A New Star Changes the Heavens
1604 — A Brilliant New Star Appears in the Milky Way
Evening; precise time not established
On the evening of October 9, 1604, Italian astronomer Ilario
Altobelli looked toward a striking gathering of planets in the
constellation Ophiuchus. Mars, Jupiter, and Saturn were close together in the
sky. Altobelli had been watching the region carefully. Now something was
different. There was another brilliant point of light. A new star had
appeared. Today we know that Altobelli was witnessing a supernova—the
catastrophic destruction of a star roughly 20,000 light-years from Earth. It
became known as Kepler's Supernova, or SN 1604. It remains the
most recent supernova known to have been observed occurring in our own Milky
Way galaxy. Altobelli's role deserves particular attention. The supernova
carries Johannes Kepler's name, which can easily create the impression that
Kepler discovered it. He did not. Historical evidence indicates that Altobelli
observed the new object in northern Italy on October 9. Other observers soon
reported it independently. In Prague, Johannes Brunowski noticed it on
October 10 and brought it to Kepler's attention. Cloudy weather prevented
Kepler from seeing it himself until October 17. Once he did, however,
Kepler studied the object extensively. His careful observations and subsequent
publication made his name permanently associated with the event. The new star
was impossible to ignore. It eventually became brighter than Jupiter and
remained visible to the unaided eye for many months. At its brightest, it could
even be seen during daylight. For seventeenth-century astronomy, the event
presented a profound question. Where was it? The answer mattered because
European natural philosophy was still heavily influenced by the cosmology of Aristotle.
In the traditional Aristotelian universe, the region below the Moon was a realm
of change. Things were born. Things decayed. Things moved and transformed. But
beyond the Moon lay the supposedly perfect and unchanging heavens. Stars
belonged to that eternal celestial realm. A genuinely new star would therefore
be deeply troublesome. One possibility was that the object was not actually
among the stars at all. Perhaps it was a phenomenon in Earth's atmosphere. Astronomers
could test that possibility using parallax. A nearby object viewed from
different locations should appear to shift relative to the distant stars. The
new object showed no measurable parallax with the instruments available. That
placed it far beyond the Moon. Something in the supposedly unchanging heavens
had changed. This was not the first time such evidence had appeared. In 1572,
Tycho Brahe had studied another brilliant “new star”—also a supernova—and
similarly found no measurable parallax. The great comet of 1577 had further
undermined the traditional idea that the celestial spheres were solid,
immutable structures. SN 1604 added another powerful piece of evidence. The
heavens were not changeless. Kepler followed the object as its brightness
evolved and published his observations in 1606 in a work commonly known by its
shortened title, De Stella Nova—On the New Star. The telescope
had not yet entered astronomy. Galileo's telescopic observations would begin
only a few years later. Everything astronomers learned about the new star in
1604 therefore came from careful naked-eye observation, positional measurement,
and reasoning. They could not know what the object physically was. The nature
of supernovae would remain unknown for centuries. Today astronomers identify SN
1604 as a Type Ia supernova. Such explosions involve white
dwarfs—extremely dense stellar remnants—in binary systems. A thermonuclear
runaway destroys the white dwarf, releasing an enormous amount of energy. The
original explosion is long over. But it left something behind. An expanding
shell of gas and energetic particles known as Kepler's Supernova Remnant
still occupies the region. Modern observatories examine that remnant at
wavelengths Altobelli and Kepler could never have imagined. Visible-light
telescopes study its glowing structures. Radio telescopes examine energetic
particles and magnetic fields. Infrared observatories investigate heated dust. X-ray
telescopes reveal gas heated to millions of degrees by the expanding shock
wave. Four centuries after the new star appeared, the explosion is still
teaching us about the deaths of stars. There is also a humbling perspective
hidden within the date. The supernova did not actually explode in 1604. Because
it lies roughly 20,000 light-years away, the light that reached Earth that
October had been traveling through the Milky Way for approximately 20,000
years. The explosion had occurred long before recorded human history. October
9, 1604, marks not when the star exploded, but when news of that explosion
finally reached human eyes.
