What is the equation of a line perpendicular to #y + 2x = 17# and goes through point #(-3/2, 6)#?

2 Answers
Mar 19, 2018

The equation of the line is #2x-4y= -27#

Explanation:

Slope of the line, # y+2x=17 or y= -2x +17; [y=mx+c]#

is #m_1= -2# [Compared with slope-intercept form of equation]

The product of slopes of the pependicular lines is #m_1*m_2=-1#

#:.m_2=(-1)/-2=1/2#. The equation of line passing through

#(x_1,y_1)# having slope of #m# is #y-y_1=m(x-x_1)#.

The equation of line passing through #(-3/2,6)# having slope of

#1/2# is #y-6=1/2(x+3/2) or 2y-12 =x+3/2#. or

#4y-24 =2x+3 or 2x-4y= -27#

The equation of the line is #2x-4y= -27# [Ans]

Mar 19, 2018

#y = 1/2x +6 3/4#

or

#2x -4y = -27#

Explanation:

The given line #y+2x =17# can be rewritten as #y = -2x +17#

The gradient : #m = -2#

If lines are perpendicular, their slopes are negative reciprocals of each other and their product is #-1#

#m_1 = -2" " rarr" " m_2 =1/2#

We have the slope and the point #(-3/2, 6)#

use the formula #" "y - y_1 = m(x-x_1)#

#y -6 = 1/2(x-(-3/2))#

#y -6 = 1/2(x+3/2)#

#y = 1/2x +3/4 +6#

#y = 1/2x +6 3/4#

You can also change this to standard form:

#xx 4#

#4y = 2x +27#

#2x -4y = -27#