Lyra
2922 OBJECTSLyra is small, and it holds Vega — the fifth-brightest star in the sky, and for a long time the zero point of the magnitude scale. It also holds the Ring Nebula, the textbook planetary nebula: the shed outer layers of a star like the Sun, lit from inside by the exposed core. Vega, Deneb and Altair make the Summer Triangle, an asterism spanning three constellations rather than a constellation itself.
Lyra holds 2922 catalogued objects: 1681 stars, 1060 exoplanets, 164 galaxies, 10 neutron stars, 3 star clusters, 2 unclassified, 2 nebulae.
STARS · 1681EXOPLANETS · 1060GALAXIES · 164NEUTRON STARS · 10STAR CLUSTERS · 3UNCLASSIFIED · 2NEBULAE · 2
[
THE FAMOUS ONES
] 2 ENTRIESNAME
CLASS
MASS
DISTANCE
MAG
CONSTELLATION
Vega★
A0V white main-sequence star
—
25.04 ly
0.03 V
Lyra
Ring Nebula★
Planetary nebula
—
2570 ly
8.80 V
Lyra
[
BRIGHTEST OBJECTS
] 12 SHOWNNAME
CLASS
MASS
DISTANCE
MAG
CONSTELLATION
Vega★
A0V white main-sequence star
—
25.04 ly
0.03 V
Lyra
Sulafat
B9.5II-III blue-white bright giant
—
620.1 ly
3.25 V
Lyra
Sheliak
B8.5Ib-II blue-white supergiant
—
962.1 ly
3.52 V
Lyra
13 Lyr
M4.5III red giant
—
298.1 ly
4.08 V
Lyra
12 δ² Lyr
M4II red bright giant
—
736.2 ly
4.22 V
Lyra
1 κ Lyr
K2-IIIabCN0.5 orange giant
—
251.7 ly
4.33 V
Lyra
6 ζ¹ Lyr
kA5hF0VmF3 yellow-white main-sequence star
—
156.1 ly
4.34 V
Lyra
21 θ Lyr
K0II orange bright giant
—
832.0 ly
4.35 V
Lyra
Aladfar
B6 blue-white star
—
1388 ly
4.43 V
Lyra
5 ε² Lyr
A6Vn+A7Vn white main-sequence star
~1.84 M☉
155.5 ly
4.59 V
Lyra
4 ε¹ Lyr
A3V+F0V white main-sequence star
—
162.3 ly
4.67 V
Lyra
HD 173780
K2III orange giant
~3.30 M☉
254.8 ly
4.83 V
Lyra
[
COMMON QUESTIONS
] 8 ANSWERED- Where in the sky is Lyra?
- Its boundary is centred near right ascension 19h 00m, declination +36.0°. It stands at its highest around midnight in earlyJuly, which puts it in the evening sky for the two months after that and behind the Sun half a year later.
- Can I see it from where I live?
- Every part of Lyra clears the horizon from latitudes between 40° S and the north pole. Outside that band some or all of the region never rises at all, whatever the time of year — a constellation is fixed on the sky, and it is your latitude that decides how much of the sky you get.
- What is the brightest thing in it?
- The brightest catalogued object in Lyra is Vega, at apparent magnitude 0.03 (V). That is apparent brightness — how it looks from Earth — so it mixes how much light a thing gives off with how far away it is, and the brightest object in a region is rarely the most interesting one.
- How are the stars in it named?
- The brightest carry Greek letters, assigned roughly in order of brightness — by Johann Bayer in 1603, and for the deep southern constellations by Nicolas-Louis de Lacaille in the 1750s — followed by the Latin genitive of the constellation's name. Fainter naked-eye stars north of about −30° take a number from John Flamsteed's catalogue, which never covered the far south, and fainter still a designation from whichever survey recorded them.
- What exactly are the boundaries?
- Lines of constant right ascension and declination, drawn by Eugène Delporte for the IAU in 1930 and referred to the sky as it stood in 1875. Precession has tilted the sky against them since, which is why the boundaries on a modern chart are very slightly askew.
- Are the stars in Lyra actually near each other?
- Almost never. The stars in a constellation lie at wildly different distances and are not related to one another in any way — the pattern is a line of sight from one particular planet. Two stars that look adjacent can be a hundred times further apart than either is from the Sun.
- What is the difference between a constellation and an asterism?
- A constellation is one of the 88 regions the IAU recognises, with a fixed boundary and an official name. An asterism is any memorable pattern that is not one — the Plough inside Ursa Major, the Summer Triangle drawn across three constellations, the Great Square shared between two.
- Why are the names in Latin?
- Because the list was assembled in Latin. Fifty of the 88 descend from Ptolemy's second-century catalogue of forty-eight — his ship Argo was later cut into three — and the rest were coined between the sixteenth and eighteenth centuries to fill the southern sky and the gaps. The genitive form is what star names use: Alpha Orionis means the alpha star of Orion.