TOWED, AUTONOMOUS, OR REMOTELY CONTROLLED AIRBORNE MOBILE SYSTEM INCLUDING A PLURALITY OF REFLECTION STRUCTURE SECTIONS AND SHAPES ADAPTED FOR ATTRACTING ATTENTION OF SEARCH SYSTEMS CONFIGURED FOR SENSING PATTERN RECOGNITION BASED ELECTROMAGNETIC OR VISUAL REFLECTIONS FROM THE STRUCTURES AND SHAPES AND RELATED METHODS
20170219319 · 2017-08-03
Inventors
Cpc classification
F41G7/224
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F41J2/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G7/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Methods and structures associated with a towed, autonomous, or remotely controlled airborne mobile system including a plurality of reflection structure sections and shapes adapted for attracting attention of search systems configured for sensing pattern recognition based electromagnetic or visual reflections from the structures and shapes and related methods
Claims
1. A system configured for attracting attention or focus of an operator or system with a sensor comprising: a first mobile object comprising an airborne system including a first control system and a first propulsion system configured to propel or raise the first mobile object; a second mobile object comprising a second propulsion system and a second control system configured to move within at least a portion of a fluid or gas; and an inflatable structure having a first end and a second end and adapted to float or become airborne upon inflation comprising: a plurality of segments coupled together, said plurality of segments comprising electromagnetic reflecting materials of different thicknesses and sections, said plurality of segments include a plurality of inflatable sections which are coupled together to form a plurality of electromagnetic spectrum reflective cross sectional signal reflection profiles formed to create a first plurality of predetermined electromagnetic reflections from one or more predetermined electromagnetic signal sources; a plurality of reflective protrusions extending away from sections of one or more said plurality of segments, said plurality of reflective protrusions are formed to create a second plurality of predetermined electromagnetic reflections from said one or more predetermined electromagnetic signal sources; a plurality of electromagnetic energy emitters and control systems coupled to two or more said plurality of segments of said inflatable structure configured to generate electromagnetic energy correlated to a predetermined electromagnetic energy pattern; one or more inflatable gas bags contained within said inflatable structure, said inflatable gas bags configured to stabilize said inflatable structure into a position that contributes to generating said first plurality of predetermined electromagnetic reflections; a weighted cable connected to said first end and said second end of said inflatable structure, said weighted cable configured to keep uniform spacing between said first end and said second end and to stabilize said inflatable structure into said position forming at least said first plurality of predetermined electromagnetic reflections; a first and second tether sections adapted to couple said inflatable structure to said first mobile object and said second mobile objects; and a blower coupled to the second mobile object configured to force a buoyancy gas into the inflatable structure.
2. The system of claim 1, wherein said tether sections couple with a fiber optic cable configured to receive transmissions from and communicate with the inflatable structure.
3. The system of claim 2, wherein said inflatable structure is powered by the fiber optic cable.
4. The system of claim 1, wherein said tether sections couple with a connective cable configured to provide strength so that the tether does not break or detach.
5. The system of claim 1, wherein said buoyancy gas comprises heated air or a lighter than air gas.
6. The system of claim 1, further comprising a first platform, said inflatable structure is selectively and detachably disposed on a portion of said first platform.
7. The system of claim 6, wherein said first platform comprises a ship hull and a deck.
8. The system of claim 1, wherein said first and second mobile objects each comprises an unmanned aerial vehicle, wherein the control system further comprises a communication system that communicates with an operator control station to receive instructions on maneuvering the inflatable structure with respect to the one or more predetermined electromagnetic signal sources that contributes to generating said first and second pluralities of predetermined electromagnetic reflections.
