I saw many ideas about the Moon/Mars habitats due to ARTEMIS mission, but you needΒ something like Tokra building system alpha 1.0. Why?Β
- Because you need to eliminated/mitiged theΒ unhabitableΒ enviroment, which means extra hot and extra cold,Β radiation etc.
- You need a easely repair and craft/building system for new habitat and to using a Moon/Mars material/elements for that.Β
Due to this system you can to getΒ easely any material for research.
That means you need space mining tools and crafts version 1.0 (upgradeable version) for teraforming any surface in the Universe, which :
- lasers 1 / 2 / anotherΒ technology steps
- “minig mole” for tunnels
- printing tools
- robots
- etc.
You will to need
- Power/Charge Station
- Water/Oxygen etc. Production Station
- Sci laboratores
- Low/Microgravity lab
- Hospital Station/lab
- Gravity /Artificial gravity simulators,
- Food Garden
- Observation Station
- Docking Station, Sleeping room, Toalet room, Hospital, Healt Care Station, garages, Sure Resting Station / “Funny room” too, Hotels for all first turist, investors and visionaries, etc.
very well, something like that and much more
If you want tu survive and keep human race alive, you need to settle universe, that means the higher probabilty to be alive due to any phenomenas in the universe.
We need a new commercial space station / space craft, a huge platform, where you can to live for nonlimited time, which can also toΒ explore the solar system due to ion etc. engine systems.
-
Gravity /
-
Artificial gravity simulators
Readying technology for other worlds is tricky. Thanks to a collaboration with @blueorigin, researchers will have a new option for testing instruments and experiments in lunar gravity conditions ππ: https://t.co/dCgp4D3VaP pic.twitter.com/huamni2yaJ
— NASA Technology (@NASA_Technology) March 9, 2021
Β
SBIR/STTR Research Topics by
Focus Area
+ Expand 1 In-Space Propulsion TechnologiesFocus Area 1 In-Space Propulsion Technologies
+ Expand 2 Power Energy and StorageFocus Area 2 Power Energy and Storage
+ Expand 3 Autonomous Systems for Space ExplorationFocus Area 3 Autonomous Systems for Space Exploration
+ Expand 4 Robotic Systems for Space ExplorationFocus Area 4 Robotic Systems for Space Exploration
+ Expand 5 Communications and NavigationFocus Area 5 Communications and Navigation
+ Expand 6 Life Support and Habitation SystemsFocus Area 6 Life Support and Habitation Systems
+ Expand 7 Human Research and Health MaintenanceFocus Area 7 Human Research and Health Maintenance
+ Expand 8 In-Situ Resource UtilizationFocus Area 8 In-Situ Resource Utilization
+ Expand 9 Sensors, Detectors and InstrumentsFocus Area 9 Sensors, Detectors and Instruments
+ Expand 10 Advanced Telescope TechnologiesFocus Area 10 Advanced Telescope Technologies
+ Expand 11 Spacecraft and Platform SubsystemsFocus Area 11 Spacecraft and Platform Subsystems
+ Expand 12 Entry, Descent, and Landing SystemsFocus Area 12 Entry, Descent, and Landing Systems
+ Expand 13 Information Technologies for Science DataFocus Area 13 Information Technologies for Science Data
+ Expand 14 On-orbit Servicing, Assembly, and Manufacturing (OSAM)Focus Area 14 On-orbit Servicing, Assembly, and Manufacturing (OSAM)
+ Expand 15 Materials, Materials Research, Structures, and AssemblyFocus Area 15 Materials, Materials Research, Structures, and Assembly
+ Expand 16 Ground & Launch ProcessingFocus Area 16 Ground & Launch Processing
+ Expand 17 Thermal Management SystemsFocus Area 17 Thermal Management Systems
+ Expand 18 Air Vehicle TechnologyFocus Area 18 Air Vehicle Technology
+ Expand 19 Integrated Flight SystemsFocus Area 19 Integrated Flight Systems
+ Expand 20 Airspace Operations and SafetyFocus Area 20 Airspace Operations and Safety
+ Expand 21 Small Spacecraft TechnologiesFocus Area 21 Small Spacecraft Technologies
+ Expand 22 Low Earth Orbit Platform Utilization and Microgravity ResearchFocus Area 22 Low Earth Orbit Platform Utilization and Microgravity Research
+ Expand 23 Digital Transformation for AerospaceFocus Area 23 Digital Transformation for Aerospace
+ Expand 24 Dust MitigationFocus Area 24 Dust Mitigation
+ 25
NASA GeneLab
Open Science for Life in Space
the first comprehensive space-related omics database; users can upload, download, share, store, and analyze spaceflight and spaceflight-relevant data from experiments using model organisms.
