General Properties of the Moon Quiz
The question sheet
Reveal any answer as you study-
Compared to Earth, the Moon has about how much mass?
- One-third of Earth's mass
- Equal to Earth's mass
- One-sixth of Earth's mass
- One-eightieth of Earth's mass
Reveal answer
Answer: One-eightieth of Earth's mass
Source evidence
PDF page 316: The Moon has only one-eightieth the mass of Earth and about one-sixth Earth’s surface gravity—too low to retain an atmosphere (Figure 9.2). Moving molecules of a gas can escape from a planet just the way a rocket does, and the lower the gravity, the easier it is for the gas to leak away into space. While the Moon can acquire a temporary atmosphere from impacting comets, this atmosphere is quickly lost by freezing onto the surface or by escape to surrounding space. The Moon today is dramatically deficient in a wide range of volatiles, those elements and compounds that evaporate at relatively low temperatures. Some of the Moon’s properties are summarized in Table 9.1, along with comparative values for Mercury.
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Why is the Moon's gravity too low to retain an atmosphere?
- It has no gravity at all
- It is about one-sixth of Earth's gravity
- It equals Earth's gravity
- It is twice Earth's gravity
Reveal answer
Answer: It is about one-sixth of Earth's gravity
Source evidence
PDF page 316: The Moon has only one-eightieth the mass of Earth and about one-sixth Earth’s surface gravity—too low to retain an atmosphere (Figure 9.2). Moving molecules of a gas can escape from a planet just the way a rocket does, and the lower the gravity, the easier it is for the gas to leak away into space. While the Moon can acquire a temporary atmosphere from impacting comets, this atmosphere is quickly lost by freezing onto the surface or by escape to surrounding space. The Moon today is dramatically deficient in a wide range of volatiles, those elements and compounds that evaporate at relatively low temperatures. Some of the Moon’s properties are summarized in Table 9.1, along with comparative values for Mercury.
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Why does the Moon preserve events from long ago on its surface?
- Its airless surface preserves old events
- It has active volcanoes
- It has a dense atmosphere
- It has thick protective ice
Reveal answer
Answer: Its airless surface preserves old events
Source evidence
PDF page 315: The Moon is the only other world human beings have ever visited. What is it like to stand on the surface of our natural satellite? And what can we learn from going there and bringing home pieces of a different world? We begin our discussion of the planets as cratered worlds with two relatively simple objects: the Moon and Mercury. Unlike Earth, the Moon is geologically dead, a place that has exhausted its internal energy sources. Because its airless surface preserves events that happened long ago, the Moon provides a window on earlier epochs of solar system history. The planet Mercury is in many ways similar to the Moon, which is why the two are discussed together: both are relatively small, lacking in atmospheres, deficient in geological activity, and dominated by the effects of impact cratering. Still, the processes that have molded their surfaces are not unique to these two worlds. We shall see that they have acted on many other members of the planetary system as well.
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How is the Moon described geologically compared with Earth?
- Geologically dead
- Rich in internal energy
- Volcanically very active
- Constantly reshaped by rain
Reveal answer
Answer: Geologically dead
Source evidence
PDF page 315: The Moon is the only other world human beings have ever visited. What is it like to stand on the surface of our natural satellite? And what can we learn from going there and bringing home pieces of a different world? We begin our discussion of the planets as cratered worlds with two relatively simple objects: the Moon and Mercury. Unlike Earth, the Moon is geologically dead, a place that has exhausted its internal energy sources. Because its airless surface preserves events that happened long ago, the Moon provides a window on earlier epochs of solar system history. The planet Mercury is in many ways similar to the Moon, which is why the two are discussed together: both are relatively small, lacking in atmospheres, deficient in geological activity, and dominated by the effects of impact cratering. Still, the processes that have molded their surfaces are not unique to these two worlds. We shall see that they have acted on many other members of the planetary system as well.
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What is the diameter of the Moon according to Table 9.1?
- 2400 km
- 4878 km
- 5400 km
- 3476 km
Reveal answer
Answer: 3476 km
Source evidence
PDF page 316: Diameter (km) 3476 4878
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What is the average density of the Moon?
