Forwarded from Fireworks Daily Team 2.0 (Youcanrunbutnothide)
This media is not supported in your browser
VIEW IN TELEGRAM
STRANGE OBJECT WAS SEEN RACING ACROSS THE SKY OVER VANCOUVER
The object appeared suddenly and moved extremely fast across the sky before vanishing from view.
The speed alone makes this clip stand out.
Captured by James H. in British Columbia.
https://vxtwitter.com/MrMBB333/status/2053146067999535345
The object appeared suddenly and moved extremely fast across the sky before vanishing from view.
The speed alone makes this clip stand out.
Captured by James H. in British Columbia.
https://vxtwitter.com/MrMBB333/status/2053146067999535345
❤1
Forwarded from Fireworks Daily Team 2.0 (Youcanrunbutnothide)
This media is not supported in your browser
VIEW IN TELEGRAM
😳😳😳🇩🇪 WTF!!!! MAN
WHAT THE HELL IS THIS HERE?
"I went outside to smoke my cigarette, and I came across this helicopter following this dark thing, which I can't tell you what it actually was. I'm from Würzburg, Germany. This was really sinister for me."
https://vxtwitter.com/izaqueoeav/status/2053092107410080231
WHAT THE HELL IS THIS HERE?
"I went outside to smoke my cigarette, and I came across this helicopter following this dark thing, which I can't tell you what it actually was. I'm from Würzburg, Germany. This was really sinister for me."
https://vxtwitter.com/izaqueoeav/status/2053092107410080231
❤2
Forwarded from Fireworks Daily Team 2.0 (Youcanrunbutnothide)
This media is not supported in your browser
VIEW IN TELEGRAM
FOX NEWS ALERT: Secretary of War Pete Hegseth has ordered hundreds of generals and admirals to report to Marine Corps Base Quantico in Virginia on Tuesday for a meeting.
https://vxtwitter.com/PaulGoldEagle/status/2052988473683104030
https://vxtwitter.com/PaulGoldEagle/status/2052988473683104030
🔥3🤔2🫡1
Forwarded from Fireworks Daily Team 2.0 (Youcanrunbutnothide)
This media is not supported in your browser
VIEW IN TELEGRAM
This has been #UndergroundWarReport for 05/09/2026
GODSPEED subterranean troops 🟩 ⚔️ 🟦
Keep Preparing For You Are Dealing With Unfathomable EVIL!!!!!!
Godspeed Subterranean Troops
And to All The Wizards in the field + Support Roles.
Godspeed To Legacy Space Force Guardians.
#GWOHT
#UndergroundWarReport
#BeerandDoughnuts101
#SubterraneanWarfare101
#SubmarineTunnels101
#GREENWIZARDOFTHEDAY
#GlobalWarOnHumanTraffickers
GODSPEED subterranean troops 🟩 ⚔️ 🟦
Keep Preparing For You Are Dealing With Unfathomable EVIL!!!!!!
Godspeed Subterranean Troops
And to All The Wizards in the field + Support Roles.
Godspeed To Legacy Space Force Guardians.
#GWOHT
#UndergroundWarReport
#BeerandDoughnuts101
#SubterraneanWarfare101
#SubmarineTunnels101
#GREENWIZARDOFTHEDAY
#GlobalWarOnHumanTraffickers
Forwarded from Fireworks Daily Team 2.0 (Youcanrunbutnothide)
This media is not supported in your browser
VIEW IN TELEGRAM
✨ Goodnight, Doomsday ✨
❤12
Forwarded from Azazel News (Mezlim)
Happy Mother’s Day Weekend 🌷
To every mother, grandmother, caregiver, and guiding hand — may this weekend bring warmth, rest, love, and a table full of good things.
May what you’ve nurtured return to you in abundance, and may the days ahead be touched with joy, grace, and gentle celebration.
To every mother, grandmother, caregiver, and guiding hand — may this weekend bring warmth, rest, love, and a table full of good things.
May what you’ve nurtured return to you in abundance, and may the days ahead be touched with joy, grace, and gentle celebration.
❤21
Forwarded from Mythic
Standby for Part #2 of
Space Systems Engineering
Designing electronics that survive vacuum and radiation. ☢️ 🌖
Space Systems Engineering
Designing electronics that survive vacuum and radiation. ☢️ 🌖
🔥2🫡2
Forwarded from Mythic
Artificial Worlds & Rotating Space Habitats 🌍🛰️
Building Large Human Habitats in Space
Rotating space habitats are designed to create artificial gravity using centrifugal force. Instead of astronauts floating permanently in microgravity, the habitat spins so the inside floor pushes against occupants like gravity on Earth.