Chce-li ΔlovΔk osΓdlit nekoneΔnΓ½ vesmΓr, nevystaΔΓ si jen s populaΔnΓm rΕ―stem, jeΕΎ je nutnΓ½ pro vΕ‘echny interakce a tak robotizace urychlΓ½ teraformaci planet a obΕΎivu v jakΓ©mkoli prostΕedΓ i na Zemi a tΓm i nΓ‘slednΓ½ populaΔnΓ rΕ―st.
If humans want to settle the infinite universe, the high population grow will not the only one important thing for that and another one is the robotization, whichΒ will to unlocking the faster planet teraformation, livelihood etc. and after due to this the population in any enviroment can to grow more faster..
Humans needs to setle the universe due to high populatiton if you want to keep biodiversity. Space hasn’t limit.
Humans need a lot of research to find new technologies how to survival in any enviroment, which is important for survival the species homo sapiens sapiens in their universe and the way how to keep any biodiversities alive.
“Earth is the cradle of humanity, but one cannot remain in the cradle forever.” Konstantin E. Tsiolkovsky
Planning a Mission to the
Lunar South Pole
: how to mitigate a debris/particles from mining – to use them
: I see many projects, but important is habitatΒ Β
:Β also important point and theΒ big challenge to keep healty population anywhere on Mars/Moon/Orbit etc., is, how to simulate gravity, how to use microgravity for treatment etc.*
there is diferend biomechanism due to gravity. Any species is afected by gravity, which means their blood, bones, preasure etc.
All rocket engines, Earth spacecraft depends on gravity
Moon base is the big opportunity for the new spacecraft base systems.
However, one of the biggest challenge is the research how to mitigate gravity or how to change gravity pool in a specific place / local trase, anywhereΒ
Status of Gravity Control
Β
- || huge circle solar sail
- || high temperature melting system
- || diging system under surface
- v
Why Moon base at first?
Moon is the testing field for a new technologies in unhabitable enviroments.
+ near by EarthΒ
+ low gravity
+ perfect observe place (ready for ATLAS base,, etc.)
Timeline Break the Ice Challenge “Melting Ice”
NOVEMBER 18, 2020
Phase 1 opens
DECEMBER 2020 β JANUARY 2021
– Webinars to support registered Teams and potential Teams in developing their system architectures
– Promotional activities and/or other support for registered Teams
– Judging Panel Summit (virtual) to brief judges on roles/responsibilities and Challenge rules
JUNE 18, 2021
Deadline for registration and for Teams to submit their system architectures
JUNE β JULY, 2021
– Administrative review of the system architectures to verify compliance with rules
– Judging Panel may conduct virtual interviews with Teams
JULY β AUGUST, 2021
– Judging Panel reviews and scores the system architectures
– Judging Panel Summit (virtual) to determine Phase 1 winners
AUGUST 13, 2021
Phase 1 winners announced
-
Cupola Habitat Solar Melting Diging Crater phase 3
-
Cupola Habitat Solar Melting Diging Crater Phase 4
- vaporizer system
Β
-
Cupola Habitat Solar Melting Diging Crater Phase 5
Β
-
Cupola Habitat Solar Melting Diging Crater Phase 1
-
mole diging safety area habitat something like Boring Moon company
-
creating a glazure walls meltingΒ by lasers during diging process
Β
-
Moon Manhattan
Β
-
Dendrite Fragmentation
-
and Morphology
- Β
-
During Melting
-
and Solidification (DFM)
Science Objective
Nearly all metal alloys are produced by cooling a liquid metal until it hardens into a solid. Similar to the process seen in a snowstorm, in metal castings the solid grows by the formation of millions of snowflake-like crystals called dendrites. The shape of these dendrites affects the strength of metal alloys.
Status
This investigation is planned to launch aboard SpaceX-21 to the International Space Station (ISS) in December 2020.
Experiment Description
NASA 2019 STTR Program Phase II Selections – Firm List
Proposals Selected for Negotiation of Contracts
-
Alphacore, Inc.
304 South Rockford Drive
Tempe, AZ 85281
Esko Mikkola (480) 494-5618
Arizona State University-Tempe
University Drive and Mill Avenue
Tempe, AZ 85281
19-2-T13.01-4035 SSC
Ensuring Correct Sensor Operation and Decisions Under Harsh Environments
-
Alphacore, Inc.
