Lesson 10.3.2
10.3.2 Age and ultimate fate of the universe Quiz: Pearson Edexcel Physics, Unit 10
20 questions
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Lesson 10.3.2, Age and ultimate fate of the universe: 20 multiple choice questions for the Pearson Edexcel Physics (9PH0), Unit 10: Space, written with Revision Ninja.
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The 20 questions
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Approximately what age does the Hubble constant give for the universe?
- The age is about 1/H0.
- The age is about H0.
- The age is about H0 squared.
- The age is about 1 / (H0 squared).
-
What is the unit of the Hubble constant H0?
- s^-1 Mpc^-1 km^2
- Mpc s^-1
- km s^-1 Mpc^-1
- km s^-1
-
How does dark matter affect the fate of the universe?
- Its unseen mass adds to the gravitational attraction, which affects how strongly expansion is slowed.
- It emits so much light that it prevents the universe from cooling.
- It has no gravitational effect, so it cannot influence the fate of the universe.
- It repels all matter, making the universe expand faster in every direction.
-
In a closed universe with a density above the critical value, what is the eventual fate?
- It expands forever at a constant speed.
- It expands faster and faster forever.
- It recollapses after expansion slows to a halt.
- It remains exactly the same size for all time.
-
If the Hubble time 1/H0 is about 14 billion years for H0 = 70 km s^-1 Mpc^-1, which value is closest to the Hubble time for H0 = 50 km s^-1 Mpc^-1?
- about 2 billion years
- about 200 billion years
- about 20 billion years
- about 5 billion years
-
A Hubble constant estimate is revised so that H0 is doubled. What happens to the age estimate from 1/H0?
- It doubles.
- It halves.
- It quadruples.
- It stays the same.
-
What is the approximate Hubble time for H0 = 70 km s^-1 Mpc^-1?
- about 140 million years
- about 1.4 trillion years
- about 4.4 billion years
- about 14 billion years
-
What controversy about the age of the universe is linked to the value of the Hubble constant?
- Galaxies are not moving, so the Hubble constant cannot be measured.
- Different measurements of H0 give different expansion histories, so the estimated age and fate can differ.
- Light from distant galaxies does not show any redshift at all.
- The Hubble constant has been measured to be exactly the same for all observers.
-
Why would extra unseen mass in the universe make a recollapse more likely?
- The extra mass makes the Hubble constant equal to zero for every observer in space.
- Extra gravity raises total density, which can halt the expansion.
- The extra mass removes redshift from all distant galaxies so they no longer recede.
- The extra mass repels galaxies, which speeds expansion up and makes the universe older.
-
Which observation provided evidence that the expansion of the universe is accelerating?
- Distant Type Ia supernovae look fainter than expected, implying accelerating expansion.
- The Sun's luminosity has been found to vary measurably from year to year in all surveys.
- Parallax angles are found to be exactly 1 arcsecond for all stars in the sky.
- Nearby stars show a blueshift that is steadily increasing over many decades of observation.
-
A flat universe with no dark energy would have an expansion that is
- constant for all time
- slowing down over time because of gravity
- accelerating over time because of gravity
- reversed at all times
-
Why does the age estimate from 1/H0 only give an approximate value?
- It assumes the expansion rate has been constant, but expansion has changed over time.
- It assumes the Sun is the oldest object in the universe, which is well established.
- It assumes the universe contains no stars at all, a statement that is clearly not true.
- It assumes H0 is measured in light years per second, a unit choice that is incorrect here.
-
Which statement about dark matter in the context of the universe's fate is correct?
- It is a form of radiation that increases the expansion rate.
- It is an unseen form of mass whose gravity affects the expansion history.
- It has no effect on any measured property of the universe.
- It is visible light emitted by distant galaxies.
-
If a universe has an expansion rate that is slowed by gravity, what is the effect of more gravitational attraction on the time for the expansion to slow?
- The expansion stops immediately.
- The expansion slows more strongly and the universe may recollapse.
- The expansion speeds up without any change.
- The gravitational attraction has no effect on the expansion.
-
A measured Hubble constant of 70 km s^-1 Mpc^-1 is compared with a value of 50. Which is the more likely consequence for the estimated age of the universe?
- The age from the 50 value is larger, since age is about 1/H0.
- The age from the 70 value is larger, since age is about H0.
- The age from the 50 value is zero, since H0 is not a time.
- Both ages are exactly the same, since H0 cancels out.
-
Which statement about the Hubble constant is most accurate?
- It relates the recession speed of galaxies to their distance, and its value is still debated.
- It is the speed of light divided by the age of the universe.
- It is a fixed number known exactly, and it does not need measurement.
- It is the redshift of the nearest galaxy only.
-
A galaxy is at a distance that makes its recession speed 14000 km s^-1 with H0 = 70 km s^-1 Mpc^-1. What is its distance?
- 20 Mpc
- 70 Mpc
- 2000 Mpc
- 200 Mpc
-
Which quantity is the constant of proportionality in Hubble's law?
- v
- d
- H0
- z
-
A galaxy lies at 500 Mpc. With H0 = 70 km s^-1 Mpc^-1, what is its recession speed?
- 7000 km s^-1
- 35000 km s^-1
- 70000 km s^-1
- 3500 km s^-1
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Why is the age of the universe inferred from H0 rather than read from a clock?
- The age is always equal to the wavelength of the Hubble constant measured in km per second.
- No clock was started at the Big Bang, so age must be inferred from expansion history.
- Age is measured by counting the number of galaxies in the universe and dividing by H0.
- Clocks do not work reliably on galaxies that are moving away from Earth at high speeds, so it fails.
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