The invention generally relates to a keyswitch structure. Particularly, the invention relates to a keyswitch structure of low noise design.
The keycaps of larger-sized keys of keyboard (such as Space key, Enter key, Caps Lock key, Shift key) have a larger aspect ratio, so one or more linking bars are usually used to enhance the structural strength of such keycaps. However, when the user presses the keycap on the non-center portion (such as end portions), and the pressing force is larger than the supporting force of the linking bar(s), the linking bar is readily deformed and hits the underlying keyswitch component (such as baseplate, casing) to generate noisy sound, impairing the operation smoothness and comfortability.
It is an object of the invention to provide a keyswitch structure to effectively reduce the operation noise.
It is another object of the invention to provide a keyswitch structure of low noise design that can provide a buffer effect to eliminate or reduce noise generated by collision of the linking bar with the underlying keyswitch components (e.g. baseplate) during operation.
It is yet another object of the invention to provide a keyswitch structure having a buffer design that utilizes the multi-layered membrane switch to form a bridge buffer portion, so as to effectively reduce noise without increasing the material cost.
In an embodiment, the invention provides a keyswitch structure including a baseplate, a keycap disposed over the baseplate and configured to be movable relative to the baseplate, a membrane switch disposed between the keycap and the baseplate and configured to have a first buffer portion with two first open edges opposite to each other, and a first linking bar connected to the keycap and disposed between the keycap and the membrane switch, the first linking bar having a first long side and a first short side connected to each other, wherein when the keycap moves relative to the baseplate, the first buffer portion provides buffer to the first short side.
In another embodiment, the invention provides a keyswitch structure including a baseplate, a keycap disposed over the baseplate and configured to be movable relative to the baseplate, a membrane switch disposed between the keycap and the baseplate and configured to have a second buffer portion with two second open edges opposite to each other, and a first linking bar connected to the keycap and disposed between the keycap and the membrane switch, the first linking bar having a first long side and a first short side connected to each other, wherein when the keycap moves relative to the baseplate, the second buffer portion provides buffer to an end section of the first long side.
In an embodiment, the first linking bar is a planar frame body. When no pressing force is applied to the keycap, the planar frame body is substantially parallel to the baseplate.
In an embodiment, the baseplate has an inner plate hole located under the first buffer portion.
In an embodiment, the membrane switch has two first film holes, and the first buffer portion is located between the two first film holes.
In an embodiment, the baseplate has an inner plate hole located under the first buffer portion, and the inner plate hole communicates with the two first film holes.
In an embodiment, the membrane switch further has a second buffer portion with two second open edges opposite to each other. When the keycap moves relative to the baseplate, the second buffer portion provides buffer to an end section of the first long side.
In an embodiment, the baseplate has an inner plate hole and two outer plate holes. The two outer plate holes are spaced apart from each other. One of the two outer plate holes is located under the second buffer portion. The inner plate hole is located under the first buffer portion and between the two outer plate holes.
In an embodiment, the baseplate has an outer plate hole located under the second buffer portion.
In an embodiment, the membrane switch has a first film hole and a second film hole, and the second buffer portion is located between the first film hole and the second film hole.
In an embodiment, the baseplate has an outer plate hole, and the outer plate hole communicates with the first film hole and the second film hole.
In an embodiment, the membrane switch further has a third buffer portion. The second film hole is located between the second buffer portion and the third buffer portion.
In an embodiment, the keyswitch structure further includes a second linking bar connected to the keycap outside the first linking bar and disposed between the keycap and the membrane switch. The second linking bar has a second long side and a second short side connected to each other. When the keycap moves relative to the baseplate, the first buffer portion provides buffer to the second short side, or the second buffer portion provides buffer to an end section of the second long side.
In an embodiment, the keycap has a plurality of connection portions including at least two outer connection portions and an inner connection portion between the at least two outer connection portions. The length of the at least two connection portions extending from the keycap is larger than the length of the inner connection portion extending from the keycap, so when the first linking bar is connected to the plurality of connection portions, the keycap has a substantially upwardly curved profile.
Compared with the prior art, the keyswitch structure of the invention utilizes the membrane switch to form a buffer portion with open edges to provide the buffer effect during the operation of keyswitch, so as to prevent or reduce the noisy sound generated by collision of the linking bar with the baseplate. Moreover, the keyswitch structure of the invention utilizes the membrane switch to form a buffer portion to effectively reduce noise without increasing the material cost.
The invention provides a keyswitch structure of low noise design. Particularly, the keyswitch structure of the invention can be a keyswitch of the computer keyboard, but not limited thereto. The keyswitch structure of the invention can be any suitable keyswitch structure having the linking bar connected to the keycap, such as larger-sized key of the keyboard, but not limited thereto. Hereafter, the keyswitch structure of the invention will be described in detail with reference to the drawings.
