QUESTION 12 A piece of metal weighing 73.5 g is heated to a temperature of 98.7°C. The metal is then placed in 1500.0 g of water at a temperature of 25.4°C. The temperature of the water increases to a final temperature of 28.2°C. What is the specific heat of the metal? (specific heat of water = 4.184 J/°C *g) 9gained = -lost q=mcAT 3.4 J/g °C 0.6 J/g °C 0.3 J/g °C 8.9 J/g °C

Chemistry: Principles and Reactions
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Chapter8: Thermochemistry
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QUESTION 12
A piece of metal weighing 73.5 g is heated to a temperature of 98.7°C. The metal is then placed in 1500.0 g of water at a temperature of 25.4°C. The temperature of the water increases to a final
temperature of 28.2°C. What is the specific heat of the metal? (specific heat of water = 4.184 J/°C *g)
9gained = -lost
q=mcAT
3.4 J/g °C
0.6 J/g °C
0.3 J/g °C
8.9 J/g °C
Transcribed Image Text:QUESTION 12 A piece of metal weighing 73.5 g is heated to a temperature of 98.7°C. The metal is then placed in 1500.0 g of water at a temperature of 25.4°C. The temperature of the water increases to a final temperature of 28.2°C. What is the specific heat of the metal? (specific heat of water = 4.184 J/°C *g) 9gained = -lost q=mcAT 3.4 J/g °C 0.6 J/g °C 0.3 J/g °C 8.9 J/g °C
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