The present invention relates to mobile communications and networking devices and more particularly to mobile, modular devices providing either unsecure, secure or a combination of unsecure and secure communications from remote locations to other remote locations or to central site locations.
Electronic communications devices have played an increasingly significant role in business, personal and government operations since their original inception. As the requirement for increased integration of types of communications systems, such as voice, data and video, has occurred, so too has the requirement for integrated systems that allow for these devices to be deployed in increasingly mobile fashion in support of both secure and non-secure communications. Traditionally, this requirement has been met by either the placement of commercially available equipment into mobile transit cases or brief cases (with multiple, independent components wired together via external cables and powered individually), which can achieve the required communications functionality. However, the reliance on off the shelf components causes a system having high capabilities to be too large for rapid physical transportation. When off the shelf components are integrated into custom single-purpose products, the resulting system can be small and light but limited in their application and ability to hot-swap individual components or meet the physical separation requirements of combined secure/non-secure communications. Therefore, there is a tradeoff between capability and mobility of a system.
There presently exists a need for extremely small, highly mobile and adaptable devices allowing for communications users to deploy such systems in support of mobile, emergency response or military applications, including the ability to provide for physical separation of secure/non-secure communications components when or if required.
There is a need for a compact communications device capable of providing the ability to accept secure/classified user communications, including voice, data and video, the means to encrypt or secure such user communications through external encryption capabilities, the means to optimize the secure voice, data and video communications for transmission across a remote reachback communications link, the ability to physically add separate accessories to provide for self-powered operations and the ability to physically separate modular accessories to facilitate the ability to provide physical separation between secure and non-secure communications components during actual operations.
It is an object of the invention to provide a communication device having board mounted internal components to reduce the size of the device.
It is another object of the invention to provide a communication device having a large number of input ports in a compact configuration to facilitate transport of the device.
It is still another object of the invention to provide a communication system having several modules that may be used together or separately.
These and other objects of the invention will be apparent to one of ordinary skill in the art after reading the disclosure of the invention.
A communication device includes a top wall, a bottom wall and a plurality of side walls including a front wall, a plurality of input ports, at least one input port provided with power, a least one output port, a printed circuit board, and a plurality of components board mounted on the printed circuit board. The components include an input/output panel, a switch, a router, a power supply, and a power-over-ethernet injector. The components are electrically connected to one another through a backplane on the printed circuit board.
A communication system including a main module, the main module having a top wall, a bottom wall and a plurality of side walls including a front wall, a plurality of input ports, at least one input port provided with power, a least one output port, a printed circuit board, and a plurality of components board mounted on the printed circuit board. The components includes an input/output panel, a switch, a router, a power supply, and a power-over-ethernet injector. The components are electrically connected to one another through a backplane on the printed circuit board. A battery module has a power transfer connector for supplying power to the main module.
The system depicted in
As shown in
The small size of the unit, having dimensions no greater than eleven inches by five inches by three inches in height, or a volume of no greater than one hundred sixty five cubic inches, is primarily the result of the internal design of the unit, as shown in the schematic view of
The custom backplane/carrier board eliminates the need for powers supplies, interfaces and power cables by directly mounting COTS devices (reduced to the board/component-level), allowing for all communications and power to be directed through the backplane/carrier board. By removing ancillary elements and having just the components attached to the board 50, the overall size of the device is reduced and air flow is improved. A board mounted input/output panel 52 is mounted on the board, allowing for data and power transmission through the various input and output ports described with reference to
Additionally, the backplane/carrier board includes a DC power supply 60 for receiving power from an external source, and a custom PoE injection system 62 which allows for the use of smaller internal components (primarily switch and router components that do not have native support for PoE) rather than larger pre-built COTS components having their own built in PoE capabilities. This also reduces the size of the internal DC power supply 60. Additional benefits of the custom backplane/carrier board include an overall reduction in the size of the main module since the space requirement for internal wiring harnesses has been eliminated, the improvement of air-flow, since the elimination of cables allows for a smoother flow of air through the unit, and the reduction of the size of the air intakes and fan. The reliance on board-mounted components allow the dimensions of the board to be no greater than eleven inches by five inches, or the equivalent of an area no greater than fifty five square inches. Also, the board mounted components enable a low-profile front panel having dimensions no greater than eleven inches by three inches, or a surface area no greater than thirty three square inches.
The secondary module shown in
The system also has mechanical connectors 84, and a power transfer connector 86 that mates with a suitable connector on the bottom of the main module to allow power transfer of filtered DC power between the two modules. In addition to the mechanical connectors 84, which are similar to the connectors 46 of the main module, the connection posts 88 are also seen. These features will be described in more detail later. The module also features a filtered air intake, with removable filter, and air exhaust on the sides of the unit. The secondary module can be used in the same manner as the main module, although due to the lower number of ports, the secondary module has less capabilities. When used with the main module, the secondary module is useful for receiving the output of the inline network encryptor and uploading the input to a network through a satellite connection.
The battery module 90 shown in
The system shown in
While the invention has been described with reference to a preferred embodiment, variations and modifications would be apparent to one of ordinary skill in the art. The invention encompasses such variations and modifications.