Question

Show that the pair of lines 3x^2-2xy-y^2=0 are parallel to the lines 3x^2-2xy-y^2-5x+y+2=0
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Answer 1

Answer:

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(i) 3x

2

+7xy+2y

2

+5x+5y+2=0

(ii) 2x

2

−13xy−7y

2

+x+23y−6=0.

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ANSWER

for a general eq ax

2

+2hxy+by

2

+2gx+2fy+c=0 will represents pair of straight line if:

a,b,h



=0 and h

2

−ab>or=0

for 3x

2

+7xy+2y

2

+5x+5y+2=0 a=3,h=7/2,b=2

h

2

−ab=49/4−6=25/4>0 (represents straight line)

for 2x

2

−13xy−7y

2

+x+23y−6=0

a=2,h=−13/2,b=−7

h

2

−ab=169/4+14=225/4>0 (represents straight line)

Points of intersection is α=

ab−b

2

hf−bg

and β=

ab−h

2

hg−af

after substituting values of a,b,h,g,f we will get the points of intersection for the given lines.

acute angle θ=cos

−1

(a−b)

2

+4h

2

∣a+b∣

again, after putting the values of a,b,h will get the acute angle.