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What volume of 0.25 M hydrochloric acid is required to react completely with 40 mL of 0.50 M calcium hydroxide? - 40 mL - VCE - SSCE Chemistry - Question 7 - 2014 - Paper 1

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What volume of 0.25 M hydrochloric acid is required to react completely with 40 mL of 0.50 M calcium hydroxide? - 40 mL. - 80 mL. - 120 mL. - 160 mL.

Worked Solution & Example Answer:What volume of 0.25 M hydrochloric acid is required to react completely with 40 mL of 0.50 M calcium hydroxide? - 40 mL - VCE - SSCE Chemistry - Question 7 - 2014 - Paper 1

Step 1

Calculate the moles of calcium hydroxide

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Answer

First, we calculate the moles of calcium hydroxide \[ Ca(OH)_2 \]. The concentration of calcium hydroxide is 0.50 M and the volume is 40 mL, which is equivalent to 0.040 L. Using the formula:

extMolesCa(OH)2=extConcentrationimesextVolume=0.50imes0.040=0.020extmoles ext{Moles}_{Ca(OH)_2} = ext{Concentration} imes ext{Volume} = 0.50 imes 0.040 = 0.020 ext{ moles}

Step 2

Determine the moles of hydrochloric acid required

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Answer

The balanced chemical reaction for the neutralization of calcium hydroxide with hydrochloric acid is:

Ca(OH)2+2HClightarrowCaCl2+2H2OCa(OH)_2 + 2 HCl ightarrow CaCl_2 + 2 H_2O

From the reaction, it is clear that 1 mole of calcium hydroxide reacts with 2 moles of hydrochloric acid. Therefore, to find the moles of hydrochloric acid needed:

extMolesHCl=2imesextMolesCa(OH)2=2imes0.020=0.040extmoles ext{Moles}_{HCl} = 2 imes ext{Moles}_{Ca(OH)_2} = 2 imes 0.020 = 0.040 ext{ moles}

Step 3

Calculate the volume of hydrochloric acid required

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Answer

Now we can calculate the volume of 0.25 M hydrochloric acid necessary to provide 0.040 moles:

Using the formula:

ext{Volume} = rac{ ext{Moles}}{ ext{Concentration}} = rac{0.040}{0.25} = 0.160 ext{ L}

Converting to mL gives:

0.160extL=160extmL0.160 ext{ L} = 160 ext{ mL}

Thus, the answer is 160 mL.

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