The present disclosure relates to satellite terminals, and more particularly to satellite terminals including antennas that are inflatable and may be portable with relatively low weight and small storage requirements.
High capability satellite terminals for communications are, in general, relatively very large, heavy, and expensive. While the physical characteristics of such terminals are not as critical for vehicle-mounted terminals, it is desirable in some circumstances for the terminals to be manually transported by a person, i.e., man-portable. In some cases, weight may be decreased by making the units smaller or using lighter materials, but certain antenna aperture sizes are needed to achieve useful data rates. When the antenna is made smaller, the combination of amplifier and up-converter , such as a Block Up-Converter (BUC), associated with the terminal needs to be made larger for transmission to be adequate. A larger BUC requires additional batteries, which increases weight, contradicting the purpose of reducing the size of the antenna. With respect to lighter materials, 1.2 meter dishes can be made to disassemble and can be made of lightweight plastic, but the precision of manufacturing involved has made this type of production expensive, and to an extent cost-prohibitive.
The laws of radio frequency (RF) transmission physics pose a strategic design dilemma for achieving increased digital transmission speed. Increased transmission speed requires any or all of increased dish size, increased transmission power, decreased transmission losses, or decreased system-wide link noise. Accordingly, apparatus is needed that provides adequate transmission speed, factoring in the above criteria, combined with the ability for the apparatus to be man-portable.
In accordance with an embodiment, an inflatable structure is provided. The inflatable structure includes an inflatable membrane for forming the structure, a first RF reflective portion integral to the inflatable membrane, and a second RF reflective portion integral to the inflatable membrane. When the membrane is inflated, the first RF reflective portion and the second RF reflective portion oppose each other to form an antenna.
In some embodiments, the inflatable membrane is made or assembled to be in one piece. In some embodiments, the first RF reflective portion comprises a main reflector and the second RF reflective portion comprises a subreflector, and the main reflector includes a first concave surface and the subreflector includes a second concave surface. The first concave surface and the second concave surface are spaced from and oppose each other to form a Gregorian antenna. In other embodiments, the first RF reflective portion comprises a main reflector and the second RF reflective portion comprises a subreflector, and the main reflector includes a concave surface and the subreflector includes a convex surface. The concave surface and the convex surface are spaced from and oppose each other to form a Cassegrain antenna.
In some embodiments, the inflatable membrane can be compressed and compacted and subsequently inflated one or more times without substantially altering the original inflated shape of the membrane or the reflective efficiency of the first RF reflective portion and the second RF reflective portion.
In accordance with another embodiment, an inflatable antenna may include an inflatable dish including a radio frequency (RF) reflective main reflector and an opposing RF transparent dish wall. An RF transparent support member extends from the RF transparent dish wall away from the main reflector and has a free end. An RF reflective subreflector is proximate and attached to the free end of the RF transparent support member, and the support member and the subreflector are inflatable. When the antenna is inflated, the main reflector and the subreflector oppose each other to reflect RF energy toward each other to form an antenna. In some embodiments, the main reflector and the RF transparent dish wall define a dish interior volume, the subreflector and the RF transparent support member define a support member interior volume, and the dish interior volume and the support member interior volume are in fluid communication.
In accordance with another embodiment, a method of making an inflatable antenna may include providing material for forming an inflatable structure. A first portion and a second portion of the material are caused to be RF reflective. The material is assembled to form an inflatable membrane. When the membrane is inflated, the first portion and the second portion oppose each other to form an antenna.
Other aspects and features of the present disclosure, as defined solely by the claims, will become apparent to those ordinarily skilled in the art upon review of the following non-limited detailed description of the disclosure in conjunction with the accompanying figures.
The following detailed description of embodiments refers to the accompanying drawings, which illustrate specific embodiments of the disclosure. Other embodiments having different structures and operations do not depart from the scope of the present disclosure.
The following detailed description of embodiments refers to the accompanying drawings, which illustrate specific embodiments of the disclosure. Other embodiments having different structures and operations do not depart from the scope of the present disclosure. Like reference numerals may refer to the same element or component in the different drawings.
Certain terminology is used herein for convenience only and is not to be taken as a limitation on the embodiments described. For example, words such as “front,” “rear,” “top,” “bottom,” “upper,” “lower,” “left,” “right,” “horizontal,” “vertical,” “upward,” and “downward” merely describe the configuration shown in the figures or relative positions. The referenced components may be oriented in any direction and the terminology, therefore, should be understood as encompassing such variations unless specified otherwise.
