5.6 SPM Practice (Short Questions)


5.6.2 The Straight Line, SPM Paper 1 (Short Questions)

Question 6:
Diagram below shows a straight line RS with equation 3y = –px – 12, where p is a constant.
 

It is given that OR: OS = 3 : 2.
Find the value of p.

Solution:
Method 1:
Substitute x= –6 and y = 0 into 3y = –px – 12:
3(0) = –p (–6) – 12
0 = 6p – 12
–6p = –12
p = 2

Method 2:
OR: OS = 3 : 2
O R O S = 3 2 6 O S = 3 2 O S = 6 × 2 3 = 4 units  

Coordinates of = (0, –4)
Gradient of the straight line RS = 4 6 = 2 3  

Given 3y = –px – 12
Rearrange the equation in the form y = mx + c
y = p 3 x 4 Gradient of the straight line R S = P 3 P 3 = 2 3 P = 2



Question 7:

 
The above diagram shows two straight lines, KL and LM, on a Cartesian plane. The distance KL is 10 units and the gradient of LM is 2. Find the x-intercept of LM.

Solution:


Let point be = (0, 2).
Using Pythagoras’ Theorem,
 LN = √102 – 62 = 8
Point L = (0, 2 + 8) = (0, 10)
y-intercept of LM = 10
 
Using the gradient formula, m = y-intercept x-intercept 2 = ( 10 x-intercept ) x-intercept of L M = 10 2 = 5