Question #71e95

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Question #71e95

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Answer 1 · 2016-04-03T00:36:11

${58.2}^{\circ} C$ $58.2^@"C"$

Explanation:

In order to be able to solve this problem, you need to know the value of water's specific heat, which you'll find listed as

$color(purple)(|bar(ul(color(white)(a/a)color(black)(c_"water" = "4.18 J g"^(-1)""^@"C"^(-1))color(white)(a/a)|)))$

A substance's specific heat tells you how much heat is needed in order to increase the temperature of $"1 g"$ of that substance by $1^@"C"$ .

In your case, you can say that in order to increase the temperature of $"1 g"$ of water by $1^@"C"$ , you need to provide it with $"4.18 J"$ of heat.

Keep in mind that this much heat must be applied per gram, per degree Celsius.

Now, you know that your sample of water has a mass of $"150. g"$ , and that it absorbs a total of $"21.8 kJ"$ of heat. Convert the heat from kilojoules to joules by using the conversion factor

$"1 kJ" = 10^3"J"$

to get

$21.8color(red)(cancel(color(black)("kJ"))) * (10^3"J")/(1color(red)(cancel(color(black)("kJ")))) = "21,800 J"$

At this point, you can determine how much heat would be needed in order to increase the temperature of this sample of water by $1^@"C"$ . Well, you know that you need $"4.18 J"$ per gram in order to get a $1^@"C"$ increase in temperature, so $"150. g"$ of water will require

$150. color(red)(cancel(color(black)("g"))) * overbrace("4.18 J"/(1color(red)(cancel(color(black)("g")))))^(color(purple)("heat needed for 1"^@"C increase for 1 g")) = "627 J"$

If you need $"627 J"$ of heat in order to increase the temperature of $"150 g"$ of water by $1^@"C"$ , it follows that the difference between this much heat and the $"21,800 J"$ you supplied went in increasing the sample's temperature.

You can thus say that

$"21,800"color(red)(cancel(color(black)("J"))) * overbrace((1^@"C")/(627color(red)(cancel(color(black)("J")))))^(color(blue)("heat needed for 1"^@"C for 150. g")) = 34.77^@"C"$

If the sample started at an initial temperature of $23.4^@"C"$ , you can say that its final temperature will be

$T_"final" = 23.4^@"C" + 34.77^@"C" = color(green)(|bar(ul(color(white)(a/a)58.2^@"C"color(white)(a/a)|)))$

The answer is rounded to three sig figs.

ALTERNATIVE APPROACH

You can get the same result by suing the equation

$color(blue)(|bar(ul(color(white)(a/a)q = m * c * DeltaTcolor(white)(a/a)|)))" "$ , where

$q$ - the amount of heat gained / lost
$m$ - the mass of the sample
$c$ - the specific heat of the substance
$DeltaT$ - the change in temperature, defined as the difference between the final temperature and the initial temperature

In your case, you'd have

$DeltaT = q/(m * c)$

$DeltaT = ("21,800" color(red)(cancel(color(black)("J"))))/(150. color(red)(cancel(color(black)("g"))) * 4.18color(red)(cancel(color(black)("J")))color(red)(cancel(color(black)("g"^(-1))))""^@"C"^(-1)) = 34.77^@"C"$

Once again, you'd have

$T_"final" = 23.4^@"C" + DeltaT = color(green)(|bar(ul(color(white)(a/a)58.2^@"C"color(white)(a/a)|)))$

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Question #71e95

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