Difference between revisions of "Orbit"

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(The original sauce on orbits. Accept no substitutes.)
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* {{Wikipedia|Low Earth orbit}}
 
* {{Wikipedia|Low Earth orbit}}
 
* Kraft, D and Townsend, G. (1963). ''NASA Orbital Flight Handbook, Part 1 - Basic Techniques and Data''. Space Flight Handbooks, Vol. 1. http://ntrs.nasa.gov/search.jsp?R=19630011221
 
* Kraft, D and Townsend, G. (1963). ''NASA Orbital Flight Handbook, Part 1 - Basic Techniques and Data''. Space Flight Handbooks, Vol. 1. http://ntrs.nasa.gov/search.jsp?R=19630011221
  * For an enormous table of Keplerian element equations, see pdf page 126/document page III-16.
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** For an enormous table of Keplerian element equations, see pdf page 126/document page III-16.

Revision as of 04:47, 25 June 2015

A spacecraft in orbit around Moho.

An orbit is an elliptical path around a celestial body. The point on an orbit which is closest to the orbited body is called the periapsis and the furthest point is the apoapsis. These points are indicated on the map view as "Pe" and "Ap", respectively.

An orbit is considered “stable” if all points in the orbit are above the terrain and atmosphere of the orbited body, which applies if the periapsis is above the terrain and atmosphere as this is the lowest point of the orbit. A spacecraft in such an orbit will not lose velocity due to atmospheric drag and won't collide with terrain.

To achieve an orbit, a spacecraft must reach a sufficient altitude and orbital velocity. During ascent, a gravity turn helps to achieve both of these goals in a fuel-efficient way. With basic maneuvers it is possible to change the orbital shape.

Properties

Each orbit has some basic properties which characterise them. This list contains multiple values which can be calculated using other properties of the list.

Apoapsis and periapsis

→ See also: Apsis on Wikipedia

The apsides determines the nearest and farthest point of the orbit. The periapsis is the lowest point of the orbit and is helpful to determine if the orbit is high enough to avoid collisions with the surface or interaction with an atmosphere. The apoapsis is on the other side of the orbit and the furthest point away from the orbited celestial body. The periapsis is not shown if it lies under the surface. There might be confusion about from which point the apsides are measured. In game they are shown from the surface, while for orbital mechanics usually the values from the center of the body are relevant. A craft after the most recent apoapsis and before the periapsis is falling towards the surface while a craft after the most recent periapsis and before the apoapsis is rising.

For parabolic and hyperbolic orbits, there is never an apoapsis shown as it lies outside the sphere of influence. Apoapsides in other spheres of influence are possible. The periapsis of the current trajectory is only shown if it is in the future, and as soon as the craft passes through the periapsis and is rising it vanishes. Like apoapsides, periapsides in other spheres of influence are possible.

In perfect circular orbits it is not possible to determine the apsides. The altitude, which is always the same for the orbit, is used for the apsides if required. They are identical to the semi-major axis when measured from the center. Elliptical orbits have usually both apsides and only no periapsis if it is below the surface. If an orbit is almost circular it is usually treated as perfectly circular where both apsides and the semi-major axis are identical if measured from the body's center.

Sometimes there are special words used for the different bodies. Apokee or apokerb for the apoapsis of an orbit around Kerbin and similar perikee or perikerb for the periapsis around Kerbin.

In Kerbal Space Program the apsides are usually abbreviated to “Ap” and “Pe” which corresponds with the two markers on the orbit. In real world science an uppercase Q is used for apoapsides and a lowercase q for periapsides because variables usually only contain one letter. Using a for the apoapsis is not recommended as it can generate confusion with the semi-major axis which usually uses that variable name.

