The heat required to warm the melted ice from 0.0°C to the final temperature (9.0°C, Trial 1) was not accounted for. How much energy (J) is required to warm the melted ice from its melting point to the final temperature in each trial? Here is some data that may help you Heat of Fusion (J/g): 351 Heat (J) required to melt the ice: 14300 Heat (J) lost by water: -14300 Mass (g) of melted ice: 40.744 Specific Heat of water: 4.184 J·g

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
Problem 15P
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The heat required to warm the melted ice from 0.0°C to the final temperature (9.0°C, Trial 1) was not accounted for. How much energy (J) is required to warm the melted ice from its melting point to the final temperature in each trial?

Here is some data that may help you

Heat of Fusion (J/g): 351

Heat (J) required to melt the ice: 14300

Heat (J) lost by water: -14300

Mass (g) of melted ice: 40.744

Specific Heat of water: 4.184 J·g

 
Expert Solution
Step 1

Given data -

Heat of fusion (L) = 351 Jg-1

Heat required to melt the ice: +14300 J

Heat lost by water: -14300 J

Mass of melted ice: 40.744 g

Specific heat of water (c) = 4.184 Jg-1 oC-1

Initial Temperature: 0.0oC

Final temperature: 9.0oC

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