9. A method associated with operating a system configured for attracting attention or focus of an operator or system with a sensor comprising: providing a first mobile object comprising an airborne system including a first control system and a first propulsion system configured to propel or raise the first mobile object; providing a second mobile object comprising a second propulsion system and a second control system configured to move within at least a portion of a fluid or gas; and providing an inflatable structure having a first end and a second end and adapted to float or become airborne upon inflation comprising: a plurality of segments coupled together, said plurality of segments comprising electromagnetic reflecting materials of different thicknesses and sections, said plurality of segments include a plurality of inflatable sections which are coupled together to form a plurality of electromagnetic spectrum reflective cross sectional signal reflection profiles; a plurality of reflective protrusions extending away from sections of one or more said plurality of segments, said plurality of reflective protrusions are formed to create a predetermined electromagnetic reflection from one or more predetermined electromagnetic signal sources comprising said system with said sensor; a plurality of electromagnetic energy emitters and control systems coupled to two or more said plurality of segments of said inflatable structure configured to generate electromagnetic energy correlated to a predetermined electromagnetic energy pattern; one or more inflatable gas bags contained within said inflatable structure, said inflatable gas bags configured to stabilize said inflatable structure into a position forming said predetermined electromagnetic reflection; a weighted cable connected to said first end and said second end of said inflatable structure, said weighted cable configured to keep uniform spacing between said first end and said second end and to stabilize said inflatable structure into said position forming said predetermined electromagnetic reflection; and a first and second tether sections adapted to couple said inflatable structure to a first mobile object and a second mobile objects; inflating said inflatable structure with a buoyancy gas and orienting said inflatable structure with respect to said operator or system with said sensor; operating said first mobile object and said second mobile objects to move or position said inflatable structure; and operating said plurality of electromagnetic energy emitters to generate said predetermined electromagnetic energy pattern.
10. The method of claim 9, wherein said first and second tether sections couple with a fiber optic cable configured to receive transmissions from and communicate with the inflatable structure.
11. The method of claim 10, wherein said inflatable structure is powered by the fiber optic cable.
12. The method of claim 9, wherein said tether sections couple with a connective cable configured to provide strength so that the tether does not break or detach.
13. The method of claim 9, wherein said buoyancy gas comprises heated air or a lighter than air gas.
14. The method of claim 9, further comprising providing a first platform, said inflatable structure is selectively and detachably disposed on a portion of said first platform.
15. The method of claim 14, wherein said first platform comprises a ship hull and a deck.
16. The method of claim 9, wherein said first mobile objects and said second mobile objects each comprises an unmanned aerial vehicle, wherein said control system further comprises a communication system that communicates with an operator control station to receive instructions on maneuvering the inflatable structure with respect to the one or more predetermined electromagnetic signal sources that contributes to generating said first and second pluralities of predetermined electromagnetic reflections.
17. A method of manufacturing a system configured for attracting attention or focus of an operator or system with a sensor, comprising the steps of: identifying an electromagnetic spectrum reflection profile of an object of interest that includes a cross-sectional profile of an electromagnetic spectrum signal return or reflection profile; shaping or forming an inflatable structure having a first end and a second end to generate at least a portion of said electromagnetic spectrum signal return or reflection profile, wherein said inflatable structure contains a plurality of segments, said plurality of segments comprising electromagnetic reflecting material sections of different thicknesses and sections configured to form or contribute at least in part to generating said electromagnetic spectrum signal return or reflection profile; attaching or forming a plurality of reflective protrusions to said inflatable structure extending away from said inflatable structure, said plurality of reflective protrusions configured to form or contribute at least in part to generating said electromagnetic spectrum signal return or reflection profile; placing within or forming said inflatable structure to have one or more inflatable sections or gas bags, said inflatable sections or gas bags configured to orient said inflatable structure into a position or form forming or contributing at least in part to generation of said electromagnetic spectrum signal return or reflection profile; attaching a weighted cable to said first end and said second end of said inflatable structure, said weighted cable configured to maintain a form and distance relationship between said first end and said second end and to hold or orient said inflatable structure into said position or form forming or contributing at least in part to generation of said electromagnetic spectrum signal return or reflection profile; coupling a selective detachment section between one of said first end or said second end of said inflatable structure and a first platform, said selective detachment section comprises a coupling or decoupling section which selectively decouples said first end or said second end of said inflatable structure from said first platform; attaching a plurality of electromagnetic energy emitters onto said inflatable structure that generate electromagnetic energy configured to form at least in part or contribute to generation of said electromagnetic spectrum signal return or reflection profile; and attaching a first and second vehicle comprising communication, propulsion, and lift or floating systems to opposing ends of said inflatable structure, said first and second vehicles further comprise control instruction logic which is configured to maneuver the inflatable structure with respect to a second platform in a predetermined movement pattern or a movement pattern communicated to the first or second vehicles from a remote operator system, said second platform comprising a detection system that emits electromagnetic spectrum signals and detects at least part of said electromagnetic spectrum signal return or reflection profile reflections from said plurality of reflective protrusions and said electromagnetic reflecting material sections, wherein said predetermined movement pattern or said movement pattern communicated to the first or second vehicles comprises movement and orientation of the inflatable structure with respect to said second platform to maximize detection of said electromagnetic spectrum signal return or reflection profile.
