Abstract:
This disclosure provides systems, methods, and apparatus for providing a crosspoint switch used in an optical fiber data network. The crosspoint switch can switch optical signals received from any of a plurality of input optical fibers to any one of a plurality of output optical fibers. The crosspoint switch converts the optical signals received from the input optical fibers into electrical signals, switches the electrical signals, and converts the switched electrical signals back into optical signals before transmitting them over the output optical fibers. A micro-electromechanical systems (MEMS) electrical switch array is utilized to switch the electrical signals. The MEMS electrical switch array includes MEMS switching elements that allow for high frequency and high bandwidth operation of the crosspoint switch. The crosspoint switch can utilize circuit switching methodology for switching decisions.
Abstract:
A phased-array antenna assembly includes an antenna board stack, a radome configured to cover the antenna board stack, and a casing configured to support the antenna board stack. The antenna board stack includes a central core, a bottom antenna unit defining a bottom thickness between a bottom surface of the central core and a bottom end of the antenna board stack, and a top antenna unit defining a top thickness between a top surface of the central core and the top end of the antenna board stack that is substantially equal to the bottom thickness. The bottom antenna unit includes two spaced apart bottom metal layers each associated with a different distance from the axis of symmetry. The top antenna unit includes two spaced apart top metal layers each associated with a corresponding one of the distances from the axis of symmetry associated with the bottom metal layers.
Abstract:
A phased-array antenna assembly includes an antenna board stack, a radome configured to cover the antenna board stack, and a casing configured to support the antenna board stack. The antenna board stack includes a central core, a bottom antenna unit defining a bottom thickness between a bottom surface of the central core and a bottom end of the antenna board stack, and a top antenna unit defining a top thickness between a top surface of the central core and the top end of the antenna board stack that is substantially equal to the bottom thickness. The bottom antenna unit includes two spaced apart bottom metal layers each associated with a different distance from the axis of symmetry. The top antenna unit includes two spaced apart top metal layers each associated with a corresponding one of the distances from the axis of symmetry associated with the bottom metal layers.
Abstract:
This disclosure provides systems, methods, and apparatus for providing a crosspoint switch used in an optical fiber data network. The crosspoint switch can switch optical signals received from any of a plurality of input optical fibers to any one of a plurality of output optical fibers. The crosspoint switch converts the optical signals received from the input optical fibers into electrical signals, switches the electrical signals, and converts the switched electrical signals back into optical signals before transmitting them over the output optical fibers. A micro-electromechanical systems (MEMS) electrical switch array is utilized to switch the electrical signals. The MEMS electrical switch array includes MEMS switching elements that allow for high frequency and high bandwidth operation of the crosspoint switch. The crosspoint switch can utilize circuit switching methodology for switching decisions.