The Rocket That Changed the Future
1942 — The A-4 Rocket Makes Its First Successful Flight
Launch time not established
On October 3, 1942, a rocket rose from the German Army
research center at Peenemünde on the Baltic coast. Known during
development as the A-4, it would later become infamous under another
name: V-2. The test vehicle climbed to an altitude of roughly 85–90
kilometers and traveled approximately 190 kilometers before falling back to
Earth. It was the first successful flight of a machine unlike anything that had
preceded it. The A-4 was a large, long-range, liquid-fueled ballistic rocket.
Its engine burned alcohol and liquid oxygen and produced approximately 25
metric tons of thrust. An advanced guidance system controlled the vehicle
during powered flight. Previous experimental rockets had demonstrated many of
the principles involved. The American physicist Robert Goddard had
successfully flown the world's first liquid-fueled rocket in 1926 and
subsequently developed increasingly sophisticated rockets incorporating
gyroscopic stabilization, pumps, and other technologies. German experimenters
had also pursued liquid-fueled rocketry during the 1920s and 1930s. But the A-4
represented a dramatic increase in scale. The October 3 flight demonstrated
that a large liquid-fueled rocket could climb to extreme altitude, follow a
guided ballistic trajectory, and travel hundreds of kilometers. In purely
technological terms, it was a milestone on the road toward spaceflight. But it
was not built to explore space. It was built to carry an explosive warhead. Germany
was at war, and the A-4 became the V-2, short for Vergeltungswaffe 2—“Vengeance
Weapon 2.” Beginning in 1944, V-2 missiles were launched against London,
Antwerp, and other targets. Unlike aircraft or earlier weapons, the V-2
descended toward its target at supersonic speed. No warning system could
provide meaningful time to intercept it. Thousands of civilians and military
personnel were killed or injured by V-2 attacks. Yet even that terrible toll
does not encompass the weapon's human cost. Mass production was centered at the
underground Mittelwerk factory, where prisoners from the Mittelbau-Dora
concentration-camp system were subjected to forced labor under appalling
conditions. Thousands died from starvation, disease, exhaustion, beatings,
executions, and other abuse. More people died producing the V-2 than were
killed by its operational use as a weapon. That history is inseparable from the
rocket. After Germany's defeat in 1945, both the United States and Soviet Union
sought German rocket hardware, documents, and specialists. The United States
brought Wernher von Braun and more than one hundred other German rocket
specialists to America through the program eventually known as Operation
Paperclip. Captured V-2 rockets were transported to the United States and
launched from White Sands, New Mexico, carrying scientific instruments into the
upper atmosphere. The Soviet Union similarly obtained German hardware,
facilities, documentation, and specialists. Soviet engineers studied and
reproduced the technology before developing increasingly capable rockets of
their own. The descendants of those programs eventually moved beyond weapons. In
the United States, von Braun's team helped develop the Redstone, Jupiter, and
Saturn rockets. The Saturn V carried astronauts to the Moon. In the
Soviet Union, engineers under Sergei Korolev developed a different
technological lineage culminating in the R-7, the rocket family that launched
Sputnik and Yuri Gagarin and whose descendants continue to fly. The October 3,
1942, flight therefore occupies an uncomfortable but unavoidable place in space
history. The rocket demonstrated technologies that would eventually help
humanity reach beyond Earth. But it was created for war, under a dictatorship
responsible for enormous crimes, and its later production depended upon
murderous exploitation. Both truths belong in the story.
Why It Matters: The successful A-4 flight
demonstrated technologies fundamental to later large liquid-fueled rockets and
strongly influenced postwar rocket development in both the United States and
Soviet Union. But its significance cannot be separated from its origin as a
Nazi weapon and from the concentration-camp prisoners who suffered and died
producing it. The history of spaceflight contains extraordinary achievements,
but understanding that history also requires remembering the human costs
embedded within some of its technological foundations.
Also on This Day
1962 — Wally Schirra Flies Sigma 7 Six Times Around Earth
Launch: 12:15:12 UTC
On October 3, 1962, astronaut Walter “Wally” Schirra
climbed into the small Mercury spacecraft he had named Sigma 7. The name
reflected the kind of mission he intended to fly. The Greek letter sigma is
used in mathematics to represent summation. For Schirra, Sigma 7 represented
the sum of the engineering work that had gone into Mercury—and the seven
astronauts originally chosen for the program. At 12:15:12 UTC, an Atlas
rocket lifted Sigma 7 from Cape Canaveral. Schirra became the fifth American in
space and the third American to orbit Earth. John Glenn and Scott Carpenter had
each completed three orbits earlier that year. Schirra would attempt six.
The mission, officially designated Mercury-Atlas 8, emphasized
engineering and spacecraft operations. One of its most important questions
concerned resources. Mercury carried limited electrical power and maneuvering
fuel. If future missions were to remain in space longer, astronauts would have
to demonstrate that those resources could be conserved. Schirra deliberately
allowed Sigma 7 to drift for extended periods rather than continuously
controlling its attitude. The technique greatly reduced fuel consumption. He
also conducted spacecraft tests, photographed Earth, made visual observations,
and experimented with using stars for orientation. At one point Schirra
transmitted a television message from orbit, one of the early live broadcasts
from an American spacecraft. After six circuits of Earth, he prepared for
reentry. His landing demonstrated another aspect of the mission's precision. Sigma
7 splashed down in the Pacific after 9 hours, 13 minutes, and 11 seconds
in flight. The spacecraft landed only a few miles from the recovery carrier USS
Kearsarge. It was the first crewed American orbital mission to end with a
Pacific Ocean splashdown. Schirra later described Sigma 7 as a “textbook
flight.” The characterization was appropriate. Mercury was becoming less about
proving that an American could survive orbit and more about demonstrating that
people and spacecraft could operate there predictably and efficiently. Schirra
would later become the only astronaut to fly in all three of America's
pioneering human-spaceflight programs: Mercury, Gemini, and Apollo.
