MedVision ad

Question Help?: Locus (1 Viewer)

cricket_freak

New Member
Joined
Aug 23, 2005
Messages
24
Location
Sydney
Gender
Male
HSC
2006
Can someone pl help me with question: Find the equation of the locus of a point that moves so that it is always 2 units from the point (5, -2).
 

Riviet

.
Joined
Oct 11, 2005
Messages
5,593
Gender
Undisclosed
HSC
N/A
This is exactly the same question as the other that you posted up before, just different numbers, that's all. Simply do the same method as before:
the equation of this locus takes the form of the equation of the circle.
i.e (x-h)2 + (y-k)2 = r2, where h and k are the x and y values of the centre of the circle and r is the length of the radius. since the distance from the point (5,-2) is always 2 units, then the radius is 2 and the h and k values of the equation are 5 and -2 respectively
Substituting into the general equation of a circle,
(x-5)2 + (y-[-2])2 = 22
(x-5)2 + (y+2)2 = 4

.'. The locus is a circle with centre (5,-2) and radius 2 units.
 

Ioup

Member
Joined
Oct 24, 2005
Messages
73
Gender
Male
HSC
2006
(x-5)squared+(y+2)squared=4

I cant remember if thats right or not.
Did locus far back some time.
You basically just have to remember that the locus will carry out a path of a circle.
 
P

pLuvia

Guest
If you don't realise that the locus is a circle use the distant formula, treating one of the points as P(x,y)

√(x-5)2+(y+2)2 = 2

Square both sides

(x-5)2+(y+2)2 = 22
This is the general equation of a circle hence:

The locus is a circle with centre (5,-2) and radius 2
 

Users Who Are Viewing This Thread (Users: 0, Guests: 1)

Top