Why It Matters: SN 1604 is the most recent supernova
known to have been observed occurring in the Milky Way. Its appearance provided
further evidence that the heavens were not perfect and unchanging, helping
undermine an ancient cosmological assumption just before telescopic astronomy
transformed humanity's understanding of the universe. The surviving remnant
remains an important astronomical laboratory more than four centuries later.
Also on This Day
1992 — The Peekskill Meteorite Hits a Parked Car
Fireball observed approximately 23:48 UTC
On the evening of October 9, 1992, spectators at high-school
football games across the eastern United States noticed something extraordinary
moving through the sky. A brilliant fireball streaked overhead. Unlike most
meteors of its era, however, this one had an unusually large audience equipped
with video cameras. The result was one of the best-recorded meteor events in
history up to that time. The object entered Earth's atmosphere over the eastern
United States and traveled northeastward in a long luminous trajectory. Thousands
of people saw it. At least 16 independent videos recorded portions of
its passage. Those recordings became scientifically valuable. Because the
meteor had been photographed from multiple locations, researchers could
reconstruct its atmospheric trajectory and estimate the orbit it had followed
around the Sun before encountering Earth. But the most famous part of the story
happened on the ground. In Peekskill, New York, 18-year-old Michelle
Knapp heard a loud crash outside her home. A rock from space had struck her
parked 1980 Chevrolet Malibu. The meteorite punched through the rear of
the car, leaving a large dent and a hole, before coming to rest beneath it. The
recovered stone weighed approximately 12.4 kilograms—more than 27 pounds.
It was identified as an H6 ordinary chondrite, part of one of the most
common broad classes of stony meteorites. The car quickly became almost as
famous as the meteorite. But scientifically, the videos were more important. Meteorites
are pieces of asteroids that survive atmospheric passage and reach the ground. Usually,
scientists can analyze the recovered stone but have limited information about
precisely how that particular object traveled through the solar system before
falling. Peekskill provided both. The videos documented the atmospheric
trajectory. The meteorite provided the physical sample. Researchers could
therefore connect a laboratory specimen with information about the orbit of its
parent meteoroid before it encountered Earth. The event anticipated a
connection we encountered only two days ago with 2008 TC3. In 1992,
cameras recorded a meteorite-producing object primarily as it traveled through
Earth's atmosphere. In 2008, astronomers detected 2008 TC3 before it
entered the atmosphere and predicted its impact. Together, such events show how
asteroid astronomy, meteor science, orbital mechanics, and laboratory analysis
increasingly became parts of the same field.
Why It Matters: The Peekskill meteorite became one of
the best-documented meteorite falls of its time because its brilliant
atmospheric passage was recorded on numerous independent videos and a
substantial fragment was recovered. Those observations allowed scientists to
connect a meteorite studied in the laboratory with the trajectory of the object
that delivered it to Earth.
2009 — LCROSS Strikes the Moon and Finds Water
Centaur impact: 11:31:19.51 UTC
LCROSS impact: 11:35:34 UTC
On October 9, 2009, NASA deliberately crashed a rocket into
the Moon. Four minutes later, it crashed a spacecraft nearby. This was not a
failure. It was the experiment. The Lunar Crater Observation and Sensing
Satellite—LCROSS—had been launched with the Lunar Reconnaissance Orbiter on
June 18, 2009. Its principal question was one of enormous importance for lunar
science and future exploration: Is there water ice in the permanently
shadowed craters near the Moon's poles? For most of the twentieth century,
the Moon was widely imagined as almost completely dry. But spacecraft
observations had gradually complicated that picture. Radar and neutron
measurements provided evidence suggesting that hydrogen-rich material—and
possibly water ice—might exist near the lunar poles. There was a reason to look
there. Because the Moon's rotational axis is only slightly tilted, sunlight
never reaches the floors of some deep craters near the poles. These permanently
shadowed regions can remain extraordinarily cold. For billions of years,
they may have acted as cold traps, preserving volatile substances delivered by
comets and asteroids or produced through other processes. LCROSS was designed
to look inside one. The target was Cabeus crater, near the lunar south
pole. The mission used an ingenious approach. The spent Centaur upper stage
that had helped launch LCROSS was retained as an impactor. At 11:31:19.51
UTC, the roughly two-ton Centaur slammed into the permanently shadowed
floor of Cabeus. The impact excavated hundreds of tons of lunar material and
threw part of it upward. Material that may have remained in darkness for
billions of years suddenly rose into sunlight. LCROSS followed approximately
four minutes behind. Its cameras and spectrometers watched the impact and
examined the resulting plume. Then the spacecraft flew directly through the
debris. It transmitted its measurements to Earth until, at 11:35:34 UTC,
LCROSS itself struck the Moon. The mission was over. The analysis was just
beginning. The visible plume proved less dramatic than many observers had
expected. But LCROSS's instruments had obtained the measurements that mattered.