⸻
Main Habitat Concepts
O’Neill Cylinders
Two huge rotating cylinders with living areas inside.
Features:
farmland
cities
lakes
mirrored sunlight systems
Stanford Torus
A rotating wheel-shaped habitat.
Features:
central docking hub
rotating outer living ring
solar mirror systems
Bernal Sphere
A spherical rotating habitat with internal living decks.
⸻
Core Systems
Rotation Systems
The structure spins to simulate gravity.
Structural Frame
Massive trusses and pressure shells support the habitat.
Radiation Shielding
Water tanks or regolith shielding protect inhabitants.
Closed-Loop Life Support
Air, water, and waste are continuously recycled.
Thermal Control
Radiators remove excess heat.
Docking Systems
Non-rotating hubs allow spacecraft arrivals.
⸻
Real Engineering Challenges
rotational stress
vibration balancing
long-term material fatigue
atmospheric sealing
large-scale construction in orbit
Building Large Human Habitats in Space
Rotating space habitats are designed to create artificial gravity using centrifugal force. Instead of astronauts floating permanently in microgravity, the habitat spins so the inside floor pushes against occupants like gravity on Earth.
⸻
Main Habitat Concepts
O’Neill Cylinders
Two huge rotating cylinders with living areas inside.
Features:
farmland
cities
lakes
mirrored sunlight systems
Stanford Torus
A rotating wheel-shaped habitat.
Features:
central docking hub
rotating outer living ring
solar mirror systems
Bernal Sphere
A spherical rotating habitat with internal living decks.
⸻
Core Systems
Rotation Systems
The structure spins to simulate gravity.
Structural Frame
Massive trusses and pressure shells support the habitat.
Radiation Shielding
Water tanks or regolith shielding protect inhabitants.
Closed-Loop Life Support
Air, water, and waste are continuously recycled.
Thermal Control
Radiators remove excess heat.
Docking Systems
Non-rotating hubs allow spacecraft arrivals.
⸻
Real Engineering Challenges
rotational stress
vibration balancing
long-term material fatigue
atmospheric sealing
large-scale construction in orbit
Forwarded from Mythic
HOW SPACE STATIONS WORK 🛰️
Space stations are modular spacecraft supporting long-term human life.
Space stations are modular spacecraft supporting long-term human life.
Forwarded from Mythic
Main Systems
Environmental Control
Maintains:
oxygen
pressure
humidity
temperature
⸻
Water Recycling
ISS already recycles urine and moisture.
Future stations improve efficiency further.
⸻
Thermal Control
Radiators reject heat into space.
Important because:
space has no air cooling.
⸻
Artificial Gravity
Future stations may rotate.
Formula:
a = s^2r
Where:
a = artificial gravity
s = rotational speed
r = radius
Environmental Control
Maintains:
oxygen
pressure
humidity
temperature
⸻
Water Recycling
ISS already recycles urine and moisture.
Future stations improve efficiency further.
⸻
Thermal Control
Radiators reject heat into space.
Important because:
space has no air cooling.
⸻
Artificial Gravity
Future stations may rotate.
Formula:
a = s^2r
Where:
a = artificial gravity
s = rotational speed
r = radius
Forwarded from Mythic
Fusion Reactor Engineering for Space Civilizations ☢️⚡
High-Energy Power Systems for Future Space Infrastructure
Fusion reactors attempt to generate power by fusing light atomic nuclei, similar to how stars produce energy.
Unlike fission, fusion does not split atoms—it combines them.
⸻
Main Fusion Concepts
Tokamak Reactors
Use magnetic fields to confine hot plasma in a torus shape.
Stellarators
Complex magnetic confinement systems designed for plasma stability.
Inertial Confinement
Uses lasers or particle beams to compress fuel pellets.
⸻
Possible Space Uses
Moon and Mars power grids
large orbital habitats
deep-space propulsion
industrial manufacturing
⸻
Main Reactor Systems
Plasma Chamber
Contains extremely hot plasma.
Superconducting Magnets
Control plasma using magnetic fields.
Cooling Systems
Remove enormous heat loads.
Power Conversion Systems
Turn reactor heat into electricity.
⸻
Real Engineering Challenges
plasma instability
heat management
neutron damage to materials
reactor mass
long-term reliability
High-Energy Power Systems for Future Space Infrastructure
Fusion reactors attempt to generate power by fusing light atomic nuclei, similar to how stars produce energy.
Unlike fission, fusion does not split atoms—it combines them.
