V372 And

STARA5 white star

ILLUSTRATION FROM MEASURED TEMPERATURE · 7950 K · 91.4 L☉ · VARIABLE, MAG 8.96–9.39 · PERIOD 2.941 DAYS · PULSE COMPRESSED

[

OVERVIEW

] STAR

V372 And is an A5 white star in the constellation Andromeda, 2118 from Earth, shining at apparent magnitude 9.01 (). It is catalogued as HIP 9740.

WHAT IT IS
White star
HOW FAR
2118

The light arriving now left it that long ago.

HOW BRIGHT (V)

Binoculars reach it; the naked eye does not.

WHERE TO LOOK
Andromeda

The patch of sky it sits in, as seen from Earth.

[

THE MODEL

] CATALOGUED RADIUS
OUTSIDE THE SURVEYED VOLUME · DRAG TO ORBIT

CALCULATED · NOT AN OBSERVATION · CATALOGUED RADIUS · MEASURED TEMPERATURE · 7950 K · 91.4 L☉ · VARIABLE, MAG 8.96–9.39 · PERIOD 2.941 DAYS

Drawn from the catalogued radius and from the same properties the picture at the top of this page uses, at the distance a flight to it would stop. Drag it, or use the arrow keys, to look from another direction. The stars behind are the 498,631 this catalogue holds real distances for, drawn from where the camera actually is — but every one of them is within 170 parsecs of the Sun and this object is much further out, so what is in the frame is that whole neighbourhood seen from outside it, piled into a knot around the Sun. The rest of the sky from here is not something this catalogue knows.

[

OBSERVING

] FROM WHERE YOU ARE

What it takes to see V372 And for yourself. Everything in this part of the page is worked out for a real horizon, a real night and the equipment you say you have.

TONIGHT

Say where you are, and this line says when V372 And is worth going out for.

[

THROUGH AN EYEPIECE

] 150 MM TELESCOPE · 25 MM EYEPIECE
EYE50MM150MM300MM9.01
TELESCOPE REACHES 13.0

Too faint for your eyes alone. Binoculars reach it. It will be a point of light in anything: a star is far enough away that no aperture on Earth gives it a width, and all the equipment changes is how easily you find it.

48×
1.08
1.25
13.0
APPARENT MAGNITUDE ()
9.01 · within reach
FIND IT ON THE SKY MAP ↗
[

APPARENT PLACE

] EQUINOX J2026.7

Where a telescope has to be pointed today, which is not quite where the catalogue records the object: the coordinate grid itself has turned since the year 2000 the catalogue is referred to.

RIGHT ASCENSION
DECLINATION
GRID TURNED SINCE
19.4
PROPER MOTION SINCE
0.45

Computed for 2026-08-27 00:00 UT. Two things separate it from the catalogued position above: V372 And has moved under its own proper motion, and the coordinate grid has turned under it — about fifty arcseconds a year of precession since 2000, and the small nodding of the Earth’s axis on top of that. Aberration and refraction are not included, and neither is parallax; each is under an arcminute, which is also about as well as the catalogued position is known. The same figure for any date.

[

VARIABILITY

] ALGOL-TYPE ECLIPSING BINARY
RANGE, AS SAMPLED
8.96 – 9.39
PERIOD
2.940986 days
PHASE
0.828 ± 0.0006
NEXT MINIMUM
2026-08-27 12:09 UT---------- --:-- your time
THEN
2026-08-30 10:44 UT---------- --:-- your time
THEN
2026-09-02 09:18 UT---------- --:-- your time

Computed for 2026-08-27 00:00 UT. A phase of zero is minimum light, and V372 And was last there 2.43 days before that. The ± is what the published elements can still promise: 3,330 cycles have gone by since the epoch they were measured at, and the last digit of the period compounds over every one of them — 2.4 min by now. It is the precision of the published figures rather than an error bar the catalogue supplied, so where that catalogue has marked a period doubtful the real spread is wider — and it does not contain the star. A binary with a third body in the system, or a pulsator whose period is slowly changing, walks away from a straight-line ephemeris by an amount only observation settles. Times are corrected for where the Earth is in its orbit, which is worth up to 8.3 minutes — the light of a star reaches us that much earlier in one season than the other, and an epoch measured a century ago has the same correction in it.

