1. Field of the Invention
The invention relates to consumer products, and more particularly, methods and apparatus for providing a compact mechanical input device well suited for small form factor consumer electronic devices.
2. Description of the Related Art
Consumer products generally require mechanisms that assist a user in providing internal operational components instructions. Small form factor consumer electronic products, such as portable media players and the like, have small enclosures that leave little room for expansive mechanical inputs such as switches or buttons.
Therefore, a compact, rugged mechanical input for small form factor consumer electronic devices is desired.
Broadly speaking, the embodiments disclosed herein describe a mechanical input assembly well suited for use in small form factor consumer electronic products.
An integrated switch assembly is described, the integrated switch assembly includes at least an actuator and a flexible membrane mechanically coupled to the actuator, the flexible membrane formed of a resilient, electrically conductive material. In the described embodiment, the flexible membrane is held at a first electrical potential. The integrated switch assembly also includes at least an electrical contact at a second electrical potential connected to an electrical circuit. The integrated switch assembly is engaged when the actuator applies a mechanical force to the flexible membrane causing the flexible membrane to deflect to a point of contact with the electrical contact causing the electrical potential of the electrical contact to change from the second potential to the first potential. The electrical circuit detects the change in potential of the electrical contact as a signal.
In one aspect, the first electrical potential is ground.
An integrated dome button is described. The integrated dome button includes at least a dome button formed of a flexible, resilient and electrically conductive material, a button feature, the button feature having a plunger that impinges on the dome button, and an electrically grounded base support plate arranged to electrically couple to and support the button feature. In the described embodiment, the base support plate includes an interior space having an anterior opening sized to accommodate the dome button wherein the dome button is electrically coupled to the base support plate at the anterior opening, and a lateral wall having an opening arranged to provide access to the interior space of the base support plate. The integrated dome button also includes an electrical contact aligned with a central portion of the dome button and the plunger such that when the plunger causes the dome button deflect, the dome button deflects to a point of contact with the electrical contact causing the electrical contact to connect to ground. The integrated dome button also includes a flexible connecter sized to fit within the opening in the lateral wall, the flexible connector electrically connecting the electrical contact with an external circuit.
A small form factor computing device is described. The small form factor computing device includes at least a housing arranged to enclose a plurality of operational circuits. The housing includes at least one opening, and an integrated switch assembly arranged to fit inside the at least one opening. In the described embodiment, the integrated switch assembly includes at least a button feature at least a portion of which is external to the housing, the button feature being accessible to a user of the small form factor computing device, an actuator integrally formed with the external feature, a flexible membrane mechanically coupled to the actuator, the flexible membrane being formed of a resilient, electrically conductive material, the flexible membrane being held at a first electrical potential, and an electrical contact connected to at least one of the plurality of operational circuits, the electrical contact being at a second electrical potential. The integrated switch assembly is engaged when the user applies a mechanical force to the external feature that is transferred to the actuator that, in turn, applies the mechanical force to the flexible membrane. The transferred force causing the flexible membrane to deflect to a point of contact with the electrical contact thereby changing the electrical potential of the electrical contact from the second potential to the first potential. The change in potential of the electrical contact is detected by the at least one operational circuit connected to the electrical contact as a signal.
A method of sending a signal to a circuit is described. The method is carried out by performing at least the following operations. Applying a mechanical force at an actuator, the actuator then transferring the applied mechanical force to a flexible membrane mechanically coupled to the actuator, the flexible membrane being formed of a resilient, electrically conductive material and is held at a first electrical potential. In response to the mechanical force applied to the flexible membrane, the flexible membrane deflects to a point of contact with an electrical contact electrically connected to the circuit. In response to the flexible membrane deflecting to the point of contact with the electrical contact, an electrical potential of the electrical contact is changed from a second potential to the first potential where the circuit interprets the change in potential as the signal.
Other aspects and advantages will become apparent from the following detailed description taken in conjunction with the accompanying drawings which illustrate, by way of example, the principles of the invention.
The described embodiments will be readily understood by the following detailed description in conjunction with the accompanying drawings, wherein like reference numerals designate like structural elements, and in which:
In the following detailed description, numerous specific details are set forth to provide a thorough understanding of the concepts underlying the described embodiments. It will be apparent, however, to one skilled in the art that the described embodiments can be practiced without some or all of these specific details. In other instances, well known process steps have not been described in detail in order to avoid unnecessarily obscuring the underlying concepts.
Broadly speaking, the embodiments disclosed herein describe a mechanical input assembly well suited for use in small form factor consumer electronic products. In the described embodiments, the mechanical input assembly can take the form of a mechanical button assembly. The mechanical button assembly can include an exterior button feature, the exterior button feature having a plunger that impinges on a dome button formed of flexible and resilient material. The exterior button feature can be attached to and supported by an electrically grounded base support plate by way of at snaps each of which can be used to movably attach the exterior button feature to the base support plate. The base support plate can include an interior space associated with an anterior opening sized to accommodate the dome button. In the described embodiment, the dome button is electrically coupled to the base support plate. The base support plate can include an opening in a lateral wall of the base support plate that can provide access to the interior volume of the base support plate. A flexible connecter sized to fit within the opening in the lateral wall can include an electrical contact, the electrical contact being aligned with a central portion of the dome button such that when the dome button is depressed by the action of the plunger and makes contact with the electrical contact, the electrical contact is connected to ground thereby creating an electrical circuit.