⸻
Main Fusion Concepts
Tokamak Reactors
Use magnetic fields to confine hot plasma in a torus shape.
Stellarators
Complex magnetic confinement systems designed for plasma stability.
Inertial Confinement
Uses lasers or particle beams to compress fuel pellets.
⸻
Possible Space Uses
Moon and Mars power grids
large orbital habitats
deep-space propulsion
industrial manufacturing
⸻
Main Reactor Systems
Plasma Chamber
Contains extremely hot plasma.
Superconducting Magnets
Control plasma using magnetic fields.
Cooling Systems
Remove enormous heat loads.
Power Conversion Systems
Turn reactor heat into electricity.
⸻
Real Engineering Challenges
plasma instability
heat management
neutron damage to materials
reactor mass
long-term reliability
❤2
Forwarded from Mythic
FUSION POWER & FUTURE CIVILIZATIONS ☢️⚡
Fusion could power:
giant habitats
industrial colonies
deep-space ships
⸻
Basic Fusion Principle
Light atoms fuse → energy released.
Main fuels:
deuterium
tritium
⸻
Plasma Temperature
Fusion plasma:
hotter than Sun’s core
Requires magnetic confinement.
⸻
Tokamak Reactors
Use superconducting magnets.
Main systems:
plasma chamber
cooling loops
neutron shielding
turbine generators
Fusion could power:
giant habitats
industrial colonies
deep-space ships
⸻
Basic Fusion Principle
Light atoms fuse → energy released.
Main fuels:
deuterium
tritium
⸻
Plasma Temperature
Fusion plasma:
hotter than Sun’s core
Requires magnetic confinement.
⸻
Tokamak Reactors
Use superconducting magnets.
Main systems:
plasma chamber
cooling loops
neutron shielding
turbine generators
Forwarded from Mythic
Basic Fusion Principle ⚛️
The most common fusion reaction under development is:
D + T -> ^4He + n + 17.6\ MeV
Where:
D = deuterium (hydrogen 1 isotope 1+ 1= )
T = tritium (hydrogen 1 isotope 2+ 1= )
He = helium nucleus produced
N = neutron released
MeV = enormous energy released
⸻
Why Fusion Releases Energy
Small atomic nuclei have strong nuclear attraction.
When fused:
a tiny amount of mass converts into energy
Einstein’s relation:
E = mc^2
Even tiny mass differences produce huge energy.
The most common fusion reaction under development is:
D + T -> ^4He + n + 17.6\ MeV
Where:
D = deuterium (hydrogen 1 isotope 1+ 1= )
T = tritium (hydrogen 1 isotope 2+ 1= )
He = helium nucleus produced
N = neutron released
MeV = enormous energy released
⸻
Why Fusion Releases Energy
Small atomic nuclei have strong nuclear attraction.
When fused:
a tiny amount of mass converts into energy
Einstein’s relation:
E = mc^2
Even tiny mass differences produce huge energy.
Forwarded from Mythic
Fusion Fuels 🔋
Deuterium
Hydrogen isotope found naturally in seawater.
Advantages:
relatively abundant
easier to obtain
⸻
Tritium
Radioactive hydrogen isotope.
Challenges:
rare naturally
must usually be bred inside reactor systems
⸻
Plasma — The Fourth State of Matter 🔥
Fusion requires fuel to become plasma.
Plasma is:
ionized gas
electrons stripped from atoms
electrically conductive
Fusion plasma temperatures:
over 100 million °C
Hotter than the Sun’s core.
Deuterium
Hydrogen isotope found naturally in seawater.
Advantages:
relatively abundant
easier to obtain
⸻
Tritium
Radioactive hydrogen isotope.
Challenges:
rare naturally
must usually be bred inside reactor systems
⸻
Plasma — The Fourth State of Matter 🔥
Fusion requires fuel to become plasma.
Plasma is:
ionized gas
electrons stripped from atoms
electrically conductive
Fusion plasma temperatures:
over 100 million °C
Hotter than the Sun’s core.
Forwarded from Mythic
Why Plasma Is Difficult
No solid material can touch plasma at fusion temperatures.
If plasma contacts reactor walls:
walls melt
plasma destabilizes
So reactors use magnetic confinement.
⸻
Magnetic Confinement 🧲
Charged plasma particles follow magnetic field lines.
Powerful superconducting magnets trap plasma away from reactor walls.
This creates a magnetic “bottle.”
⸻
Tokamak Reactors 🌀
Tokamaks are currently the leading fusion reactor design.
Shape:
giant torus (donut shape)
Main idea:
plasma circulates continuously inside magnetic field chamber
No solid material can touch plasma at fusion temperatures.
