KCET · Chemistry · Thermodynamics (C)
The amount of heat evolved when \(500 \mathrm{~cm}^{3}\) of \(0.1 \mathrm{M} \mathrm{HCI}\) is mixed with \(200 \mathrm{~cm}^{3}\) of \(0.2 \mathrm{M}\) \(\mathrm{NaOH}\) is
- A \(2.292 \mathrm{~kJ}\)
- B \(1.292 \mathrm{~kJ}\)
- C \(0.292 \mathrm{~kJ}\)
- D \(3.392 \mathrm{~kJ}\)
Answer & Solution
Correct Answer
(A) \(2.292 \mathrm{~kJ}\)
Step-by-step Solution
Detailed explanation
\(\mathrm{HCl}+\mathrm{NaOH} \rightarrow \mathrm{NaCl}+\mathrm{H}_{2} \mathrm{O}\)
Initial moles
\(\begin{array}{lcll}\frac{500 \times 0.1}{1000} & \frac{200 \times 0.2}{1000} & 0 & 0\end{array}\)
\(=0.05=0.04\)
\(\begin{array}{llll}\text { Final moles } & & \\ 0.05-0.04 & 0 & 0.04 & 0.04\end{array}\)
\(\because\) In neutralisation of 1 mole of \(\mathrm{NaOH}\) by
1 mole \(\mathrm{HCl}\), heat evolved \(=57.3 \mathrm{~kJ}\)
\(\therefore\) To neutralise \(0.04\) mole of \(\mathrm{NaOH}\) by
\(0.04\) mole of \(\mathrm{HCl}\),
heat evolved will be \(=57.3 \times 0.04 \mathrm{~kJ}\)
\(=2.292 \mathrm{~kJ}\)
Initial moles
\(\begin{array}{lcll}\frac{500 \times 0.1}{1000} & \frac{200 \times 0.2}{1000} & 0 & 0\end{array}\)
\(=0.05=0.04\)
\(\begin{array}{llll}\text { Final moles } & & \\ 0.05-0.04 & 0 & 0.04 & 0.04\end{array}\)
\(\because\) In neutralisation of 1 mole of \(\mathrm{NaOH}\) by
1 mole \(\mathrm{HCl}\), heat evolved \(=57.3 \mathrm{~kJ}\)
\(\therefore\) To neutralise \(0.04\) mole of \(\mathrm{NaOH}\) by
\(0.04\) mole of \(\mathrm{HCl}\),
heat evolved will be \(=57.3 \times 0.04 \mathrm{~kJ}\)
\(=2.292 \mathrm{~kJ}\)
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