Assume you are performing the calibration step of Experiment 8 and you begin wit
ID: 823649 • Letter: A
Question
Assume you are performing the calibration step of Experiment 8 and you begin with 80 g of water at 20 oC and 80 g of water at 80 oC. After adding the two portions of water into your calorimeter setup and following the procedure outlined in the experiment, you determine the temperature of the mixed portions of water to be 45oC. What is the heat capacity of the calorimeter? Assume room temperature is 25 oC.Assume you are performing the calibration step of Experiment 8 and you begin with 80 g of water at 20 oC and 80 g of water at 80 oC. After adding the two portions of water into your calorimeter setup and following the procedure outlined in the experiment, you determine the temperature of the mixed portions of water to be 45oC. What is the heat capacity of the calorimeter? Assume room temperature is 25 oC.
Explanation / Answer
this the exact method
Equation to use:
-q (warm water) = q (cool water) + q (calorimeter)
which then turns into this equation.
- specific heat (warm water) X mass (warm water) X delta Temp =
specific heat ( cool water ) X mass ( cool water ) X delta Temp + C (calorimeter) X delta Temp
Now here comes the actual calculations
I first start by subtraction q (cool water) over the equal sign which will give me
-q (warm water) - q (cool water) = q (calorimeter)
Time to input our given values
specific heat of water = 4.184 (J / grams) * C ( Celsius )
*Note other people tried to solve this problem by trying to calculate the specific heat of water at the temperatures that were given in the problem. Do not do this.
C (calorimeter) X ( 45 - 25 ) =
-(4.184 (J / grams) * C) X (70 grams) X (45 - 20) - (4.184 (J / grams) * C) X (70 grams) X (45 - 80)
*The first change of temperature (45 - 25) is for the calorimeter. It basically means that the calorimeter starts at 25 C ( Celsius ) (because of room temperature) and ends at 45 C ( Celsius ) after the warm and cold mixture.
Once these values are calculated you should get this.
C (calorimeter) X ( 20 C ( Celsius ) ) = -7,322 ( cool water ) + 10,250.8 ( warm water )
Which will then form this.
C (calorimeter) X ( 20 C ( Celsius ) ) = 2,928.8
Now simply divide 2,928.8 by 20 and you should get.
C (calorimeter) = 146.44 J / C ( Celsius )
Now to convert to cal / C ( Celsius )
146.44 J / C ( Celsius ) X ( 1 cal / 4.18400 J ) = 35 cal / C ( Celsius )
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