18. The method of claim 17, wherein said electromagnetic spectrum signal return or reflection profile comprises a radar reflection return.
19. The method of claim 17, wherein said first and second vehicles each are unmanned aerial vehicles comprising lift and maneuver systems.
20. The method of claim 17, wherein said first and second vehicles are unmanned water vehicles.
21. The method of claim 17, further comprises coupling a third vehicle to a center section of the inflatable structure, said third vehicle comprising communication, propulsion, and control sections, said control section communicates with said first and second vehicles or a control section of at least said first platform to receive movement and orientation control instructions, said third vehicle configured to lift and orient a center section of the inflatable structure with respect to the first or second platforms.
22. A method of attracting attention of one or more entities, comprising the steps of: providing a ship; providing a plurality of inflatable structures having a first end and a second end and adapted to float or become airborne upon inflation, each of said plurality of inflatable structures comprising: a plurality of segments coupled together, said plurality of segments comprising electromagnetic reflecting materials of different thicknesses and sections, said plurality of segments include a plurality of inflatable sections which are coupled together to form a plurality of electromagnetic spectrum reflective cross sectional signal reflection profiles; a plurality of reflective protrusions extending away from sections of one or more said plurality of segments, said reflective protrusions are formed to create a predetermined electromagnetic reflection from one or more predetermined electromagnetic signal sources comprising a system with said sensor; a plurality of electromagnetic energy emitters and control systems coupled to two or more said plurality of segments of said inflatable structure configured to generate electromagnetic energy correlated to a predetermined electromagnetic energy pattern; one or more inflatable gas bags contained within said inflatable structure, said inflatable gas bags configured to stabilize said inflatable structure into a position forming said predetermined electromagnetic reflection; a weighted cable connected to said first end and said second end of said inflatable structure, said weighted cable configured to keep uniform spacing between said first end and said second end and to stabilize said inflatable structure into said position forming said predetermined electromagnetic reflection; a maneuvering system comprising a first and second maneuvering and propulsion system coupled to opposing ends of the inflatable structure, said maneuvering system comprising a control section and a communication section that maneuvers the inflatable structure with respect to the ship; and a first and second tether sections adapted to couple said inflatable structure to a first and a second mobile objects; coupling the plurality of inflatable structures to the ship; transiting the ship; detecting said entities; inflating each said plurality of inflatable structures and deploying the inflatable structures by detaching the inflatable structures from the ship; and maneuvering the inflatable structures by the maneuvering systems to a plurality of predetermined distances from the ship, such that the ship cannot be visually sighted from a resulting position of each of the inflatable structures.
23. The method of claim 22, wherein said first and second maneuvering and propulsion systems respectively comprises a first and second unmanned aerial vehicle.
24. The method of claim 23, wherein said maneuvering system further comprises a third maneuvering and propulsion system coupled with a center section of said inflatable structure.
