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12 November, 10:00

A jar of tea is placed in sunlight until it reaches an equilibrium temperature of 31.8 ◦C. In an attempt to cool the liquid, which has a mass of 161 g, 131 g of ice at 0.0 ◦C is added. At the time at which the temperature of the tea is 28.8 ◦C, find the mass of the remaining

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  1. 12 November, 10:26
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    mass of liquid m₁ = 161 g

    temperature t₁ = 31.8

    final temperature t₂ = 28.8

    Let m g of ice melted to cool the liquid

    heat gained = mass x latent heat of fusion + mass x loss of temp x s heat of water

    = m x 80 + m x 1 x (31.8 - 28.8) (latent heat of ice = 80 cals/g)

    = 83 m

    heat lost = 161 x 1 x (31.8 - 28.8) (specific heat of water = 1 cal / g / k)

    = 161 x 3

    heat lost = heat gained

    83 m = 161 x 3

    m = 5.82 g

    mass of remaining ice = 131 - 5.82

    = 125.18 g
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