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31 March, 08:01

A sample of calcium carbonate, caco3 (s) absorbs 45.5 j of heat, upon which the temperature of the sample increases from 21.1 °c to 28.5 °c. if the specific heat of calcium carbonate is 0.82 j/g·˚c, what is the mass (in grams) of the sample?

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  1. 31 March, 11:49
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    Given:

    Q = 45.5 J, amount of heat absorbed

    ΔT = 28.5 - 21.1 = 7.4 °C = 7.4 K, temperature change

    c = 0.82 J / (g-°C), specific heat of CaCO₃.

    Le m = the mass of the sample (g).

    Then

    Q = mcΔT

    (45.5 J) = (m g) * (0.82 J / (g-°C)) * (7.4 °C)

    m = 45.5 / (0.82*7.4) = 7.4984 g

    Answer: 7.5 g (nearest tenth)
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