Find the difference between the value of x2 and the sum of x1 plus x3.; let x4 be equivalent to the sum of x1 and x3 and let x5 be the difference between x2 and x5. This calculation scheme is shown below. Make notes about any similarities or differences between the values in your notes. 
 
x4 = x1 + x3 
x5 = x2 – x4 

Data Analyis 

This section will include all data collected during the lab. 

 

Thermochemical Data
	Tinitial (°C)	Tfinal (°C)	ΔT (°C)	moles NaOH	qreaction (kJ)	ΔHrxn
Reaction 1	25.0	30.3	+5.3	0.025	-1.11	-44.4
Reaction 2	25.0	37.0	+12.0	0.025	-2.51	-100.4
Reaction 3	25.0	31.7	+6.7	0.025	-1.40	-56.1

 

Reaction 1: NaOH(s) → Na+(aq) + OH-(aq) + x1 kJ 

1g /39.977g/mol = 0.025 moles 

Moles NaOH = 0.025 

qsolution = (4.184 J/g °C) (50.0g) (30.3°C -25.0°C) 

= -1108.76 J/ 1000 

qreaction (kJ) = -1.11 kJ  

ΔH = -1.11 kJ/ 0.025 moles 

ΔHrxn = -44.4 kJ/mol 

Reaction 2: NaOH(s) + HCl(aq) → H2O(l) + Na+(aq) + Cl-(aq) + x2 kJ 

1g /39.977g/mol = 0.025 moles 

Moles NaOH = 0.025 

qsolution = (4.184 J/g °C) (50.0g) (37.0°C -25.0°C) 

= -2510.40 J/ 1000 

qreaction (kJ) = -2.51 kJ  

ΔH = -2.51 kJ/ 0.025 moles 

ΔHrxn = -100.4 kJ/mol 

 

Reaction 3: NaOH(s) + HCl(aq) → H2O(l) + Na+(aq) + Cl-(aq) + x3 kJ 

1g /39.977g/mol = 0.025 moles 

Moles NaOH = 0.025 

qsolution = (4.184 J/g °C) (50.0g) (31.7°C -25.0°C) 

= -1401.64 J/ 1000 

qreaction (kJ) = -2.51 kJ  

ΔH = -1.40 kJ/ 0.025 moles 

ΔHrxn = -56 kJ/mol 

 

Net Ionic Equations 

 

Reaction 1: NaOH(s) → Na+(aq) + OH-(aq) -44.4 kJ 

Reaction 2: NaOH(s) + HCl(aq) → H2O(l) + Na+(aq) + Cl-(aq) - 100.4 kJ 

Reaction 3: NaOH(s) + HCl(aq) → H2O(l) + Na+(aq) + Cl-(aq) -56 kJ