Why is this a Exotic Terrestrial?Your planet builds its crust from exotic minerals (12.2% calcium/titanium/aluminum-family rock formers) instead of the silicate-iron recipe every standard rocky world uses.
Exotic terrestrials are temperate solid worlds whose geology skipped the silicate playbook - carbonate plains, titanium-gray mesas, alkali flats. They can hold air, water ingredients, and real habitability, but with no silicate continents or iron core they are their own class, not earth-likes.
Classification Criteria:
✓ Exotic rock formers: 12.2% (>=12% Ca/Ti/Al/K/Ni/U)✓ Standard rock: 3.5% (<15% - silicate rules never claimed it)✓ Temperature: 321K (240-380K temperate band)✓ Air + water ingredients: 46.8% O+H (>=15%) with an atmosphere
Habitability ScoreMarginal
48
Contributing Factors
water100
Abundant water
geology90
Active geology recycles nutrients and drives carbon cycle
rotation100
Optimal rotation period - balanced day/night cycle, moderate weather, and good heat distribution
Organic Chemistry80
Core organic elements (CHNO) present
atmosphere100
Nitrogen-oxygen atmosphere - breathable and protective
temperature70
Challenging but potentially habitable temperature
magnetic Field100
Magnetic field provides radiation protection — but the pulsar's beams bathe this orbit in hard X-rays
Physical Properties
Mass
0.80x Earth (4.78e+24 kg)
Radius
0.93x Earth (5,914 km)
Surface Gravity
0.93x Earth (9.1 m/s²)
Surface Temperature
321 K (48 °C / 118 °F)
Rotation Period
19.0 hours/day (faster than Earth)
Orbital Environment
Star Type
NS-type (Neutron Star)
Distance from Star
0.12 AU (18 million km)
Orbital Period
13 days
Time Dilation
Clocks run 5.5 seconds per year slower than deep space — about 7 minutes over a lifetime
Atmosphere
Nitrogen-oxygen atmosphere over exotic mineral flats
Elemental Composition
H - Hydrogen
23.4%
O - Oxygen
23.4%
Cr - Chromium
11.7%
Surface Characteristics
Pale mineral plains — carbonate flats, chalk mesas, and crusts no silicate world can build
Matched on physical properties only — but pulsar planets are real: the first exoplanets ever confirmed (PSR B1257+12, 1992) orbit a neutron star.Discovered 2017 via transit · 40 light-years awaySource: NASA Exoplanet Archive
Inside the Roche limit (2.80 planet radii): torn apart into a ring system.
Moon 2merged0.020% - 5.7 radii
Merged with an adjacent moon: too close for both to hold a stable orbit.
Habitability
✓ Conditions suitable for life detectedThis planet exhibits the necessary conditions to support biological processes, including stable temperatures, liquid water, and protective magnetic fields.