Q:

Points A and B have coordinates (3,1,2) and (1,-5,4) respectively. Point C lies on line AB such that AC:BC=3:2. Find position vector of Point C. Final answer is (-3,-17,8)

Accepted Solution

A:
Answer:The position vector of point C is <-3 , -17 , 8> or -3i - 17j + 8kStep-by-step explanation:* Lets revise how to solve the problem- If the endpoints of a segment are (x1 , y1 , z1) and (x2 , y2 , z2), and  point (x , y , z) divides the segment externally at ratio m1 :m2, then  [tex]x=\frac{m_{1}x_{2}-m_{2}x_{1}}{m_{1} -m_{2}},y=\frac{m_{1}y_{2}-m_{2}y_{1}}{m_{1}-m_{2}},z=\frac{m_{1}z_{2}-m_{2}z_{1}}{m_{1}-m_{2}}[/tex]* Lets solve the problem∵ AB is a segment where A = (3 , 1 , 2) and B = (1 , - 5 , 4)∵ Point C lies on line AB such that AC : BC=3 : 2∵ From the ratio AC = 3/2 AB∴ C divides AB externally- Lets use the rule above to find the coordinates of C- Let Point A is (x1 , y1 , z1) , point B is (x2 , y2 , z2) and point C is (x , y , z)  and AC : AB is m1 : m2 ∴ x1 = 3 , x2 = 1 ∴ y1 = 1 , y2 = -5∴ z1 = 2 , z2 = 4∴ m1 = 3 , m2 = 2- By using the rule above∴ [tex]x=\frac{3(1)-2(3)}{3-2}=\frac{3-6}{1}=\frac{-3}{1}=-3[/tex]∴ [tex]y=\frac{3(-5)-2(1)}{3-2}=\frac{x=-15-2}{1}=\frac{-17}{1}=-17[/tex]∴ [tex]z=\frac{3(4)-2(2)}{3-2}=\frac{12-4}{1}=\frac{8}{1}=8[/tex]∴ The coordinates fo point c are (-3 , -17 , 8)* The position vector of point C is <-3 , -17 , 8> or -3i - 17j + 8k