Given the specific heat of lead is 0.129 J/g $\cdot$ $*$ K and that it takes 93.4 J of energy to heat a sample of lead from 22.3°C to 40.°C, how do you find the mass of the lead.?

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Given the specific heat of lead is 0.129 J/g $\cdot$ $*$ K and that it takes 93.4 J of energy to heat a sample of lead from 22.3°C to 40.°C, how do you find the mass of the lead.?

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Answer 1 · 2017-03-02T19:44:02

$40.9 k g$ $40.9kg$ lead

Explanation:

The equation you want is

$E = m c θ$ $E=mctheta$

where $E$ $E$ is energy, $m$ $m$ is mass, $c$ $c$ is specific heat capacity (SHC) and $θ$ $theta$ is the change in temperature (note: change).

In the question, we want to find mass, so we rearrange to make mass the subject:

$E = m c θ \to m = \frac{E}{c θ}$ $E=mctheta -> m=E/(ctheta)$

We know that $E = 93.4 J$ $E=93.4J$ , $c = 0.129 \frac{J}{g K}$ $c=0.129J/(gK)$ and $θ = 40 - 22.3 = 17.7 K$ $theta=40-22.3=17.7K$

(We can easily convert between $K$ $K$ and Celsius because they are on the same scale, but have different starting points. Celsius starts from water freezing at $0^{o} C$ $0^oC$ , while Kelvin starts at $0$ $0$ thermal energy, which is about $- {273.15}^{o} C$ $-273.15^oC$ . Calculating a change in Celsius gives the same change in Kelvin, because you can ignore the starting points of the scales.)

Now we have

$m = \frac{93.4}{0.129 \times 17.7} = 40.9057 k g$ $m=93.4/(0.129xx17.7)=40.9057kg$

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Given the specific heat of lead is 0.129 J/g $\cdot$ $*$ K and that it takes 93.4 J of energy to heat a sample of lead from 22.3°C to 40.°C, how do you find the mass of the lead.?

1 Answer

Explanation:

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Impact of this question

Science

Math

Humanities

... and beyond

Given the specific heat of lead is 0.129 J/g⋅*K and that it takes 93.4 J of energy to heat a sample of lead from 22.3°C to 40.°C, how do you find the mass of the lead.?

1 Answer

Explanation:

Related questions

Impact of this question

Given the specific heat of lead is 0.129 J/g $\cdot$ $*$ K and that it takes 93.4 J of energy to heat a sample of lead from 22.3°C to 40.°C, how do you find the mass of the lead.?