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The Big Bang that began the universe is estimated to have released 10 68 J size 12{10 rSup { size 8{"68"} } " J"} {} of energy. How many stars could half this energy create, assuming the average star’s mass is 4 . 00 × 10 30 kg size 12{4 "." "00" times "10" rSup { size 8{"30"} } " kg"} {} ?

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A supernova explosion of a 2 . 00 × 10 31 kg size 12{2 "." "00" times "10" rSup { size 8{"31"} } " kg"} {} star produces 1 . 00 × 10 44 J size 12{1 "." "00" times "10" rSup { size 8{"44"} } " J"} {} of energy. (a) How many kilograms of mass are converted to energy in the explosion? (b) What is the ratio Δ m / m size 12{Δm/m} {} of mass destroyed to the original mass of the star?

(a) 1 . 11 × 10 27 kg size 12{1 "." "11" times "10" rSup { size 8{ - "27"} } `"kg"} {}

(b) 5 . 56 × 10 5 size 12{5 "." "56" times "10" rSup { size 8{ - 5} } } {}

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(a) Using data from [link] , calculate the mass converted to energy by the fission of 1.00 kg of uranium. (b) What is the ratio of mass destroyed to the original mass, Δ m / m ?

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(a) Using data from [link] , calculate the amount of mass converted to energy by the fusion of 1.00 kg of hydrogen. (b) What is the ratio of mass destroyed to the original mass, Δ m / m ? (c) How does this compare with Δ m / m for the fission of 1.00 kg of uranium?

7 . 1 × 10 3 kg

7 . 1 × 10 3 size 12{7 "." 1 times "10" rSup { size 8{ - 3} } } {}

The ratio is greater for hydrogen.

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There is approximately 10 34 J of energy available from fusion of hydrogen in the world’s oceans. (a) If 10 33 J size 12{10 rSup { size 8{"33"} } " J"} {} of this energy were utilized, what would be the decrease in mass of the oceans? (b) How great a volume of water does this correspond to? (c) Comment on whether this is a significant fraction of the total mass of the oceans.

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A muon has a rest mass energy of 105.7 MeV, and it decays into an electron and a massless particle. (a) If all the lost mass is converted into the electron’s kinetic energy, find γ size 12{γ} {} for the electron. (b) What is the electron’s velocity?

208

0.999988 c

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A π size 12{π} {} -meson is a particle that decays into a muon and a massless particle. The π size 12{π} {} -meson has a rest mass energy of 139.6 MeV, and the muon has a rest mass energy of 105.7 MeV. Suppose the π size 12{π} {} -meson is at rest and all of the missing mass goes into the muon’s kinetic energy. How fast will the muon move?

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(a) Calculate the relativistic kinetic energy of a 1000-kg car moving at 30.0 m/s if the speed of light were only 45.0 m/s. (b) Find the ratio of the relativistic kinetic energy to classical.

6.92 × 10 5 J size 12{6 "." "92" times "10" rSup { size 8{5} } `J} {}

1.54

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Alpha decay is nuclear decay in which a helium nucleus is emitted. If the helium nucleus has a mass of 6 . 80 × 10 27 kg size 12{6 "." "80" times "10" rSup { size 8{ - "27"} } " kg"} {} and is given 5.00 MeV of kinetic energy, what is its velocity?

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(a) Beta decay is nuclear decay in which an electron is emitted. If the electron is given 0.750 MeV of kinetic energy, what is its velocity? (b) Comment on how the high velocity is consistent with the kinetic energy as it compares to the rest mass energy of the electron.

(a) 0 . 914 c size 12{0 "." "914"c} {}

(b) The restmass energyof anelectron is0.511 MeV,so thekinetic energyis approximately150% ofthe restmass energy.The electronshould betraveling closeto thespeed oflight.

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A positron is an antimatter version of the electron, having exactly the same mass. When a positron and an electron meet, they annihilate, converting all of their mass into energy. (a) Find the energy released, assuming negligible kinetic energy before the annihilation. (b) If this energy is given to a proton in the form of kinetic energy, what is its velocity? (c) If this energy is given to another electron in the form of kinetic energy, what is its velocity?

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Practice Key Terms 3

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Source:  OpenStax, College physics. OpenStax CNX. Jul 27, 2015 Download for free at http://legacy.cnx.org/content/col11406/1.9
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