Eccentricity

Eccentric orbits (white) and a non-eccentric orbit (blue)
→ See also: Orbital eccentricity on Wikipedia

The eccentricity gives how elongated the orbit is. There are different eccentricities, although usually the orbital eccentricity is used for orbital mechanics. It can categorised in four categories:

  • In a circular orbit the eccentricity is exactly 0
  • In an elliptical orbit the eccentricity is between 0 and 1
  • In a parabolic orbit the eccentricity is exactly 1
  • In a hyperbolic orbit the eccentricity is above 1

If the eccentricity is above or equal to 1 the orbit is escaping the body. Circular and parabolic orbits are not common if not impossible, as the maneuvers have to be extremely precise. But it is possible to get the eccentricity very close to the value which can then be considered as circular or parabolic. Some planets and moons in Kerbal Space Program have perfectly circular orbit. This is possible because they move on “rails” so no physical interaction can change the properties.

An orbit with an eccentricity below 1 can be already already escaping the sphere of influence. Because the eccentricity is based on the ratio of the apsides, a circular orbit close to the sphere of influence has an eccentricity of 0, but as soon as the apoapsis is marginally increased the orbit leaves the sphere of influence but is still close to zero.

The eccentricity is usually abbreviated by a lowercase e.

Inclination

The blue orbit has an inclination of 20° while the grey has none.
→ Main article: Orbital inclination on Wikipedia

The tilt of the orbit is given by the inclination. Usually the value is given in degrees where the value is given between –90° and 270°. An inclination of 0° or 180° is equatorial, so the craft is always above the equator. An inclination of 90° is characteristic for polar orbits. When the inclination is below 90° the orbit is prograde, meaning the rotation around the body is the same as the rotation of the body. An inclination above 90° and below 270° determines a retrograde orbit which orbits the other way around. As all bodies in the Kerbol System are rotate counter-clockwise, seen from the North pole, all prograde orbits are counter-clockwise and all retrograde orbits are clockwise.

Depending from the starting location the directly available lowest inclination is limited to the latitude. A polar orbit is always possible, while for equatorial orbits the craft has to start from the equator. As the Kerbal Space Center is near the equator it is possible to launch into almost all inclinations without additional orbital maneuvers.

While a polar orbit, and depending on the altitude and coverage also near polar inclinations, covers a complete body, rendezvous with an object in an equatorial orbit is usually easier. The inclination is exactly the range of latitudes the craft will pass over in both (North and South) direction.

There is currently no direct way to determine the inclination without using mods. For some planets it is possible to determine the inclination if the planet is orbited by a moon with no inclination. The moon can then be targeted and the angle given at the ascending and descending node are the inclination. This is also possible for an orbit around Kerbol. The “moon” with no inclination is then Kerbin.

The inclination is given in most cases relative to the parent's equator, but especially the inclination of the planets can be given relative to the ecliptic. The ecliptic is the orbital plane of Kerbin because the inclination relative to Kerbol's equator is 0°, meaning that there is no difference between the inclination relative to Kerbol's equator and the ecliptic.

Semi-major axis

→ See also: Semi-major axis on Wikipedia

The semi-major axis is the average of the apsides and usually measured from the body's center. The semi-major axis cannot be directly measured in game without mods, but it is easy to calculate by dividing the sums of the apsides by two. The semi-major axis defines the orbital period, so no matter how elongated the orbit is, as long as the semi-major axis stays the same, the orbital period doesn't change. This makes synchronous orbits easier to achieve, as the circularity is only important for stationary orbits.

If the apsides are given from the body's surface the same formula can be used but the resulting value has to be added by the radius of the body. The semi-major axis may be used as the average distance, but it depends on the definition of which average distance is meant. In formula the semi-major axis is usually abbreviated by a lowercase a which shouldn't be confused with the apoapsis.

Types of orbits

Low Kerbin orbit (LKO)

In analogy to the real world low Earth orbit (LEO) an LKO describes a stable low orbit around Kerbin that can be achieved with relatively low cost of Delta-V. The lowest point of an LKO must not be lower than 70 km in order to stay clear of atmospheric drag. The altitude of an LKO typically does not exceed about 200 km.

Tons of payload delivered to LKO is often used to compare performance and size of launch vehicles.