304 South Rockford Drive
Tempe, AZ 85281
Esko Mikkola (480) 494-5618
Vanderbilt University
2101 West End Avenue
Nashville, TN 37235
19-2-T6.05-4023 LaRC
Model and Testing Based Assurance of COTS Systems in Space Radiation Environments
-
Cactus Materials
7700 South River Parkway
Chandler, AZ 85284
Mohammed Rafiqul Islam (480) 213-4704
Arizona State University
699 South Mill Avenue
Tempe, AZ 85281
19-2-T6.06-4319 JSC
Controlling Silver Release from Antimicrobial Surface Coatings for Biofouling Control
-
Chemtronergy, LLC
3619 West 1987 South
Salt Lake City, UT 84104
Greg Tao (801) 981-9997
University of Utah
201 Presidents Circle, Room 201
Salt Lake City, UT 84112
19-2-T15.03-4336 GRC
Solid State Li-S Battery Based on Novel Polymer/Mineral Composite
-
Continuum Dynamics, Inc.
34 Lexington Avenue
Ewing, NJ 08618
Melissa Kinney (609) 538-0444
Georgia Tech Research Corporation (GTRC)
250 14th Street Northwest
Atlanta, GA 30318
19-2-T15.01-2847 LaRC
Next Generation Distributed Electric Propulsion Urban Air Mobility Aircraft Analysis/Design Tools
-
Continuum Dynamics, Inc.
34 Lexington Avenue
Ewing, NJ 08618
Melissa Kinney (609) 538-0444
Pennsylvania State University
112 Hammond Building
University Park, PA 16802
19-2-T15.01-3500 AFRC
Urban Air Mobility (UAM) Terminal Area Ride Quality and Safety Assessment Tool
-
Cornerstone Research Group, Inc.
510 Earl Boulevard
Miamisburg, OH 45342
Carri Miller (937) 320-1877
University of Delaware
104 Hullihen Hall
Newark, DE 19716
19-2-T12.05-3201 JSC
Automated Fabrication of Ablation-Resistant Thermal Protection Systems
-
Espace, Inc.
30 Lynn Avenue
Hull, MA 02045
Francois Martel (781) 925-3893
Massachusetts Institute of Technology
77 Massachusetts Avenue
Cambridge, MA 02139
19-2-T2.03-2775 MSFC
-
H2O Insights, LLC
12794 East Sahuaro Drive
Scottsdale, AZ 85259
Kelly Westerhoff (480) 209-9140
Arizona State University-Tempe
551 E. Tyler Mall St ERC RM 159
Tempe, AZ 85281
19-2-T6.06-2448 JSC
-
Mirios, Inc.
429 West Valerio Street, #25
Santa Barbara, CA 93101
Alexander Spott (805) 364-2987
The Regents of the University of California, Santa Barbara
3227 Cheadle Hall, 3rd Floor
Santa barbara, CA 93106
19-2-T8.02-3360 GSFC
-
Multi3D, Inc.
101 Woodwinds Industrial Court, Unit U
Cary, NC 27511
Allen Gray (919) 667-7499
Duke University
103 Allen Bldg
Durham, NC 27708
19-2-T8.04-3301 GSFC
Beam-Steering Metasurface Antenna for Lunar Soil Moisture Sensing
-
Plasma Processes, LLC
4914 Moores Mill Road
Huntsville, AL 35811
Timothy McKechnie (256) 851-7653
Georgia Tech Research Corporation (GTRC)
250 14th Street Northwest
Atlanta, GA 30318
19-2-T2.03-3789 MSFC
Dual Mode Green Monopropellant Propulsion System for Interplanetary Missions
-
QorTek, Inc.
5933 North Route 220 Highway
Linden, PA 17744
Zachary Stimely (570) 322-2700
Colorado State University
Sponsored Programs; 601 S. Howes St.
Fort Collins, CO 80523
19-2-T2.02-3763 GRC
-
Research in Flight
1919 North Ashe Court
Auburn, AL 36830
Roy Hartfield (334) 444-8523
Auburn University
23 Samford Hall
Auburn, AL 36849
19-2-T15.01-2965 ARC
-
SoneLite, Inc.
2311 Via Aprilia
Del Mar, CA 92014
Paul Bremner (619) 977-4048
Oklahoma State University-Main Campus
107 Whitehurst
Stillwater, OK 74078
19-2-T5.02-3311 KSC
Stochastic Cable Harness Coupling to Electric Fields in Spacecraft Cavities
-
Spectral Energies, LLC
4065 Executive Drive
Dayton, OH 45430
Sivaram Gogineni (937) 266-9570
Purdue University-Main Campus
155 South Grant Street
West Lafayette, IN 47907
19-2-T2.03-4300 GRC
-
Tietronix Software, Inc.
