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20 July, 12:29

A 38.4-g sample of ethylene glycol, a car radiator coolant, loses 852 J of heat. What was the initial temperature of the ethylene glycol if the final temperature is 32.5°C? (c of ethylene glycol = 2.42 J/g·K)

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  1. 20 July, 13:31
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    296.33K

    Explanation:

    Data;

    Q = 852J

    mass (m) = 38.4g

    θ₂ = 32.5°C = 305.5K

    θ₁ = ?

    c = 2.42 J/g. K

    From the equation of heat transfer;

    Heat transfer (Q) = MC∇θ

    Q = mc (θ₂ - θ₁)

    852 = 38.4 * 2.42 * (305.5 - θ₁)

    852 = 28389.504 - 92.928θ₁

    Collect like-terms

    92.928θ₁ = 27537.504

    Divide both sides by 92.928 to make θ₁ the subject of formula.

    θ₁ = 296.33K
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