1. Field of the Invention
The present disclosure is related to a keyboard and a key module thereof, and more particularly to a key module having a movable switch mechanism which not only can be used to guide a keycap to move upwards or downwards, but also brings a circuit into conduction to induce a signal when the key module is depressed.
2. Description of Related Art
A general keyboard used for computers usually uses a plastic dome disposed between a keycap and a circuit membrane. The plastic dome is used to return the keycap to its original position with an upward restoring force and cause the bottom of the keycap to touch the circuit membrane to induce a conductive signal. This kind of keyboard provides a better typing tactility with a longer stroke or travel distance, but has a higher total height.
Further, compact keyboards, such as those used for mobile phones or portable electronic devices, usually include a metal dome disposed between the keycap and the circuit membrane. When the keycap is pressed, a rod on the bottom surface of the keycap abuts against the metal dome and presses the metal dome downwards to contact the circuit membrane to produce a conductive signal. This kind of keyboard provides a rough and poor typing tactility with a shorter travel distance. Moreover, if the metal dome is excessively squeezed or repeatedly withstands compressive loads, it may easily experience fatigue of material and have a shortened service life.
One of the objectives of the present disclosure is to provide a keyboard, a key module of a keyboard, and a movable switch mechanism of a keyboard, which provides an elastic member with resilience to activate a conductive circuit, so as to provide a better typing tactility. In addition, the present disclosure can prevent the metal dome from being excessively squeezed, so as to prolong the useful life of the metal dome.
In order to achieve the above objectives, according to one exemplary embodiment of the present disclosure, a key module is provided and includes a baseplate, a circuit membrane disposed on the baseplate, a metal dome disposed on a top surface of the circuit membrane, an elastic member disposed on the metal dome, and a keycap arranged above the elastic member. The circuit membrane has a conductive circuit. The metal dome has an opening, and a position of the opening corresponds to the conductive circuit of the circuit membrane. The elastic member has a trigger portion protruding from an underside of elastic member, and the trigger portion passes through the opening of the metal dome. When the keycap is pressed, the trigger portion of the elastic member moves downwards to abut against the conductive circuit so as to induce a conducting signal.
In order to achieve the above objectives, according to one exemplary embodiment of the present disclosure, a keyboard is provided and includes a plurality of key modules. Each key module includes a baseplate, a circuit membrane disposed on the baseplate, a metal dome disposed on a top surface of the circuit membrane, an elastic member disposed on the metal dome, and a keycap arranged above the elastic member. The circuit membrane has a conductive circuit. The metal dome has an opening, and a position of the opening corresponds to the conductive circuit of the circuit membrane. The elastic member has a trigger portion protruding from an underside of the elastic member, and the trigger portion passes through the opening of the metal dome. When the keycap is pressed, the trigger portion of the elastic member moves downwards to abut against the conductive circuit so as to induce a conducting signal.
In order to achieve the above objectives, according to one exemplary embodiment of the present disclosure, a movable switch mechanism is provided and includes an elastic member and a linkage member. The elastic member has a trigger portion protruded from an underside thereof, and the trigger portion is used to actuate a conductive circuit of a keyboard. The linkage member includes a first frame and a second frame. The second frame is pivotally connected to an inner side of the first frame. The second frame has an accommodating portion. The elastic member is fixedly connected in the accommodating portion of the second frame.
One of the objectives of the present disclosure is further to provide a method for manufacturing a movable switch mechanism of the keyboard, which uses a double injection molding method to integrally combine an elastic member with a second frame of the linkage member.
In order to achieve the above objectives, according to one exemplary embodiment of the present disclosure, a method for manufacturing a movable switch mechanism is provided, which includes steps as follows. A rigid material is injected into a mold by a plastic injection molding process to form a second frame of a connecting-type component. An elastic material is injected into the mold to form an elastic member, and simultaneously affixes a periphery of the elastic member to a center of the second frame. The second frame is assembled with an inner side of a first frame in a pivoting manner.
According to one practical embodiment of the present disclosure, the rigid material is polyoxymethylene, and the elastic material is silicone rubber.
Thus, in the present disclosure, the elastic member has a trigger portion that passes through the metal dome to contact the circuit membrane when the keycap is depressed, so that the typing tactility is much more resilient. According to the present disclosure, the key module has a longer typing stroke and longer travel distance with a distance for elastic compression provided by the elastic member in addition to a distance of the metal dome to be pressed down. The metal dome of the present disclosure does not directly contact the circuit membrane even if the keycap is pressed to a bottommost position, so that it can avoid excessive squeezing and deformation of the metal dome and enjoy a prolonged service life.
For further understanding of the present disclosure, reference is made to the following detailed description illustrating the embodiments and examples of the present disclosure. The description is for illustrative purpose only and is not intended to limit the scope of the claim.
