Multi-purpose expandable complex providing maintenance, manufacturing, assemblage complex with external space dock
20170183109 ยท 2017-06-29
Inventors
Cpc classification
B64G2004/005
PERFORMING OPERATIONS; TRANSPORTING
B64G4/00
PERFORMING OPERATIONS; TRANSPORTING
B64G1/48
PERFORMING OPERATIONS; TRANSPORTING
B64G1/543
PERFORMING OPERATIONS; TRANSPORTING
B64G1/1064
PERFORMING OPERATIONS; TRANSPORTING
International classification
B64G1/64
PERFORMING OPERATIONS; TRANSPORTING
B64G1/48
PERFORMING OPERATIONS; TRANSPORTING
B64G1/10
PERFORMING OPERATIONS; TRANSPORTING
B64G1/40
PERFORMING OPERATIONS; TRANSPORTING
Abstract
This present invention describes initial sequential methods for constructing and placing into operation a multi-purpose maintenance complex and a space dock in high geosynchronous orbit. This is dual function complex that can provide a orbital platforms to a commercial profitable enterprise or to the Department of Defense (DoD) to enhance their capabilities. A complex will have the capability to fabricate, assemble, test, and place into full operation any size orbital and planetary surface complexes and spacecraft. DoD mission capabilities embracing satellite repairs, research, national security and deterrence, space junk disposal support and other services while in orbit.
Claims
1. A method of modular construction for an orbital complex having plurality of systems, devices and apparatuses to provide for the geosynchronous orbital space sustainment of an initial and expandable complex performing limited production, fabrication, construction and maintenance with space dock services for any type of spacecraft devices, space debris removal devices or support services for other complexes.
2. A methods of claim 1 is sequenced modular mating to build said complex and incrementally place into operation. Wherein the said complex includes a combination of long term services and methods for; DARPA-approved Compact Nuclear Fusion Power Source ; complete life support environmental devices supporting human habitation; complete waste management and disposal systems supporting human habitation and removal of wastes from production/maintenance services; full service lodging and food preparation systems supporting human habitation; and creating an artificial gravity environment support long term human habitation
3. A methods of claim 1, wherein to support long term human habitation of this or any complex or spacecraft the said complex will have module walls comprised of a thick outer wall designed to significantly reduce radiation and be a self-sealing barrier with a thinner inner wall to further reduce radiation to the inhabitants inside. The two walls are separated by a maintenance passageway to eliminate spacewalks and increase safety.
4. A methods of claim 1, wherein the said complex is further expanded to perform additional desired services for a; space dock and testing center to provide for any type of maintenance and upgrades of existing spacecraft and expansion of existing facilities and complexes; and shipyard facility mirroring ship construction methods, automation, and software on earth to build, outfit and test spacecraft and facility sub-modules for delivery to the Space Dock for final assemblage.
5. A methods of claim 1, wherein this said complex provides a plurality of methods to: maintain, upgrade and assemble any satellites, and then placing the satellite back into the appropriate orbit; test any level of any devices sub-component, mechanical, electronic or computer system where said testing can be performed in-situ at the complex or remotely from earth; build-to-print capabilities for any mechanical, electronic and computer component or robotic device required for repair or new construction; build-to-print capabilities for fabrication, testing and programming any robotic material handling drone, robotic device or automated production line devices that would be controlled in-situ at the complex or remotely from earth; and build-to-print capabilities for the fabrication, maintenance, upgrading, assemblage, testing and programming of any type of advanced space propulsion.
6. A methods of claim 1, wherein the said complex provides methods to receive, refuel, and maintain any trans-orbital freight or passenger carrier or space barge
7. A methods of claim 1, wherein the said complex provides methods for mating an advanced research and development facility for military, government and commercial purposes
8. A methods of claim 1, wherein the said complex provides methods for continuous expansion of the complex comprising claim 2 attributes.
9. A methods of claim 1, wherein the said complex provides propulsion methods to support planetary and deep space exploration.
Description
DESCRIPTION OF DRAWINGS (15)
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[0019] Building Group A.
