---
title: Sol
canonical_url: https://paxabyssi.com/wiki/Sol
markdown_url: https://paxabyssi.com/wiki/Sol.md
type: wiki-page
revision_id: 28
revision_view: stable
last_updated: 2026-09-27
license: CC BY-SA 4.0
license_url: https://creativecommons.org/licenses/by-sa/4.0/
science_status:
  - observed
  - sim
summary: The Sun and its planetary system, the one star system in Pax Abyssi built entirely from measurement, with nine planets including Pluto and 28 moons on orbits fitted to JPL ephemerides.
categories:
  - Planetary systems
  - Solar System
  - The Galaxy
aliases:
  - Solar System
  - The Solar System
  - Sol system
infobox:
  type: planetary_system
  star: the Sun (Sol)
  image: File:Sol_system_planet_sizes.jpg
  age_gyr: 4.567
  planets: 8
  sim_epoch: positions solved for 2538-01-01, then propagated
  sim_bodies: "37: the nine planets including Pluto, and 28 moons"
  star_mass_kg: 1.9884e+30
  heliopause_au: about 120 (Voyager 1 crossed at about 122 AU in 2012)
  spectral_type: G2V
  kuiper_belt_au: 39.4 to 47.8
  star_radius_km: 695700
  dwarf_planets_iau: 5 (Ceres, Pluto, Haumea, Makemake, Eris)
  habitable_zone_au: about 0.95 to 1.7 (conservative); about 0.75 to 1.77 (optimistic)
  star_luminosity_w: 3.828e+26
  galactic_orbit_myr: about 220 to 230
  water_frost_line_au: about 2.7 (classic solar nebula model)
  main_asteroid_belt_au: 2.06 to 3.27
  kuiper_belt_mass_earth: 0.0197
  sim_analogue_archetype: frost_clustered (the generator's Sol-like architecture)
  known_moons_as_of_2026_09:
    Mars: 2
    Earth: 1
    Pluto: 5
    Saturn: 293
    Uranus: 29
    Jupiter: 115
    Neptune: 16
  star_effective_temperature_k: 5772
  main_asteroid_belt_mass_earth: 0.0004
  distance_from_galactic_centre_kpc: 8.2 to 8.3
related:
  - https://paxabyssi.com/wiki/Milky_Way.md
  - https://paxabyssi.com/wiki/Star_catalogue.md
  - https://paxabyssi.com/wiki/Natural_satellite.md
  - https://paxabyssi.com/wiki/Habitable_zone.md
  - https://paxabyssi.com/wiki/Star_system_generation.md
  - https://paxabyssi.com/wiki/Asteroid_belt.md
---

# Sol

> Source: https://paxabyssi.com/wiki/Sol
>
> Licence: [CC BY-SA 4.0](https://creativecommons.org/licenses/by-sa/4.0/). Text by Pax Abyssi Wiki contributors; history at https://paxabyssi.com/wiki/Sol/history
>
> Revision 28, 27 September 2026

**Sol** is the Sun and everything bound to it: eight planets, five recognised dwarf planets, more than 450 known moons, two great belts of small bodies and a wind of charged particles that reaches beyond 120 astronomical units (AU; 1 AU is Earth's mean distance from the Sun, about 150 million km). It is the only planetary system known in full detail and the yardstick against which every other is measured. In [Pax Abyssi](https://paxabyssi.com/wiki/Pax_Abyssi.md) it is also the one system built entirely from measurement, where every other system is generated.

![The eight planets in a row from Mercury to Neptune at their correct relative sizes, the giants dwarfing the four small rocky worlds.](https://media.paxabyssi.com/public/2b6fbd28cc889bf5750bdf9b55c823067d182d756c9f9e3efb8430c9562cab29/2020.webp "Diagram. The planets at their true relative sizes. The distances between them are not to scale: Neptune orbits more than 30,000 Jupiter diameters from the Sun.")

*Figure 1.* Diagram. The planets at their true relative sizes. The distances between them are not to scale: Neptune orbits more than 30,000 Jupiter diameters from the Sun. Credit: NASA/Lunar and Planetary Institute. Licence: Public domain (NASA).

