Off-world Power Generation: Difference between revisions

From Bitpost wiki
No edit summary
(Landing rework: status-first (testbed built, sims complete), labs index, motivation demoted below fold)
 
(25 intermediate revisions by 2 users not shown)
Line 1: Line 1:
Given:
'''Off-world Power Generation''' is a long-term project to develop '''autonomous
* earth to moon: 238,900 miles
in-space self-assembly''': a fleet of identical robotic modules that find each
* there are [https://map.gsfc.nasa.gov/mission/observatory_l2.html four lagrange points] that provide constant sun exposure at predictable locations
other, maneuver, dock, and self-assemble a larger structure — the target
* l1 to earth/moon: 1 million miles
application being '''self-assembling solar arrays at Sun–Earth L2'''. The hard,
* the sun primarily produces visible light (not microwaves or gamma...)
unsolved 90% of that problem is autonomy (relative navigation, docking, growth
* laser transmission is more efficient than microwave, except where earth's atmosphere interferes
sequencing, fault recovery), and it does not need orbit to be developed — it
* [https://en.wikipedia.org/wiki/Space-based_solar_power current status]: A Gigawatt-range microwave system would weigh ~80,000 tons (prohibitively expensive) [https://www.energy.gov/articles/space-based-solar-power more] [https://e-reports-ext.llnl.gov/pdf/372187.pdf lots more]
needs a place where free-floating dynamics are cheap. This project builds that
* [https://en.wikipedia.org/wiki/Solar_cell_efficiency Solar cell efficiency]
place on a desktop, publishes everything openly, and places its methods in the
public domain as [[Off-world Power Generation Lab 5: Robotic self-assembly#Defensive Publication: Autonomous In-Space Self-Assembly of Modular Structures|dated prior art]].


Premises:
== Status (updated 2026-08) ==
<Earth> <-microwave-- <Earth-orbit satellite> <-laser-- <Earth's moon> <-laser-- <L1 solar array>
<Earth> <-clearsky-burst-laser-- <Earth's moon> <-laser-- <L1 solar array>
<Earth> <-clearsky-burst-laser-- <L1 solar array>


* <Earth> <- <Earth-orbit satellite>
* '''[[Off-world Power Generation Air-Bearing Testbed|Air-bearing testbed]] built:''' 10-cm modules float on 6 mm float glass over a custom torsion-box bed, fine-leveled to '''0.02°''' (target was <0.05°) — a planar (3-DOF) microgravity analogue.
Laser transmit antenna in space: 1 meter diameter per GW
* '''Simulation campaign complete:''' a closed-loop planar simulator plus perception, comms, and L2-navigation studies produced the findings behind the design — terminal docking precision is owned by the magnetic-capture envelope rather than the controller; multi-fiducial fusion is the dominant self-localization win; measured air/energy budgets per docking maneuver. The flight-portable autonomy code is the same code the testbed runs.
Receive: Several hundred meters across
* '''Module v1 hardware received:''' Raspberry Pi Zero 2 W + wide camera (AprilTag relative pose), 8× Clippard solenoid valves (cold-gas thrusters), porous-graphite air bearings in 3D-printed housings, magnetic capture. Total project hardware spend to date: ≈ $1,500.
* '''Defensive publication live''' ([[Off-world Power Generation Lab 5: Robotic self-assembly#Defensive Publication: Autonomous In-Space Self-Assembly of Modular Structures|2026-06-20]]): the autonomy, docking, slot-claiming, growth, and L2 relative-navigation methods are public-domain prior art — the design space stays open for everyone.
* '''Next milestone (Phase B):''' 10/10 repeatable autonomous docks between two modules on the testbed.


* <Earth-orbit satellite> <- <Earth's moon>
== The labs ==


* <Earth's moon> <- <Earth-Sol Lagrange-point solar array>
=== [[Off-world Power Generation Air-Bearing Testbed|Air-bearing testbed]] ===
The shared apparatus: float-glass running surface, torsion-box bed, 3-point
kinematic leveling, air-bearing modules. Underlies Labs 3–5.


