A keyswitch includes a cap, a support structure, a first magnet, and a baseplate having a bending arm protruding from the baseplate and a support rib extending horizontally to form a receiving space with the bending arm. The support structure includes a first support member pivoted to the baseplate and against the cap and a magnetic permeable plate extending from the first support member and being above the receiving space. The first magnet is inserted into the receiving space to be supported by the support rib and be pressed by the bending arm. When the cap is pressed to make the magnetic permeable plate away from the first magnet as the first support member rotates, the cap moves to a pressed position. When the cap is released, a magnetic attraction force between the magnetic permeable plate and the first magnet drives the magnetic permeable plate to approach the first magnet.
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15. A keyswitch manufacturing method for manufacturing a keyswitch, the keyswitch providing a pressing resistance force or a returning force to a cap via a magnetic attraction force of a magnetic member, the keyswitch manufacturing method comprising:
providing a baseplate, the baseplate having a receiving space, the receiving space having an opening located at a side of the receiving space not facing the cap;
providing an elastic member disposed on the baseplate to be adjacent to the opening;
pushing the magnetic member against the elastic member to deform the elastic member away from the opening, so as to guide the magnetic member to move toward the receiving space via the opening; and
pushing the magnetic member into the receiving space to release deformation of the elastic member, so as to make the elastic member return to its original position to abut against a side of the magnetic member for preventing the magnetic member from leaving the receiving space via the opening.
1. A keyswitch comprising:
a baseplate extending along a plane defined by an X-axis and a Y-axis perpendicular to each other and having at least one bending arm and at least one support rib, a Z-axis being perpendicular to the X-axis and the Y-axis, the at least one bending arm protruding from the baseplate along the Z-axis, the at least one support rib extending along the plane defined by the X-axis and the Y-axis to form a receiving space cooperatively with the at least one bending arm;
a cap;
a support structure disposed between the baseplate and the cap, the support structure comprising a first support member and a magnetic permeable plate, the first support member being movably connected to the baseplate and the cap to make the cap move with the support structure between a released position and a pressed position, the magnetic permeable plate extending from the first support member and being positioned above the receiving space; and
a first magnet laterally inserted into the receiving space along the plane defined by the X-axis and the Y-axis, the first magnet having a bottom surface and a lateral surface, the bottom surface being supported by the at least one support rib and the lateral surface being pressed by the at least one bending arm laterally;
wherein when the cap is released, a magnetic attraction force between the first magnet and the magnetic permeable plate keeps the cap at the released position;
when the cap is pressed by an external force to make the magnetic permeable plate away from the first magnet with rotation of the first support member, the cap moves from the released position toward the pressed position.
8. A keyboard comprising:
a baseplate extending along a plane defined by an X-axis and a Y-axis perpendicular to each other and having at least one bending arm and at least one support rib, a Z-axis being perpendicular to the X-axis and the Y-axis, the at least one bending arm protruding from the baseplate along the Z-axis, the at least one support rib extending along the plane defined by the X-axis and the Y-axis to form a receiving space cooperatively with the at least one bending arm; and
a plurality of keyswitches disposed on the baseplate, at least one of the plurality of keyswitches comprising:
a cap;
a support structure disposed between the baseplate and the cap, the support structure comprising a first support member and a magnetic permeable plate, the first support member being movably connected to the baseplate and the cap to make the cap move with the support structure between a released position and a pressed position, the magnetic permeable plate extending from the first support member and being positioned above the receiving space; and
a first magnet laterally inserted into the receiving space along the plane defined by the X-axis and the Y-axis, the first magnet having a bottom surface and a lateral surface, the bottom surface being supported by the at least one support rib and the lateral surface being pressed by the at least one bending arm laterally;
wherein when the cap is released, a magnetic attraction force between the first magnet and the magnetic permeable plate keeps the cap at the released position;
when the cap is pressed by an external force to make the magnetic permeable plate away from the first magnet with rotation of the first support member, the cap moves from the released position toward the pressed position.
