Abstract:
A solar cell roof system having a plurality of solar modules, of which at least some are to be installed in interconnected manner on top of each other in order to provide protection from rain; in addition, air conveyance arrangement for the supply of ambient air behind the rear side of the solar module are provided in or on at least one edge of the solar modules to be installed on top of one another, this edge being a lower edge in the normal position.
Abstract:
A method of protecting a micro-mechanical sensor structure embedded in a micro-mechanical sensor chip, in which the micro-mechanical sensor structure is fabricated with a protective membrane, the micro-mechanical sensor chip is arranged so that a surface of the protective membrane faces toward a second chip, and the micro-mechanical sensor chip is secured to the second chip.
Abstract:
A method and a system for controlling a wireless sensor network from a user interface coupled to the Internet are provided. A user accesses an Internet-based portal from the user interface and establishes a secure broadband Internet connection between a remote control module coupled to the wireless sensor network and the portal. The connection is established by manually triggering a connection between the remote control module and the portal from the remote control module.
Abstract:
A method and system for controlling a home automation system by voice input provided via a telephone unit. A voice portal server receives a signal transmitted by the telephone unit, processes the signal to interpret the voice input, and generates command signals for controlling a home device in the home automation system based on the interpreted voice input. The voice portal server transmits the command signals over a data network or a telephone network to a home interface for receiving the command signals transmitted by the voice portal server. The home interface controls the home device in accordance with the received command signals.
Abstract:
A mobile security network includes a plurality of primary mobile nodes and at least one secondary mobile node dynamically assigned to be monitored by one of the plurality of primary mobile nodes. The plurality of primary mobile nodes communicate with each other to hand off responsibility for monitoring the at least one secondary mobile node, and monitor a link quality between themselves and any assigned secondary mobile nodes. The network is configured to issue an alarm if a link quality between a secondary mobile node and its assigned primary mobile node falls below a predefined value for a predefined time period, and a link quality between the secondary mobile node and all non-assigned primary mobile nodes does not exceed the predefined link quality.
Abstract:
An exemplary embodiment of the present invention creates a micromechanical rotational rate sensor having a first Coriolis mass element and a second Coriolis mass element which may be situated over a surface of a substrate. An exemplary embodiment of a micromechanical rotational rate sensor may have an activating device by which the first Coriolis mass element and the second Coriolis mass element are able to have vibrations activated along a first axis. An exemplary embodiment of a micromechanical rotational rate sensor may have a detection device by which deflections of the first Coriolis mass elements and of the second Coriolis element are able to be detected along a second axis, which is perpendicular to the first axis, on the basis of a correspondingly acting Coriolis force. The first axis and second axis may run parallel to the surface of the substrate. The detecting device may have a first detection mass device and a second detection mass device. The centers of gravity of the first Coriolis mass element, the second Coriolis mass element, the first detection mass device and the second detection mass device may coincide at a common mass center of gravity when they are at rest.
Abstract:
A method and system to bookmark a location, blog geo-referential information, and process the geo referential information, having a mobile device and a stationary server. The mobile device is configured to generate a waypoint to geographically identify the location, generate a timestamp, fetch and store data associated with the location, and receive a user-provided description regarding at least one of the location and the data associated with the location. The stationary server is configured to receive geo-referential information from the mobile device, the geo-referential information including the waypoint, timestamp, and at least one of the data and user-provided description. The server includes a database to maintain the geo-referential information in a spatially and temporally organized manner, and a processing arrangement to adaptively process the geo-referential information according to at least one of a characteristic and preference of a user.
Abstract:
A yaw-rate sensor is proposed having a first and a second Coriolis element (100, 200) which are arranged side-by-side above a surface (1) of a substrate. The Coriolis elements (100, 200) are induced to oscillate parallel to a first axis. Due to a Coriolis force, the Coriolis elements (100, 200) are deflected in a second axis which is perpendicular to the first axis. The first and second Coriolis elements (100, 200) are coupled by a spring (52) which is designed to be yielding in the first and in the second axis. Thus, the frequencies of the oscillations in the two axes are developed differently for the in-phase and antiphase oscillation.
Abstract:
System for interfacing a device onboard a vehicle and a voice portal server external to the vehicle including a voice communicator and a data communicator situated in the vehicle. The onboard device communicates electronically with the voice communicator and/or the data communicator which in turn are able to communicate wirelessly with a base station. The base station communicates electronically with the voice portal server. A method of providing information to an occupant of a vehicle includes providing a voice communicator, a data communicator, an onboard device, a base station, and a voice portal server. The voice portal server communicates electronically with the base station, the base station communicates wirelessly with the voice communicator and/or the data communicator, and the onboard device communicates electronically with the voice communicator and/or the data communicator. The occupant communicates a request for information via the voice communicator and via the base station to the voice portal server. The voice portal server communicates an information match via the base station and via the data communicator and/or the voice communicator. A vehicle navigation apparatus including a voice communicator, a data communicator, and an onboard device situated in a vehicle. The onboard device is electrically coupled to the voice communicator and the data communicator and communicates wirelessly with a base station which electronically communicates with a voice portal server to provide information to the occupant of the vehicle.
Abstract:
A faceplate including an antenna for receiving navigation signals, a processor electrically coupled to the antenna for determining a position, a display electrically coupled to the processor for displaying navigation information, and at least one input arrangement. The faceplate able to be installed on a front side of a vehicular electronic unit in a dashboard of a vehicle. The at least one input arrangement controlling the vehicular electronic unit when the faceplate is received on the front side of the vehicular electronic unit. A system for navigating including a handheld unit. The handheld unit includes an antenna, a processor electrically coupled to the antenna, and a display electrically coupled to the processor. A further antenna is situated on a vehicle and a receptacle is situated in a dashboard of the vehicle for receiving the handheld unit. The receptacle electrically couples the further antenna to the handheld unit when the handheld unit is received in the receptacle. The handheld unit operates to navigate a user in a stand-alone capacity and operates to navigate a driver of the vehicle when the handheld unit is received in the receptacle. A method for navigating a pedestrian, navigating a driver, and securing a vehicular electronic component is provided. The method includes determining by a processor whether a handheld unit is received in a dashboard receptacle. The processor is situated in the handheld unit and electrically coupled to an antenna situated in the handheld unit. The processor is electrically coupled to a display situated in the handheld unit. The dashboard receptacle is situated in the vehicle. Navigating the pedestrian using the antenna if the handheld unit is not received in the dashboard receptacle. Navigating the driver using a further antenna if the handheld unit is received in the dashboard receptacle. The further antenna is situated on the vehicle.