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Today, 08:48

A 14.4-gg sample of granite initially at 86.0 ∘C∘C is immersed into 24.0 gg of water initially at 25.0 ∘C∘C. What is the final temperature of both substances when they reach thermal equilibrium? (For water, Cs=4.18J/g⋅∘CCs=4.18J/g⋅∘C and for granite, Cs=0.790J/g⋅∘CCs=0.790J/g⋅∘C.)

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  1. Today, 09:20
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    The final temperature of both substances when they reach thermal equilibrium is 31.2 °C

    Explanation:

    Step 1: Data given

    Mass of sample granite = 14.4 grams

    Initial temperature = 86.0 °C

    Mass of water = 24.0 grams

    The initial temperature of water = 25.0 °C

    The specific heat of water = 4.18 J/g°C

    The specific heat of granite = 0.790 J/g°C

    Step 2: Calculate the final temperature

    Heat lost = heat gained

    Qgranite = - Qwater

    Q = m*c*ΔT

    m (granite) * c (granite) * ΔT (granite) = - m (water) * c (water) * ΔT (water)

    ⇒with m (granite) = the mass of granite = 14.4 grams

    ⇒with c (granite) = The specific heat of granite = 0.790 J/g°C

    ⇒with ΔT⇒ (granite) = the change of temperature of granite = T2 - T1 = T2 - 86.0 °C

    ⇒with m (water) = the mass of water = 24.0 grams

    ⇒with c (water) = The specific heat of water = 4.18 J/g°C

    ⇒with ΔT (water) = the change of temperature of granite = T2 - T1 = T2 - 25.0°C

    14.4 grams * 0.790 * (T2 - 86.0°C) = - 24.0 * 4.18 * (T2 - 25.0°C)

    11.376T2 - 978.336 = - 100.32T2 + 2508

    111.696 T2 = 3486.336

    T2 = 31.2 °C

    The final temperature of both substances when they reach thermal equilibrium is 31.2 °C
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