5. Space Exploration

Learning outcomes
  • I can describe major milestones in space exploration.
  • I can compare robotic and crewed missions.
  • I can explain challenges of deep-space travel.
  • I can identify technologies developed for space exploration.
  • I can evaluate the benefits of space exploration.

What Is Space Exploration?

Space exploration is the investigation of space using astronomy, robotic spacecraft, satellites, space probes, and human spaceflight.

For most of human history, people could only observe space from Earth's surface. During the twentieth century, advances in rocketry, electronics, computing, and communication made it possible to send machines and eventually humans beyond Earth's atmosphere.

Today, spacecraft have visited every planet in the Solar System, humans have walked on the Moon, robotic vehicles have explored Mars, and space telescopes allow us to study extremely distant objects.

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5

Major Milestones in Space Exploration

Space exploration has developed rapidly since the middle of the twentieth century.

1957 – Sputnik 1

Sputnik 1 was the first artificial satellite to orbit Earth.

Its launch demonstrated that objects could successfully be placed into orbit and marked the beginning of the Space Age.

1961 – First Human in Space

Yuri Gagarin became the first human to travel into space.

His spacecraft, Vostok 1, completed one orbit of Earth.

1969 – Humans Walk on the Moon

Apollo 11 became the first mission to land humans on the Moon.

Astronauts Neil Armstrong and Buzz Aldrin walked on the lunar surface while Michael Collins remained in lunar orbit.

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1970s–Present – Exploring the Planets

Robotic spacecraft began travelling throughout the Solar System.

The Voyager probes, launched in 1977, studied the outer planets. Voyager 1 later became the first spacecraft to enter interstellar space.

Other robotic missions have visited planets, moons, asteroids, and comets.

1990 – Hubble Space Telescope

The Hubble Space Telescope was placed into orbit in 1990.

Operating above most of Earth's atmosphere allowed it to obtain extremely detailed astronomical observations and contributed to discoveries involving galaxies, stars, planets, and the expansion of the Universe.

1998–Present – International Space Station

Construction of the International Space Station began in 1998.

The ISS provides a laboratory where astronauts can conduct experiments in microgravity and study the effects of long-duration spaceflight.

21st Century – Mars Exploration

Mars has become an important target for robotic exploration.

Orbiters, landers, and rovers have investigated its:

  • Surface
  • Atmosphere
  • Geology
  • Climate history
  • Evidence of ancient water

The Perseverance rover, for example, has explored Jezero Crater and collected samples intended to help scientists investigate Mars's geological history and potential past habitability.

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7

Robotic vs Crewed Missions

Space missions can broadly be divided into robotic missions and crewed missions.

Robotic Missions

Robotic spacecraft operate without humans aboard.

Examples include:

  • Satellites
  • Space telescopes
  • Probes
  • Landers
  • Rovers

Advantages

Robotic spacecraft:

  • Do not require food, water, or oxygen.
  • Can tolerate conditions too dangerous for humans.
  • Can travel for many years.
  • Can explore extremely distant locations.
  • Are generally less expensive than equivalent crewed missions.
  • Do not place human lives at risk.

Limitations

Robots may have difficulty responding to unexpected situations. Communication delays also mean that spacecraft far from Earth cannot always be controlled in real time.


Crewed Missions

Crewed missions carry astronauts into space.

Humans can:

  • Make complex decisions.
  • Adapt quickly to unexpected problems.
  • Repair equipment.
  • Perform complicated experiments.
  • Collect and examine samples directly.

However, supporting humans in space requires complex life-support systems, radiation protection, food, water, and safe transportation.


Comparing the Two

Feature Robotic Mission Crewed Mission
Human life at risk No Yes
Life-support system required.   No Yes
Typical cost Lower Higher
Mission duration Can be extremely long More limited
Decision making Limited/autonomous or Earth-controlled.  Humans can respond directly
Dangerous environments Highly suitable More difficult
Repairs and complex tasks Limited Major advantage
Deep-space exploration Currently preferred Technically challenging

Neither approach is always better. The type of mission depends on its objectives, destination, cost, risk, and available technology.


Challenges of Deep-Space Travel

Travelling beyond Earth's immediate neighbourhood presents enormous engineering and biological challenges.

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5

Distance

Space is enormous.

Mars, for example, can be hundreds of millions of kilometres from Earth depending on the positions of the two planets.

Travelling such distances can take months or years.


Communication Delays

Radio signals travel at the speed of light, but even light takes significant time to cross interplanetary distances.

A message between Earth and Mars can take roughly 3 to 22 minutes one way, depending on the planets' positions.

Astronauts and robotic spacecraft therefore need to operate with some independence.


Radiation

Earth's magnetic field and atmosphere protect us from much of the harmful radiation arriving from space.

Astronauts travelling into deep space lose much of this protection.

Long-term exposure to:

  • Solar energetic particles
  • Cosmic radiation

can create significant health risks.

Spacecraft therefore require effective radiation protection.


Microgravity

Long periods in very low gravity can affect the human body.

Effects can include:

  • Loss of muscle mass.
  • Loss of bone density.
  • Changes to the cardiovascular system.
  • Changes in balance and coordination.

Astronauts exercise regularly to reduce some of these effects.


Life Support

Humans require:

  • Oxygen
  • Water
  • Food
  • Suitable temperature
  • Waste management

Carrying everything needed for a multi-year mission would require enormous spacecraft.

Future missions may therefore rely increasingly on recycling systems and using resources found at their destinations.


Energy and Propulsion

Spacecraft need energy to operate instruments, computers, communication systems, and life-support equipment.

