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a drop of water weighing 0.48 g condenses on the surface of a 55-g block of aluminum that is initially at 25C. if the heat during condensation goes only toward heating the metal, what is the final temperature in celcius of he metal block? Specific heat capacity of aluminum is 0.903j/g C

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  1. Yesterday, 23:03
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    Mass of water vapor is 0.48 gms.

    Weight of the aluminium block is 55 gms.

    Heat of vaporization of water at 25 degree Celsius is 44.0 kJ/mol.

    The amount of heat given by the condensation is:

    q = Heat of vaporization * Mass of vapor / Molar mass of steam

    = 44.0 kJ/mol * 0.48 g / 18 g/mol

    = 1.173 kJ

    Now the final temperature of the metal block is calculated by the formula:

    q = m * c * ΔT

    q = m * c * (T₂ - T₁)

    Here, q is the amount of heat, m is the mass of the metal, c is the specif heat of the metal, T₁ is initial temperature, and T₂ is the final temperature.

    Now, substituting the values we get,

    1.173 kJ = 55 g * 0.903 J/g. ° C * (T₂ - 25°C)

    1.173 * 10³ J = 55 g * 0.903 J/g. degree C * (T₂ - 25°C)

    1.173 * 10³ = 49.665 ° C * (T₂ - 25° C)

    T₂ = 49° C.

    Thus, the final temperature of the metal block is 49° C.
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