Referring now to the drawings, wherein like reference numerals designate corresponding or similar elements throughout the several views,
The inflatable dish 42 defines an interior volume. The main reflector 60 is concave frontward. In addition to the main reflector 60, the inflatable support member 44 supports a subreflector 70a that is RF reflective and may be an RF reflective membrane is provided at the end of the inflatable support member 44. The support member 44 may also be a membrane, and with the subreflector 70a defines an interior volume that is in fluid communication with the interior volume of the dish 42, which occurs in the example shown through an opening 76 between the two interior volumes to effectively create a larger interior volume. The support member 44 in this embodiment may have a substantially rectangular front 78 and rear 80, and may have four sides 82 that taper from back to front. The sides 82 of the support member 44 are RF transparent. The subreflector 70a may be at the front end of the support member 44 and may also be rectangular. The subreflector 70a may be concave toward the dish 42, resulting in a dish 42 and subreflector 70a that are concave toward each other to form a Gregorian antenna. Alternatively, the subreflector may take the shape shown as the second subreflector 70b in
The antenna 40 may be made of any flexible material for forming a membrane that will contain a gas and includes, but is not limited to, such materials, for example, as Mylar, fiber reinforced material with a weave, thin film doped or vapor deposited, or aluminized rubber fabric. In addition, the material will preferably (a) hold its shape after being folded, rolled, compressed, or compacted, (b) be capable of being coated with a smooth, highly RF reflective substance to make it suitable as an antenna, (c) be RF transparent when without RF reflective coating, and (d) when RF reflective coating is applied, be capable of being compressed and compacted and subsequently being uncompressed and uncompacted one or more times without affecting its original and desired inflated shape or ability to efficiently reflect RF energy. The RF reflective main reflector 60 and the RF reflective subreflector 70a are both integral to the membrane and may be made by the application of RF reflective coating to the membrane, which when fabricated may all be one piece of material. The subreflector 70a, 70b may be made of RF reflective-coated solid material that holds its shape when the antenna 40 is not inflated, including but not limited to a plastic. This is particularly relevant to the convex subreflector 70b, which as a membrane would not hold a convex shape when the antenna 40 is inflated. The relatively small size of the subreflector 70a, 70b may provide the ability for a solid subreflector not to damage the membrane when the antenna 40 is compressed and expanded, which in some embodiments may happen repeatedly. Rounded corners and edges on a rectangular solid subreflector 70a, 70b may be desirable.
In one method of fabrication, the antenna 40 may be constructed out of multiple flexible elements and bonded together after RF reflective coating has been applied to the inner surface of the main reflector 60 and the inner surface of the subreflector 70a, 70b. The dish 42 and support member 44 may be, as one method vacuum form molded with high precision and relatively low cost, and may be filled with, for example, a dry gas or two-part, hardening, RF transparent foam. If two part hardening foam is used, it is understood that the inflatable antenna will not be collapsible and compactable after inflation, however, the other attributes of the antenna will still apply, such as light weight and high gain. If used, the hardening foam will supply an additional benefit of stiffness of the antenna structure in windy conditions. Bonding must be airtight to allow inflation of the antenna 40 with any dry gas or foam. A gas could be discharged, for example, from a CO2 cartridge into the antenna 40. Alternatively, the two part foam could be discharged into the antenna 40 from two small, pressurized canisters.
With respect to the transmission and reception elements, in this example a transmitter 48 and receiver 50 are mounted to the horn/OMT/waveguide 46, which in turn is mounted to the tripod base 56, as will be discussed in greater detail below. A mounting frame 90 is provided that may be attached to the back of the main reflector 60 at a central position with a permanent, airtight bond. In this embodiment, the mounting frame 90 is rectangular. The area of the main reflector 60 that is within the limits of the mounting frame 90 has no RF reflective material applied to it and accordingly is an RF transparent region 92, as may be accomplished by masking this area when the RF reflective material is applied to the rest of the main reflector 60. Therefore, the RF transparent region 92 allows RF energy to pass in and out of the horn/OMT/waveguide 46.
As shown in
In
The horn/OMT/waveguide 46 in some embodiments may be made of a lightweight material, such as but not limited to, for example, a composite, aluminized plastic or styrene, carbon fiber reinforced epoxy, other materials that can have a reflective surface applied to them, or metal. The horn/OMT/waveguide 46 may be coated on the inside with an RF reflective substance, such as, but not limited to, vaporized aluminum.
The antenna shape is not limited to rectangular, but may be other shapes as well. For example,
The dish 172 defines an interior volume. The main reflector 180 is concave frontward. In addition to the main reflector 180, the inflatable support member 174 supports a subreflector 184a that is, once again, RF reflective and may be an RF reflective membrane provided at the end of the support member 174. The support member 174 may also be a membrane, and with the subreflector 184a defines an interior volume that is in fluid communication with the interior volume of the dish, which occurs in the example shown through an opening 186 between the two interior volumes to effectively create a larger interior volume. The support member 174 in this embodiment has a substantially frustoconical shape, as it tapers from back to front, with substantially circular front 188 and rear 190. The support member 174 is RF transparent. The subreflector 184a is at the front end 188 of the support member 174 and may be substantially circular as well. The subreflector 184a may be concave toward the dish 172, resulting in a dish 172 and subreflector 184a that are concave toward each other to form a Gregorian antenna. Alternatively, the subreflector may take the shape shown as the second subreflector 184b in
The transmission and reception elements, in this example a transmitter 48 and receiver 50, respectively, are mounted to the horn/OMT/waveguide 176, which includes a horn 192 with a circular opening. A mounting frame 194 may be provided that is attached to the back of the main reflector 180 at a central position with a permanent, airtight bond. In this embodiment, the mounting frame 194 is circular. An RF transparent region 196 on the main reflector 180 may also be circular.
As shown in
Operation, horn/OMT/waveguide 176 material selection and design, mounting of the mounting frame 194 to the horn/OMT/waveguide 176, and mounting to the horn/OMT/waveguide 176 to the gimbal 120 may be done similarly to that of the rectangular antenna assembly 30 embodiment previously described.
The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the disclosure. As used herein, the singular forms “a”, “an”, and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms “comprises” and/or “comprising,” when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof.
Although specific embodiments have been illustrated and described herein, those of ordinary skill in the art appreciate that any arrangement which is calculated to achieve the same purpose may be substituted for the specific embodiments shown and that the embodiments herein have other applications in other environments. This application is intended to cover any adaptations or variations of the present disclosure. The following claims are in no way intended to limit the scope of the disclosure to the specific embodiments described herein.