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28 September, 13:25

If you wish to warm 40 kg of water by 18 ∘C for your bath, find what the quantity of heat is needed. Express your answer in calories cal

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  1. 28 September, 16:23
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    Quantity of heat needed (Q) = 722.753 * 10³

    Step-by-step explanation:

    According to question,

    Mass of water (m) = 40 kg

    Change in temperature (ΔT) = 18°c

    specific heat capacity of water = 4200 j kg^-1 k^-1

    The specific heat capacity is the amount of heat required to change the temperature of 1 kg of substance to 1 degree celcius or 1 kelvin.

    So, Heat (Q) = m*s*ΔT

    Or, Q = 40 kg * 4200 * 18

    or, Q = 3024 * 10³ joule

    Hence, Quantity of heat needed (Q) = 3024 * 10³ joule

    In calories 4.184 joule = 1 calorie

    So, 3024 * 10³ joule = 722.753 * 10³
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