A quantity of 505 J of heat are added to 11.3 g of water at 28.3 °C. What is the final temperature of water? ( specific heat of water = 4.18 J/g.°C ).

Chemistry for Engineering Students
4th Edition
ISBN:9781337398909
Author:Lawrence S. Brown, Tom Holme
Publisher:Lawrence S. Brown, Tom Holme
Chapter9: Energy And Chemistry
Section: Chapter Questions
Problem 9.110PAE
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Match each of the following
A quantity of 505 J of heat are added to 11.3 g of water at 28.3 °C. What is the
final temperature of water? ( specific heat of water = 4.18 J/g.°C ).
Choose...
Choose...
-48.25
188.7
A balloon of helium gas lost 36.4 kJ of heat while it was raising uP,
simultaneously, the helium gas expanded from 64.0 L to 80.0 L against 563
mmHg pressure, Calculate the change in the internal energy (AU) of helium gas (
in kJ). Given that (atm.L = 101.3 J)
-37.6
10.7
-238.7
39.0
268
11.85
Transcribed Image Text:Match each of the following A quantity of 505 J of heat are added to 11.3 g of water at 28.3 °C. What is the final temperature of water? ( specific heat of water = 4.18 J/g.°C ). Choose... Choose... -48.25 188.7 A balloon of helium gas lost 36.4 kJ of heat while it was raising uP, simultaneously, the helium gas expanded from 64.0 L to 80.0 L against 563 mmHg pressure, Calculate the change in the internal energy (AU) of helium gas ( in kJ). Given that (atm.L = 101.3 J) -37.6 10.7 -238.7 39.0 268 11.85
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