Satellite Location · Entry VI

Venus

Historical Map

Venus-centered J2000 equatorial frame. Eight historical orbiters (Venera 9 / 10 / 15 / 16, Pioneer Venus 1, Magellan, Venus Express, Akatsuki), eleven surface impact / landing sites — the 1970s Venera and 1980s Vega programs plus NASA's Pioneer Venus 2 Day Probe (1978), four atmospheric descent probes (Venera 4 / 5 / 6 and the Pioneer Venus 2 Large Probe) at their last-known descent latitude, fifteen flyby trajectories spanning Mariner 2 (1962) through Parker Solar Probe VGA-7 (2024), and four planned missions (Shukrayaan-1 ~2028; VERITAS, DAVINCI and EnVision in the 2030s) catalogued. Toggle between cloud-tops true color, Magellan radar surface, and UV cloud structure to see why the surface assets are invisible from orbit in the natural-light view.

Lander coordinates: NASA NSSDC + Soviet Venera mission reports · Orbital elements: mission status pages + JPL Horizons · Surface mosaic: Magellan SAR cycles 1–3 (1990–1992) · Rotation model: IAU 2015 (retrograde, W₀ = 160.20°, dW/dt = −1.4814°/d)
8
Historical Orbiters
11
Surface Sites
4
Atm. Probes
15
Flyby Passes
4
Planned 2028+
0
Active Now

Venus is the historical heavyweight of solar-system exploration that everyone forgets. More orbiters and landers were sent here in 1961 – 1985 than to any body except Mars: the Veneras 1 – 16, Pioneer Venus 1 + 2, Vega 1 + 2 (en route to Halley), Magellan's radar topographic map of the entire planet, Venus Express, Akatsuki. And then since Akatsuki's last contact in 2024, nothing. The page is built around that history: every successful soft landing at its surveyor-confirmed lat / lon on the rotating body, every atmospheric probe at its terminal latitude, every orbiter on its propagated mean-element ellipse, and every flyby (Mariner 2 in 1962 through BepiColombo's 2021 second VGA) as a hyperbolic arc. The retrograde rotation of Venus — a single sidereal day takes 243 Earth days — means the surface barely moves under the propagated orbits at real time; pump the clock to ×1M to see the body turn under the radar mapping orbits of Venera 15 / 16 and Magellan. The cloud-tops, radar, and UV globe toggles show the central scientific point: the surface assets that produced the most data are invisible from any orbiter that imaged the planet in natural light.

RAVEN Satellite Location · Venus

Venus-Centered Inertial · Equatorial Frame

J2000 Venus equator. Body rotates retrograde at the IAU 2015 sidereal rate (243 Earth-day period). Toggle globe between cloud tops / Magellan radar / UV to reveal the surface lander sites.

Layers

Venus · Globe

Clock

UTC
JD (TDB)
Venus prime meridian W
Venus solar day fraction
Time accel.×100k
Venus rotates retrograde — its sidereal day is 243.018 Earth days, longer than its orbital year (224.7 d). The solar day (sunrise-to-sunrise) is 116.75 Earth days.

Camera Presets

simulated · two-body Kepler · orbiter planes representative

Catalog

Every body above with the orbital element set or surface coordinate the visualization is propagated from. Click a card to fly the camera.

Historical Orbiters 8 · all decommissioned

Surface Sites (Veneras + Vegas + PV2 Day Probe) 11

Atmospheric Probes 4 · last known descent latitude

Flyby Trajectories 15

Planned Missions 4 · 2028 – 2030s

How the Positions Are Computed

Frame & rotation

Venus-centered J2000 equatorial. µV = 324 858.59 km³/s², RV = 6 051.8 km. IAU 2015 rotation model: W₀ = 160.20°, dW/dt = −1.4813688°/day — the negative rate is Venus's signature retrograde rotation. One sidereal day takes 243.018 Earth days. The body is rotated about its spin axis (+Z of the J2000 equator frame) by W(t) each frame, and all surface assets sit at their body-fixed lat / lon and ride that rotation.