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DESCRIPTION OF THE [PRESENT] PREFERRED EMBODIMENTS
[0026] This present invention describes initial sequential methods for transporting, constructing and placing into operation a maintenance, manufacturing, fabrication and space dock complex in high geosynchronous orbit. This is dual function complex that can provide a orbital platforms to a commercial profitable enterprise or to the Department of Defense (DoD) to enhance their capabilities. A complex will have the capability to fabricate, assemble, test, and place into full operation any size orbital and planetary surface complexes and spacecraft. DoD mission capabilities embracing satellite repairs, research, national security and deterrence, space junk disposal support and other services while in orbit.
[0027] When fully operational, this manufacturing complex 1 & 2 is a massive scale when comparing it to the current International space station 13. Although massive, it is modular built over a period of time with a phased schedule and only accomplished with the introduction of trans-orbited freight carrier [patent application 62/176,253 filed on 12 Feb. 2015].
[0028] In the preferred first embodiment, a completed multi-purpose expandable maintenance, manufacturing complex 1 exhibited at
[0029] The building of very large spacecraft, facilities module and even this complex requires hands on experience in shipbuilding with the ability to manage an automated coordinated manufacturing and assemblage shipbuilding process flow. On earth, the said shipbuilding process flows are well established with large capital equipment investments. The said orbital construction processes are new and challenging requiring the development of new robotic material handling devices, ground control systems, training and simulations, various procedures and software to support construction tasks and material handling in zero gravity or later combined with artificial gravity.
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[0031] In the preferred second embodiment of this present invention reveals a generic floor plan of this specific complex 1. A generic floor plan diagram is provided at
[0032] Looking on the right side of this complex's generic floor plan configuration, a suggested build sequence is identified with Build Groups A through F highlighted at
[0033] In the preferred third embodiment, a generic structural wall and floor component inherit to all modules and spacecraft. Presently, existing spacecraft and space habitants are they are minimally protected from radiation. With the improvements from this present invention, the wall systems depicted at
[0034] The said multi-purpose complex 1, 2 is depicted as a fully operational. Notwithstanding, the actual building and sustainment efforts of this complex are essential embodiments of this present invention. These embodiments embrace a fully operational trans-orbital transportation pipeline
[0035] In the preferred fourth embodiment, a full utilization of existing in-situ ground freight transportation systems that capitalizes on existing engineering proficiency coupled with the vast resources of freight carrier corporations, similar to FedEx or UPS filed under U.S. Pat. No. 7,293,707 B2 dated Nov. 13, 2007 and U.S. Pat. No. 7,761,348 B2 dated Oct. 20, 2010. These corporations provide two essential capabilities (a) provide proven rapid and timing deliveries between all project suppliers and manufacturers supplies components to achieve these orbital builds
[0036] This fourth embodiment introduces and requires sustainment of a dedicated fleet of transorbital freight carriers 31 filed under patent application 62/176,253 dated Feb. 12, 2015. A principal carrier design requirements are that it (a) can take off and land at an 8,000+ foot commercial runaway; (b) fly within FAA flight and weather regulations; (c) maximize the use of existing readily available technicians, software, and componentssuch as simulators, jet engines and rockets; (d) reconfigured for orbital insertion or returning earth; (e) sustain a rigorous maintenance schedule; (f) carrying approximately 60+ tons of cargo and passengers; and the fleet can maintain a finite flight schedule of 24/7/365 to the designated freight hub destinations. A fleet of carriers 31 are required to sustain an aggressive build schedule.
[0037] In the preferred fifth embodiment, a transorbital transportation pipeline is mandated to be functionally in place to build the initial orbital freight hub destinations 21, 24. When completed and operational, the freight hub 21, 24 operates in artificial gravity and serves has a cargo transfer point 26 from carrier to a space barge. Just like a terrestrial airport, massive amounts of cargo and passengers will pass daily through these portals to the Complex 1. Without a focused, aggressive and enmasse' undertaking of this freight carrier carrying capabilities, the present invention is not achievable. At
[0038] In the preferred sixth embodiment, the robotic construction devices
[0039] In the preferred seventh embodiment, mating and then making operational of all modules will complete Building Group A
[0040] In the preferred eight embodiment, the said complex's spaces for office, maintenance shops and overhaul facility modules are mated together becoming Building Group B.
[0041] In the preferred ninth embodiment, the said complex's terminal facility legend K at
[0042] In the preferred tenth embodiment, the said complex at