## The Sun

The Sun is a G2V star, a [yellow dwarf](https://paxabyssi.com/wiki/Yellow_dwarf.md) on the main sequence, fusing hydrogen into helium in its core. Its nominal values, fixed by the International Astronomical Union in 2015 so that every paper uses the same conversion constants, are a radius of 695,700 km, a luminosity of $3.828 \times 10^{26}$ W and an effective temperature of 5,772 K. [1] Its mass is $1.988 \times 10^{30}$ kg, about 333,000 times Earth's. [2]

Those three numbers are tied together by the Stefan-Boltzmann law, which gives the power radiated by a sphere of radius $R$ and surface temperature $T$:

$$
L = 4 \pi R^2 \sigma T^4
$$

With $\sigma = 5.670 \times 10^{-8}$ W m$^{-2}$ K$^{-4}$, $R = 6.957 \times 10^{8}$ m and $T = 5{,}772$ K, the formula returns $3.83 \times 10^{26}$ W, the Sun's measured luminosity.

The oldest solids in meteorites, calcium- and aluminium-rich inclusions, formed 4.567 billion years ago, and that date is taken as the birth of the Solar System. [3] The Sun is a little less than halfway through its life. In about 5 billion years it will swell into a red giant large enough to engulf Mercury and Venus, then shed its outer layers and end as a [white dwarf](https://paxabyssi.com/wiki/White_dwarf.md). [4] It carries its planets around the centre of the [Milky Way](https://paxabyssi.com/wiki/Milky_Way.md) about 8.2 kiloparsecs away, once every 220 to 230 million years.

## The planets

| Planet  | Mean distance (AU) | Orbital period | Diameter (km) | Mass (Earths) | Density (g/cm³) | Moons (Sept 2026) |
| ------- | ------------------ | -------------- | ------------- | ------------- | --------------- | ----------------- |
| Mercury | 0.387              | 88.0 days      | 4,879         | 0.055         | 5.43            | 0                 |
| Venus   | 0.723              | 224.7 days     | 12,104        | 0.815         | 5.24            | 0                 |
| Earth   | 1.000              | 365.2 days     | 12,756        | 1             | 5.51            | 1                 |
| Mars    | 1.524              | 1.88 years     | 6,792         | 0.107         | 3.93            | 2                 |
| Jupiter | 5.20               | 11.9 years     | 142,984       | 318           | 1.33            | 115               |
| Saturn  | 9.57               | 29.4 years     | 120,536       | 95.2          | 0.69            | 293               |
| Uranus  | 19.2               | 83.7 years     | 51,118        | 14.5          | 1.27            | 29                |
| Neptune | 30.2               | 164 years      | 49,528        | 17.1          | 1.64            | 16                |

Orbital and physical values are from NASA's planetary fact sheet. [5] Moon counts are those recognised by September 2026 and change often. [6] [7] [8] [9]

The periods and distances obey Kepler's third law: the square of a planet's period in years equals the cube of its distance in AU, $P^2 = a^3$. Jupiter at 5.20 AU gives $P = \sqrt{5.20^3} = 11.9$ years, as observed. See [Orbit](https://paxabyssi.com/wiki/Orbit.md) for where the law comes from.

The system splits cleanly in two. The four inner planets are small, dense and rocky: [Mercury](https://paxabyssi.com/wiki/Barren_rock_world.md), [Venus](https://paxabyssi.com/wiki/Greenhouse_world.md), Earth and [Mars](https://paxabyssi.com/wiki/Arid_world.md). The four outer planets are giants: [Jupiter and Saturn](https://paxabyssi.com/wiki/Gas_giant.md), made mostly of hydrogen and helium, and the [ice giants](https://paxabyssi.com/wiki/Ice_giant.md) Uranus and Neptune, rich in water, ammonia and methane. Neptune is often shown deep blue, but careful recalibration of Voyager and telescope images shows it is a pale greenish-blue only slightly bluer than Uranus. [10]

The dividing line is the **frost line** (or snow line), the distance in the young solar nebula beyond which water condensed as ice and gave growing planets far more solid material to build from. The classic model of the solar nebula puts it at about 2.7 AU, between Mars and Jupiter. [11] Jupiter formed just outside it.