- 3.3 g/cm³
- 4.3 g/cm³
- 1.7 g/cm³
- 5.4 g/cm³
Reveal answer
Answer: 3.3 g/cm³
Source evidence
PDF page 316: Density (g/cm ) 3.3 5.4
PDF page 321: The composition of the Moon is not the same as that of Earth. With an average density of only 3.3 g/cm , the Moon must be made almost entirely of silicate rock. Compared to Earth, it is depleted in iron and other metals. It is as if the Moon were composed of the same silicates as Earth’s mantle and crust, with the metals and the volatiles selectively removed. These differences in composition between Earth and Moon provide important clues about the origin of the Moon, a topic we will cover in detail later in this chapter. Studies of the Moon’s interior carried out with seismometers taken to the Moon as part of the Apollo program confirm the absence of a large metal core. The twin GRAIL spacecraft launched into lunar orbit in 2011 provided even more precise tracking of the interior structure. We also know from the study of lunar samples that water and other volatiles have been depleted from the lunar crust. The tiny amounts of water detected in these samples were originally attributed to small leaks in the container seal that admitted water vapor from Earth’s atmosphere. However, scientists have now concluded that some chemically bound water is present in the lunar rocks. Most dramatically, water ice has been detected in permanently shadowed craters near the lunar poles. In 2009, NASA crashed a small spacecraft called the Lunar Crater Observation and Sensing Satellite (LCROSS) into the crater Cabeus near the Moon’s south pole. The impact at 9,000 kilometers per hour released energy equivalent to 2 tons of dynamite, blasting a plume of water vapor and other chemicals high above the surface. This plume was visible to telescopes in orbit around the Moon, and the LCROSS spacecraft itself made measurements as it flew through the plume. A NASA spacecraft called the Lunar Reconnaissance Orbiter (LRO) also measured the very low temperatures inside several lunar craters, and its sensitive cameras were even able to image crater interiors by starlight. The total quantity of water ice in the Moon’s polar craters is estimated to be hundreds of billions of tons. As liquid, this would only be enough water to fill a lake 100 miles across, but compared with the rest of the dry lunar crust, so much water is remarkable. Presumably, this polar water was carried to the Moon by comets and asteroids that hit its surface. Some small fraction of the water froze in a few extremely cold regions (cold traps) where the Sun never shines, such as the bottom of deep craters at the Moon’s poles. One reason this discovery could be important is that it raises the possibility of future human habitation near the lunar poles, or even of a lunar base as a way-station on routes to Mars and the rest of the solar system. If the ice could be mined, it would yield both water and oxygen for human support, and it could be broken down into hydrogen and oxygen, a potent rocket fuel.
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What is the Moon's escape velocity according to Table 9.1?
- 2.4 km/s
- 9.0 km/s
- 5.4 km/s
- 4.3 km/s
Reveal answer
Answer: 2.4 km/s
Source evidence
PDF page 316: Escape velocity (km/s) 2.4 4.3
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What is the rotation period of the Moon?
- 27.3 days
- 1 day
- 58.65 days
- 365 days
Reveal answer
Answer: 27.3 days
Source evidence
PDF page 316: Rotation period (days) 27.3 58.65
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Most of what we know about the Moon derives from which program?
- The GRAIL program
- The US Apollo program
- The Luna program
- The Clementine program
Reveal answer
Answer: The US Apollo program
Source evidence
PDF page 317: Most of what we know about the Moon today derives from the US Apollo program, which sent nine piloted spacecraft to our satellite between 1968 and 1972, landing 12 astronauts on its surface (Figure 9.1). Before the era of spacecraft studies, astronomers had mapped the side of the Moon that faces Earth with telescopic resolution of about 1 kilometer, but lunar geology hardly existed as a scientific subject. All that changed beginning in the early 1960s. Initially, Russia took the lead in lunar exploration with Luna 3, which returned the first photos of the lunar far side in 1959, and then with Luna 9, which landed on the surface in 1966 and transmitted pictures and other data to Earth. However, these efforts were overshadowed on July 20, 1969, when
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How many astronauts did the Apollo program land on the Moon?
- 6
- 9
- 12
- 24
Reveal answer
Answer: 12
Source evidence
PDF page 317: Most of what we know about the Moon today derives from the US Apollo program, which sent nine piloted spacecraft to our satellite between 1968 and 1972, landing 12 astronauts on its surface (Figure 9.1). Before the era of spacecraft studies, astronomers had mapped the side of the Moon that faces Earth with telescopic resolution of about 1 kilometer, but lunar geology hardly existed as a scientific subject. All that changed beginning in the early 1960s. Initially, Russia took the lead in lunar exploration with Luna 3, which returned the first photos of the lunar far side in 1959, and then with Luna 9, which landed on the surface in 1966 and transmitted pictures and other data to Earth. However, these efforts were overshadowed on July 20, 1969, when
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Which country first returned photos of the lunar far side, with Luna 3?
- Russia (USSR)
- China
- Japan
- United States
Reveal answer
Answer: Russia (USSR)
Source evidence
PDF page 317: Most of what we know about the Moon today derives from the US Apollo program, which sent nine piloted spacecraft to our satellite between 1968 and 1972, landing 12 astronauts on its surface (Figure 9.1). Before the era of spacecraft studies, astronomers had mapped the side of the Moon that faces Earth with telescopic resolution of about 1 kilometer, but lunar geology hardly existed as a scientific subject. All that changed beginning in the early 1960s. Initially, Russia took the lead in lunar exploration with Luna 3, which returned the first photos of the lunar far side in 1959, and then with Luna 9, which landed on the surface in 1966 and transmitted pictures and other data to Earth. However, these efforts were overshadowed on July 20, 1969, when
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About how many kilograms of samples did Apollo missions collect total?
- About 400 kilograms
- About 111 kilograms
- About 1000 kilograms
- About 22 kilograms
Reveal answer
Answer: About 400 kilograms
Source evidence
PDF page 318: In addition to landing on the lunar surface and studying it at close range, the Apollo missions accomplished three objectives of major importance for lunar science. First, the astronauts collected nearly 400 kilograms of samples for detailed laboratory analysis on Earth (Figure 9.4). These samples have revealed as much about the Moon and its history as all other lunar studies combined. Second, each Apollo landing after the first one deployed an Apollo Lunar Surface Experiment Package (ALSEP), which continued to operate for years after the astronauts departed. Third, the orbiting Apollo command modules carried a wide range of instruments to photograph and analyze the lunar surface from above.
Astronomy
Astronomy by OpenStax, used under CC BY 4.0. Changes made by Stratacademy.
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