The range is the spread the Hipparcos satellite measured, converted to the visual scale. It is approximate: the satellite sampled the star on a schedule of its own, and where a star spends little of its cycle at an extreme — the floor of an eclipse, most obviously — the sampling can miss it altogether. The classification, the period and the epoch are the General Catalogue of Variable Stars’s. The phase at any instant.

[

SPECTRUM

] A SPECTRUM OF ITS TYPE
TYPE SPECTRUM · A5 V

No survey in this catalogue has measured V372 And’s own spectrum: the one that reaches deepest saturates on the brightest stars, and no spectrograph has been pointed at the whole sky. What is drawn below is the average of several real stars of the same class, A5 V. It shows what a star like this one shows, and every line named on it is a line of the type rather than a measurement of V372 And.

A star gives out light at every wavelength at once. The dark gaps are atoms in the thin gas above its surface, each one removing the single colour it is able to absorb — which is how a list of ingredients is read off something nobody will ever touch.

MADE OF
400500600700800900WAVELENGTH · NANOMETRESCa II triplet

Point at a labelled line — or an element above — to see which atom makes it and where it falls.

Pickles (1998) stellar spectral flux library. A5 V — the average of several real stars of this type, not an observation of any one star. Sampled every 5 angstroms; 1,895 points rebinned onto 1,024 log-spaced display points and normalised to the median flux. Brightness is scaled to this spectrum’s own middle value, so the shape is the measurement and the height is not. The 5 lines named above are the ones that stand clear of the scatter and of the features around them; a spectrum at this sampling holds many more that it cannot separate. The samples themselves, as JSON, CSV or VOTable.

[

LIFE OF THIS STAR

] STAGE 2 OF 5

V372 And is a white star on the main sequence, fusing hydrogen in its core; in about five hundred million years it will swell into a red giant, and end as a white dwarf.

  1. COLLAPSING CLOUD
    took about six million years
  2. MAIN SEQUENCE
    about five hundred million years left
    NOW
  3. RED GIANT
    about a hundred million years of it, when it comes
  4. PLANETARY NEBULA
    gone in about twenty thousand years
  5. WHITE DWARF
    cooling from then on

NOW Hydrogen fuses to helium in the core, and the outward push of that exactly balances the star's own weight. This is the long, steady stretch — nine-tenths of a star's life — and it ends when the core's hydrogen is gone.

NEXT With the core out of hydrogen, the star swells enormously and its surface cools to red. It burns helium in the core and hydrogen in a shell around it, and it loses mass from its surface the whole time.

EVERY STAGE ON THIS TRACK
COLLAPSING CLOUDtook about six million years
A cold clump of gas and dust falls in on itself and heats as it falls. It stops being a cloud and starts being a star at the moment its core is hot enough to fuse hydrogen.
MAIN SEQUENCEabout five hundred million years leftNOW
Hydrogen fuses to helium in the core, and the outward push of that exactly balances the star's own weight. This is the long, steady stretch — nine-tenths of a star's life — and it ends when the core's hydrogen is gone.
RED GIANTabout a hundred million years of it, when it comes
With the core out of hydrogen, the star swells enormously and its surface cools to red. It burns helium in the core and hydrogen in a shell around it, and it loses mass from its surface the whole time.
PLANETARY NEBULAgone in about twenty thousand years
The outer layers drift away and the exposed core lights them from inside. It is one of the shortest things a star does and one of the most visible — most of the glowing shells in this catalogue are this stage of some star.
WHITE DWARFcooling from then on
The bare core, about the size of the Earth, held up by nothing but the resistance of its own crushed electrons. No fusion, no fuel, nothing left to do but cool.
  • HOW FIRM No luminosity class is recorded for this star — the catalogue gives its temperature class and stops there — so which stage it is in was read from how far its brightness sits above where a star of its temperature would sit on the main sequence. That is a best estimate rather than a classification.

