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Calculating rest mass: a small mass increase due to energy input

A car battery is rated to be able to move 600 ampere-hours (A·h) of charge at 12.0 V. (a) Calculate the increase in rest mass of such a battery when it is taken from being fully depleted to being fully charged. (b) What percent increase is this, given the battery’s mass is 20.0 kg?

Strategy

In part (a), we first must find the energy stored in the battery, which equals what the battery can supply in the form of electrical potential energy. Since PE elec = qV size 12{"PE" rSub { size 8{"elec"} } = ital "qV"} {} , we have to calculate the charge q size 12{q} {} in 600 A·h , which is the product of the current I and the time t size 12{t} {} . We then multiply the result by 12.0 V. We can then calculate the battery’s increase in mass using Δ E = PE elec = ( Δ m ) c 2 size 12{ΔE="PE" rSub { size 8{"elec"} } = \( Δm \) c rSup { size 8{2} } } {} . Part (b) is a simple ratio converted to a percentage.

Solution for (a)

  1. Identify the knowns. I t = 600 A h ; V = 12 . 0 V size 12{V="12" "." 0`V} {} ; c = 3 . 00 × 10 8 m/s
  2. Identify the unknown. Δ m size 12{m} {}
  3. Choose the appropriate equation. PE elec = ( Δ m ) c 2
  4. Rearrange the equation to solve for the unknown. Δ m = PE elec c 2 size 12{m= { {"PE" rSub { size 8{"elec"} } } over {c rSup { size 8{2} } } } } {}
  5. Plug the knowns into the equation.
    Δ m = PE elec c 2 = qV c 2 = ( I t ) V c 2 = ( 600 A h ) ( 12.0 V ) ( 3.00 × 10 8 ) 2 .

    Write amperes A as coulombs per second (C/s), and convert hours to seconds.

    Δ m = ( 600 C/s h 3600 s 1 h ( 12.0 J/C ) ( 3.00 × 10 8 m/s ) 2 = ( 2.16 × 10 6 C ) ( 12.0 J/C ) ( 3.00 × 10 8 m/s ) 2

    Using the conversion 1 kg m 2 /s 2 = 1 J , we can write the mass as

    Δ m = 2.88 × 10 10 kg .

Solution for (b)

  1. Identify the knowns. Δ m = 2.88 × 10 10 kg ; m = 20.0 kg
  2. Identify the unknown. % change
  3. Choose the appropriate equation. % increase = Δ m m × 100% size 12{%" increase"= { {Δm} over {m} } times "100"%} {}
  4. Plug the knowns into the equation.
    % increase = Δ m m × 100% = 2.88 × 10 10 kg 20.0 kg × 100% = 1.44 × 10 9 % .

Discussion

Both the actual increase in mass and the percent increase are very small, since energy is divided by c 2 size 12{c rSup { size 8{2} } } {} , a very large number. We would have to be able to measure the mass of the battery to a precision of a billionth of a percent, or 1 part in 10 11 , to notice this increase. It is no wonder that the mass variation is not readily observed. In fact, this change in mass is so small that we may question how you could verify it is real. The answer is found in nuclear processes in which the percentage of mass destroyed is large enough to be measured. The mass of the fuel of a nuclear reactor, for example, is measurably smaller when its energy has been used. In that case, stored energy has been released (converted mostly to heat and electricity) and the rest mass has decreased. This is also the case when you use the energy stored in a battery, except that the stored energy is much greater in nuclear processes, making the change in mass measurable in practice as well as in theory.

Kinetic energy and the ultimate speed limit

Kinetic energy is energy of motion. Classically, kinetic energy has the familiar expression 1 2 mv 2 size 12{ { {1} over {2} } ital "mv" rSup { size 8{2} } } {} . The relativistic expression for kinetic energy is obtained from the work-energy theorem. This theorem states that the net work on a system goes into kinetic energy. If our system starts from rest, then the work-energy theorem is

W net = KE . size 12{W rSub { size 8{"net"} } ="KE"} {}

Relativistically, at rest we have rest energy E 0 = mc 2 . The work increases this to the total energy E = γmc 2 . Thus,

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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