The aforementioned illustrations and following detailed descriptions are exemplary for the purpose of further explaining the scope of the present disclosure. Other objectives and advantages related to the present disclosure will be illustrated in the subsequent descriptions and appended drawings.
Reference is made to
The baseplate 16 can be formed by stamping or punching of a metal board. The baseplate 16 has a restricting unit. In this embodiment, the restricting unit includes a pair of first hooking parts 161 and a pair of second hooking parts 162, which are reverse-L shaped and used to connect a lower portion of the linkage member 12. However, the restricting unit of the present disclosure is not limited thereto.
The circuit membrane 15 is disposed on the baseplate 16, and has a conductive circuit 152. The structure of the conductive circuit 152, for example, has an upper conductive piece, a lower conductive piece and a spacer between the upper and lower conductive pieces. When the conductive circuit 152 is pressed, the upper conductive piece and the lower conductive piece are touched and electrically contacted to produce a signal.
The metal dome 14 is disposed on a top surface of the circuit membrane 15, and has an opening 140 which is, for example, positioned directly at the central portion of the metal dome 14. A position of the opening 140 corresponds to a position of the conductive circuit 152 of the circuit membrane 15.
The elastic member 18 is disposed under the keycap 11 and on a top end of the metal dome 14. The elastic member 18 has a trigger portion 181 protruding from an underside thereof. The trigger portion 181 passes through the opening 140 of the metal dome 14. The keycap 11 is disposed above the elastic member 18.
Reference is made to
The elastic member 18 includes an upper ring 182 and an outer ring 183. The upper ring 182 extends upwards from a periphery of the trigger portion 181 and abuts against the keycap 11. The outer ring 183 extends downwards and outwards from the upper ring 182. The outer ring 183 is attached to the periphery of the accommodating portion 1220, and the upper ring 182 protrudes above a top surface of the second frame 122.
Reference is made to
Reference is made to
In addition, one implementation of the movable switch mechanism of the present disclosure is using a double injection molding method to form a movable switch mechanism in single integral piece. More specifically, the present disclosure further provides a method for manufacturing a movable switch mechanism of a keyboard, which includes steps as follows.
A rigid material is injected into a mold by a plastic injection molding method, so as to form a second frame 122 of a linkage member 12.
Then, an elastic material is injected into the mold by a plastic injection molding method, so as to form an elastic member 18 having a trigger portion 181. A periphery of the elastic member 18 is attached or fixed to a central portion of the second frame 122.
The second frame 122 with the elastic member 18 is assembled to a first frame 121, so as to form a movable switch mechanism.
The rigid material could be polyoxymethylene (POM), also known as acetal, polyacetal, or polyformaldehyde, which is an engineering thermoplastic used for precision parts requiring high stiffness, low friction, and excellent dimensional stability. The elastic material could be silicone rubber, also known as polymerized siloxane. However, the present disclosure is not limited thereto. For example, other artificial plastic can be used.
In another embodiment, the elements of the linkage member 12 can be simultaneously injected in the first plastic injection step, so that the second frame is assembled with the first frame in a single step.
Reference is made to
Upon the keycap 11 is pressed, the elastic member 18 is first pressed to deform, thereby providing the user with a tactile feedback of elastomeric resilience. While the keycap 11 is continuously pressed downwards, the metal dome 14 is then depressed to deform. In the meantime, the trigger portion 181 of the elastic member 18 moves downwards to abut against and touch the circuit membrane 15 which is therefore brought into conduction, so as to induce a conductive signal. As shown in
The configuration of the present disclosure is different from the conventional structure. In the conventional art, a middle post of the keycap is deployed to directly contact the metal dome, which results in a rough and poor typing tactility. The trigger portion 181 of the elastic member 18 in the present disclosure passes through the metal dome 14 and contacts the circuit membrane 15 when being depressed, which provides a typing tactility with considerable resilience.
In addition, the pressing stroke in the conventional art only provides a distance where the metal dome moves downwards to abut against the conductive circuit. In this embodiment, the total key travel distance includes a distance of elastic compression firstly provided by the elastic member 18 and then a distance of the metal dome 14 to be pressed. Therefore, the key module of the present disclosure provides a longer travel distance for typing stroke. Further, the metal dome 14 of the present disclosure does not contact the circuit membrane 15 even when being pressed to the bottommost position, so that it can prevent the metal dome 14 from withstanding repeated compressive loads and deformation, thereby providing a prolonged service life.
Reference is made to
The descriptions illustrated supra set forth simply the preferred embodiments of the present disclosure; however, the characteristics of the present disclosure are by no means restricted thereto. All changes, alterations, or modifications conveniently considered by those skilled in the art are deemed to be encompassed within the scope of the present disclosure delineated by the following claims.
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Number | Date | Country | |
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20180358193 A1 | Dec 2018 | US |