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From Rise: The Vieneo Province

(Created page with "== Weather System Overview == The weather simulation in ''Rise: The Vieneo Province'' has evolved into a sophisticated planetary model with dynamic interactions between temperature, humidity, convection, terrain, wind, and time of day. The system calculates per-location weather conditions using multiple global maps and simulated environmental physics. == Core Maps Used == Vapor Map: Used for relative humidity and dew point derivation. Temperature Deviation Map: Provi...")
 
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== Weather System Overview ==
Vieneo is a tidally locked exomoon with a dense, high-pressure atmosphere and perpetual cloud cover, resulting in a uniquely complex and dynamic climate. The weather simulation in ''Rise: The Vieneo Province'' has evolved into a sophisticated planetary model with dynamic interactions between temperature, humidity, convection, terrain, wind, and time of day. Weather conditions are calculated per-location using global environmental maps and physical models.


The weather simulation in ''Rise: The Vieneo Province'' has evolved into a sophisticated planetary model with dynamic interactions between temperature, humidity, convection, terrain, wind, and time of day. The system calculates per-location weather conditions using multiple global maps and simulated environmental physics.
== Atmospheric Characteristics ==
* '''Atmospheric Pressure''': ~2.6 bar at sea level
* '''Diurnal Cycle''': 14.43-hour day
* '''Peak Temperature Lag''': ~3.5 hours after local solar noon (≈87.3° longitude offset)
* '''Midday Temperature Rise''': Typically less than 10°C due to dense cloud cover


== Core Maps Used ==
== Measured Global Averages ==
* '''Turbulence''': Avg 0.358 (scale 0–1)
** Comparable to light-to-moderate convective activity on Earth. Peak turbulence occurs near equatorial storm zones, with transient strong updrafts.
* '''Relative Humidity (RH)''': Avg 58.2%
** Min: 18.3%, Max: 100%
* '''Precipitation''':
** Avg: 0.076 mm/hr
** Max: 16 mm/hr (severe storm cells)
** Scale runs from 2–16, aligning with mm/hr intensity
* '''Wind Speeds''':
** Avg: 4.71 m/s (~10.5 mph)
** Max observed: 56.4 m/s (~126 mph)
** Area with >20 m/s winds: 0.4%
* '''Visibility''':
** Avg: 40.1 km
** <1 km: 2.0%
** <5 km: 3.5%
** <10 km: 3.6%
** >30 km: 94.5%


Vapor Map: Used for relative humidity and dew point derivation.
== Flight Rules Classification (Ceiling AGL and Visibility) ==
* '''Instrument Flight Rules (IFR)''': 7.4%
* '''Marginal VFR (MVFR)''': 47.6%
* '''Average Ceiling''': 1.16 km AGL (~3,800 ft)


Temperature Deviation Map: Provides baseline surface temperature adjusted seasonally and diurnally.
== Core Maps Used ==
 
* '''Vapor Map''': Relative humidity and dew point derivation
Convection Map: Used to estimate atmospheric turbulence and storm potential.
* '''Temperature Deviation Map''': Surface temperature variation based on season and time
 
* '''Convection Map''': Storm potential and turbulence
Wind Speed Map: Determines baseline wind speeds.
* '''Wind Speed Map''': Baseline surface and aloft wind speeds
 
* '''Wind Direction Map''': Orographic and directional wind effects
Wind Direction Map: Directional input used for orographic lifting and directional wind effects.
* '''Elevation Map''': Terrain height for ceiling and visibility calculations
 
Elevation Map: Determines local and upwind terrain for visibility and ceiling calculations.


== Diurnal and Seasonal Effects ==
== Diurnal and Seasonal Effects ==
 
* Temperature modulates with solar angle
Local temperature is modulated by time of day and seasonal solar latitude offset.
* Seasonal subsolar movement causes ±10–12°C swings
 
Peak surface temperature occurs 4 hours after solar noon.
 
Seasonal temperature swing ranges from +12.15°C to -10.64°C based on distance from solar sublatitude.