Which stage V372 And is in was read from its catalogued class, its temperature and its total output at every wavelength — not from its brightness in visible light alone, which understates a cool star by a factor of several. The mass it started with is about two times the Sun's mass, from a published model fit, and that mass is what chooses the track. Every span of time here comes from the standard relation between a star’s mass and how long its fuel lasts, and is rounded to a single figure: they are orders of magnitude and none of them is a date.

[

CATALOG DATA

] 21 FIELDS

The raw catalogue values, as the source published them, with the error bars where one was published — sorted by what each set of figures is about rather than by the order they happened to be stored in.

WHAT KIND OF THING IT IS

What the object is in itself, rather than how it happens to look from here.

Spectral type
Surface temperature
7954
Luminosity
91.3692
Luminosity (bolometric)
49.2219
Radius
3.661
Mass
2.351
Surface gravity (log g)
Age
6.62×10⁸
Variability
Algol-type eclipsing binary
Variability type ()
EA
Variability period
2.940986
Reference epoch ()

HOW BRIGHT IT IS

What the light adds up to, measured through one filter at a time. A magnitude is a brightness on a backwards scale — the smaller the number, the brighter the object.

Colour index (B−V)
Variable magnitude, brightest
Variable magnitude, faintest

WHERE IT IS AND HOW IT MOVES

Position, motion across the sky and the size it covers on it. These are measurements of the object as seen from here, so every one of them depends on where here is.

Proper motion (RA)
14.37
Proper motion (Dec)
−8.56
Radial velocity
0

OTHER NAMES AND NUMBERS

The identifiers other catalogues file this object under, for anyone joining this data to theirs.

Variable-star designation
V372 And

WHERE THESE FIGURES CAME FROM

Which catalogue, paper or model each of the fields above was read from, where the source named one.

Spectral type from
SIMBAD (quality D)
Stellar parameters from
Gaia DR3 model fit (GSP-Phot, FLAME; RUWE ≤ 1.4) — low confidence: above 7,500 GSP-Phot's temperature and extinction are degenerate
[

ALSO KNOWN AS

] 2 DESIGNATIONS
  • HIP HIP 9740
  • Variable star V372 And
[

LOOK IT UP ELSEWHERE

] 3 SERVICES

Each link carries the identifier printed beside it. Nothing on this page is a measurement of our own, so a number that disagrees with one of these is worth reporting — and a service that has never catalogued this object under this name will say so plainly.

[

CITE THIS PAGE

] DR1

This page is live and its numbers move when an upstream refreshes, so the citation names the release the rows belong to rather than the day you read them. The release itself is frozen, republished as a bundle, and is what a data-availability statement should point at.

PLAIN TEXT
SpaceCatalog. V372 And [catalogue entry]. Data release DR1 (2026-08-21). https://spacecatalog.org/object/hip-9740
BIBTEX
@misc{spacecatalog_hip-9740,
  author       = {{SpaceCatalog}},
  title        = {{V372 And}},
  howpublished = {SpaceCatalog, data release DR1 (2026-08-21)},
  year         = {2026},
  url          = {https://spacecatalog.org/object/hip-9740},
  note         = {Catalogue entry, data release DR1 (2026-08-21). Values from HYG Database v4.1.}
}

The values above were taken from HYG Database v4.1 — CC-BY-SA-4.0. Citing this page does not replace citing that catalogue, and its licence is share-alike: the terms reach whatever you build from these rows.

[

RELATED OBJECTS

] 8 LINKED