They also require propulsion to change their motion.

Technologies include:

  • Chemical rockets
  • Solar power
  • Radioisotope power systems
  • Ion propulsion

Future technologies could potentially reduce travel times and make deep-space missions more practical.


Technologies Developed for Space Exploration

Space exploration requires advanced technology capable of operating under extreme conditions.

Rocket Technology

Rockets produce thrust by ejecting gases at high speed.

Modern rockets can:

  • Launch satellites.
  • Carry cargo.
  • Transport astronauts.
  • Send spacecraft toward other planets.

Reusable launch vehicles have also been developed to reduce the need to discard major rocket components after every flight.

Robotic Technology

Space robots must operate reliably in environments that humans cannot easily reach.

Mars rovers, for example, can:

  • Take photographs.
  • Analyse rocks.
  • Drill into surfaces.
  • Measure environmental conditions.
  • Navigate partially autonomously.

Communication Technology

Large radio antennas on Earth communicate with distant spacecraft.

Communication systems must detect extremely weak signals travelling across millions or billions of kilometres.

Space Telescopes

Telescopes placed above Earth's atmosphere can observe wavelengths that are partly or completely blocked by the atmosphere.

The James Webb Space Telescope uses infrared observations to investigate objects including distant galaxies, forming stars, and planetary systems.

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Benefits of Space Exploration

Space exploration requires significant resources, so scientists, governments, and the public often discuss whether its benefits justify its costs.

There are several important potential benefits.

Scientific Knowledge

Space missions allow scientists to investigate fundamental questions:

  • How did the Solar System form?
  • How do stars and galaxies evolve?
  • How did Earth develop?
  • Could life exist elsewhere?
  • How does the Universe work?

Understanding Earth

Many spacecraft actually look toward Earth rather than away from it.

Earth-observation satellites help scientists study:

  • Weather
  • Climate
  • Oceans
  • Forests
  • Ice sheets
  • Natural disasters
  • Atmospheric pollution

Space technology therefore contributes directly to understanding our own planet.


Technology

The extreme requirements of spaceflight encourage developments in areas such as:

  • Materials
  • Sensors
  • Robotics
  • Computing
  • Communications
  • Energy systems
  • Water purification

Not every everyday technology sometimes attributed to space exploration was actually invented for spaceflight, but space programs have contributed to the development or improvement of many useful technologies.


International Cooperation

Large space projects can require cooperation between countries.

The International Space Station is an important example of nations cooperating in scientific research and human spaceflight.


Planetary Defence

Space exploration also helps scientists identify and study asteroids and comets that could potentially collide with Earth.

The DART mission, for example, demonstrated that deliberately colliding a spacecraft with an asteroid moon could change its orbit.

This provided an important test of a possible future planetary-defence technique.


Evaluating Space Exploration

Space exploration has both advantages and disadvantages.

Arguments Supporting Space Exploration

  • Expands scientific knowledge.
  • Produces useful technologies.
  • Helps monitor Earth.
  • Supports planetary defence.
  • Encourages international cooperation.
  • May provide access to future resources.
  • Could eventually allow humans to live beyond Earth.

Concerns About Space Exploration

  • Missions can be extremely expensive.
  • Human spaceflight can be dangerous.
  • Rocket launches have environmental impacts.
  • Failed missions can waste significant resources.
  • Space debris creates risks for spacecraft.
  • Resources used for space programs could potentially be spent on problems on Earth.

A balanced evaluation should consider both the benefits and the costs.


Example Evaluation Question

Should governments continue investing in space exploration?

A strong answer might explain that space exploration is expensive and involves risk, but it also produces scientific knowledge, supports Earth observation, advances technology, and may help protect Earth from hazardous asteroids.

The strongest evaluations do more than list advantages and disadvantages. They use evidence to reach a justified conclusion.


Did You Know?

Voyager 1 was launched in 1977 and continues to communicate with Earth from interstellar space decades later.

Its radio signal is extremely weak by the time it reaches Earth, so scientists use enormous antennas in NASA's Deep Space Network to detect it.


Key Terms

  • Space exploration – investigation of space using robotic or crewed technology.
  • Robotic mission – a mission conducted without humans aboard the spacecraft.
  • Crewed mission – a space mission carrying humans.
  • Space probe – an uncrewed spacecraft designed to investigate space or astronomical objects.
  • Rover – a robotic vehicle designed to move across another world's surface.
  • Microgravity – conditions in which objects experience apparent very low gravity due to free fall.
  • Life-support system – technology that provides conditions necessary for humans to survive.
  • Space telescope – a telescope operating in space.
  • Space debris – human-made objects or fragments remaining in orbit that no longer serve a useful purpose.
  • Planetary defence – efforts to detect and potentially prevent dangerous asteroid or comet impacts.

Key Takeaways

  • Space exploration uses both robotic and crewed missions.
  • Major milestones include the first artificial satellite, first human spaceflight, Moon landings, planetary probes, space stations, and Mars exploration.
  • Robotic missions are generally safer and can operate in environments too dangerous or distant for humans.
  • Crewed missions provide greater flexibility and human decision-making but require complex life-support systems.
  • Deep-space travel presents challenges involving distance, radiation, communication, microgravity, energy, and life support.
  • Space exploration has driven advances in rocketry, robotics, communications, sensors, and spacecraft technology.
  • Its benefits include scientific discovery, Earth observation, technological development, international cooperation, and planetary defence.
  • Evaluating space exploration requires considering its scientific and technological benefits alongside its costs and risks.