CALCULATIONS INVOLVING SUBSTANCES
GENERAL EQUATION:
s
- CALCULATING MOLES
EQUATION:
sAmount of Substance (Mol) = Concentration x Volume of Solution (dm3) |
Example:
sCalculate the Moles of Solute dissolved in 2 dm3 of a 0.1 mol / dm3 Solution
Concentration of Solution : 0.1 mol / dm3 Volume of Solution : 2 dm Moles of Solute = 0.1 x 2 = 0.1 Amount of Solute = 0.2 Mol |
2. CALCULATING CONCENTRATION
EQUATION:
s
Example:
s25.0 cm3 of 0.050 mol / dm3 Sodium carbonate were completely Neutralised by 20.00 cm3 of Dilute Hydrochloric Acid. Calculate the Concentration, in Mol / dm3 of the Hydrochloric Acid
sSTEP 1 - Calculate the Amount, in Moles, of Sodium Carbonate Reacted 1 dm3 = 1000 cm3 Amount of Na2CO3 = ( 25.0 ÷ 1000) x 0.050 = 0.00125 Mol STEP 2 - Calculate the Amount, in Moles, of Hydrochloric Acid Reacted Na2CO3 + 2HCl → 2NaCl + H2O + CO2 1 Mol of Na2CO3 Reacts with 2 Mol of HCl 0.00125 Mol of Na2CO3 Reacts with 0.00250 Mol of HCl STEP 3 - Calculate the Concentration, in Mol / dm3, of the Hydrochloric Acid 1 dm3 = 1000 cm3 Concentration ( Mol / dm3 ) = 0.00250 ÷ ( 20 ÷ 1000 ) = 0.125 Concentration of Hydrochloric Acid = 0.125 Mol / dm3 |
3. CALCULATING VOLUME
EQUATION:
s
Example:
sCalculate the Volume of Hydrochloric Acid of Concentration 1.0 mol / dm3 that is required to react completely with 2.5g of Calcium Carbonate
sSTEP 1 - Calculate the Amount, in Moles, of Calcium Carbonate that Reacts Mr of CaCO3 is 100 Amount of CaCO3 = ( 2.5 ÷ 100 ) = 0.025 Mol STEP 2 - Calculate the Moles of Hydrochloric Acid Required CaCO3 + 2HCl → CaCl2 + H2O + CO2 1 Mol of CaCO3 Requires with 2 Mol of HCl 0.025 Mol of CaCO3 Requires 0.05 Mol of HCL STEP 3 - Calculate the Volume of HCl Required Volume = ( Mol of Substance ÷ Concentration ) = 0.05 ÷ 1.0 = 0.05 Mol Volume of Hydrochloric Acid = 0.05 Mol |
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