If plasma contacts reactor walls:
walls melt
plasma destabilizes
So reactors use magnetic confinement.
⸻
Magnetic Confinement 🧲
Charged plasma particles follow magnetic field lines.
Powerful superconducting magnets trap plasma away from reactor walls.
This creates a magnetic “bottle.”
⸻
Tokamak Reactors 🌀
Tokamaks are currently the leading fusion reactor design.
Shape:
giant torus (donut shape)
Main idea:
plasma circulates continuously inside magnetic field chamber
Forwarded from Mythic
Main Tokamak Systems
1. Plasma Chamber
Vacuum chamber containing fusion plasma.
Requirements:
ultra-high vacuum
radiation resistance
thermal durability
Materials:
stainless steel
tungsten wall sections
special ceramic coatings
⸻
2. Superconducting Magnets 🧲
Generate enormous magnetic fields.
Must operate at cryogenic temperatures.
Often use:
niobium-tin superconductors
niobium-titanium alloys
Cooling systems keep magnets near:
−269°C
⸻
3. Cryogenic Cooling Systems ❄️
Needed for superconductors.
Systems include:
liquid helium loops
thermal insulation
cryogenic pumps
⸻
4. Plasma Heating Systems 🔥
Fusion plasma must reach extreme temperatures.
Methods:
neutral beam injection
radiofrequency heating
microwave heating
⸻
5. Neutron Shielding ☢️
Fusion reactions release high-energy neutrons.
These damage materials over time.
Shielding uses:
lithium blankets
boron materials
steel shielding layers
⸻
6. Tritium Breeding Blankets 🔄
Some reactors generate their own tritium fuel.
Neutrons strike lithium:
n + ^6Li -> T + ^4He
This creates tritium inside reactor systems.
⸻
7. Heat Transfer Systems 🌡️
Fusion produces enormous thermal energy.
Coolants remove heat using:
liquid metals
helium gas
molten salts
water systems
⸻
8. Turbine Generators ⚡
Heat converts water into steam.
Steam spins turbines → electricity produced.
Very similar to existing power plants.
1. Plasma Chamber
Vacuum chamber containing fusion plasma.
Requirements:
ultra-high vacuum
radiation resistance
thermal durability
Materials:
stainless steel
tungsten wall sections
special ceramic coatings
⸻
2. Superconducting Magnets 🧲
Generate enormous magnetic fields.
Must operate at cryogenic temperatures.
Often use:
niobium-tin superconductors
niobium-titanium alloys
Cooling systems keep magnets near:
−269°C
⸻
3. Cryogenic Cooling Systems ❄️
Needed for superconductors.
Systems include:
liquid helium loops
thermal insulation
cryogenic pumps
⸻
4. Plasma Heating Systems 🔥
Fusion plasma must reach extreme temperatures.
Methods:
neutral beam injection
radiofrequency heating
microwave heating
⸻
5. Neutron Shielding ☢️
Fusion reactions release high-energy neutrons.
These damage materials over time.
Shielding uses:
lithium blankets
boron materials
steel shielding layers
⸻
6. Tritium Breeding Blankets 🔄
Some reactors generate their own tritium fuel.
Neutrons strike lithium:
n + ^6Li -> T + ^4He
This creates tritium inside reactor systems.
⸻
7. Heat Transfer Systems 🌡️
Fusion produces enormous thermal energy.
Coolants remove heat using:
liquid metals
helium gas
molten salts
water systems
⸻
8. Turbine Generators ⚡
Heat converts water into steam.
Steam spins turbines → electricity produced.
Very similar to existing power plants.
Forwarded from Mythic
Main Engineering Challenges ⚠️
Plasma Instability
Plasma naturally wants to:
twist
wobble
collapse
Requires real-time magnetic control.
⸻
Material Damage
Neutrons slowly weaken reactor walls.
Future materials research is critical.
⸻
Extreme Heat Loads
Some reactor regions experience:
hotter-than-spacecraft-reentry heat flux
⸻
Energy Breakeven
Goal:
fusion produces more energy than reactor consumes.
This is one of the biggest modern engineering challenges.
Plasma Instability
Plasma naturally wants to:
twist
wobble
collapse
Requires real-time magnetic control.
⸻
Material Damage
Neutrons slowly weaken reactor walls.
Future materials research is critical.
⸻
Extreme Heat Loads
Some reactor regions experience:
hotter-than-spacecraft-reentry heat flux
⸻
Energy Breakeven
Goal:
fusion produces more energy than reactor consumes.
This is one of the biggest modern engineering challenges.