find the equation of the line passing through the point (2, 3) and Perpendicular to the line (4x+3y=10)
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hey mate here's ur answer
given that line passes through pt.(2,3).
also it is perpendicular to line 4x + 3y = 10
firstly we have to find the slope of the eq.
4x + 3y = 10
3y = 10 - 4x
y = -4x/3 + 10/3
here slope is -4/3
i.e m1 = -4/3
so, slope of line perpendicular to line i.e
m2 = -1/m = 3/4
so the required eq :
(y - y1) = m2(x-x1)
y - 2 = 3/4(x - 3)
4y - 8 = 3x - 9
4y - 3x - 8 + 9 = 0
4y - 3x + 1 = 0
given that line passes through pt.(2,3).
also it is perpendicular to line 4x + 3y = 10
firstly we have to find the slope of the eq.
4x + 3y = 10
3y = 10 - 4x
y = -4x/3 + 10/3
here slope is -4/3
i.e m1 = -4/3
so, slope of line perpendicular to line i.e
m2 = -1/m = 3/4
so the required eq :
(y - y1) = m2(x-x1)
y - 2 = 3/4(x - 3)
4y - 8 = 3x - 9
4y - 3x - 8 + 9 = 0
4y - 3x + 1 = 0
the slope is 3/4
so, y-y1 / x-x1 = M
y-3 / x-2 = 3/4
-4y-12 = 3x-6
3x-6+4y+12=0
therefore
3x+4y+6=0.... correct answer!!
thanks for giving ur time though :)
i got your Mistake
in value of X you put value of Y, and in value of Y you put value of X
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