Play the Star Finder game:
Stick your thumbs and first
two fingers into the four pockets on the bottom of the Star
Finder.
- Ask another person to choose one of the top four
squares. Then, depending on the number on the square she
chose, open and close the Star Finder that many times (open
up and down, close, open side to side, close, etc.). For
example, if she chose number 6, open and close the Star
Finder 6 times.
- Then, ask the person to look inside the Star Finder and
pick one of the four visible constellations. This time, open
and close the Star Finder once for each letter to spell out
his choice. For example, if he chose "Lyra," you would open
and close the Star Finder 4 times, once for each letter: L -
Y - R - A.
- Ask the player again to pick one of the four
constellations visible. Open the panel to see the name of a
constellation (highlighted in red) she will try to find in
the sky for this month.
For some of the months, not every part of the Star Finder
may show a highlighted constellation for you to find. In
this case, just try to find the constellation that is
nearest to the part of the sky you picked. Or, just find any
constellation!
What ARE
Constellations Anyway?
Dr. Marc explains all about constellations in his phone
message for September 2002.
A constellation is group of stars like a dot-to-dot puzzle.
If you join the dots--stars, that is--and use lots of
imagination, the picture would look like an object, animal, or
person. For example, Orion is a group of stars that the Greeks
thought looked like a giant hunter with a sword attached to
his belt.
Other than making a pattern in Earth's sky, these stars may
not be related at all. For example, Alnitak, the star at the
left side of Orion's belt, is 817 light years away. (A
light year is the distance light travels in one
Earth year, almost 6 trillion miles!) Alnilam, the star in the
middle of the belt, is 1340 light years away. And Mintaka at
the right side of the belt is 916 light years away. Yet they
all appear from Earth to have the same brightness.
Even the closest star is almost
unimaginably far away. Because they are so far away, the
shapes and positions of the constellations in Earth's sky
change very, very slowly. During one human lifetime, they
change hardly at all. So, since humans first noticed the night
sky they have navigated by the stars. Sailors have steered
their ships by the stars. Even the Apollo astronauts going to
the Moon had to know how to navigate by the stars in case
their navigation instruments failed.
Finding the Constellations
We see different views of the Universe from where we live
as Earth makes its yearly trip around the solar system. That
is why we have a different Star Finder for each month, as
different constellations come into view. Also, as Earth
rotates on its axis toward the east throughout the hours of
the night, the whole sky seems to shift toward the west.
The Star Finder charts are for
a latitude of 34º N, which is about as far north of the
equator as Los Angeles, California. (Charts are from The
Griffith Observer magazine.) The farther north you are,
the more the constellations will be shifted south from the
Star Finder charts. The Star Finder charts show the sky at
about 10 PM for the first of the month, 9 PM for the middle of
the month, and 8 PM for the last of the month. These are local
standard times. For months with Daylight Savings Time, star
chart times are an hour later.
The star charts are maps of the sky overhead. So, to get
the directions lined up, hold the map over your head and look
up at it, and turn it so the northern horizon side is facing
north.
If you live where big city lights drown out the beauty of
the stars, you may see only a few of the brightest stars and
planets. How sad! But see if you can find at least one or two
constellations on a clear, Moonless night.
Ever
wondered about the difference between astrology and
astronomy?
What Else are
Constellations Good For?
Star patterns are also very helpful for navigating a
spacecraft. Most spacecraft have steered by the stars--or at
least checked the stars once in a while to make sure the
spacecraft was still on course and pointed in the right
direction.
Space Technology 6 is a
mission to test a new, very small and energy-efficient kind of
reference system. This new system is called an Inertial
(in-ER-shul) Stellar Compass, or ISC. The ISC is made up of a
star tracker and a gyroscope. Working together, they keep the
spacecraft on course.
The star tracker, like a camera, takes a picture of the
star patterns in its view and compares the picture with its
built-in star maps. This is how it can tell the spacecraft
exactly which way it is pointed. In between pictures from the
star tracker, the gyroscope tells the spacecraft how it is
pointed. Together the star tracker and gyroscope keep the
spacecraft stable and oriented in the right direction in space
(for example, not flying "upside-down" or sideways). But the
gyroscope can hold stable for only a short time. To keep the
gyroscope perfectly accurate, information from the star
tracker is sent to the gyroscope every few seconds.
The thing that is new and different with the Space
Technology 6 ISC is that the two devices are combined into one
tiny, light-weight system that needs little power to run.
The ISC will be tested on a Space Shuttle mission. When its
new technology is proven, the ISC can be used on future
spacecraft sent on missions of discovery.
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