16. A keyswitch comprising:
a cap;
a baseplate having a main body, an elastic member, a plurality of blocking members, a receiving space, and an assembly path space, the main body partially extending under the receiving space, the elastic member being disposed on the main body and extending into the assembly path space, the elastic member having a first height in an undeformed state, the assembly path space receiving space having at least one blocking side and an opening, the plurality of blocking members being disposed at the at least one blocking side, the opening being disposed at a position different from the at least one blocking side;
a support structure disposed between the baseplate and the cap, the support structure comprising a first support member and a magnetic permeable plate, the first support member being movably connected to the baseplate and the cap to make the cap move with the support structure between a released position and a pressed position, the magnetic permeable plate extending from the first support member and being positioned above the receiving space; and
a magnetic member;
wherein the magnetic member passes through the opening along the assembly path space to enter the receiving space where the plurality of blocking members engages with the magnetic member;
during the magnetic member passes through the opening, the magnetic member enters the assembly path space to deform the elastic member is deformed to a second height when the magnetic member is located within the assembly path space and neighboring to the opening, and the second height is lower than the first height, so as to allow the magnetic member to pass through the opening along the assembly path space;
after the magnetic member passes through the opening, the magnetic member leaves the assembly path space to release deformation of the elastic member is released when the magnetic member is positioned in the receiving space and engaged with the plurality of blocking members, so as to make the elastic member return to the first height for preventing the magnetic member from leaving the receiving space via the assembly path space;
when the cap is released, a magnetic attraction force between the magnetic member and the magnetic permeable plate keeps the cap at the released position; when the cap is pressed by an external force to make the magnetic permeable plate away from the magnetic member with rotation of the first support member, the cap moves from the released position toward the pressed position.
20. A keyswitch comprising:
a cap;
a baseplate having a main body, an elastic member, a plurality of blocking members, a receiving space, and an assembly path space, the main body partially extending under the receiving space, the elastic member being disposed on the main body and extending into the assembly path space, the elastic member having a first interference in an undeformed state with the assembly path space, the assembly path space receiving space having at least one blocking side and an opening, the plurality of blocking members being disposed at the at least one blocking side, the opening being disposed at a position different from the at least one blocking side;
a support structure disposed between the baseplate and the cap, the support structure comprising a first support member and a magnetic permeable plate, the first support member being movably connected to the baseplate and the cap to make the cap move with the support structure between a released position and a pressed position, the magnetic permeable plate extending from the first support member and being positioned above the receiving space; and
a magnetic member;
wherein the magnetic member passes through the opening along the assembly path space to enter the receiving space where the plurality of blocking members engage with the magnetic member;
during the magnetic member passes through the opening, the magnetic member enters the assembly path space to deform the elastic member is deformed to have a second interference with the assembly path space, so as to allow the magnetic member to pass through the opening along the assembly path space when the magnetic member is located within the assembly path space and neighboring to the opening, and the second interference is less than the first interference;
after the magnetic member passes through the opening, the magnetic member leaves the assembly path space to release deformation of the elastic member is released when the magnetic member is positioned in the receiving space and engaged with the plurality of blocking members, so as to make the elastic member return to have the first interference for preventing the magnetic member from leaving the receiving space via the assembly path space;
when the cap is released, a magnetic attraction force between the magnetic member and the magnetic permeable plate keeps the cap at the released position; when the cap is pressed by an external force to make the magnetic permeable plate away from the magnetic member with rotation of the first support member, the cap moves from the released position toward the pressed position.
2. The keyswitch of
a second magnet magnetically attracted to the bottom surface of the first magnet opposite to the support structure.
4. The keyswitch of
at least one auxiliary support disposed between the cap and the baseplate and alternately arranged with the support structure, the at least one auxiliary support being movably connected to the baseplate and the cap.
5. The keyswitch of
6. The keyswitch of
7. The keyswitch of
9. The keyboard of
a second magnet magnetically attracted to the bottom surface of the first magnet opposite to the support structure.