25. A method of providing and operating a system configured for attracting attention or focus of an operator or system with one or more sensors searching for an electromagnetic spectrum reflection profile of an object of interest that includes a cross-sectional profile of an electromagnetic spectrum signal return or reflection profile, said method comprising the steps of: providing one or more inflatable structures each comprising a first end and a second end to generate at least a portion of electromagnetic spectrum signal return or reflection profile, wherein said inflatable structure comprises: a plurality of segments, said plurality of segments comprising electromagnetic reflecting material sections of different thicknesses and sections configured to form or contribute at least in part to generating said electromagnetic spectrum signal return or reflection profile; a plurality of reflective protrusions to said inflatable structure extending away from said inflatable structure, said plurality of reflective protrusions configured to form or contribute at least in part to generating said electromagnetic spectrum signal return or reflection profile; one or more inflatable sections or gas bags, said inflatable sections or gas bags configured to orient said inflatable structure into a position or form forming or contributing at least in part to generation of said electromagnetic spectrum signal return or reflection profile; a weighted cable to said first end and said second end of said inflatable structure, said weighted cable configured to maintain a form and distance relationship between said first end and said second end and to hold or orient said inflatable structure into said position or form forming or contributing at least in part to generation of said electromagnetic spectrum signal return or reflection profile; a selective detachment section between one of said first end or said second end of said inflatable structure and a first platform, said selective detachment section comprises a coupling or decoupling section which selectively decouples said first end or said second end of said inflatable structure from said first platform; a plurality of electromagnetic energy emitters onto said inflatable structure that generate electromagnetic energy configured to form at least in part or contribute to generation of said electromagnetic spectrum signal return or reflection profile; and a first and second vehicle comprising communication, propulsion, and lift or floating systems to opposing ends of said inflatable structure, said first and second vehicles further comprise control instruction logic which is configured to maneuver the inflatable structure with respect to a second platform having said operator or system with one or more sensors thereon in a predetermined movement pattern or a movement pattern communicated to the first or second vehicles from a remote operator system, said second platform comprising a detection system that emits electromagnetic spectrum signals and detects at least part of said electromagnetic spectrum signal return or reflection profile reflections from said reflective protrusions and said electromagnetic reflecting material sections, wherein said predetermined movement pattern or said movement pattern communicated to the first or second vehicles comprises movement and orientation of the inflatable structure with respect to said second platform to maximize detection of said electromagnetic spectrum signal return or reflection profile; transiting the first platform; detecting said second platform; inflating each said plurality of inflatable structures and deploying the inflatable structures by detaching the inflatable structures from the first platform; and maneuvering the inflatable structures using the first and second vehicles based on the predetermined movement pattern or the movement pattern communicated to the first or second vehicles from a remote operator system, wherein said predetermined movement pattern or the movement pattern communicated to the first or second vehicles comprise movement of each of the inflatable structures to a spaced apart plurality of predetermined distances from the first platform, such that the first platform cannot be visually sighted from a resulting position of each of the inflatable structures.
26. The method of claim 25, wherein said electromagnetic spectrum signal return or reflection profile comprises a radar reflection return.
27. The method of claim 25 wherein said first and second vehicles each are unmanned aerial vehicles comprising lift and maneuver systems.
28. The method of claim 25, wherein said first and second vehicles are unmanned water vehicles.
29. The method of claim 25, further comprises coupling a third vehicle to a center section of the inflatable structure, said third vehicle comprising communication, propulsion, and control sections, said control section communicates with said first and second vehicles or a control section of at least said first platform to receive movement and orientation control instructions, said third vehicle configured to lift and orient a center section of the inflatable structure with respect to the first or second platforms.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] The detailed description of the drawings particularly refers to the accompanying figures in which:
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DETAILED DESCRIPTION OF THE DRAWINGS
[0023] The embodiments of the invention described herein are not intended to be exhaustive or to limit the invention to precise forms disclosed. Rather, the embodiments selected for description have been chosen to enable one skilled in the art to practice the invention.
