The specific heat of aluminum metal equals 0.90O JK g¯. Consider a process in which a 25 g piece of aluminum metal, at an initial temperature of 90 °C, is dropped into a 100 g sample of liquid water contained in a thermally insulated Dewar flask at an initial temperature of 20 °C. What would be the final temperature of the aluminum sample after the aluminum-water system has reached a state of thermal equilibrium?

Principles of Modern Chemistry
8th Edition
ISBN:9781305079113
Author:David W. Oxtoby, H. Pat Gillis, Laurie J. Butler
Publisher:David W. Oxtoby, H. Pat Gillis, Laurie J. Butler
Chapter12: Thermodynamic Processes And Thermochemistry
Section: Chapter Questions
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The specific heat of aluminum metal equals 0.900 J K¯+g. Consider a process in which a 25
-1
-1
g piece of aluminum metal, at an initial temperature of 9O °C, is dropped into a 100 g sample of
liquid water contained in a thermally insulated Dewar flask at an initial temperature of 20 °C.
What would be the final temperature of the aluminum sample after the aluminum-water system
has reached a state of thermal equilibrium?
Transcribed Image Text:The specific heat of aluminum metal equals 0.900 J K¯+g. Consider a process in which a 25 -1 -1 g piece of aluminum metal, at an initial temperature of 9O °C, is dropped into a 100 g sample of liquid water contained in a thermally insulated Dewar flask at an initial temperature of 20 °C. What would be the final temperature of the aluminum sample after the aluminum-water system has reached a state of thermal equilibrium?
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