11. The keyboard of
at least one auxiliary support disposed between the cap and the baseplate and alternately arranged with the support structure, the at least one auxiliary support being movably connected to the baseplate and the cap.
12. The keyboard of
13. The keyboard of
14. The keyboard of
17. The keyswitch of
18. The keyswitch of
19. The keyswitch of
21. The keyswitch of
22. The keyswitch of
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The present invention relates to a keyswitch, a keyboard and a keyswitch manufacturing method thereof, and more specifically, to a keyswitch inserting a magnet into a receiving space cooperatively formed by a support rib and a bending arm on a baseplate laterally for fixing the magnet on the baseplate, a keyboard and a keyswitch manufacturing method thereof.
A keyboard, which is the most common input device, can be found in variety of electronic apparatuses for users to input characters, symbols, numerals and so on. Furthermore, consumer electronic products and industrial machine tools are all equipped with a keyboard for performing input operations.
A conventional keyswitch usually utilizes assembly of a scissor support structure and an elastic member to provide a cap with an elastic force for driving the cap to return to a released position. However, since the scissor mechanical design adopted by the scissor support structure requires more space so as to further increase the overall height of the keyswitch, it is disadvantageous to the thinning design of the keyswitch. A conventional method for solving the aforesaid problem is to utilize a magnetic attraction force generated by magnetic members respectively disposed on a support structure and a baseplate as a returning force of the cap instead of the aforesaid scissor mechanical design. However, in the aforesaid magnetic attraction design, it is not easy to position the magnetic members on the baseplate if the baseplate is made of low intensity magnetic material or non-magnetic material (e.g. plastic), so as to cause a time-consuming and strenuous assembly process.
The present invention provides a keyswitch including a baseplate, a cap, a support structure, and a first support member. The baseplate extends along a plane defined by an X-axis and a Y-axis perpendicular to each other and has at least one bending arm and at least one support rib. A Z-axis is perpendicular to the X-axis and the Y-axis. The at least one bending arm protrudes from the baseplate along the Z-axis. The at least one support rib extends along the plane defined by the X-axis and the Y-axis to form a receiving space cooperatively with the at least one bending arm. The support structure is disposed between the baseplate and the cap. The support structure includes a first support member and a magnetic permeable plate. The first support member is movably connected to the baseplate and the cap to make the cap move with the support structure between a released position and a pressed position. The magnetic permeable plate extends from the first support member and is positioned above the receiving space. The first magnet is laterally inserted into the receiving space along the plane defined by the X-axis and the Y-axis. The first magnet has a bottom surface and a lateral surface. The bottom surface is supported by the at least one support rib. The lateral surface is pressed by the at least one bending arm laterally. When the cap is released, a magnetic attraction force between the first magnet and the magnetic permeable plate keeps the cap at the released position. When the cap is pressed by an external force to make the magnetic permeable plate away from the first magnet with rotation of the first support member, the cap moves from the released position toward the pressed position.
The present invention further provides a keyboard including a baseplate and a plurality of keyswitches. The baseplate extends along a plane defined by an X-axis and a Y-axis perpendicular to each other and has at least one bending arm and at least one support rib. A Z-axis is perpendicular to the X-axis and the Y-axis. The at least one bending arm protrudes from the baseplate along the Z-axis. The at least one support rib extends along the plane defined by the X-axis and the Y-axis to form a receiving space cooperatively with the at least one bending arm. The plurality of keyswitches is disposed on the baseplate. At least one of the plurality of keyswitches includes a cap, a support structure, and a first magnet. The support structure is disposed between the baseplate and the cap. The support structure includes a first support member and a magnetic permeable plate. The first support member is movably connected to the baseplate and the cap to make the cap move with the support structure between a released position and a pressed position. The magnetic permeable plate extends from the first support member and is positioned above the receiving space. The first magnet is laterally inserted into the receiving space along the plane defined by the X-axis and the Y-axis. The first magnet has a bottom surface and a lateral surface. The bottom surface is supported by the at least one support rib. The lateral surface is pressed by the at least one bending arm laterally. When the cap is released, a magnetic attraction force between the first magnet and the magnetic permeable plate keeps the cap at the released position. When the cap is pressed by an external force to make the magnetic permeable plate away from the first magnet with rotation of the first support member, the cap moves from the released position to the pressed position.
