Abstract:
An electronic device includes a circuit board comprising a first metal layer and a second metal layer. The first metal layer is affixed to one side of the circuit board, and the second metal layer is affixed to the first metal layer. A channel is defined between the first metal layer and the second metal layer. A coolant container is used to accommodate coolant. A driving unit is used to drive the coolant to circuit in the channel.
Abstract:
An electronic reading device is disclosed, for use with a handwriting pen that has a first working mode and a second working mode. The electronic reading device includes a display, a processor, a first controller, and a second controller. The first controller signals the processor and the second controller. The processor displays a track of the handwriting pen after being signaled by the first controller. The second controller sends a request to the handwriting pen to determine a working mode of the handwriting pen, and signals the processor when determining that the working mode is the second mode. The processor also erases the track after being signaled by the second controller.
Abstract:
A method applied in a display apparatus is provided. The display apparatus includes a first screen, a second screen, power signal means. The first screen is volatile. The second screen is non-volatile. The power signal means generate a power off signal in response to a user operation. The method includes: determining whether a power off signal is received; displaying a user interface on the first screen if the power off signal is received; controlling the display on the second screen in response to a user selection on the operation interface; generating a shutdown signal; and powering off the first screen, and the second screen when receiving the shutdown signal.
Abstract:
An electronic device and a display mode control method thereof are disclosed. The electronic device includes an infrared lighting unit, an imaging unit, and a processing unit. The infrared lighting unit illuminates a face or an eye of a person that is using the device. The imaging unit takes an image of the face or the eye that the lighting unit illuminates. The processing unit calculates a sight line vector according to the image taken by the imaging unit and determining whether the sight line vector points to the device. If the sight line vector points to the device, switch the device into a normal mode; otherwise, switch the device into a power saving mode.
Abstract:
In an electronic device with power saving function, when the power saving function of the electronic device is active, the electronic device detects the distance between any object in a proximal area of the electronic device and the electronic device and stores the detected distance as an original distance, and then periodically detects the distance between the object and the electronic device, and stores the detected distance as a current distance. The electronic device is put into power saving mode if an difference between the original distance and the current distance does not fall into the predetermined range.
Abstract:
A system for modulating audio effects of speakers is provided. The system includes a selecting module, a playing module, a recording module, a time delay computing module and a modulating module. Based on these modules, the system is capable of determining a time difference and a pitch for each of the speakers, and modulating the time difference and the pitch for each of the speakers to a desired time difference and a desired pitch, so as to ensure that simultaneous sounds from each speaker arrive at a microphone at about the same time and with the same audio pitch. A related method is also provided.
Abstract:
A cursor control method is applied in an electronic device that communicates with a number of pointing devices. The cursor control method includes: receiving a signal including an identification code; determining whether the received signal is a request signal; determining whether a duration of not receiving a cursor control signal from the pointing device which currently owns cursor control reaches a predetermined time interval after receiving the request signal; determining the pointing device which sends the request signal according to the identification code; transferring the cursor control to the determined pointing device if the duration reaches the predetermined time interval; and controlling movement of the displayed cursor according to a cursor control signal from the pointing device which currently owns the cursor control. A related cursor control system and a related electronic device are also provided.
Abstract:
A heat dissipation structure includes an electronic device, and a cooling device mounted to the electronic device. The electronic device includes a housing, and a heat generating element mounted in the housing. The housing defines an opening. The cooling device comprises a shell abutting against the heat generating element through the opening, a number of fins extending from the shell, a fan mounted to the shell, an air intake, and an air outlet. The air intake and the air outlet are located outside the housing.
Abstract:
An electronic device includes a casing, an electronic component received in the casing, and a fixing member. The casing includes a cutout defined in a side wall thereof for assembly or disassembly a heat dissipation member into or out of the electronic device. The fixing member is connected to the top wall of the casing. The fixing member includes an elongated pole, a guiding pole connected to an outer end of the elongated pole and located adjacent to the cutout, and a resilient element at an inner end of the elongated pole and located over the electronic component. The resilient element is compressed and abuts the heat dissipation member when the heat dissipation member is assembled into the electronic device to contact with the electronic component.
Abstract:
A filter includes: a container; at least one barrier, an input device and an output device. The at least one barrier divide the container into at least two resonant cavities. Each resonant cavity has a harmonic oscillators disposed therein. At least one of the harmonic oscillators comprises a supporter and a carbon nanotube structure disposed on a surface of the supporter.