3C 273 was the first quasar to be discovered - AQA - A-Level Physics - Question 3 - 2022 - Paper 4
Question 3
3C 273 was the first quasar to be discovered. IC 1101 is one of the largest galaxies known. Table 2 shows some information about these objects.
Table 2
Absolute ma... show full transcript
Worked Solution & Example Answer:3C 273 was the first quasar to be discovered - AQA - A-Level Physics - Question 3 - 2022 - Paper 4
Step 1
State the property of the quasar that led to its discovery.
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Answer
The quasar 3C 273 is characterized as a high power and powerful radio emitter, indicating its significant energy output, which led to its discovery.
Step 2
Show that the absolute magnitude X of quasar 3C 273 is about −27.
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Answer
To determine the absolute magnitude, we use the formula:
M=m−5imesextlog10(d)+5
Where:
M is the absolute magnitude,
m is the apparent magnitude (12.8), and
d is the distance in parsecs (760 Mpc = 760,000,000 parsecs).
Plugging in the numbers:
M=12.8−5imesextlog10(760000000)+5
Calculating ext{log}_{10}(760000000), we find:
M=12.8−5imes8.880+5Mextresultinginapproximately−27.
Step 3
Explain which would be the brighter object.
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Answer
Quasar 3C 273 would be the brighter object due to its more negative absolute magnitude compared to IC 1101. In celestial terms, a lower (more negative) absolute magnitude indicates a higher intrinsic brightness.
Step 4
Go on to calculate the ratio brightness of brighter object / brightness of dimmer object.
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Using the absolute magnitudes:
For quasar: M = -27
For IC 1101: M = -22.8
The difference in absolute magnitudes is:
extDifference=−22.8−(−27)=4.2
Using the formula for brightness ratio:
rac{B_1}{B_2} = 10^{0.4 imes ext{Difference}}
Calculating:
rac{B_1}{B_2} = 10^{0.4 imes 4.2} ext{ which is approximately } 2.51^{3.33}.
Step 5
Calculate the average density within the event horizon of the black hole.
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Answer
The volume of the black hole's event horizon can be calculated using the formula for the volume of a sphere:
V=34πr3
Where the radius r can be derived from the mass of the black hole:
r=c22GM
Substituting in values:
G (gravitational constant) is approximately 6.67imes10−11extm3/extkgs2,
M = 7.1imes1011M⊙ (where M⊙ mass of the Sun is 1.989imes1030 kg).