[0024] Referring initially to
[0025] In one exemplary embodiment, a UAV 3 can be attached at an opposing end of the ISAS 4 from the ship 11 to perform a variety of attractive, operation/movement altering operations including protective operations of a designated ISAS 4 towing platform (e.g., ship). The exemplary UAV 3 is attached to the ISAS 4 via a tether 5. The UAV 3 may be under the control of a remote operator. Alternatively, the ISAS 4 supported or maneuvered by the UAV 3 may have preprogrammed movement or flight information stored; for example, a preprogrammed path or artificial intelligence system with a library of response actions operating based on sensor inputs on the ISAS 4 or the UAV 3 that would maneuver or lead the ISAS 4 in a variety of ways including moving the ISAS 4 to a distance beyond which the ship 11 that can be seen via line of sight. Alternatively, the ISAS 4 UAV 3 can maneuver the ISAS 4 in a path that would stay within a visual range of the point of origin ship but maneuver the ISAS 4 around, (e.g. in an zig-zag manner). The UAV 3, being attached via tether 5, can maneuver the ISAS 4, in a preferred direction, for example, away from the ship 11 in the event the tether 5 connecting the ship 11 and the ISAS 4 is disconnected deliberately or by accident (e.g., emergency clearance maneuvering to avoid collision with the towing ship or another ship or structure in proximity to detach point). ISAS 4 can be detached from the ship 11 or UAV 3 either remotely via remote detach/coupling system that includes actuators and coupling sections or manual coupling/decoupling systems. Embodiments can address protective functions against autonomous vehicle(s), including flying platforms with sensor systems and payloads, which have locked on or are moving towards a platform or location which an operator desires to prevent the autonomous vehicle from interacting with or closing into proximity with. In addition, an exemplary UAV 3 can provide stability and buoyance to the exemplary ISAS 4 so that the ISAS 4 remains in an orientation that allows attractive systems, (e.g. the IR signal of the ISAS 4), to mimic that of the ship 11, causing incoming autonomous vehicles or mobile objects with guidance, propulsion, payload, and sensor system to target the ISAS 4 and not the ship 11.
[0026] At least one exemplary ISAS 4 can include a radar reflective tube 1. The radar reflective tube 1 may be inflated manually or automatically by the blower 9 or by a charge or gas generator that produces chemical reactions that create a gas. A plurality of heat emitters 15 can be disposed along the radar reflective tube 1. The heat emitters 15 may be in any number and placed anywhere along the radar reflective tube 1 to create a desired IR signal that creates a desired IR pattern including an IR pattern associated with a specific ship 11 or target that an operator desires to attract attention or move attention away from. As depicted in
[0027] Referring now to
[0028] Additionally, corner reflectors 17 may be disposed along the radar reflective tube 1. The corner reflectors 17 provide a higher rate of RF signal return. The corner reflectors may be in any number along the radar reflective tube 1 and be comprised of a material capable of reflecting RF; and additionally, the corner reflectors 7 may be in various thicknesses to enhance RF signal return.
[0029] Additionally, one or more embodiments of the exemplary inflatable gas bags contained within the inflatable structure may incorporate modular design elements. Some embodiments may have segments or modules having individual inflator systems which inflate only the module or segments having such an inflator system. Alternatively, embodiments may be provided which have a gas or air passage coupling the segments or modules together, (e.g. through a valve or aperture coupling any two segments or modules), so as to permit collective inflation. In some embodiments, a plurality of inflatable segments or modules may be coupled together to inflate and orient the inflatable structure with respect to the operator or system with exemplary sensor. These inflatable segments or modules may be attached to one another using a variety of methods or structures such as cables or other attaching structures. One example can include flaps with an adjustable coupling structure,(e.g. Velcro®), that enable an operator to shape a module or segment so that it is collapsed to some extent (e.g. a square) is partially collapsed to form an angled side such as a triangular shape, that permits two groups of segments or modules to connect together at an angle with respect to each other (e.g. such as forming a V shaped structure with the collapsed segments or modules forming two triangular shaped sections allowing for the base or connective junction of the V shape to be formed that collapse) compressing the inflatable gas structure, (e.g. inflatable gas bag), and allowing the segments or modules to inflate with a desired modified shape. Another exemplary embodiment can include creation of adjustable or selective coupling sections such as, providing an overlapping flap on one inflatable segment or module that extends so it can be hooked or coupled with a corresponding coupling structure in another structure in an adjacent module or section (e.g. into a groove of a second inflatable segment or module), creating a sealing or coupling mechanism between the flap and corresponding coupling structure. In some embodiments, these coupling sections can form an airtight seal so that both segments can be inflated by passing air or gas through one into another. Some embodiments might include an exemplary structure or system which permits a selective coupling side of a segment or module to decouple from three edges of the segment or module and then extend laterally from an uncoupled edge of the selective coupling side that then couples with an adjacent segment or module which also has an identical or similar selective coupling side which then is decoupled from its respective module or segment and then coupled with its corresponding adjacent module or segment. Sealing structures (e.g., ziplock or press seal structures) can be provided on edges of both inflatable structures which provide a pressure seal for at least two edges of each two adjacent segments or modules facing each other.
