Question #f51b9

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Question #f51b9

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Answer 1 · 2017-07-20T01:44:10

$530 J$ $"530 J"$

Explanation:

In order to be able to answer this question, you need to know the specific heat of silver.

$c_{Ag} = {0.240 J g}^{- 1}^{\circ} C^{- 1}$ $c_"Ag" = "0.240 J g"^(-1)""^@"C"^(-1)$

http://www2.ucdsb.on.ca/tiss/stretton/database/specific_heat_capacity_table.html

Now, the specific heat of silver tells you the amount of energy needed to increase the temperature of $1 g$ $"1 g"$ of silver by $1^{\circ} C$ $1^@"C"$ .

You can thus say that if you add $0.240 J$ $"0.240 J"$ of heat to $1 g$ $"1 g"$ of silver, its temperature will increase by $1^{\circ} C$ $1^@"C"$ .

In your case, the temperature of the sample must increase by

$78^{\circ} C - 15^{\circ} C = 63^{\circ} C$ $78^@"C" - 15^@"C" = 63^@"C"$

so use the specific heat to calculate the amount of heat needed to increase the temperature of a sample of silver by $63^{\circ} C$ $63^@"C"$ .

$63 color(red)(cancel(color(black)(""^@"C"))) * "0.240 J"/("1 g" * 1 color(red)(cancel(color(black)(""^@"C")))) = "15.12 J g"^(-1)$

This tells you that in order to increase the temperature of silver by $63^@"C"$ , you must add $"15.12 J:"$ of heat for every $"1 g"$ of silver.

You can thus say that your sample will require

$35 color(red)(cancel(color(black)("g"))) * overbrace("15.12 J"/(1color(red)(cancel(color(black)("g")))))^(color(blue)("for a 63"""^@"C increase in temperature")) = color(darkgreen)(ul(color(black)("530 J")))$

The answer is rounded to two sig figs, the number of sig figs you have for your values.

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Question #f51b9

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