Mercury

MESSENGER expedition profile.

MESSENGER became the first Mercury orbiter and mapped the innermost planet in detail.

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Mission facts

Launch, target, and status

Target
Mercury
Agency
NASA / APL
Launch
August 3, 2004
Arrival / encounter
March 18, 2011
Mission type
Orbiter
Current status
Successful Mercury orbiter
Launch vehicle
Delta II Heavy
Reference target orbit
0.387 AU from Sun

Expedition path

How the spacecraft travelled

One Earth, two Venus, and three Mercury flybys before Mercury orbit insertion.

Mapped Mercury globally, confirmed polar volatiles, and measured its magnetic and exospheric environment.

Science Payload

What this mission measured

Measurements

Imaging, laser altimetry, magnetometry, X-ray/gamma-ray/neutron spectrometry, atmosphere and plasma measurements.

Target environment

The target reference is 0.387 AU in the compact simulator; solar-probe entries use close-solar perihelion distance while planet entries use the target world's solar orbit.

Review note

The canvas shows a clean teaching transfer and mission class. Exact flight dynamics require full ephemerides, maneuvers, launch energy, spacecraft mass properties, and operations timelines.

Expedition review

Why MESSENGER matters

Mapped Mercury globally, confirmed polar volatiles, and measured its magnetic and exospheric environment.

Mathematical model

Mission trajectory and spacecraft model

Mission visuals combine catalog dates, distance vectors, speed estimates, and schematic spacecraft geometry. They are not CAD-certified vehicle meshes unless a source model is explicitly loaded.

Vector propagation

\[\mathbf{r}(t)=\mathbf{r}_0+\mathbf{v}(t-t_0)\]

For live-distance spacecraft pages, current position is propagated from epoch vector and velocity when high-precision ephemerides are not bundled.

Transfer curve

\[\mathbf{r}_{\mathrm{curve}}(u)=\operatorname{Bezier}\!\left(\mathbf{r}_{\mathrm{launch}},\mathbf{r}_{\mathrm{mid}},\mathbf{r}_{\mathrm{target}}\right)\]

Mission path arcs are schematic transfer curves anchored at meaningful endpoints, not claims of exact reconstructed trajectories.

Dimensional hierarchy

\[T_{\mathrm{world}}=T_{\mathrm{parent}}RS\]

Spacecraft parts are placed with transformation matrices. This proves the generated geometry is internally consistent even when simplified.

Verification standard: the rendered object must be reproducible from stated equations, catalog parameters, or explicit geometric transforms. Visual reference images may inform presentation only; they are not the source of orbital positions, field vectors, accretion-disk gradients, timing, or engineering layout.

Limitations: browser scenes may use bounded scale, compressed distances, simplified two-body dynamics, schematic transfer curves, or educational approximations where full numerical ephemerides, CFD, finite-element models, or general-relativistic ray tracing are outside the page scope. Those simplifications are part of the model contract, not hidden image-based construction.

Open the full site-wide mathematical verification policy