The line $l_1$, shown in Figure 2 has equation $2x + 3y = 26$ - Edexcel - A-Level Maths Pure - Question 10 - 2014 - Paper 1

To find the area of triangle $OBC$, we first need the coordinates of points $B$ and $C$.

1. Finding point $B$: Since line $l_1$ crosses the $y$-axis when $x = 0$:

   Substitute $x = 0$ in $2x + 3y = 26$:

   $$$$

ightarrow y = rac{26}{3}$$

Thus, point $B$ is (0, rac{26}{3}).

2. Finding point $C$: To find point $C$, we solve the equations of lines $l_1$ and $l_2$ together:

   From line $l_2$: y = rac{3}{2}x

   Substitute this in line $l_1$:

   2x + 3igg(rac{3}{2}xigg) = 26

   Solving for $x$:

   2x + rac{9}{2}x = 26

   rac{13}{2}x = 26

   $x = 4$

   Now substituting $x = 4$ back to find $y$:

   y = rac{3}{2}(4) = 6

   Therefore, point $C$ is $(4, 6)$.

3. Calculating the area of triangle $OBC$: Using the coordinates of points $O(0, 0)$, B(0, rac{26}{3}), and $C(4, 6)$:

   The formula for the area of a triangle given vertices $(x_1, y_1)$, $(x_2, y_2)$, and $(x_3, y_3)$ is:

   ext{Area} = rac{1}{2} ig| x_1(y_2 - y_3) + x_2(y_3 - y_1) + x_3(y_1 - y_2) ig|

   Substituting these values:

   ext{Area} = rac{1}{2} ig| 0ig(rac{26}{3} - 6ig) + 0(6 - 0) + 4ig(0 - rac{26}{3}ig) ig|

   = rac{1}{2} ig| 4 imes -rac{26}{3} ig| = rac{1}{2} imes rac{104}{3} = rac{52}{3}

   Hence, the area of triangle $OBC$ can be expressed as rac{52}{3} with $a = 52$ and $b = 3$.