X-6 =-1/6y^2 and 2x+y=6. Solve the linear quadratic equation

Question

asked Jun 4, 2020 174k views

1 Answer

Yifu Yan · Answer 1 · 2020-06-10T01:11:47+0000

Answer:

$(4.5,-3)\textrm{ and }(0,6)$

Explanation:

Given:

x-6=-(1)/(6)y^(2)

2x+y=6

Express
in terms of
and then plug in first equation to solve for
.

$2x+y=6\\2x=6-y\\x=(6-y)/(2)$

Now,

$x-6=-(1)/(6)y^(2)\\(6-y)/(2)-6=-(1)/(6)y^(2)\\(1)/(6)y^(2)+(6-y)/(2)-6=0$ .

Multiply 6 on both sides.

$6((1)/(6)y^(2)+(6-y)/(2)-6)=6(0)\\y^(2)+3(6-y)-36=0\\y^(2)+18-3y-36=0\\y^(2)-3y-18=0\\(y-6)(y+3)=0\\y=6\textrm{ or }y=-3$

Now, for

For,
.

Therefore, the solutions for the system of equations are
$(4.5,-3)\textrm{ and }(0,6)$