The present invention further provides a keyswitch manufacturing method for manufacturing a keyswitch. The keyswitch provides a pressing resistance force or a returning force to a cap via a magnetic attraction force of a magnetic member. The keyswitch manufacturing method includes providing a baseplate having a receiving space having an opening located at a side of the receiving space not facing the cap, providing an elastic member disposed on the baseplate to be adjacent to the opening, pushing the magnetic member against the elastic member to deform the elastic member away from the opening so as to guide the magnetic member to move toward the receiving space via the opening, and pushing the magnetic member into the receiving space to release deformation of the elastic member, so as to make the elastic member return to its original position to abut against a side of the magnetic member for preventing the magnetic member from leaving the receiving space via the opening.
The present invention further provides a keyswitch. The keyswitch includes a cap, a baseplate, a support structure, and a magnetic member. The baseplate has a main body, an elastic member, a plurality of blocking members, a receiving space, and an assembly path space. The main body partially extends under the receiving space. The elastic member is disposed on the main body and extends into the assembly path space. The elastic member has a first height in an undeformed state. The assembly path space has at least one blocking side and an opening. The plurality of blocking members is disposed at the at least one blocking side. The opening is disposed at a position different from the at least one blocking side. The support structure is disposed between the baseplate and the cap. The support structure includes a first support member and a magnetic permeable plate. The first support member is movably connected to the baseplate and the cap to make the cap move with the support structure between a released position and a pressed position. The magnetic permeable plate extends from the first support member and is positioned above the receiving space. The magnetic member passes through the opening along the assembly path space to enter the receiving space where the plurality of blocking members engages with the magnetic member. During the magnetic member passes through the opening, the magnetic member enters the assembly path space to deform the elastic member to a second height lower than the first height, so as to allow the magnetic member to pass through the opening along the assembly path space. After the magnetic member passes through the opening, the magnetic member leaves the assembly path space to release deformation of the elastic member, so as to make the elastic member return to the first height for preventing the magnetic member from leaving the receiving space via the assembly path space. When the cap is released, a magnetic attraction force between the magnetic member and the magnetic permeable plate keeps the cap at the released position. When the cap is pressed by an external force to make the magnetic permeable plate away from the magnetic member with rotation of the first support member, the cap moves from the released position toward the pressed position.
The present invention further provides a keyswitch includes a cap, a baseplate, a support structure, and a magnetic member. The baseplate has a main body, an elastic member, a plurality of blocking members, a receiving space, and an assembly path space. The main body partially extends under the receiving space. The elastic member is disposed on the main body and extends into the assembly path space. The elastic member has a first interference in an undeformed state with the assembly path space. The assembly path space has at least one blocking side and an opening. The plurality of blocking members is disposed at the at least one blocking side. The opening is disposed at a position different from the at least one blocking side. The support structure is disposed between the baseplate and the cap. The support structure includes a first support member and a magnetic permeable plate. The first support member is movably connected to the baseplate and the cap to make the cap move with the support structure between a released position and a pressed position. The magnetic permeable plate extends from the first support member. The magnetic member passes through the opening along the assembly path space to enter the receiving space where the plurality of blocking members engages with the magnetic member. During the magnetic member passes through the opening, the magnetic member enters the assembly path space to deform the elastic member to have a second interference with the assembly path space, so as to allow the magnetic member to pass through the opening along the assembly path space, and the second interference is less than the first interference. After the magnetic member passes through the opening, the magnetic member leaves the assembly path space to release deformation of the elastic member, so as to make the elastic member return to have the first interference for preventing the magnetic member from leaving the receiving space via the assembly path space. When the cap is released, a magnetic attraction force between the magnetic member and the magnetic permeable plate keeps the cap at the released position. When the cap is pressed by an external force to make the magnetic permeable plate away from the magnetic member with rotation of the first support member, the cap moves from the released position toward the pressed position.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
