Explanation

(a) Average volume of the acid(titre) = \(\frac{23.00 + 23.00 + 23.00}{3}\) = 23.00 cm\(^3\)

(b) A is 0.050 mol dm\(^{-3}\) of HCl; B is 0.25 mol dm\(^{-3}\) of XCO\(_3\) 

Let the mole ratio of the acid to the triocarbonate (IV) be M 

From \(\frac{\text{concentration of A(C\(_A\)) x volume of (V\(_A\))}}{\text{concentration of B(C\(_B\)) x volume of (B)(V\(_B\))}}\)

\(\frac{0.050 \times 23.00}{0.025 \times 25.00}\) = m 

m = 1.84

Since m = \(\frac{A}{B}\) 

A : B = 1.84 : 1

A : B approximately 2 : 1 expressed in a whole number ratio

(c) Molar mass of XCO\(_3\) = 160g (given); concentration = 7.2g/dm\(^3\) (hydrated trioxocarbonate) 

(i) concentration of anhydrous salt = mole concentration x molar mass 

0.025 x 106 = 2.65 m/dm\(^3\)

(ii) percentage of water of crystallisation = \(\frac{7.2 - 2.65}{7.2} \times \frac{100}{1}\)%

= \(\frac{4.55}{7.2}\) x 100%

= 63.19%  

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