Abstract:
Methods and apparatus for creating an integral assembly formed from a transparent member and a housing formed at least in part of a bulk-solidifying amorphous alloy. The methods and systems create integral transparent member and amorphous metal alloy-containing parts using thermoplastic molding techniques in which the amorphous metal is molded to the transparent member in a thermoplastic, not liquid, state.
Abstract:
Various embodiments provide methods and apparatus for forming bulk metallic glass (BMG) articles using a mold having a stationary mold part and a movable mold part paired to form a mold cavity. A molten material can be injected to fill the mold cavity. The molten material can then be cooled into a BMG article at a desired cooling rate. While injecting and/or cooling the molten material, the movement of the movable mold part can be controlled, such that a thermal contact between the molten material and the mold can be maintained. BMG articles can be formed without forming an underfilled part. Additional structural features can be imparted in the BMG article during formation. At least a portion of the formed BMG article can have an aspect ratio (first dimension/second dimension) of at least 10 or less than 0.1.
Abstract:
A housing for an electronic device, including an aluminum layer enclosing a volume that includes a radio-frequency (RF) antenna is provided. The housing includes a window aligned with the RF antenna; the window including a non-conductive material filling a cavity in the aluminum layer; and a thin aluminum oxide layer adjacent to the aluminum layer and to the non-conductive material; wherein the non-conductive material and the thin aluminum oxide layer form an RF-transparent path through the window. A housing for an electronic device including an integrated RF-antenna is also provided. A method of manufacturing a housing for an electronic device as described above is provided.
Abstract:
Methods for creating sapphire windows are provided herein. In particular, one embodiment may take the form of a method of manufacturing sapphire windows. The method includes obtaining a polished sapphire wafer and applying decoration to the sapphire wafer. The method also includes cutting the sapphire wafer into discrete windows. In some embodiments, the cutting step comprises laser ablation of the sapphire.
Abstract:
Method and device relate to improved sensor configurations in a user device are disclosed. A device implements the improved sensor configurations includes a switch configured to detect a force applied by a user, one or more touch sensors configured to detect an angular position of the user input which are peripherally located relative to the switch, and a processor configured to generate a signal for performing a task selected from a plurality of predefined tasks in accordance with the force and the angular position of the user input.
Abstract:
Method and device relate to improved sensor configurations in a user device are disclosed. A device implements the improved sensor configurations includes a switch configured to detect a force applied by a user, one or more touch sensors configured to detect an angular position of the user input which are peripherally located relative to the switch, and a processor configured to generate a signal for performing a task selected from a plurality of predefined tasks in accordance with the force and the angular position of the user input.
Abstract:
Disclosed herein is a bulk metallic glasses (BMG) comprising 0.0001 wt% to 0.7 wt% of Be, 0.0001 wt% to 0.2 wt% of Be, or 0.06 wt% to 0.08 wt% of Be. Be may have the effect of reducing a liquidus temperature of the BMG relative to melting temperatures of individual alloying elements of the BMG.
Abstract:
An electronic device may be provided with a display (14) mounted in a housing. The display (14) may have an array of display pixels (86) that provide image light (44) to a user (48). The array of display pixels (86) may form an active display structure (46A) with a rectangular shape. The rectangular active display structure (46A) may be surrounded by an inactive border region (IA). Optical structures such optical fiber bundles, a sheet of glass, or other optical structures (134) may be used to guide display light to enlarge the apparent size (W) of the display and thereby minimize the inactive border region (IA) that surrounds the active area (AA) of the display.
Abstract:
Headset connector systems and headset engaging connector systems are provided. Headset connector systems can include two or more headset connector contact regions. Headset engaging connector systems can include two or more headset engaging contact regions to provide at least one of power and data. The headset connector system or the headset engaging connector system can include switching circuitry electrically coupled to the respective contact regions. The switching circuitry can be operative to determine an interface orientation between the headset connector contact regions and the headset engaging contact regions. The switching circuitry can also be operative to selectively route received signals based on the determined interface orientation. At least a portion of the headset connector system or the headset engaging connector system can be magnetically attractive.