Please refer to
Please refer to
In this embodiment, as shown in
To be noted, the second support member 32 and the second magnet 22 could be omissible components for simplifying the mechanical design of the keyswitch 12 and reducing the space occupied by the support structure and the magnet. Furthermore, in practical application, the keyboard 10 could further include a mylar film 17. The mylar film 17 is attached under the baseplate 16 (as shown in
The triggering design of the cap 14 could be as shown in
In summary, the present invention adopts the design that the magnet is laterally inserted into the receiving space formed by the support rib and the bending arm on the baseplate. Accordingly, even if the baseplate is made of low intensity magnetic material (or non-magnetic material), the keyswitch provided by the present invention could fix the magnet on the baseplate steadily, to solve the prior art problem that positioning the magnetic member on the baseplate is not easy if the baseplate is made of low intensity magnetic material or non-magnetic material (e.g. plastic), so that the present invention could improve convenience of the keyboard in assembly and manufacturing.
It should be mentioned that the aforesaid design could be applied to a keyswitch with a longer length (or called a multiple-width keyswitch). For example, please refer to
In this embodiment, the first support member 30, the second support member 32, and the cap 104 could be strip-shaped. The scissor support mechanism 106 is located between the first support member 30 and the second support member 32 and is movably connected to the cap 104 and the baseplate 16. To be more specific as shown in
In practical application, the keyswitch 100 could further utilize an auxiliary support to improve the motion steadiness of the cap 104. For example, please refer to
Furthermore, the present invention could utilize an elastic member to prevent the magnetic member from falling out of the baseplate. For example, please refer to
Via the aforesaid designs, the magnetic member 204 could enter the receiving space 212 to be located under the magnetic permeable plate 34 according to the keyswitch manufacturing method of the present invention. Accordingly, the keyswitch 200 could provide a pressing resistance force or a returning force to the cap 104 via the magnetic attraction force of the magnetic member 204. In brief, please refer to
After the aforesaid process for disposing the magnetic member 204 in the receiving space 212 is completed, the keyswitch 200 could provide a pressing resistance force or a returning force to the cap 104 via the magnetic attraction force of the magnetic member 204. In brief, when the cap 104 is released, the magnetic attraction force between the magnetic member 204 and the magnetic permeable plate 34 keeps the cap 104 at the released position. When the cap 104 is pressed by an external force to make the magnetic permeable plate 34 away from the magnetic member 204 with rotation of the first support member 30 and the second support member 32, the cap 104 moves from the released position toward the pressed position with the support structure 18. When the external force is released, the aforesaid magnetic attraction force drives the magnetic permeable plate 34 to approach the magnetic member 204 to make the cap 104 move from the pressed position to the released position with rotation of the first support member 30 and the second support member 32. As for more detailed description for the aforesaid components, it could be reasoned by analogy according to the aforesaid embodiments and omitted herein.
It should be mentioned that the structural design of the elastic member is not limited to the aforesaid embodiment, meaning that the present invention could adopt the design the elastic member could deform laterally. For example, please refer to
Via the aforesaid designs, the magnetic member 204 could pass through the opening 218 along the assembly path space 214′ to enter the receiving space 212 where the plurality of blocking members 210 engages with the magnetic member 204 (i.e. the magnetic member 204 is constrained by the plurality of blocking members 210 and the extending portion 206a′ in the receiving space 212). In brief, please refer to
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Lin, Chin-Hung, Huang, Yu-Ming, Liao, Pen-Hui, Liu, Hsin-Hung, Kuo, I-Chu
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