Many other Sun-like stars have planets larger than Earth and smaller than Neptune orbiting closer in than Mercury, a kind of planet the Solar System does not have at all. [12] Sol is one arrangement among many; see [Planet occurrence](https://paxabyssi.com/wiki/Planet_occurrence.md) and [Planetary system archetypes](https://paxabyssi.com/wiki/Planetary_system_archetypes.md).

## Moons, belts and dwarf planets

Most of Sol's moons are small, irregular bodies a few kilometres across, captured on distant, tilted and often backward orbits around the giants. Jupiter's 115 include only eight regular moons that formed with it: four small inner moons and the four large Galilean moons. [6] The large moons are worlds in their own right: Titan has a nitrogen atmosphere thicker than Earth's, and Europa and Enceladus hide oceans under their ice. See [Natural satellite](https://paxabyssi.com/wiki/Natural_satellite.md).

The **main asteroid belt** fills the zone from 2.06 to 3.27 AU, where Jupiter's gravity stopped a planet from forming. Its total mass, measured from its pull on the planets and on spacecraft, is $(4.008 \pm 0.029) \times 10^{-4}$ Earth masses, about 3 percent of the Moon. [13] The **Kuiper belt** of icy bodies lies mostly between Neptune's 3:2 and 2:1 resonances, 39.4 to 47.8 AU, with about $1.97 \times 10^{-2}$ Earth masses, some 50 times the main belt. [13] See [Asteroid belt](https://paxabyssi.com/wiki/Asteroid_belt.md).

The IAU recognises five **dwarf planets**, bodies massive enough to be round that have not cleared their orbits: Ceres in the main belt, and Pluto, Haumea, Makemake and Eris beyond Neptune. [14] Pluto has five known moons. [5]

## Zones and boundaries

The **habitable zone** is the range of distances where an Earth-like planet with a carbon dioxide and water atmosphere could keep liquid water on its surface. For the Sun its conservative limits run from about 0.95 AU, where an Earth-mass planet would tip into a runaway greenhouse, to about 1.7 AU, where even a thick carbon dioxide atmosphere could no longer keep it warm. Optimistic limits, based on the evidence that Venus once had water and Mars once had rivers, stretch from about 0.75 to 1.77 AU. [15] [16] Earth sits near the inner edge. The details are on the [Habitable zone](https://paxabyssi.com/wiki/Habitable_zone.md) page.

The **heliopause** is where the solar wind meets the gas between the stars. Voyager 1 crossed it on 25 August 2012 at about 122 AU, the first spacecraft to reach interstellar space, and Voyager 2 followed on 5 November 2018. [17]

## How we know

Planetary distances are known to metres from radar ranging and the tracking of spacecraft, which together feed the numerical ephemerides that predict every body's position. Planet masses come from the orbits of their moons and from the paths of spacecraft that fly past. The belts are too faint and scattered to weigh by counting, so their masses are inferred from the small tugs they give the planets and spacecraft. [13] The Sun's age comes from radioactive clocks in meteorites. [3]

[Open the sol system in the web orrery](https://paxabyssi.com/orrery/sol)

> **In Pax Abyssi**
>
> **BUILT.** Sol is the one system in the game that is not generated. It holds 37 bodies around the Sun: the nine planets, with Pluto kept alongside the eight, and 28 real moons (the Moon; Phobos and Deimos; six of Jupiter's; nine of Saturn's; five of Uranus's; four of Neptune's; and Charon). Their orbital elements were fitted to NASA JPL's Horizons ephemerides. Positions are solved for 1 January 2538, the game's date, and every body then moves on its orbit each tick, at true scale in double precision. The game's orbit solver matches the original simulation's to 0.8 mm across the nine planets.
>
> The orrery charts the system with its habitable zone, frost lines, Hill spheres and Lagrange points, and plans a live Hohmann transfer: Earth to Mars takes burns of 2.94 and 2.65 km/s and 259 days, with a launch window every 780 days.
>
> **Departures from reality.** Sunlight does not dim with distance in the game, by design, so Neptune is lit as brightly as Earth, in the way spacecraft images are exposed to show detail. The moons move on fixed orbital elements. Checked against a year of JPL positions the fit never saw, most of the large moons land within about two degrees of their true places, while resonance-driven Mimas and Hyperion and the distant irregular moons are off by 11 to 25 degrees, because fixed elements cannot carry the forces that move them.