== Temperature and Dew Point ==
== Temperature and Dew Point ==
 
* Range: -55°C to +47°C
Temperatures range from -55°C to +47°C across the planet.
* Dew point derived from vapor map via exponential approximation
 
* Max dew point spread: ~21.5°C
Dew point is calculated based on vapor presence using an inverse exponential model.
 
Max dew point spread is capped at ~21.5°C.


== Relative Humidity ==
== Relative Humidity ==
 
* Computed using Magnus-Tetens formula:
Derived using the Magnus-Tetens approximation:
RH = exp((17.625 × Td)/(243.04 + Td)) / exp((17.625 × T)/(243.04 + T))
RH = exp((17.625 × Td)/(243.04 + Td)) / exp((17.625 × T)/(243.04 + T))
 
Turbulence and manual override scalars may apply.


== Turbulence (Storm Potential) ==
== Turbulence (Storm Potential) ==
 
* Simulates jet stream drift via Rossby wave patterns
Rossby wave interference simulates jet stream drift.
* Daily peak near midday
 
* Affects gusts, cloud formation, and precipitation
Turbulence ranges from 0 to ~1.0, typically peaking at midday.
* More widespread than on Earth due to dense atmosphere and solar heating dynamics
 
Drives wind gusts and enhances storm formation.


== Precipitation ==
== Precipitation ==
 
* Triggered when RH × Turbulence > 0.44 below ~6.5 km altitude
Triggered when RH × Turbulence > 0.44 below mid-cloud level (~6.5 km).
* Intensity scaled 2–16 (in mm/hr)
 
* Can cool surface by up to 6°C
Storm intensity scaled non-linearly into a 2–16 range.
* Planetary precip coverage targets ~7.5%
 
Precipitation cools surface temperatures up to 6°C.
 
Average planetary precipitation coverage targets ~7.5%.


== Wind Modeling ==
== Wind Modeling ==
 
* Layered up to 63 km altitude
Wind direction is derived from directional map and stratified by altitude in 1 km layers up to 63 km.
* Gusts enhanced by turbulence
 
* Strongest winds seen in mid-latitude and equatorial storm belts
Wind speed is a power function of source pixel value with turbulence-based enhancement.
 
Gust speed is scaled based on turbulence severity.
 
Altitude-based adjustments simulate realistic jet stream patterns.


== Orographic Lifting and Visibility ==
== Orographic Lifting and Visibility ==
 
* Visibility reduced when upwind terrain is higher and RH is high
Wind direction and speed determine an "upwind" terrain elevation lookup.
* Modulated by dew point spread and wind speed
 
If upwind terrain is higher than current position, visibility is reduced due to fog from orographic lifting.
 
Orographic fog effect modulates with dew point spread.


== Visibility Calculations ==
== Visibility Calculations ==
Visibility is computed by combining several factors:
* '''Fog''': Triggered by small T–Td delta and elevated terrain
 
* '''Precipitation''' visibility effects:
Fog: When temperature-dewpoint spread < 0.2°C and upwind terrain is elevated.
** Light (2–6): ~2 km visibility
 
** Moderate (10–12): ~1–5 km
Precipitation:
** Heavy (>12): ~0.5–4.5 km
* Light (2–6): reduces visibility to 2 km.
* '''Wind Mixing''':
* Moderate (10–12): reduces to 1–5 km.
** 5–15 m/s: improves visibility
* Heavy (>12): reduces to 0.5–4.5 km.
** >20 m/s: can cause haze and dust
 
* '''Final Clamp''': Visibility range: 0.05–25 km
Turbulence: Clears visibility under low precip conditions.
 
Wind Mixing:
* 5–15 m/s: improves visibility up to 2 km.
* >20 m/s: dust/haze degrades visibility up to 1 km.
 
Final Clamp: Visibility is clamped to range 0.05–25 km.


== Ceiling Calculations ==
== Ceiling Calculations ==
* Formula: (T - Td) × 0.12192 km/°C
* Adjusted for terrain height difference
* Minimum ceiling enforced over Deois
* If ceiling <150 m AGL below midcloud, visibility is reduced


Cloud ceiling is computed using:
== Sanity Checks and Constraints ==
(T - Td) × 0.12192 km/°C
* Fog forces min precip to 2.0
 
* Syncs ceiling and visibility to avoid logical conflicts
Adjusted for difference between surface elevation and upwind elevation.
 