On November 13, NASA announced the result: water had been detected. Subsequent
analysis strengthened and expanded the conclusion. The excavated material
contained water and other volatile substances. Later measurements indicated
that some lunar polar deposits contained grains of relatively pure water ice. The
Moon was not simply the bone-dry world once imagined. Its permanently shadowed
regions preserved a chemically rich record. The discovery had implications
extending beyond lunar geology. Water is useful. Future explorers could
potentially use lunar ice for drinking water. Water can be separated into
hydrogen and oxygen, potentially providing breathable oxygen and ingredients
for rocket propellant. Whether particular deposits can practically and
responsibly be used remains a question for future exploration. But the presence
of accessible lunar water fundamentally changes discussions about sustained
activity on the Moon.
Why It Matters: LCROSS provided direct evidence of
water in a permanently shadowed crater near the Moon's south pole. The
discovery transformed scientific understanding of lunar volatiles and helped
establish the polar regions as some of the most important locations for future
lunar science and exploration.
The Bigger Picture
October 9 is a day about things that were present before
we understood they were there. SN 1604 suddenly appeared in the night sky. But
the star had actually exploded thousands of years earlier. The light simply had
not reached Earth yet. The Peekskill meteoroid traveled through the solar
system before intersecting Earth's orbit. Human beings became aware of it only
when the atmosphere turned its arrival into a brilliant streak of light. Water
had probably existed in the permanently shadowed regions of the Moon for
immense spans of time before LCROSS excavated some of it into sunlight. In
every case, discovery did not create the phenomenon. Discovery changed our
awareness of it. That distinction lies at the heart of astronomy. The
universe does not reveal itself according to the timetable of human
understanding. Stars explode whether anyone is watching. Asteroids cross
planetary orbits whether anyone has discovered them. Ice accumulates in
darkness whether anyone has sent a spacecraft to look. Science gives us ways to
notice what was already there. There is another progression across the three
events. In 1604, astronomers possessed their eyes and geometry. In 1992,
video cameras captured a meteor from many different locations, allowing
computers and mathematics to reconstruct its path. In 2009, scientists did
something more active. They deliberately performed an experiment on another
world. LCROSS did not merely observe the Moon. It struck the surface in a
carefully selected location so that buried material would be exposed and
measured. Astronomy had evolved from observing what the universe presented to
us into designing experiments on worlds beyond Earth. And yet the basic
motivation remained the same. There was something we did not know. So we found
a way to look.
At a Glance
1604 — Evening; precise time not established — Ilario
Altobelli makes the earliest known reported observation of the brilliant new
star now called SN 1604 or Kepler's Supernova, the most recent supernova known
to have been observed occurring in the Milky Way.
1992 — Approximately 23:48 UTC — The Peekskill
fireball crosses the eastern United States; a 12.4-kilogram meteorite fragment
subsequently strikes a parked automobile in Peekskill, New York.
2009 — 11:31:19.51 UTC — LCROSS's Centaur upper stage
impacts Cabeus crater near the Moon's south pole, excavating material from a
permanently shadowed region.
2009 — 11:35:34 UTC — The LCROSS shepherding
spacecraft, after observing and passing through the Centaur's debris plume,
impacts the Moon; its measurements subsequently confirm the presence of lunar
water.