Heat released by the reaction, qrxn (J) Use the equation qrxn = –msoln×Csoln× ΔTsoln. Assume the specific heat capacity of the reaction solution is the same as that of pure water, 4.184 J/g·°C.

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Heat released by the reaction, qrxn (J)

Use the equation qrxn = –msoln×Csoln× ΔTsoln. Assume the specific heat capacity of the reaction solution is the same as that of pure water, 4.184 J/g·°C.

25.00
Initial temperature
1.
('C)
31.37
2. Final temperature ('C)
Part 2 of 6
Calculations
6.37
Change in temperature of the reaction
3.
solution, ATsoln (*C)
Part 3 of 6
Mass of the reaction solution, moln (g)
Add together the masses of the NaOH(aq)
and HC(ag). Convert the volume of each
solution to mass using 1.000 g/ ml as the
density (we are assuming these aqueous
solutions have the same density as water,
see procedure for volumes used).
200
4.
Part 4 of 6
Heat released by the reaction, qrxn (J)
Use the equation grxn = -mgolnCsoin ATsoln
5.
Assume the specific heat capacity of the
reaction solution is the same as that of pure
water, 4. 184 J/g. c.
Transcribed Image Text:25.00 Initial temperature 1. ('C) 31.37 2. Final temperature ('C) Part 2 of 6 Calculations 6.37 Change in temperature of the reaction 3. solution, ATsoln (*C) Part 3 of 6 Mass of the reaction solution, moln (g) Add together the masses of the NaOH(aq) and HC(ag). Convert the volume of each solution to mass using 1.000 g/ ml as the density (we are assuming these aqueous solutions have the same density as water, see procedure for volumes used). 200 4. Part 4 of 6 Heat released by the reaction, qrxn (J) Use the equation grxn = -mgolnCsoin ATsoln 5. Assume the specific heat capacity of the reaction solution is the same as that of pure water, 4. 184 J/g. c.
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