Special adjustment for Deois city ensures minimum ceiling above highest structure.
 
If ceiling < 150 m AGL and altitude is below midcloud level, visibility is scaled down.
 
== Sanity Checks and Final Conditions ==


Fog conditions force precip to 2.0 if visibility < 1 km.
== Notes to Pilots ==
 
* '''Cloud Bases''': Widespread stratiform decks, often 1–2 km AGL
Visibility and ceiling are synchronized to prevent unrealistic conditions.
* '''Low Visibility Zones''': Mountainous or humid regions prone to IFR
* '''Storm Zones''': Mostly near equator or mid-latitudes
* '''Winds Aloft''': Jet-stream equivalents exist—expect wind shear
* '''Turbulence''': More persistent than Earth; strong convection common


== Summary of Key Ranges ==
== Summary of Key Ranges ==
{| class="wikitable"
{| class="wikitable"
|-
|-
! Parameter !! Min !! Max
! Parameter !! Min !! Max
|-
|-
Temperature (Surface)
| Temperature (Surface) || -55°C || +47°C
 
 
 
-55°C
 
 
 
+47°C
 
|-
|-
 
| Dew Point Spread || 0°C || ~21.5°C
Dew Point Spread
 
 
 
0°C
 
 
 
~21.5°C
 
|-
|-
 
| Precipitation || 2.0 mm/hr || 16.0 mm/hr
Precipitation
 
 
 
2.0
 
 
 
16.0
 
|-
|-
 
| Wind Speed || ~0 m/s || ~83 m/s
Wind Speed
 
 
 
~0 m/s
 
 
 
~83 m/s
 
|-
|-
 
| Visibility || 0.05 km || 25.0 km
Visibility
 
 
 
0.05 km
 
 
 
25.0 km
 
|-
|-
Ceiling (AGL)
| Ceiling (AGL) || 0.0 km || ~5.0+ km
 
|}
 


0.0 km
== Imagery ==
 
[[File:GlobalWeatherMap.png|center|thumb|800px|Global weather radar map showing precipitation clusters]]
 
 
~5.0+ km
 
}


== See Also ==
== See Also ==
 
* [[Atmosphere]]
[[Atmosphere]]
* [[Player Portal]]
[[St. Elmo's Fire]]


== Notes ==
== Notes ==
 
The system is designed for future upgrades including airborne radar, storm particles, and localized weather patterns. Orographic effects and fog are computed dynamically using directional wind sampling.
The system is designed for future expansion to include airborne radar, precipitation particles, and localized thunderstorm cells.
 
Orographic adjustments are dynamically computed at runtime based on directional wind sampling.

Revision as of 12:09, 7 August 2025

Vieneo is a tidally locked exomoon with a dense, high-pressure atmosphere and perpetual cloud cover, resulting in a uniquely complex and dynamic climate. The weather simulation in Rise: The Vieneo Province has evolved into a sophisticated planetary model with dynamic interactions between temperature, humidity, convection, terrain, wind, and time of day. Weather conditions are calculated per-location using global environmental maps and physical models.

Atmospheric Characteristics

  • Atmospheric Pressure: ~2.6 bar at sea level
  • Diurnal Cycle: 14.43-hour day
  • Peak Temperature Lag: ~3.5 hours after local solar noon (≈87.3° longitude offset)
  • Midday Temperature Rise: Typically less than 10°C due to dense cloud cover

Measured Global Averages

  • Turbulence: Avg 0.358 (scale 0–1)
    • Comparable to light-to-moderate convective activity on Earth. Peak turbulence occurs near equatorial storm zones, with transient strong updrafts.
  • Relative Humidity (RH): Avg 58.2%
    • Min: 18.3%, Max: 100%
  • Precipitation:
    • Avg: 0.076 mm/hr
    • Max: 16 mm/hr (severe storm cells)
    • Scale runs from 2–16, aligning with mm/hr intensity
  • Wind Speeds:
    • Avg: 4.71 m/s (~10.5 mph)
    • Max observed: 56.4 m/s (~126 mph)
    • Area with >20 m/s winds: 0.4%
  • Visibility:
    • Avg: 40.1 km
    • <1 km: 2.0%
    • <5 km: 3.5%
    • <10 km: 3.6%
    • >30 km: 94.5%

