This invention relates generally to an antenna system and in particular to a light weight portable phased array antenna system for receiving high bandwidth signals from satellites.
Although antenna systems that use light communication channels in combination with phased array antenna elements have already been implemented, thus far none of these antenna systems have been adapted to form a portable lightweight collapsible unit. Such a configuration is desirable to provide convenient and portable access to movies on demand or internet service for campers, hikers, travelers and others who may find themselves in remote areas where other communication connections are not readily available. The antenna system of the present invention is easily assembled and disassembled and compact for transporting.
The present invention provides an antenna system for receiving communication signals from satellites, the antenna system having a plate of light channel material that is formed from a plurality of subplates, a plurality of antenna nodes supported on the top surface of each of the subplates, and an electronic control unit to which the subplates are fixed and aligned and a collapsible support stand fixed to the bottom of the electronic control unit opposite the subplates, the subplates, antenna nodes, electronic control unit and stand interconnecting to form a lightweight antenna assembly that may be disassembled into easily portable components.
These and other aspects and advantages of the present invention will become apparent upon reading the following detailed description of the invention in combination with the accompanying drawings.
The following description of the preferred embodiments of the inventive system is not intended to limit the inventive system to these preferred embodiments, but rather to enable any person skilled in the art of phased array antenna systems to make and use the inventive system.
Referring to
As shown in
The LCC substrate plate 46 is detachably fixed to the collapsible support stand 20. The combination of the LCC substrate plate 46 and the detachable and collapsible support stand 20 allows the antenna system 10 to be easily assembled and disassembled into a compact unit for ease in transport. The construction of the LCC substrate plate 46 from the four subplates 50a through 50d further facilitates the easy transport of the antenna system 10.
Each of the plurality of antenna nodes 30 communicates through one of the LCC subplates 50a through 50d with a central processor or electronic control unit 60 that combines the incoming signals, calculates deviations among the signals due to differences in the location and direction of the antenna nodes, and sends control signals back to the antenna nodes 30 that allow the timing or delay of some or all of the antenna nodes 30 to be adjusted relative to the others to obtain a synchronized condition among the antenna nodes 30, thus allowing them to process signals in which the phase is synchronized. Use of light channel technology to form the substrate subplates 50a through 50d makes the preferred embodiment of the inventive antenna system 10 light weight and portable.
The material making up the subplates plates 50a through 50d in the preferred embodiment is a light-weight light channel communication (LCC) substrate material such as polycarbonate, PETG (glycolized polyester—polyethylene terephtalate with glycol modifiers) or acrylic (polymethyl methacrylate), but its functionality could easily be accomplished through the use of any other strong and light-weight material that is a good conductor of light. The LCC substrate material making up the subplates 50a through 50d channels or conveys the signal information from each of the antenna nodes 30 to the electronic control unit 60 for data processing. Using the LCC substrate material to comprise the subplates 50a through 50d eliminates the need for circuit boards or wiring harnesses that can often be large, heavy and bulky.
As seen in
As shown in FIG. 2 and
Referring now to FIG. 5 and FIG 6, each of the antenna nodes 30 communicates with the main electronic control unit 60 through the optically transparent plate 46. Power is supplied by means of conductive traces or conductors 70 that are routed from each of the antenna nodes 30 to an interconnect pad 71. Each of the interconnect pads 71 is connected to a duplicate interconnect pad 72 on the under side of the LCC subplate 50a through 50d by means of a copper plated through hole 73. The duplicate interconnect pacts 72 are in turn each connected to one of a plurality of conductor pads 80 embedded in the housing of the electronic control unit 60 using any one of the many known methods of interconnection, such as by way of example, connectors or press fit pins, thereby completing a communications path from each of the antenna nodes 30 to the electronic control unit 60 that processes the signal data. The electronic control unit 60 is located and secured to the collapsible support stand 20 through means of a central locator pin 94 that mates with a central alignment hole 95 in the housing of the electronic control unit 60
Also shown in FIG 5 is an emitter/transmitter LED 90 that transmits signals from the electronic control unit 60 to the plurality of antenna nodes 30 that form the phased array 40. Conversely, photoreceptors or other receiver devices 91 receive signals from the plurality of antenna nodes 30 in the phased array 40 and convey these signals to the electronic control unit 60.
The node electronics 100, 101 shown in FIG. 7 and
Referring now to
A local processor 170 within the receiving node electronics 100 receives signals from the electronics control unit 60 via a pin 160 within the receiving node electronics 100. The local processor 170 calculates the appropriate delays for the dipole element 110 and modulates an LED/transceiver to send that information back to the appropriate antenna nodes 30 in the phased array 40 in order to adjust the delay of each of the antenna nodes 30 as needed to achieve synchronization of the phased array 40. The adjustment in the delay of the antenna nodes 30 is controlled by microprocessor controlled phase delay lines contained in the electronic control unit 60.
Referring to
The preceding description of the preferred embodiments of the inventive system is not intended to limit the inventive system to these preferred embodiments, but rather to enable any person skilled in the art of phased array antenna systems to make and use this invention. As any person skilled in the art of phased array antenna systems will recognize from the previous detailed description and from the figures and claims, modifications and changes could be made to the preferred embodiments of the inventive system without departing from the scope of this invention system defined in the following claims.
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Number | Date | Country | |
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