[0030] Additionally, one or more inflatable gas bags contained within the inflatable structure, may work in a modular fashion, with each segment containing its own inflator. A plurality of inflatable segments may be coupled together to inflate and orient the inflatable structure with respect to the operator or system with the sensor. These inflatable segments may be attached to one another using a variety of methods. One example includes Velcro® flaps that collapse, compressing the inflatable bag, and allowing the segments to inflate. Another example includes the creation of junctions, in which an overlapping flap on one inflatable segment can be hooked into a groove of a second inflatable segment, creating a sealing mechanism between the male and female securements.
[0031] Referring now to
[0032] In at least some embodiments, various factors may individually or collectively affect RCS, including size, material, shape, incident angle, and reflected angle. Higher RCS indicates higher reflectivity, indicating that an object is more easily detectible. Exemplary ISAS 4 can be formed or operated to present a specific RCS associated with a specific object of interest (e.g., a particular type of ship RCS or other structure of interest), controlled by the PMACC.
[0033] Referring now to
[0034] Referring now to
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[0039] Various methods can be used with various embodiments of the invention. Referring to . 10, a method associated with operating a system configured for attracting attention or focus of an operator or system with at least one sensor is shown. At step 101: providing a first mobile object comprising an airborne system including a first control system and a first propulsion system configured to propel or raise the first mobile object; at step 103: providing a second mobile object comprising a second propulsion system and a second control system configured to move within at least a portion of a fluid or gas; and at step 105: providing an inflatable structure having a first end and a second end and adapted to float or become airborne upon inflation including: a plurality of segments coupled together, the plurality of segments including electromagnetic reflecting materials of different thicknesses and sections, the segments include a plurality of inflatable sections which are coupled together to form a plurality of electromagnetic spectrum reflective cross sectional signal reflection profiles;
a plurality of reflective protrusions extending away from sections of one or more of the plurality of segments, the reflective protrusions are formed to create a predetermined electromagnetic reflection from one or more predetermined electromagnetic signal sources; a plurality of electromagnetic energy emitters and control systems coupled to two or more segments of the inflatable structure configured to generate electromagnetic energy correlated to a predetermined electromagnetic energy pattern; one or more inflatable gas bags contained within the inflatable structure, the inflatable gas bags configured to stabilize the inflatable structure into a position forming the predetermined electromagnetic reflection; a weighted cable connected to the first end and the second end of the inflatable structure, the weighted cable configured to keep uniform spacing between the first end and the second end and to stabilize the inflatable structure into the position forming the predetermined electromagnetic reflection; and a first and second tether sections adapted to couple the inflatable structure to a first and a second mobile objects. At step 107: inflating and orienting the inflatable structure with respect to the operator or system with the sensor; at step 109: operating the first and second mobile objects to move or position the inflatable structure; and at step 111: operating the plurality of electromagnetic energy emitters to generate the predetermined electromagnetic energy pattern.
[0040] Referring to
[0041] Referring to
[0042] Although the invention has been described in detail with reference to certain preferred embodiments, variations and modifications exist within the spirit and scope of the invention as described and defined in the following claims.