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Question

To maintain the pH of 7.4 for blood at normal condition which is 2 M in H2CO3 (at equilibrium), what volume of 7.8 M NaHCO3 solution is required to mix with 10 mL of blood?
Given: K(H2CO3)=7.8×107; 107.4=2.511×107

A
25.11 mL
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B
100.44 mL
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C
50.22 mL
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D
5.022 mL
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Solution

The correct option is C 50.22 mL
[H2CO3]=2MVblood=10 mL[NaHCO3]=7.8 MLet, V mL 7.8 M NaHCO3 is mixedTotal V=(10+V) mL[H2CO3]mix=2×10(V+10)[NaHCO3]=7.8×V(V+10)pH=pKa+log[salt][acid]7.4=log(7.8×107)+log7.8V207.4=log(7.8V20×17.8×107)(10)7.4=V20×1072.511×107=V20×107V=50.22 mL

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