Due in part to the design geometry, the mechanical input assembly promotes moisture and contamination isolation of the electrical elements. For example, the front face of the dome can be sealed with Kapton, and the flex can be sealed around the slot where it exits the base plate. Also, it is fairly straight forward to seal the hole in the housing with a face seal between the base plate and the housing.
These and other embodiments are discussed below with reference to
Computing device 100 can include housing 102 that can be formed of any number of materials such as plastic or metal which can be forged, molded, or otherwise processed into a desired shape. The shape of housing 102 can conform to that of a hand in order to provide a more comfortable feel to a user and to offer a positive contribution to a user's overall experience with computing device 100. Housing 102 can be formed of any suitable material such as metal or plastic. Housing 102 can enclose and support internally various structural and electrical components (including integrated circuit chips and other circuitry) to provide computing operations for portable computing device. The integrated circuits can take the form of chips, chip sets, modules any of which can be surface mounted to a printed circuit board, or PCB, or other support structure. For example, a main logic board (MLB) can have integrated circuits mounted thereon that can include at least a microprocessor, semi-conductor (such as FLASH) memory, various support circuits and so on.
In order to maintain the overall look and feel of housing 102, openings 104 and 106 can be formed to accommodate a mechanical button or switch used to provide control signals to operational components installed within housing 102. The mechanical button or switch can power switches, volume control switches, user input devices and the like. For example, a power switch can be configured to turn the computing device 100 on and off, whereas a volume switch can be used to modify the volume level produced by computing device 100. Openings 104 and 106 can have a size and shape to conform to the overall shape of housing 102. Therefore, any mechanical input assembly used in the assembly of computing device 100 can also conform to both the shape and size of openings 104 and 106 and housing 102.
Accordingly,
Button assembly 200 can be placed within either opening 104 or 106. Button assembly 200 can include exterior button feature 202 having exterior surface 204 that can, in some embodiments, extend above an exterior surface 206 of housing 102 and be shaped to accept a touch (also referred to as a press event) from a user's finger. Button feature 202 can be formed of material that can be electrically insulating and have an aesthetic look and feel appropriate for device 100. Although button feature 202 is typically formed of plastic or other related material, any appropriate material can be used without loss of generality. Button feature 202 can include plunger 208 that can be integrally formed with button feature 202 and be shaped to extend inwardly from an interior portion of button feature 202. Button feature 202 can also include attachment features that in the embodiment shown can take the form of snaps 210 used to attach button feature 202 to base support plate 212. In the described embodiment, base support plate 212 can be attached to an interior surface of housing 102 by way of, for example, attachment features such as screws or electrically conductive adhesives such as PSA as well as being soldered on or welded in place. In so doing, in addition to providing an electrical path between button assembly 200 and housing 102, base support plate 212 can provide structural support and stability for button assembly 200 especially when a user is pressing on button feature 202. Base support plate 212 is formed of an electrically conductive material such as stainless steel or other metals.
Referring to
Base support plate 212 can be formed of electrically conductive material such as metal along the lines of stainless steel. Base support plate 212 can include hole 228 used to accommodate fastener 230 used to attach base support plate 212 to housing 102. Since housing 102 provides chassis ground, base support plate 212 remains in an electrically grounded state. Holes 232 can be used to anchor snaps 210 to base support plate 212 thereby securing button feature 202 to housing 102. Dome button 214 can be accommodated by opening 234 having centrally located inner lip 236 that can be used to attach dome button 214 to base support plate 212 using any suitable electrically conductive adhesive. In addition to providing physical support to dome button 214, inner lip 236 can provide an electrically conductive path between dome button 214 and base support plate 212 thereby maintaining dome button 214 at ground. Region 238 can be formed on a surface of base support plate 212 facing dome button 214 having a size and shape to accommodate an insulator/sealer layer 215 formed of material along the lines of Kapton™. In this way, layer 215 can be used to provide a moisture barrier that can prevent water or other environmental contaminants from entering recess 224 or dome button 214.
The many features and advantages of the present invention are apparent from the written description and, thus, it is intended by the appended claims to cover all such features and advantages of the invention. Further, since numerous modifications and changes will readily occur to those skilled in the art, the invention should not be limited to the exact construction and operation as illustrated and described. Hence, all suitable modifications and equivalents may be resorted to as falling within the scope of the invention.
This patent application takes priority under 35 U.S.C. 119(e) of U.S. Provisional Patent Application having Ser. No. 61/319,790 entitled “INTEGRATED DOME SWITCH BUTTON” by Hobson et al. filed Mar. 31, 2010 that is incorporated by reference in its entirety for all purposes.
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Number | Date | Country | |
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Number | Date | Country | |
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61319790 | Mar 2010 | US |