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17 June, 10:01

How much heat is required to raise the temperature of 65.8 grams of water from 31.5ºC to 46.9ºC?

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  1. 17 June, 13:59
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    Answer: 1,013.32 cal * 4.18 J/cal = 4,235.68 J

    Explanation:

    1) dа ta:

    Water ⇒ C = 1 cal/g°C

    m = 65.8 g

    Ti = 31.5°C

    Tf = 36.9°C

    Heat, Q = ?

    2) Formula:

    Q = mCΔT

    3) Calculations:

    Q = 65.8g * 1 cal/g°C * (46.9°C - 31.5°C) = 1,013.2 cal

    4) You can convert from calories to Joules using the conversion factor:

    1 cal = 4.18 J

    ⇒ 1,013.32 cal * 4.18 J/cal = 4,235.68 J
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