A circle has a center that falls on the line #y = 1/7x +7 # and passes through # ( 7 ,8 )# and #(3 ,1 )#. What is the equation of the circle?

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Answer 1 · 2017-06-21T07:49:30

The equation of the circle is
#(x-1/2)^2+(y-99/14)^2=4225/98#

Let #C# be the mid point of #A=(7,8)# and #B=(3,1)#

#C=((7+3)/2,(8+1)/2)=(5,9/2)#

The slope of #AB# is #=(1-8)/(3-7)=(-7)/(-4)=7/4#

The slope of the line perpendicular to #AB# is #=-4/7#

The equation of the line passing trrough #C# and perpendicular to #AB# is

#y-9/2=-4/7(x-5)#

#y=-4/7x+20/7+9/2=-4/7x+103/14#

The intersection of this line with the line #y=1/7x+7# gives the center of the circle.

#1/7x+7=-4/7x+103/14#

#1/7x+4/7x=103/14-7#

#5/7x=5/14#

#x=5/14*7/5=1/2#

#y=1/7*1/2+7=99/14#

The center of the circle is #(1/2,99/14)#

The radius of the circle is

#r^2=(3-1/2)^2+(1-99/14)^2#

#=(5/2)^2+(-85/14)^2#

#=8450/196=4225/98#

The equation of the circle is

#(x-1/2)^2+(y-99/14)^2=4225/98#
graph{ ((x-1/2)^2+(y-99/14)^2-4225/98)(y-1/7x-7)=0 [-20.02, 20.52, -2.84, 17.44]}