Modern Physics, 3rd Edition
Modern Physics, 3rd Edition
3rd Edition
ISBN: 9780534493394
Author: Raymond A. Serway, Clement J. Moses, Curt A. Moyer
Publisher: Cengage Learning
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Chapter 14, Problem 37P

(a)

To determine

The net power output of a fusion reaction.

(a)

Expert Solution
Check Mark

Answer to Problem 37P

The net power output of a fusion reaction is 3000MW_.

Explanation of Solution

Write the expression for the net power output,

    Pnet=PoutputPinput        (I)

Here, Pnet is the net power output, Poutput is the power output and Pinput the power input.

Write the expression for the number of 12H pairs,

    Npair=(mM)Na        (II)

Here, Npair is the number of 12H pairs, m is the mass of 12H pairs, M is the molar mass and Na is the Avogadro number.

Write the expression for the power input,

    Pinput=Wt        (III)

Here, W is the work done and t is the time taken.

Write the expression for the output,

    Poutput=NpairnQt        (IV)

Here, Q the released energy in fusion reaction.

Conclusion:

Substitute 3×103g m, 6.02×1023pairs/mole for Na and 5.0g/mole (II),

    Npair=(3×103g)(6.02×1023pairs/mole)5.0g/mole=3.61×1023pair

Substitute 3.61×1023pair Npair , 17.6MeV/fusion for Q , (10)(0.3) for n and 1s for t in (IV),

    Poutput=(10)(0.3)(3.61×1023pair)(17.6MeV/fusion)(1.60×1013J/MeV)1s=3.1×109W

Substitute 5×1014J/s for W and 108s for t in (III),

    Pinput=(10)(5×1014J/s)108s=5×107W

Substitute 5×107W for Pinput and 3.1×109W for Poutput in (I),

    Pnet=3.1×109W5×107W3.0×109W=3.×109W(1MW106W)=3000MW

Therefore, the net power output of a fusion reaction is 3000MW_.

(b)

To determine

The equivalent of oil operates in a dayin liters.

(b)

Expert Solution
Check Mark

Answer to Problem 37P

The equivalent of oil operates in a day in liters is 5.2×106liters_.

Explanation of Solution

Write the expression for the fusion energy in a day,

    Q=Pnett        (V)

Here, Q is the fusion energy in a day

In this case, 2L of oil produce 100MJ , so the energy per liter,

    k=EL        (VI)

Here, k is the energy per liter, E is the released energy and L is the oil in liter.

Write the expression for the equivalent value of burned oil in liters,

    eq=Qk        (VII)

Here, eq is the equivalent value of burned oil in liters.

Conclusion:

Substitute 3000MW for Pnet and 1day for t in (V),

    Q=(3000MW)(1day)(24hr1day)(60min1hr)(60s1min)=2.6×1014J

Substitute 2L for L and 100×106J for E in (VI),

    k=100×106J2L=50×1016J/liter

Substitute 50×1016J/liter for k and 2.6×1014J for Q in (VII),

    eq=2.6×1014J50×1016J/liter=5.2×106liter

Therefore, theequivalent of oil operates in a day in liters is 5.2×106liters_.

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