Flight Rules Classification (Ceiling AGL and Visibility)

  • Instrument Flight Rules (IFR): 7.4%
  • Marginal VFR (MVFR): 47.6%
  • Average Ceiling: 1.16 km AGL (~3,800 ft)

Core Maps Used

  • Vapor Map: Relative humidity and dew point derivation
  • Temperature Deviation Map: Surface temperature variation based on season and time
  • Convection Map: Storm potential and turbulence
  • Wind Speed Map: Baseline surface and aloft wind speeds
  • Wind Direction Map: Orographic and directional wind effects
  • Elevation Map: Terrain height for ceiling and visibility calculations

Diurnal and Seasonal Effects

  • Temperature modulates with solar angle
  • Seasonal subsolar movement causes ±10–12°C swings

Temperature and Dew Point

  • Range: -55°C to +47°C
  • Dew point derived from vapor map via exponential approximation
  • Max dew point spread: ~21.5°C

Relative Humidity

  • Computed using Magnus-Tetens formula:
RH = exp((17.625 × Td)/(243.04 + Td)) / exp((17.625 × T)/(243.04 + T))

Turbulence (Storm Potential)

  • Simulates jet stream drift via Rossby wave patterns
  • Daily peak near midday
  • Affects gusts, cloud formation, and precipitation
  • More widespread than on Earth due to dense atmosphere and solar heating dynamics

Precipitation

  • Triggered when RH × Turbulence > 0.44 below ~6.5 km altitude
  • Intensity scaled 2–16 (in mm/hr)
  • Can cool surface by up to 6°C
  • Planetary precip coverage targets ~7.5%

Wind Modeling

  • Layered up to 63 km altitude
  • Gusts enhanced by turbulence
  • Strongest winds seen in mid-latitude and equatorial storm belts

Orographic Lifting and Visibility

  • Visibility reduced when upwind terrain is higher and RH is high
  • Modulated by dew point spread and wind speed

Visibility Calculations

  • Fog: Triggered by small T–Td delta and elevated terrain
  • Precipitation visibility effects:
    • Light (2–6): ~2 km visibility
    • Moderate (10–12): ~1–5 km
    • Heavy (>12): ~0.5–4.5 km
  • Wind Mixing:
    • 5–15 m/s: improves visibility
    • >20 m/s: can cause haze and dust
  • Final Clamp: Visibility range: 0.05–25 km

Ceiling Calculations

  • Formula: (T - Td) × 0.12192 km/°C
  • Adjusted for terrain height difference
  • Minimum ceiling enforced over Deois
  • If ceiling <150 m AGL below midcloud, visibility is reduced

Sanity Checks and Constraints

  • Fog forces min precip to 2.0
  • Syncs ceiling and visibility to avoid logical conflicts

Notes to Pilots

  • Cloud Bases: Widespread stratiform decks, often 1–2 km AGL
  • Low Visibility Zones: Mountainous or humid regions prone to IFR
  • Storm Zones: Mostly near equator or mid-latitudes
  • Winds Aloft: Jet-stream equivalents exist—expect wind shear
  • Turbulence: More persistent than Earth; strong convection common

Summary of Key Ranges

Parameter Min Max
Temperature (Surface) -55°C +47°C
Dew Point Spread 0°C ~21.5°C
Precipitation 2.0 mm/hr 16.0 mm/hr
Wind Speed ~0 m/s ~83 m/s
Visibility 0.05 km 25.0 km
Ceiling (AGL) 0.0 km ~5.0+ km

Imagery

Global weather radar map showing precipitation clusters

See Also

Notes

The system is designed for future upgrades including airborne radar, storm particles, and localized weather patterns. Orographic effects and fog are computed dynamically using directional wind sampling.