In optimal circumstances LKO can be achieved with 4450–4700 m/s Delta-V.[1]

Due to the Oberth effect a low orbit is a suitable starting point for transferring to other celestial bodies. [citation needed]

Stationary orbit and synchronous orbit

→ Main article: Stationary orbit

An orbit with the same orbital period as the rotational period of the orbited body is called a synchronous orbit. If the inclination is also 0° and there is no eccentricity it is called a stationary orbit. A satellite in this orbit doesn't appear to move when viewed from the body's surface.

Kerbisynchronous equatorial orbit (KEO)

→ Main article: KEO

The stationary orbit around Kerbin, where the orbiting craft appears to stand still at a point above Kerbin's equator. The name was chosen to abbreviate it similar to GEO the abbreviation for geostationary orbit, which is the real world equivalent on the Earth.

Other

Various other orbits can be defined. The list of orbits on Wikipedia contain many common ones in the real world. They can be recreated by modifying the core features of the orbit to match the smaller universe. Some kind of orbits, like a sun-synchronous orbit around Earth, are not possible, because they require Kerbin's gravity to be not perfect. Also the Lagrange points do not exist so orbits near/around a Lagrange point are impossible. But it is possible to imitate L4 and L5, although every orbit with the same semi-major axis has the same orbital period, so L4 and L5 aren't special positions then.

Suborbital

An orbit is suborbital, if the periapsis is below the surface so it will most likely crash into the surface or land on it without finishing a complete orbit. Lifting surfaces like wings might delay this.

Orbits in the save file

The save files (and scenarios) in KSP are plain text and human readable with the information on the orbit of every craft currently in the game. Most text editors allow to search for name = [Name of craft] via ^ Ctrl+F (⌘Cmnd+F for Mac). This locates the craft quickly in the file. The orbit section of the persistent.sfs should looks something like this:

 ORBIT
 {
   SMA = 76875.4600066045
   ECC = 0.136808532664149
   INC = 32.6082297441138
   LPE = 91.4665699628126
   LAN = 305.802690796769
   MNA = 0.556028537338098
   EPH = 19189976.1161395
   REF = 3
   OBJ = 0
 }

Each of these terms has a meaning, and changing them (and then re-loading the save game) will change the orbit of the vessel in question. (definitions shamelessly lifted from Wikipedia)

  • SMA : Semimajor axis – the average of the periapsis and apoapsis distances from the orbiting body center. KSP uses a negative semimajor axis for hyperbolic orbits.
  • ECC : Eccentricity – shape of the ellipse, describing its elongation. Circular orbits have ECC = 0, hyperbolic orbits have ECC > 1, and elliptical orbits are in between.
  • INC : Inclination – vertical tilt of the ellipse with respect to the reference plane, measured at the ascending node.
  • LPE : Longitude of periapsis – horizontally orients the periapsis of the ellipse.
  • LAN : Longitude of the ascending node – horizontally orients the ascending node of the ellipse.
  • MNA : Mean anomaly at epoch – defines the position of the orbiting body along the ellipse at a specific time. Sign follows the right hand rule (rotating counter-clockwise around celestial north). For hyperbolic orbits, positive values are escaping, negative values approaching the reference body.
  • EPH : epoch – the reference time for the orbit.
  • REF : reference body – the ID of the body around which the orbit occurs. 0 is the sun, 1 is Kerbin, 2 is Mun, 3 is Minmus.
  • OBJ : Some sort of object reference (I wouldn't change this number). It appears that 0 corresponds to probes, and 1 corresponds to debris.

Angles are in radians, distances in meters.

By altering these values in the save file, one can easily "slew" vehicles into any position desired. This is very useful for setting up scenarios.

Reference code

This is a table contain the reference codes for all bodies of the Kerbol System:

Planets/Stars Moons
Code Name Code Name
0 Kerbol
4 Moho
5 Eve 13 Gilly
1 Kerbin 2 Mun
3 Minmus
6 Duna 7 Ike
15 Dres
8 Jool 9 Laythe
10 Vall
12 Tylo
11 Bop
14 Pol
16 Eeloo

Notes

  1. Kerbin delta-V chart

External links