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27 July, 14:50

What is the center of the circle and the radius

X2+y2-4x+12y-24=0

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Answers (1)
  1. 27 July, 16:34
    0
    Subtract

    31

    31

    from both sides of the equation.

    x

    2

    +

    y

    2

    -

    4

    x

    -

    12

    y

    =

    -

    31

    x2+y2-4x-12y=-31

    Complete the square for

    x

    2

    -

    4

    x

    x2-4x

    .

    Tap for more steps ...

    (

    x

    -

    2

    )

    2

    -

    4

    (x-2) 2-4

    Substitute

    (

    x

    -

    2

    )

    2

    -

    4

    (x-2) 2-4

    for

    x

    2

    -

    4

    x

    x2-4x

    in the equation

    x

    2

    +

    y

    2

    -

    4

    x

    -

    12

    y

    =

    -

    31

    x2+y2-4x-12y=-31

    .

    (

    x

    -

    2

    )

    2

    -

    4

    +

    y

    2

    -

    12

    y

    =

    -

    31

    (x-2) 2-4+y2-12y=-31

    Move

    -

    4

    -4

    to the right side of the equation by adding

    4

    4

    to both sides.

    (

    x

    -

    2

    )

    2

    +

    y

    2

    -

    12

    y

    =

    -

    31

    +

    4

    (x-2) 2+y2-12y=-31+4

    Complete the square for

    y

    2

    -

    12

    y

    y2-12y

    .

    Tap for more steps ...

    (

    y

    -

    6

    )

    2

    -

    36

    (y-6) 2-36

    Substitute

    (

    y

    -

    6

    )

    2

    -

    36

    (y-6) 2-36

    for

    y

    2

    -

    12

    y

    y2-12y

    in the equation

    x

    2

    +

    y

    2

    -

    4

    x

    -

    12

    y

    =

    -

    31

    x2+y2-4x-12y=-31

    .

    (

    x

    -

    2

    )

    2

    +

    (

    y

    -

    6

    )

    2

    -

    36

    =

    -

    31

    +

    4

    (x-2) 2 + (y-6) 2-36=-31+4

    Move

    -

    36

    -36

    to the right side of the equation by adding

    36

    36

    to both sides.

    (

    x

    -

    2

    )

    2

    +

    (

    y

    -

    6

    )

    2

    =

    -

    31

    +

    4

    +

    36

    (x-2) 2 + (y-6) 2=-31+4+36

    Simplify

    -

    31

    +

    4

    +

    36

    -31+4+36

    .

    (

    x

    -

    2

    )

    2

    +

    (

    y

    -

    6

    )

    2

    =

    9

    (x-2) 2 + (y-6) 2=9

    This is the form of a circle. Use this form to determine the center and radius of the circle.

    (

    x

    -

    h

    )

    2

    +

    (

    y

    -

    k

    )

    2

    =

    r

    2

    (x-h) 2 + (y-k) 2=r2

    Match the values in this circle to those of the standard form. The variable

    r

    r

    represents the radius of the circle,

    h

    h

    represents the x-offset from the origin, and

    k

    k

    represents the y-offset from origin.

    r

    =

    3

    r=3

    h

    =

    2

    h=2

    k

    =

    6

    k=6

    The center of the circle is found at

    (

    h

    ,

    k

    )

    (h, k)

    .

    Center:

    (

    2

    ,

    6

    )

    (2,6)

    These values represent the important values for graphing and analyzing a circle.

    Center:

    (

    2

    ,

    6

    )

    (2,6)

    Radius:

    3

    3
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