A 9.86 g sample of iron metal was heated in water to 85°C. Then, it was dropped into a beaker containing 240.0 g of H2O at 28.5°C. Assuming that the water gained all the heat lost by the iron, what is the final temperature of the H20 and Fe?

Chemistry & Chemical Reactivity
9th Edition
ISBN:9781133949640
Author:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Chapter5: Principles Of Chemical Reactivity: Energy And Chemical Reactions
Section: Chapter Questions
Problem 9PS: The initial temperature of a 344-g sample of iron is 18.2 C. If the sample absorbs 2.25 kJ of energy...
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A 9.86 g sample of iron metal was heated in water to 85°C. Then, it was dropped into a
beaker containing 240.0 g of H20 at 28.5°C. Assuming that the water gained all the heat lost
by the iron, what is the final temperature of the H20 and Fe?
Transcribed Image Text:A 9.86 g sample of iron metal was heated in water to 85°C. Then, it was dropped into a beaker containing 240.0 g of H20 at 28.5°C. Assuming that the water gained all the heat lost by the iron, what is the final temperature of the H20 and Fe?
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