This application claims the benefit of People's Republic of China application Serial No. 201710561518.6, filed Jul. 11, 2017, the subject matter of which is incorporated herein by reference.
The invention relates in general to a key structure, and more particularly to an ultra-thin key structure.
A conventional key uses a scissor structure to guide a key cap to move up and down. The key cap has a first sliding portion and a first positioning portion. The bottom plate has a second sliding portion and a second positioning portion. One arm of the scissor structure has a first sliding shaft and a first pivoting shaft. The other arm of the scissor structure has a second sliding shaft and a second pivoting shaft. The first sliding shaft can be slidably disposed in the first sliding portion of the key cap. The second sliding shaft can be slidably disposed in the second sliding portion of the bottom plate.
However, when the key is pressed, the key cap is laterally displaced for an invalid course along the slide direction of the first sliding portion and is vertically displaced towards the bottom plate for an invalid course. Then, the key cap will link the scissor structure to be displaced towards the bottom plate for a valid course to press the elastomer. Thus, the key structure cannot meet the thinness requirement of the ultra-thin keyboard. Furthermore, if the invalid course is too long, valid course at corners of the key cap will be insufficient. Thus, the problems of having poor tactile sensation at corners of the key cap and having poor electrical conduction at corners of the key cap will arise.
The invention is directed to a key structure, wherein the cap has two pivoting units, and two fixing shafts can be pivotally connected between the pivoting structure and the cap, such that lateral displacement of the key can be effectively reduced. Due to the vertical valid course of the key naturally generated from the tolerance gap generated during mold manufacturing, invalid lateral displacement of the key can be reduced, such that the user's tactile sensation at corners of the cap can be improved and the problem of poor electrical conduction at corners of the cap can be resolved.
According to one embodiment of the present invention, a key structure including a base, a pivoting structure and a cap is provided. The base includes a plate, a first limiting unit and a second limiting unit. The pivoting structure is movably disposed on the base and includes a first pivoting part and a second pivoting part, wherein the first pivoting part has a connecting shaft, and the second pivoting part has a shaft hole in which the connecting shaft is received and slidable. The cap is disposed on the pivoting structure and has a first pivoting unit and a second pivoting unit, wherein one side of the first pivoting part and one side of the second pivoting part are pivotally connected to the first pivoting unit and the second pivoting unit respectively, and the other side of the first pivoting part and the other side of the second pivoting part are slidably disposed in the first limiting unit and the second limiting unit respectively.
The above and other aspects of the invention will become better understood with regard to the following detailed description of the preferred but non-limiting embodiment(s). The following description is made with reference to the accompanying drawings.
Detailed descriptions of the invention are disclosed below with a number of embodiments. However, the disclosed embodiments are for explanatory and exemplary purposes only, not for limiting the scope of protection of the invention.
Refer to
The first limiting unit 1101 has a first sliding portion 1103 extended along a positive X-axis direction to form an L-shaped beak structure. The second limiting unit 1102 has a second sliding portion 1104 extended along a negative X-axis direction to form an L-shaped beak structure. A first receiving space C1 is defined between the first sliding portion 1103 and the plate 1105 and a second receiving space C2 is defined between the second sliding portion 1104 and the plate 1105.
The pivoting structure 111 includes a first pivoting part 112 and a second pivoting part 113. The first pivoting part 112 has a connecting shaft 1121, and the second pivoting part 113 has a shaft hole 1131 in which the connecting shaft 1121 is received and slidable. Thus, the first pivoting part 112 is pivotally connected to the second pivoting part 113 via the connecting shaft 1121 received in the shaft hole 1131.
Refer to
As indicated in
In the present embodiment, one side of the first pivoting part 112 and one side of the second pivoting part 113 (i.e. the side closer to the cap 114) are pivotally connected to the first pivoting unit 1141 and the second pivoting unit 1142 of the cap 114 respectively, and the other side of the first pivoting part 112 and the other side of the second pivoting part 113 (i.e. the side closer to the base 110) are slidably disposed in the first limiting unit 1101 and the second limiting unit 1102 of the base 110 respectively.
It should be noted that in
The value of the second displacement ΔX2 can be equivalent to or approximate to 0, and therefore can be neglected. Since the value of the first displacement ΔX1 can be larger than the value of the second displacement ΔX2, the invention only requires the first sliding shaft 1123 to move along the positive X-axis direction and the second sliding shaft 1133 does not have to move along the negative X-axis direction.