Referring to
It is noted that according to practical application, the keyswitch structure 10 may further include other components, such as a support mechanism 170 (such as scissors-like support, a butterfly-like support, cantilever support) to support the keycap 120 to move up-down relative to the baseplate 110, a restoring unit (not shown) including an elastic restoring unit (such as rubber dome or spring) or a magnetic restoring unit (such as magnets) to provide a restoring force capable of enabling the keycap 120 to return to its original position when no pressing force is applied, a balance bar 160 configured to improve the linkage relationship of the keycap 120, etc.
Specifically, the first linking bar 140 is only connected to the keycap 120 to increase the structural strength of the keycap 120. The first linking bar 140 has the first long side 142 and the first short side 144 connected to each other. In an embodiment, the first linking bar 140 can be a planar frame body, so two first short sides 144 respectively connected to end sections of two first long sides 142 to from a rectangular frame body. In an embodiment, the first linking bar 140 is preferably a non-closed frame bar, which has an opening (such as first opening 146) to increase the deformability of the first linking bar 140 and to improve the assembly convenience as the first linking bar 140 is to be connected to the keycap 120. For example, the first linking bar 140 preferably has a circular cross section for the bar body (i.e., the cross section of the bar body is circular) and can be formed by bending a metal line, but not limited thereto. In other embodiments, according to design requirements, the first linking bar 140 may have a bar body of oval or square shaped cross section and can be made from any suitable materials to enhance the structural strength of the keycap 120. In this embodiment, the first opening 146 of the first linking bar 140 is formed at the first short side 144, i.e., two open ends of the first linking bar 140 are two opposite ends of the interrupted first short side 144, but not limited thereto. In another embodiment, the first opening 146 of the first linking bar 140 can be formed at the portion where the first short side 144 and the first long side 142 are connected, i.e., two open ends of the first linking bar 140 is an open end of one of the first short sides 144 and an open end of the corresponding first long side 142.
As shown in the drawings, the keyswitch structure 10 can further include a second linking bar 150, and the second linking bar 150 is only connected to the keycap 120 to further enhance the structural strength of the keycap 120, but not limited thereto. According to practical applications, the keyswitch structure 10 can include one or more linking bars to provide the keycap 120 with the desired structural strength. In an embodiment, the second linking bar 150 has a structure similar to that of the first linking bar 140. Specifically, the second linking bar 150 has a second long side 152 and a second short side 154 connected to each other. The second linking bar 150 can be a planar frame body, so two second short sides 154 are respectively connected to end sections of two second long sides 152 to from a rectangular frame body. The second linking bar 150 is preferably a non-closed frame bar to increase the deformability of the second linking bar 150 and to improve the assembly convenience as the second linking bar 150 is to be connected to the keycap 120. For example, the second opening 156 of the second linking bar 150 is formed at the second short side 154 (i.e., one of the second short sides 154 is interrupted to have two opened ends) or at the portion where the second short side 154 and the second long side 152 are connected (i.e., one of the second short sides 154 and it corresponding second long side 152 have adjacent open ends). In this embodiment, the second linking bar 150 is preferably connected to the keycap 120 outside the first linking bar 140 and disposed between the keycap 120 and the membrane switch 130. In other words, the length of the second long side 152 of the second linking bar 150 is larger than that of the first long side 142 of the first linking bar 140, and the length of the second short side 154 of the second linking bar 150 is larger than that of the first short side 144 of the first linking bar 140, so the second linking bar 150 surrounds outside the first linking bar 140. Moreover, when the second linking bar 150 surrounds outside the first linking bar 140, the second opening 156 of the second linking bar 150 and the first opening 146 of the first linking bar 140 are preferably disposed at two opposite sides in the longitudinal direction (such as the X-axis direction), to balance the structural strength of the keycap 120.
Correspondingly, the keycap 120 can have a plurality of first connection portions 122 and a plurality of second connection portions 124, which are configured to connect the first linking bar 140 and the second linking bar 150, respectively. The plurality of first connection portions 122 is disposed on the lower surface of the keycap 120 corresponding to the frame contour of the first linking bar 140 to connect the corresponding bar body of the first linking bar 140 (such as the two first long sides 142). The second connection portions 124 are disposed on the lower surface of the keycap 120 corresponding to the frame contour of the second linking bar 150 to connect the corresponding bar body of the second linking bar 150 (such as the two second long sides 152). In this embodiment, the second connection portion 124 is closer to the outer edge of the keycap 120 than the first connection portion 122 is, so the second linking bar 150 is connected to the keycap 120 at the outer side of the first linking bar 140. In addition, under the configuration that the planar frame shaped first linking bar 140 and second linking bar 150 are connected to the keycap 120, when no force is applied to the keycap 120, the planar frame body of linking bar 140 or 150 is substantially parallel to the baseplate 110 (or the keycap 120).