1331 Gemini Avenue, Suite 300
Houston, TX 77058
Frank Hughes (281) 461-9300
University of Houston-Clear Lake
2700 Bay Area Blvd
Houston, TX 77058
19-2-T11.03-2769 MSFC
-
Touchstone Research Laboratory, Ltd.
The Millennium Centre, 1142 Middle Creek Road
Triadelphia, WV 26059
Brian Gordon (304) 547-5800
Clemson University
201 Sikes Hall
Clemson, SC 29634
19-2-T12.01-4092 LaRC
Precision Heated Tooling for OOA Curing of Thin-Ply Composites
-
Ultra-Low Loss Technologies
4453 La Paloma Avenue
Santa Barbara, CA 93105
Renan Moreira (805) 319-2491
University of California – Santa Barbara
Office of Research – 3227 Cheadle Hall
Santa Barbara, CA 93106
19-2-T8.02-4150 GSFC
Mirios, Inc.
Address429 W Valerio St Apt 25
Santa Barbara, CA, 93101-2982
Β
Information
DUNS:Β 081048271
# of Employees:Β 1
Ownership Information
HUBZone Owned:Β N
Socially and Economically Disadvantaged:Β N
Woman Owned:Β N
Award Charts
Award Listing
-
Quantum Cascade Laser Array with Integral Wavelength Beam Combining
Amount: $139,793.00Mirios Inc., in collaboration with UCSB and NRL, proposes to construct a high-brightness MWIR (~4.5-4.9 m) light source, consisting of a single silicon chip with an array of Quantum Cascade Lasers whi …
STTRPhase I2019Department of DefenseΒ Navy -
Multispectral Mid-Infrared Laser
Amount: $124,380.00We proposenbsp;to construct a multispectral MWIR light sourcenbsp;consisting of a single silicon chip which will generate and combine lightnbsp;from a wide MWIR spectral range. Compared to existing co …
STTRPhase I2019National Aeronautics and Space Administration
These analogs and the hazards they study are:
:envihabΒ (gravity, environment): Located in Cologne, Germany, this analog is largely used to study the effects of microgravity on the body. Volunteers are placed on strictΒ bed restΒ in a position in which the head is tilted down at a slight angle for one to two months, to induce the effects of weightlessness on the body. The facility is also used to examine how elevated carbon dioxide exposure and artificial gravity, through centrifuge spinning, affect crews. Elevated levels of carbon dioxide may impact the health of astronauts living in a spacecraft, underscoring the need for reliable air filtration technology.
Antarctic StationsΒ (environment, isolation): Scientists study how isolation and confinement affect cognition, as well as theΒ teamwork and social relationshipsΒ of individuals working at research stations in the extreme environment of Antarctica over the winter.
NEKΒ (isolation and confinement): In Moscow, Russia,Β crewsΒ of volunteers live inside a space station-like habitat for up to 12 months while researchers study the physical and mental health, social interactions, and team dynamics of those volunteers.
Human Exploration Research AnalogΒ (isolation, distance): Located at NASAβs Johnson Space Center in Houston, this analog is a simulated exploration habitat for studying behavioral health, crew communication, medical capabilities, and how astronauts use equipment and technologies. HERAΒ simulationsΒ can also look at the crewβs ability to work autonomously. In a real mission to Mars, the crew members would experience communication delays due to the distance from Earth and would need to work together, with only sporadic input from Mission Control.
NASA Space Radiation LaboratoryΒ (radiation): NASA teamed with the U.S. Department of Energy to establish a lab at the Brookhaven National Laboratory in New York to help assess health risks associated with space radiation. The lab uses beams of ions toΒ simulateΒ cosmic rays and assess the effects on biological samples and equipment. This research helps to improve risk assessments for humans and develop techniques to reduce those risksΒ as astronauts travel beyond Earthβs protective magnetosphere.
just for explain what is exactly naturaly and the terminology “unnaturaly” is oxymoron.Β
We need to explore how to make sustainable tunnels atfirst, because that’s easely way, how to survive in unhabitable enviroments.Β
Anyway, we will to need all technology including on surface habitats and including under surface habitats.
Anyway in my mind is also something like a huge starstation/starship platform, which can be upgraded for nonlimited time, which can be prepared to eplore our solar system, which will be sustainable for nonlimite life time and will be in the future to prepared explore a deep space.
This vision is for me very important, because this platform can to survive “anything” and that will only depends at our modern of technology, which can be upgradable.