Orbiters

Each historical orbiter is propagated as a single two-body Keplerian ellipse. Semi-major axis, eccentricity and inclination are from published orbit descriptions at each spacecraft's operational epoch; the ascending node and argument of periapsis are representative, chosen so each orbit sits in roughly its published plane. Magellan's orbit was reshaped from elliptical to near-circular during aerobraking (1993); the orbit drawn here approximates its post-aerobraking mapping orbit (the flown orbit was 180 × 540 km, 94 min). Pioneer Venus 1 maintained a highly elliptical 24-hour orbit for 14 years before atmospheric entry. Venera 15 + 16 flew matched polar mapping orbits 1983 – 1985 — they are the original radar mappers of Venus, pre-dating Magellan. Akatsuki's orbit is its post-2015 second-insertion equatorial configuration; the spacecraft lost contact in 2024.

Surface and atmospheric probes

The 11 surface sites are placed in Venus-fixed coordinates (lat, lon east) from NSSDC + Soviet mission documentation, transformed each frame from body-fixed to body-centered inertial by Venus's W(t) rotation. The Pioneer Venus 2 Large Probe is placed at its entry latitude, alongside the Venera 4 / 5 / 6 descent probes. The North and Night probes are not catalogued here; the Day Probe is filed under surface sites because it survived impact — the Day Probe survived unexpectedly and transmitted 67 minutes of post-impact data. Pioneer Venus 2 Bus impacted equatorially; not separately rendered.

Flyby trajectories

Each of the 15 catalogued flybys is rendered as a single hyperbolic arc through Venus's gravity well. Only the closest-approach altitudes are sourced — from mission records. The eccentricity, inclination, ascending node and argument of periapsis used to shape each arc are representative values chosen so the geometry reads clearly, not ephemeris-derived elements; several are round decade numbers, and the eccentricities are not consistent with the true encounter v∞. Treat the arcs as ILLUSTRATIVE of the encounter geometry, not as trajectories. The arc is sampled out to an eccentricity-dependent fraction of the asymptotic true anomaly, arccos(−1/e) × 0.92 — about ±113° to ±118° over the range of e used here — enough to show inbound and outbound asymptotes diverging without rendering to the asymptotic infinity.

References

  1. Marov, M. Ya. & Grinspoon, D. H. 1998 — The Planet Venus (the canonical Venera-era synthesis)
  2. Saunders, R. S. et al. 1992 — Magellan mission summary, JGR Planets 97
  3. Svedhem, H. et al. 2007 — Venus Express overview, Planet. & Space Sci. 55
  4. Nakamura, M. et al. 2016 — Akatsuki Venus Climate Orbiter, Earth Planets Space 68
  5. Colin, L. 1980 — Pioneer Venus mission summary, JGR 85
  6. Marov, M. Ya. et al. 1973 — Venera-8 atmospheric and surface measurements, Icarus 20, 407 (DOI unresolved; cited from NSSDC)
  7. Florensky, C. P. et al. 1977 — First panoramic views of the Venera-9 / 10 landing sites, Science 196, 869 (DOI unresolved; cited from the print record)
  8. Surkov, Yu. A. et al. 1984 — Venera 13 / 14 in-situ chemistry of Venus surface, JGR 89
  9. Sagdeev, R. Z. et al. 1986 — Vega balloon mission, Science 231
  10. Archinal, B. A. et al. 2018 — IAU WGCCRE 2015 report (Venus rotation model)
  11. Garvin, J. B. et al. 2022 — DAVINCI mission concept, PSJ 3
  12. Smrekar, S. E. et al. 2022 — VERITAS (Venus Emissivity, Radio Science, InSAR, Topography & Spectroscopy) mission overview, IEEE Aerospace Conference (the previously cited PSJ DOI does not exist and has been withdrawn from this list)
  13. Ghail, R. C. et al. 2024 — EnVision mission, Space Sci. Rev. 220
  14. NSSDC Venus mission catalog — landing-site coordinates, mission timelines
  15. JPL Horizons — flyby ephemerides for Mariner / Galileo / Cassini / MESSENGER / Parker / SolO / BepiColombo

Sixth entry in the RAVEN Satellite Location series · v1 · 2026-05-13