Question #0c7c3

1 Answer
Stefan V.
Aug 20, 2015

You'd need 9400 J of heat.

Explanation:

So, you're dealing with a 250-g sample of methanol at 18^@"C"18C, and you want to figure out how much heat you need to supply in order to increase the sample's temeprature to 33^@"C"33C.

Take a look at the value of the specific heat, which is given as 2.51"J/K g"2.51J/K g. A substance's specific heat tells you how much heat is needed to raise the temperature of 1 gram of that substance by 1^@"C"1C.

In your case, if you supply 1 gram of methanol with 2.51 J, you increase its temperature by 1^@"C"1C.

Since you're dealing with more than one gram of methanol, and your aim is to increase its temperature by more than one degree Celsius, you can use this formula

color(blue)(q = m * c * DeltaT)" ", where

m - the mass of the sample;
c - the specific heat of methanol;
DeltaT - the change in temperature, defined as T_"final" - T_"initial".

One quick thing before applying the formula - when you're dealing with a difference between two temperatures, you have

DeltaT_"Kelvin" = DeltaT_"Celsius"

In your case, you have

DeltaT_"Celsius" = 33 - 18 = 15^@"C"

and

DeltaT_"Kelvin" = (273.15 + 33) - (273.15 + 15)

DeltaT_"Kelvin" = color(red)(cancel(color(black)(273.15))) + 33 - color(red)(cancel(color(black)(273.15))) - 18 = "15 K"

So, plug in your values and solve for q

q = 250color(red)(cancel(color(black)("g"))) * 2.51"J"/(color(red)(cancel(color(black)("g"))) * color(red)(cancel(color(black)("K")))) * (33 - 18)color(red)(cancel(color(black)("K")))

q = "9412.5 J" = color(green)("9400 J")

The answer is rounded to two sig figs, the number of sig figs you gave for the mass of methanol used.

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