Why It Matters: Sigma 7 demonstrated disciplined
spacecraft operation, fuel conservation, and precise reentry during America's
longest orbital mission to that point. Mercury was evolving from an experiment
in human survival into the foundation for the more complex operations required
by Gemini and Apollo.
1985 — Atlantis Makes Its First Flight
15:15:30 UTC
On October 3, 1985, another spacecraft began a much longer
career. At 15:15:30 UTC, Space Shuttle Atlantis lifted off from
Kennedy Space Center on mission STS-51J. It was Atlantis's first journey
into space. Atlantis was the fourth operational orbiter constructed for NASA's
Space Shuttle fleet, following Columbia, Challenger, and Discovery. Its first
mission was unusual because much of what it carried and accomplished was classified.
STS-51J was a dedicated mission for the United States Department of Defense. Commander
Karol Bobko led a five-person crew consisting of pilot Ronald Grabe
and mission specialists David Hilmers, Robert Stewart, and William Pailes.
The mission's primary payload involved military communications satellites. Because
of the classified nature of the flight, NASA's normal public coverage stopped
shortly after Atlantis reached orbit. After four days in space, Atlantis landed
at Edwards Air Force Base in California on October 7. Its first mission was
complete. But the orbiter's career was only beginning. Atlantis would
eventually become one of the most important vehicles in the Shuttle fleet. It
launched the Magellan spacecraft toward Venus in 1989. Later that year,
it launched Galileo toward Jupiter. In 1991, Atlantis carried the Compton
Gamma Ray Observatory, one of NASA's Great Observatories, into orbit. During
the 1990s, Atlantis became closely associated with the Shuttle-Mir program,
completing multiple dockings with the Russian space station and helping build
experience in international long-duration operations. It later played a major
role in assembling and servicing the International Space Station. And on
July 8, 2011, Atlantis lifted off on STS-135, the final mission of the
entire Space Shuttle program. The spacecraft that began its career with a
classified military mission on October 3, 1985, therefore ended it almost 26
years later by closing one of the most recognizable chapters in the history of
human spaceflight.
Why It Matters: STS-51J began the 33-mission career
of Space Shuttle Atlantis. Over the following quarter century, the orbiter
would launch major planetary and astronomical spacecraft, help pioneer
cooperation with Mir, support construction of the International Space Station,
and ultimately fly the final mission of the Space Shuttle era.
The Bigger Picture
October 3 offers an unusually concentrated view of the
evolution of the rocket. In 1942, the A-4 demonstrated that a large
liquid-fueled rocket could travel to extraordinary altitude and range. Twenty
years later, an Atlas rocket carried Wally Schirra into orbit. Twenty-three
years after that, Atlantis climbed toward space using a combination of
reusable liquid-fueled engines and enormous solid rocket boosters. Technologically,
it is tempting to draw a simple line: A-4 → ballistic missiles → launch
vehicles → human spaceflight → reusable spacecraft. There is truth in that
progression. But it is incomplete. Technology does not carry its own moral
purpose. A rocket engine can accelerate a warhead toward a city. A related
technology can carry a scientific instrument above Earth's atmosphere. Another
can place a human being into orbit. Still another can launch a probe toward
Jupiter. The physical laws are the same. The purposes are not. That distinction
is particularly important on October 3. The people who suffered and died in the
V-2 program should not disappear from the history simply because technologies
developed there later contributed to space exploration. Nor should the history
imply that modern spaceflight emerged from one nation or one group alone. Robert
Goddard's pioneering experiments in the United States, Konstantin Tsiolkovsky's
theoretical work in Russia, Hermann Oberth's writings and experiments in
Europe, Soviet engineering under Sergei Korolev, American research, and
contributions from thousands of engineers and scientists across many countries
all belong to the much larger story. By the time Schirra flew Sigma 7, the
rocket had become a means of placing a human being into orbit. By the time
Atlantis flew, rockets had become part of a transportation system capable of
carrying people, satellites, observatories, and planetary spacecraft. October 3
therefore gives us something more complicated than a story of technological
progress. It asks us to remember that the history of exploration contains both achievement
and responsibility. Understanding how we reached space means remembering
both.
At a Glance
1942 — Launch time not established — The A-4 makes
its first successful test flight from Peenemünde, demonstrating large-scale
liquid-fueled ballistic-rocket technology that will strongly influence postwar
missile and space-launch development.
1962 — 12:15:12 UTC — Wally Schirra launches aboard
Sigma 7 on Mercury-Atlas 8, completing six Earth orbits during a 9-hour,
13-minute engineering mission.
1985 — 15:15:30 UTC — Space Shuttle Atlantis launches
on STS-51J for its maiden flight, beginning a 33-mission career that will
continue through the final Space Shuttle mission in 2011.