(Image pending: An orange disc with a mottled surface and a bright rim, with long rays reaching out into a black star field.)

*Figure 2.* Sim render. The Sun at five solar radii in the game's test stage. The orange tint is an artistic choice of the render; seen from space the Sun is close to white.

> **Sol in 2538**
>
> In the fiction of Pax Abyssi, Sol was abandoned about a century before the game begins, under raids by the Velkarai, and Old Earth is lost and quarantined. Its planets and moons still circle on their real orbits.

## See also

- [Yellow dwarf](https://paxabyssi.com/wiki/Yellow_dwarf.md), the Sun's class of star
- [Milky Way](https://paxabyssi.com/wiki/Milky_Way.md), the Sun's place in the Galaxy
- [Star catalogue](https://paxabyssi.com/wiki/Star_catalogue.md)
- [Orbit](https://paxabyssi.com/wiki/Orbit.md) and [Habitable zone](https://paxabyssi.com/wiki/Habitable_zone.md)
- [Natural satellite](https://paxabyssi.com/wiki/Natural_satellite.md) and [Asteroid belt](https://paxabyssi.com/wiki/Asteroid_belt.md)
- [Planetary system archetypes](https://paxabyssi.com/wiki/Planetary_system_archetypes.md)
- [Star system generation](https://paxabyssi.com/wiki/Star_system_generation.md), how every other system is built

## References

1. Prša, A. and et al. (2016). Nominal Values for Selected Solar and Planetary Quantities: IAU 2015 Resolution B3. The Astronomical Journal 152, 41. <https://doi.org/10.3847/0004-6256/152/2/41>
2. Williams, D. R. (2024). Sun Fact Sheet. NASA Space Science Data Coordinated Archive. <https://nssdc.gsfc.nasa.gov/planetary/factsheet/sunfact.html>
3. Connelly, J. N. and et al. (2012). The Absolute Chronology and Thermal Processing of Solids in the Solar Protoplanetary Disk. Science 338, 651-655. <https://doi.org/10.1126/science.1226919>
4. NASA Science. Sun: Facts. science.nasa.gov. <https://science.nasa.gov/sun/facts/>
5. Williams, D. R. (2025). Planetary Fact Sheet - Metric. NASA Space Science Data Coordinated Archive. <https://nssdc.gsfc.nasa.gov/planetary/factsheet/>
6. NASA Science (2026). Jupiter Moons. science.nasa.gov. <https://science.nasa.gov/jupiter/moons/>
7. NASA Science (2026). Saturn Moons. science.nasa.gov. <https://science.nasa.gov/saturn/moons/>
8. NASA Science (2026). Uranus Moons. science.nasa.gov. <https://science.nasa.gov/uranus/moons/>
9. NASA Science (2026). Neptune Moons. science.nasa.gov. <https://science.nasa.gov/neptune/moons/>
10. Irwin, P. G. J. and et al. (2024). Modelling the seasonal cycle of Uranus's colour and magnitude, and comparison with Neptune. Monthly Notices of the Royal Astronomical Society 527, 11521-11538. <https://doi.org/10.1093/mnras/stad3761>
11. Hayashi, C. (1981). Structure of the Solar Nebula, Growth and Decay of Magnetic Fields and Effects of Magnetic and Turbulent Viscosities on the Nebula. Progress of Theoretical Physics Supplement 70, 35-53. <https://doi.org/10.1143/PTPS.70.35>
12. Zhu, W. and Dong, S. (2021). Exoplanet Statistics and Theoretical Implications. Annual Review of Astronomy and Astrophysics 59, 291-336. <https://doi.org/10.1146/annurev-astro-112420-020055>
13. Pitjeva, E. V. and Pitjev, N. P. (2018). Masses of the Main Asteroid Belt and the Kuiper Belt from the Motions of Planets and Spacecraft. Astronomy Letters 44, 554-566. <https://doi.org/10.1134/S1063773718090050>
14. NASA Science. Dwarf Planets. science.nasa.gov. <https://science.nasa.gov/dwarf-planets/>
15. Kopparapu, R. K. and et al. (2013). Habitable Zones around Main-sequence Stars: New Estimates. The Astrophysical Journal 765, 131. <https://doi.org/10.1088/0004-637X/765/2/131>
16. Kopparapu, R. K. and et al. (2014). Habitable Zones around Main-sequence Stars: Dependence on Planetary Mass. The Astrophysical Journal Letters 787, L29. <https://doi.org/10.1088/2041-8205/787/2/L29>
17. NASA Science. Voyager: The Interstellar Mission. science.nasa.gov. <https://science.nasa.gov/mission/voyager/interstellar-mission/>

