology, which have a high structural strength. In addition, the positioning hooks and the carrier body have at least two connections, which have a high connection strength. Therefore, the positioning hooks are not easily broken or cracked with the carrier body by the pulling of the lifting member during the repeated lifting and lowering of the lifting member, thus improving reliability of operation.
It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the disclosure covers modifications and variations provided that they fall within the scope of the following claims and their equivalents.
Number | Date | Country | Kind |
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202222454042.5 | Sep 2022 | CN | national |
This application claims the priority benefit of U.S. provisional application Ser. No. 63/348,022, filed on Jun. 2, 2022 and China application serial no. 202222454042.5, filed on Sep. 16, 2022. The entirety of each of the above-mentioned patent applications is hereby incorporated by reference herein and made a part of this specification.
Number | Date | Country | |
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63348022 | Jun 2022 | US |