Abstract:
A vacuum sealing process of a micro-electrical-mechanical-system (MEMS) package is provided. Solder is applied to the rimmed bottom of a lid for the package. A micro-electro-mechanical system (MEMS) device is attached to a substrate for the package. Solder is applied to a lipped top of the substrate. The lid and the substrate are sealed in an elevated temperature and vacuum environment.
Abstract:
A touch screen display includes a screen, a bezel around the screen, and a MEMS package located within the bezel. The MEMS package comprises a MEMS scanning mirror and the top of the MEMS package is located below the top of the screen. At rest, a reflecting surface of the MEMS scanning mirror is parallel or slightly tilted relative to the screen but not substantially perpendicular to the screen. The display further includes a fixed mirror located in the bezel above the MEMS scanning mirror.
Abstract:
A laser interference lithography apparatus capable of stitching small exposed areas into a large exposed area includes a body, a laser beam supplying unit, a reflecting mechanism, an L-shaped fixing mechanism and a substrate stage. The laser beam supplying unit fixed onto the body provides a laser beam. The reflecting mechanism is movably and rotatably mounted on the body. The L-shaped fixing mechanism mounted on the body includes a first mounting seat and a second mounting seat. An upright first reflecting mirror is fixed to the first mounting seat. The second mounting seat connected to the first mounting seat fixes a horizontal mask, and is substantially perpendicular to the first mounting seat. The substrate stage, movably mounted on the body and disposed below the second mounting seat, supports a substrate. Thus, a large-area pattern formed by stitching small-area patterns may be obtained.
Abstract:
A micro-electro-mechanical system (MEMS) actuator assembly includes a mirror and four actuators. Each actuator includes a lever pivotable about a fulcrum axis. The inner end of each lever is coupled to one side of the mirror. Force is applied to one outer end of the levers to move one side of the mirror, which positions the mirror in one of four positions. Force is applied to two outer ends of the levers to move two sides of the mirror, which positions the mirror in one of four additional positions.
Abstract:
A micro-electro-mechanical system (MEMS) pressure sensor includes a silicon spacer defining an opening, a silicon membrane layer mounted above the spacer, a silicon sensor layer mounted above the silicon membrane layer, and a capacitance sensing circuit. The silicon membrane layer forms a diaphragm opposite of the spacer opening, and a stationary perimeter around the diaphragm and opposite the spacer. The silicon sensor layer includes an electrode located above the diaphragm of the silicon membrane layer. The capacitance sensing circuit is coupled to the electrode and the silicon membrane layer. The electrode and the silicon membrane layer move in response to a pressure applied to the diaphragm. The movement of the silicon membrane layer causes it to deform, thereby changing the capacitance between the electrode and the silicon membrane layer by an amount proportional to the change in the pressure.
Abstract:
A power converter with a feedback controller includes a converter body with an input end for an input voltage, an output end for an output voltage, a controller with a feedback device, and a connector for connection with the output end of the converter body and with an electric appliance. The circuit of the converter body converts an input voltage to an output voltage. A controller is connected in circuit to the converter body and includes a circuit for regulating the voltage for a desired system output. The feedback device connects to the output end of the converter body. The output voltage is adjustable only when the controller receives an output voltage as a feedback from the feedback device. The controller is not triggered and hence an output voltage is not adjustable when the connector is engaged with the output end of the converter body.
Abstract:
A flexible tablet is disclosed, and particular disclosed a flexible tablet having both of a hard housing structure and a soft housing structure. The flexible tablet fix a control board in the hard housing structure for preventing the control board form bending and break resulting from external force. In the flexible tablet, the soft housing structure is applied instead of the hard housing of a conventional tablet to fix a sensing board therein. Therefore, the soft housing structure and the sensing board are integrated to form a flexible writing member of the flexible tablet. As a consequence of foregoing structure, the tablet is flexible and convenient to be stored and carried, and the cost of the tablet is reduced.
Abstract:
This invention discloses a power converter with a secondary-side control, including an input circuit with one or more switches, an output circuit with an output end and a controller, and a transformer with a primary-side coil assembly connecting the switch(es) and a secondary-side coil assembly connecting the output circuit. The on/off state of the switch(es) is controlled by variations in voltage of primary-side coil assembly. The controller in the output circuit detects an output voltage and sends detected results to the primary-side coil assembly as a feedback for primary-side coil assembly to regulate the PWM or PFM action of the switch in a specific way to maintain voltage stability.
Abstract:
A locking device includes a case defining at least one slot therein, a hook module including at least one hook for passing through the at least one slot, a linkage module includes at least one first lever configured for shifting the at least one hook to move between a locking position and a releasing position, and a positioning module for releasably engaging with the first lever. When the at least one hook is shifted to the releasing position, the first lever is blocked by the positioning module, when the at least one hook is shifted to the locking position, the first lever is released by the positioning module.
Abstract:
A mirror device includes a mirror, an anchor, and a spring coupling the mirror to the anchor. The anchor and/or mirror can define one or more rows of holes adjacent to the coupling location of the spring. The natural frequency of the device can be adjusted by removing material between the perimeter of the mirror/anchor and the outermost holes, and between adjacent holes in the same row. Another mirror device includes a mirror, anchors, and springs coupling the mirror to the anchors. The natural frequency of the device can be adjusted by decoupling one or more springs coupling the mirror to the anchors. The mirror of both devices can includes one or more sacrificial portions. The natural frequencies of the both devices can also be adjusted by trimming the sacrificial portions.