Consider a tank initially containing 3L of 1M HCl. To this tank, we add 3L of 2M
ID: 942532 • Letter: C
Question
Consider a tank initially containing 3L of 1M HCl. To this tank, we add 3L of 2M Ca(OH)2, and allow the acid-base reaction to proceed to completion.
(a) At the end of this step, what are the concentrations of HCl, Ca(OH)2 and CaCl2 in the mixture ? (Please note that there is water generated during the reaction)
We then remove 2L of the contents of the tank, add 2L of 0.5M HCl, and allow the reaction (if any) to proceed to completion
(b) what are the concentrations of HCl, Ca(OH)2 and CaCl2 in the mixture now ? (Again, note that water may be generated due to the reaction)
[NB: You may assume that all of the above occurs at a temperature where the density of water is 1000 kg/m3 (1000 g/L)]
Please show work! I've missed class due to illness so I need to know how to do this.
Explanation / Answer
(a) 2HCl + Ca(OH)2 = CaCl2 + 2H2O
After Addition of 3L of 2M Ca(OH)2, total volume = 6 L
After addition, concentration of HCl in the tank before reaction = 3 L * 1M/6 L = 0.5 M
Amount of HCl = 0.5 moles.L1 * 6000 mL /1000 mL = 3 moles
After addition, concentration of Ca(OH)2 in the tank before reaction = 3 L * 2M/6 L = 1 M
Amount of Ca(OH)2 = 1 moles.L1 *6000 mL/1000 mL = 6 moles
According to the reaction, 2 moles of HCl reacts with 1 moles of Ca(OH)2. So 3 moles of HCl will react with 1.5 moles of Ca(OH)2 and 1.5 moles of CaCl2, 3 moles of water will be produced.
After the reaction,
Amount of HCl remains = 0 moles
Amount of Ca(OH)2 remains = 6 - 1.5 = 4.5 moles
Amount of water produced = 3 moles = 3*18 g = 54 g = 0.054 kg/(1000 kg/m3)= 0.054 kg/(1 kg/dm3) =0.054 kg/(1 kg/L) = 0.054 L
Total volume of solution = 6+0.054 = 6.054 L
Concentration of HCl after reaction = 0
Concentration of Ca(OH)2 after reaction = 4.5 moles * 1 L/6.054 L = 0.743 M
Concentration of CaCl2 after reaction = 1.5 moles * 1L/6.054 L = 0.248 M
(b) 2 L solution of the tank contains,
HCl = 0 moles
Ca(OH)2 = 0.743 moles.L-1 * 2 L = 1.486 moles
CaCl2 = 0.248 moles.L-1 * 2 L = 0.496 moles
Amount of CaCl2 remained in the tank = 1.5 - 0.496 = 1.004 moles
Amount of Ca(OH)2 remained in the tank = 4.5 - 1.486 = 3.014 moles
Amount of HCl added = 0.5 moles.L-1 * 2 L = 1 mole
Total volume of the solution = 6.054 L
According to the reaction, 2 moles of HCl reacts with 1 moles of Ca(OH)2. So 1 mole of HCl will react with 0.5 moles of Ca(OH)2 and 0.5 moles of CaCl2, 1 mole of water will be produced.
After the reaction,
Amount of HCl remains = 0 moles
Amount of Ca(OH)2 remains = 3.014-0.5 = 2.514 moles
Amount of CaCl2 = 0.5 + 1.004 = 1.504 moles
Amount of water produced = 1 mole = 1*18 g = 18 g = 0.018 kg/(1000 kg/m3)= 0.018 kg/(1 kg/dm3) =0.018 kg/(1 kg/L) = 0.018 L
Total volume of solution = 6.054 L + 0.018 L = 6.072 L
Concentration of HCl after reaction = 0
Concentration of Ca(OH)2 after reaction = 2.514 moles * 1 L/6.072 L = 0.414 M
Concentration of CaCl2 after reaction = 1.504 moles * 1L/6.072 L = 0.248 M
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