A hot lump of 33.8 g of iron at an initial temperature of 51.8 C is placed in 50.0 mL H,0 initially at 25.0 °C and allowed to reach thermal equilibrium. What is the final temperature of the iron and water, given that the specific heat of iron is 0.449 J/(g-°C)? Assume no heat is lost to surroundings. °C Trinal %3D

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A hot lump of 33.8 g of iron at an initial temperature of 51.8 °C is placed in 50.0 mL H,O initially at 25.0 °C and allowed to
reach thermal equilibrium. What is the final temperature of the iron and water, given that the specific heat of iron is
0.449 J/(g-°C)? Assume no heat is lost to surroundings.
Tinal =
°C
Transcribed Image Text:A hot lump of 33.8 g of iron at an initial temperature of 51.8 °C is placed in 50.0 mL H,O initially at 25.0 °C and allowed to reach thermal equilibrium. What is the final temperature of the iron and water, given that the specific heat of iron is 0.449 J/(g-°C)? Assume no heat is lost to surroundings. Tinal = °C
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