Targeting the energy requirement of NYC:
=== [[Off-world Power Generation Lab 3: Propulsive navigation|Lab 3: Propulsive navigation]] ===
* Power is measured in Newton-meters per second or Joules per second or Watts.
* ~3000 trillion BTU in 2016 = 3000 trillion btu / 365 days = 3.4E+11 btu/hr = 1.0036680479e+11 watts = 100 GW


PV energy collection
=== [[Off-world Power Generation Lab 4: Moment control|Lab 4: Moment control]] ===
 
=== [[Off-world Power Generation Lab 5: Robotic self-assembly|Lab 5: Robotic self-assembly]] ===
The core autonomy work, including the
[[Off-world Power Generation Lab 5: Robotic self-assembly#Defensive Publication: Autonomous In-Space Self-Assembly of Modular Structures|defensive publication]]
(2026) disclosing the project's in-space self-assembly autonomy, docking
guidance, distributed slot-claiming, growth logic, and L2 relative-navigation
methods as public-domain prior art.
 
== Motivation: why a Nebraska-sized array ==
 
==== Premise ====
 
<Earth>  <-clearsky-burst-laser--  <satellite>
 
==== Goal ====
 
Near-earth or Lagrange-point solar array about the size of Nebraska to power the globe.
 
Calculations:
* Energy requirement of NYC: ~3000 trillion BTU in 2016 = 3000 trillion btu / 365 days = 3.4E+11 btu/hr = 1.0036680479e+11 watts = 100 GW
* [https://en.wikipedia.org/wiki/List_of_photovoltaic_power_stations PV power stations] collect more power than [https://en.wikipedia.org/wiki/List_of_solar_thermal_power_stations solar thermal power stations].  They seem to average ~3 MW/km^2 (throwing out 2 ridiculous outliers).
* [https://en.wikipedia.org/wiki/List_of_photovoltaic_power_stations PV power stations] collect more power than [https://en.wikipedia.org/wiki/List_of_solar_thermal_power_stations solar thermal power stations].  They seem to average ~3 MW/km^2 (throwing out 2 ridiculous outliers).
* Traditional single-junction cells have a maximum theoretical efficiency of 33.16% [https://en.wikipedia.org/wiki/Solar_cell_efficiency more].  In reality it is around [https://www.solarpowerrocks.com/solar-basics/how-much-electricity-does-a-solar-panel-produce/#top10 18.7%].
* Traditional single-junction cells have a maximum theoretical efficiency of 33.16% [https://en.wikipedia.org/wiki/Solar_cell_efficiency more].  In reality it is around [https://www.solarpowerrocks.com/solar-basics/how-much-electricity-does-a-solar-panel-produce/#top10 18.7%].
Line 33: Line 52:
* Approximate energy absorbable by a solar panel in space: 320W / 1.64m^2 / .48% = 400W/m^2 in space
* Approximate energy absorbable by a solar panel in space: 320W / 1.64m^2 / .48% = 400W/m^2 in space
* Approximate required size of a solar array "near Earth" (including l1) to power NYC: 100GW / 400W/m^s = 250 sq km
* Approximate required size of a solar array "near Earth" (including l1) to power NYC: 100GW / 400W/m^s = 250 sq km
* 1 out of every 811 humans on earth live in NYC, so 250 sq km dish * 811 (assuming every human uses as much energy as a New Yorker) requires a solar array of only around 200,000 sq km - the size of Nebraska - to power the globe.  A physicist confirms on the back of an envelope that the area needed [https://youtu.be/E0W1ZZYIV8o will be "near-(UK)-country-sized"].
==== The long road ====
Keep it as simple as possible, but no less.
* We need to optimize free space power transmission in lab conditions using currently-available consumer electronics.
* We need to create a solar panel array with robotics that can self-assemble. ''(← the current focus — see Status above)''
* We need robotics that can precisely and safely aim laser energy to a distant target using a real-time handshaking protocol.
* We need to determine the cheapest possible way to launch a payload from Earth and navigate it to a final stable destination (lagrange or Earth orbit).
* We need to determine the requirements to receive laser power at an Earth-based power plant.
== Archive ==
=== [[Off-world Power Generation Research|Research]] ===
=== [[Off-world Power Generation Prototyping|Prototyping]] ===
=== [[Off-world Power Generation Crowdfunding|Crowdfunding]] ===
=== [[Off-world Power Generation Patrons|Patrons]] ===

Latest revision as of 21:03, 31 August 2026

Off-world Power Generation is a long-term project to develop autonomous in-space self-assembly: a fleet of identical robotic modules that find each other, maneuver, dock, and self-assemble a larger structure — the target application being self-assembling solar arrays at Sun–Earth L2. The hard, unsolved 90% of that problem is autonomy (relative navigation, docking, growth sequencing, fault recovery), and it does not need orbit to be developed — it needs a place where free-floating dynamics are cheap. This project builds that place on a desktop, publishes everything openly, and places its methods in the public domain as dated prior art.