Moreover, the keycap 120 can further have a plurality of coupling portions 128a, 128b configured to connect or couple with the support mechanism 170. For example, the coupling portions 128a are configured to couple with the keycap end of the first frame 172 of the support mechanism 170, and the coupling portions 128b are configured to couple with the keycap end of the second frame 174 of the support mechanism 170. Correspondingly, the baseplate 110 can have a plurality of connecting portions 118a, 118b configured to connect or couple with the support mechanism 170. For example, the connecting portions 118a are configured to couple with the baseplate end of the first frame 172, and the connecting portions 118b are configured to couple with the baseplate end of the second frame 174. As such, the support mechanism 170 can support the keycap 120 to move relative to the baseplate 110. In this embodiment, the support mechanism 170 takes the scissors-like support mechanism as an example, so the first frame 172 (i.e., the outer frame) is rotatably connected to the outer side of the second frame 174 (i.e., the inner frame), but not limited thereto. According to practical applications, the support mechanism 170 can have any suitable structure to support the keycap 120 to move relative to the baseplate 110.
Referring to
As shown in
It is noted that the membrane switch 130 is illustrated to have both of the first buffer portion 132 and the second buffer portion 134 in the embodiment, but not limited thereto. According to practical applications, the membrane switch 130 can have one of the first buffer portion 132 and the second buffer portion 134 to provide buffer to the short side or the end section of the long side of the linking bar.
Moreover, the membrane switch 130 can have a third buffer portion 136, and the second film hole 133 is located between the second buffer portion 134 and the third buffer portion 136. Specifically, the third buffer portion 136 further provides the buffer effect to the end section of the long side of the linking bar (e.g. the end sections of the first long side 142 and the second long side 152). The second buffer portion 134 is closer to the end section of the long side than the third buffer portion 136 is. The third buffer portion 136 has one open edge, such as the hole border of the second film hole 133 along the Y-axis direction opposite to the second open edge 134b, so as to allow the end section of the long side to extend beyond the open edge across the second film hole 133. The buffer effect of the third buffer portion 136 contributed from one open edge is smaller than the buffer effect of the first buffer portion 132 (or the second buffer portion 134), which is contributed from two open edges, and the supportability of the third buffer portion 136 is larger than that of the first buffer portion 132 (or the second buffer portion 134).
It is noted that the size, shape, location, number of the buffer portion (e.g. the first buffer portion 132, the second buffer portion 134, the third buffer portion 136) can be designed according to the desired cushioning elasticity and supportability. For example, the longer the buffer portion is (i.e., the longer the open edge is), or the greater the number of open edges is, the weaker the supportability is, and the better the buffer effect is. The shorter the buffer portion is (i.e., the shorter the open edge is), or the less the number of open edges is, the stronger the supportability is, and the poorer the buffer effect is. Moreover, the smaller the width of the buffer portion in the extending direction of the linking bar to be supported is (i.e., the smaller the distance between the two open edges is), the weaker the supportability is, and the better the buffer effect is. The greater the width of the buffer portion in the extending direction of the linking bar to be supported is (i.e., the greater the distance between the two open edges is), the stronger the supportability is, and the poorer the buffer effect is.
Corresponding to the design of the buffer portion, the baseplate 110 can have one or more plate holes to suspend the buffer portion, so as to increase the cushioning elasticity. Referring to
Similarly, corresponding to the design of the second buffer portion 134, the baseplate 110 has an outer plate hole 114, and the outer plate hole 114 is located under the second buffer portion 134. Specifically, the baseplate 110 can have two outer plate holes 114, which are configured to correspond to two second buffer portions 134, respectively. As shown in
In this embodiment, the outer plate hole 114 communicates with both of the first film hole 131 and the second film hole 133, but not limited thereto. According to practical applications, the first film hole 131 can be further divided into a first sub-film hole and a second sub-film hole. The first sub-film hole and the second sub-film hole are arranged along the extending direction of the short side of the linking bar (e.g. the Y-axis direction), and can communicate or not communicate with each other (communicate with each other in this embodiment). When the first sub-film hole and the second sub-film hole do not communicate with each other, the inner plate hole 112 communicates with one of the first sub-film hole and the second sub-film hole of the first film hole 131, and the outer plate hole 114 communicates with the other of the first sub-film hole and the second sub-film hole of the first film hole 131. In other words, in this embodiment, the membrane switch 130 is illustrated to have a larger first film hole 131 to communicate with both of the inner plate hole 112 and the outer plate hole 114 of the baseplate 110, but not limited thereto. In other embodiments (not shown), the membrane switch 130 may have two separate (or independent) first sub-film hole and second sub-film hole, which do not communicate with each other and are configured to communicate with the inner plate hole 112 and the outer plate hole 114, respectively.
Referring to
As shown in
Moreover, as shown in
Although the preferred embodiments of the present invention have been described herein, the above description is merely illustrative. The preferred embodiments disclosed will not limit the scope of the present invention. Further modification of the invention herein disclosed will occur to those skilled in the respective arts and all such modifications are deemed to be within the scope of the invention as defined by the appended claims.
Number | Date | Country | Kind |
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111137906 | Oct 2022 | TW | national |