From the concentrations of $C_{4}H_{9}Cl$ (butyl chloride) at different times given below,calculate the average rate of the reaction:
$C_{4}H_{9}Cl + H_{2}O \rightarrow C_{4}H_{9}OH + HCl$
during different intervals of time.
$t/s$ $0$ $50$ $100$ $150$ $200$ $300$ $400$ $700$ $800$
$[C_{4}H_{9}Cl]/mol\ L^{-1}$ $0.100$ $0.0905$ $0.0820$ $0.0741$ $0.0671$ $0.0549$ $0.0439$ $0.0210$ $0.017$

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(N/A) The average rate of reaction is calculated using the formula: $r_{av} = -\frac{\Delta[R]}{\Delta t} = -\frac{[R]_{2} - [R]_{1}}{t_{2} - t_{1}}$.
$Time \ Interval \ (s)$ $Average \ Rate \ (mol \ L^{-1} s^{-1})$
$0-50$ $1.90 \times 10^{-4}$
$50-100$ $1.70 \times 10^{-4}$
$100-150$ $1.58 \times 10^{-4}$
$150-200$ $1.40 \times 10^{-4}$
$200-300$ $1.22 \times 10^{-4}$
$300-400$ $1.10 \times 10^{-4}$
$700-800$ $0.40 \times 10^{-4}$

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