Status (updated 2026-08)

  • Air-bearing testbed built: 10-cm modules float on 6 mm float glass over a custom torsion-box bed, fine-leveled to 0.02° (target was <0.05°) — a planar (3-DOF) microgravity analogue.
  • Simulation campaign complete: a closed-loop planar simulator plus perception, comms, and L2-navigation studies produced the findings behind the design — terminal docking precision is owned by the magnetic-capture envelope rather than the controller; multi-fiducial fusion is the dominant self-localization win; measured air/energy budgets per docking maneuver. The flight-portable autonomy code is the same code the testbed runs.
  • Module v1 hardware received: Raspberry Pi Zero 2 W + wide camera (AprilTag relative pose), 8× Clippard solenoid valves (cold-gas thrusters), porous-graphite air bearings in 3D-printed housings, magnetic capture. Total project hardware spend to date: ≈ $1,500.
  • Defensive publication live (2026-06-20): the autonomy, docking, slot-claiming, growth, and L2 relative-navigation methods are public-domain prior art — the design space stays open for everyone.
  • Next milestone (Phase B): 10/10 repeatable autonomous docks between two modules on the testbed.

The labs

Air-bearing testbed

The shared apparatus: float-glass running surface, torsion-box bed, 3-point kinematic leveling, air-bearing modules. Underlies Labs 3–5.

Lab 3: Propulsive navigation

Lab 4: Moment control

Lab 5: Robotic self-assembly

The core autonomy work, including the defensive publication (2026) disclosing the project's in-space self-assembly autonomy, docking guidance, distributed slot-claiming, growth logic, and L2 relative-navigation methods as public-domain prior art.

Motivation: why a Nebraska-sized array

Premise

<Earth>   <-clearsky-burst-laser--   <satellite>

Goal

Near-earth or Lagrange-point solar array about the size of Nebraska to power the globe.

Calculations:

  • Energy requirement of NYC: ~3000 trillion BTU in 2016 = 3000 trillion btu / 365 days = 3.4E+11 btu/hr = 1.0036680479e+11 watts = 100 GW
  • PV power stations collect more power than solar thermal power stations. They seem to average ~3 MW/km^2 (throwing out 2 ridiculous outliers).
  • Traditional single-junction cells have a maximum theoretical efficiency of 33.16% more. In reality it is around 18.7%.
  • A 65"x39" (1.64 m^2) solar panel made in 2018 produces ~320W.
  • About 48% of solar energy hitting the Earth reaches the surface. Perhaps optimistic, but we will divide by .48 to get energy-in-space vs on-earth.
  • Approximate energy absorbable by a solar panel in space: 320W / 1.64m^2 / .48% = 400W/m^2 in space
  • Approximate required size of a solar array "near Earth" (including l1) to power NYC: 100GW / 400W/m^s = 250 sq km
  • 1 out of every 811 humans on earth live in NYC, so 250 sq km dish * 811 (assuming every human uses as much energy as a New Yorker) requires a solar array of only around 200,000 sq km - the size of Nebraska - to power the globe. A physicist confirms on the back of an envelope that the area needed will be "near-(UK)-country-sized".

The long road

Keep it as simple as possible, but no less.

  • We need to optimize free space power transmission in lab conditions using currently-available consumer electronics.
  • We need to create a solar panel array with robotics that can self-assemble. (← the current focus — see Status above)
  • We need robotics that can precisely and safely aim laser energy to a distant target using a real-time handshaking protocol.
  • We need to determine the cheapest possible way to launch a payload from Earth and navigate it to a final stable destination (lagrange or Earth orbit).
  • We need to determine the requirements to receive laser power at an Earth-based power plant.

Archive

Research

Prototyping

Crowdfunding

Patrons