Refer to
As indicated in
Similarly, when the cap 114 moves to a pressing position, a portion of the first pivoting unit 1141 and the second pivoting unit 1142 (such as the bottom surface thereof) is substantially lower than the top surface 1105b of the plate and is buried in the plate 1105, and a portion of the first pivoting part 112 and the second pivoting part 113 (such as the bottom surface thereof) is also substantially lower than the top surface 1105b of the plate and is buried in the plate 1105. Therefore, the overall height of the pressed key structure 100 is relatively reduced.
Since the first sliding shaft 1123 and the second sliding shaft 1133 are buried in the plate 1105, the heights of the first limiting unit 1101 and the second limiting unit 1102 can be reduced. Refer to
In an embodiment, when the cap 114 moves to the pressing position, the center of the connecting shaft 1121 has a height S5 with respect to the bottom surface 1105a of the plate, and the height S5 is substantially larger than or equivalent to the first distance S1 formed between the first sliding portion 1103 and the bottom surface 1105a of the plate. In an embodiment, a portion of the connecting shaft 1121 can also be substantially lower than the top surface 1105b of the plate and be buried in the plate 1105. However, the invention does not have specific restrictions regarding the said arrangement.
In the present embodiment, since one side of the first pivoting part 112 and one side of the second pivoting part 113 are pivotally connected to the first pivoting unit 1141 and the second pivoting unit 1142 of the cap 114 respectively, a distance L1 formed between the first fixing shaft 1122 and the second fixing shaft 1132 is fixed. Since the other side of the first pivoting part 112 and the other side of the second pivoting part 113 are slidably disposed in the first limiting unit 1101 and the second limiting unit 1102 of the base 110 respectively, a distance L2 formed between the first sliding shaft 1123 and the second sliding shaft 1133 is variant. Therefore, when the cap 114 is pressed, invalid lateral displacements can be effectively reduced due to the fixed distance L1. Besides, the lateral displacement generated by the connecting shaft 1121 in the shaft hole 1131 and the variant distance L2 formed between the first sliding shaft 1123 and the second sliding shaft 1133 provide a lateral displacement required for the pressing course of the pivoting structure 111, such that invalid lateral displacements can almost be avoided when the pivoting structure 111 is displaced towards the base 110. In other words, the cap 114 can stably ascend or descend with respect to the base 110 along the Z-axis direction to a small extent.
Let an ultra-thin keyboard with a thickness of 3.0 mm be taken for example. In an embodiment of the invention, when the key structure 100 has a vertical course of 1 mm, the vertical valid course of the pivoting structure 111 is about 0.9-1 mm. In other words, the displacement of the pivoting structure 111 towards the base 110 is almost equivalent to the vertical course of the key structure 100, therefore the key structure 100 of the invention can be used in an ultra-thin keyboard of a laptop computer. The vertical course of the ultra-thin keyboard is about 0.70-1.50 mm, but such range is not restrictive in the invention.
Since the vertical course of the key structure 100 is of a millimeter level and can be generated from the tolerance gap generated during mold manufacturing, the key structure 100 can dispense with the design concept of long course. Besides, through the design of the two fixing shafts, invalid course during the pressing course of the cap can be effectively reduced. A decrease in invalid course implies an increase in the valid course of corners of the cap and an increase in user's tactile sensation. Therefore, the problems of having poor tactile sensation at corners of the cap and having poor electrical conduction at corners of the cap can be resolved.
Since the force applied to the cap 114 is uniform, the cap 114 does not tilt easily and can stably move up and down. No matter the user presses the central region, the peripheral region or any position of the cap 114, the user's tactile sensation is uniform and consistent, and the noises of operation can be effectively reduced.
While the invention has been described by way of example and in terms of the preferred embodiment(s), it is to be understood that the invention is not limited thereto. On the contrary, it is intended to cover various modifications and similar arrangements and procedures, and the scope of the appended claims therefore should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements and procedures.
Number | Date | Country | Kind |
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2017 1 0561518 | Jul 2017 | CN | national |
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Entry |
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CN Office Action dated May 17, 2019 in corresponding Chinese application (No. 201710561518.6). |
CN Office Action dated Aug. 15, 2019 in correspondence Chinese application (No. 201710561518.6). |
Number | Date | Country | |
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20190019634 A1 | Jan 2019 | US |