## Infobox (planetary system)

| Field | Value |
| --- | --- |
| Star | the Sun (Sol) |
| Image | File:Sol_system_planet_sizes.jpg |
| Age gyr | 4.567 |
| Planets | 8 |
| Sim epoch | positions solved for 2538-01-01, then propagated |
| Sim bodies | 37: the nine planets including Pluto, and 28 moons |
| Star mass kg | 1.9884e+30 |
| Heliopause au | about 120 (Voyager 1 crossed at about 122 AU in 2012) |
| Spectral type | G2V |
| Kuiper belt au | 39.4 to 47.8 |
| Star radius km | 695700 |
| Dwarf planets iau | 5 (Ceres, Pluto, Haumea, Makemake, Eris) |
| Habitable zone au | about 0.95 to 1.7 (conservative); about 0.75 to 1.77 (optimistic) |
| Star luminosity w | 3.828e+26 |
| Galactic orbit myr | about 220 to 230 |
| Water frost line au | about 2.7 (classic solar nebula model) |
| Main asteroid belt au | 2.06 to 3.27 |
| Kuiper belt mass earth | 0.0197 |
| Sim analogue archetype | frost_clustered (the generator's Sol-like architecture) |
| Star effective temperature k | 5772 |
| Main asteroid belt mass earth | 0.0004 |
| Distance from galactic centre kpc | 8.2 to 8.3 |

## Related pages

- [Milky Way](https://paxabyssi.com/wiki/Milky_Way.md): The barred spiral galaxy that contains the Sun, some 100 to 400 billion stars in a disk about 30 kiloparsecs across, and the setting of Pax Abyssi.
- [Star catalogue](https://paxabyssi.com/wiki/Star_catalogue.md): The 119,626 real stars at the heart of Pax Abyssi, built from the HYG database and corrected against Gaia DR3, Hipparcos, XHIP and the Washington Double Star Catalog, with every correction kept beside the original value.
- [Natural satellite](https://paxabyssi.com/wiki/Natural_satellite.md): A moon, a natural body orbiting a planet, dwarf planet or asteroid. The Solar System's planets have more than 430 known moons, from kilometre-sized captured fragments to Ganymede, which is larger than Mercury.
- [Habitable zone](https://paxabyssi.com/wiki/Habitable_zone.md): The band of distances from a star where an Earth-like planet could keep liquid water on its surface, bounded by the runaway greenhouse on the inside and the maximum greenhouse on the outside.
- [Star system generation](https://paxabyssi.com/wiki/Star_system_generation.md): How Pax Abyssi builds the planets, moons, rings and belts of every star system except our own, from a star's catalogue row, published occurrence rates and planetary physics, the same way every time.
- [Asteroid belt](https://paxabyssi.com/wiki/Asteroid_belt.md): A ring of rocky and icy bodies left over from planet formation, shaped by the resonances of nearby giant planets. The Sun's Main Belt, between Mars and Jupiter, holds about 3 percent of the Moon's mass spread through a volume so large that its asteroids are millions of kilometres apart.

Categories: [Planetary systems](https://paxabyssi.com/wiki/Category:Planetary_systems.md), [Solar System](https://paxabyssi.com/wiki/Category:Solar_System.md), [The Galaxy](https://paxabyssi.com/wiki/Category:The_Galaxy.md)
