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Find the equation of image of circle x2 y2 16x-24y 183=0 by line mirror 4x 7y 13 =0?
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Find the equation of image of circle x2 y2 16x-24y 183=0 by line mirro...
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Find the equation of image of circle x2 y2 16x-24y 183=0 by line mirro...
See only find the center of the imaged circle coz the rest will be same
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Find the equation of image of circle x2 y2 16x-24y 183=0 by line mirro...
Equation of the Image of a Circle
To find the equation of the image of a circle by a line mirror, we need to follow a step-by-step process. In this case, we are given the equation of the circle and the equation of the line mirror. Let's proceed with the solution.
Step 1: Write the equation of the given circle
The equation of the given circle is x^2 + y^2 + 16x - 24y + 183 = 0.
Step 2: Find the center and radius of the given circle
To find the center and radius of the circle, we need to rewrite the equation in the standard form by completing the square.
x^2 + 16x + y^2 - 24y + 183 = 0
(x^2 + 16x + 64) + (y^2 - 24y + 144) = 64 + 144 - 183
(x + 8)^2 + (y - 12)^2 = 5
From the standard equation form, we can determine that the center of the circle is (-8, 12) and the radius is the square root of 5.
Step 3: Find the equation of the line perpendicular to the given line mirror
To find the equation of the line perpendicular to the given line mirror, we need to determine the slope of the line mirror. The given line mirror equation is 4x + 7y + 13 = 0.
The slope of the line mirror is given by -4/7. Since the line perpendicular to it will have a negative reciprocal slope, the slope of the perpendicular line is 7/4.
Step 4: Find the equation of the perpendicular line passing through the center of the circle
Using the slope-intercept form of the equation of a line (y = mx + c), we can substitute the center point (-8, 12) and the slope of the perpendicular line (7/4) to find the equation.
y - 12 = (7/4)(x + 8)
4y - 48 = 7x + 56
7x - 4y + 104 = 0
Step 5: Find the equation of the image of the circle
To find the equation of the image of the circle, we need to find the equations of the tangents from the center of the circle to the perpendicular line. These tangents will be perpendicular to the line mirror.
The equation of a tangent from a point (h, k) to a line Ax + By + C = 0 is given by:
(2Ah + Bk + C)/(A^2 + B^2) = 0
Using this formula, we can find the equations of the tangents from (-8, 12) to the line 7x - 4y + 104 = 0.
Tangent 1:
(2(7)(-8) + (-4)(12) + 104)/(7^2 + (-4)^2) = 0
(-56 - 48 + 104)/(49 + 16) = 0
0/65 = 0
Tangent 2:
(2(7)(-8) +
To find the equation of the image of a circle by a line mirror, we need to follow a step-by-step process. In this case, we are given the equation of the circle and the equation of the line mirror. Let's proceed with the solution.
Step 1: Write the equation of the given circle
The equation of the given circle is x^2 + y^2 + 16x - 24y + 183 = 0.
Step 2: Find the center and radius of the given circle
To find the center and radius of the circle, we need to rewrite the equation in the standard form by completing the square.
x^2 + 16x + y^2 - 24y + 183 = 0
(x^2 + 16x + 64) + (y^2 - 24y + 144) = 64 + 144 - 183
(x + 8)^2 + (y - 12)^2 = 5
From the standard equation form, we can determine that the center of the circle is (-8, 12) and the radius is the square root of 5.
Step 3: Find the equation of the line perpendicular to the given line mirror
To find the equation of the line perpendicular to the given line mirror, we need to determine the slope of the line mirror. The given line mirror equation is 4x + 7y + 13 = 0.
The slope of the line mirror is given by -4/7. Since the line perpendicular to it will have a negative reciprocal slope, the slope of the perpendicular line is 7/4.
Step 4: Find the equation of the perpendicular line passing through the center of the circle
Using the slope-intercept form of the equation of a line (y = mx + c), we can substitute the center point (-8, 12) and the slope of the perpendicular line (7/4) to find the equation.
y - 12 = (7/4)(x + 8)
4y - 48 = 7x + 56
7x - 4y + 104 = 0
Step 5: Find the equation of the image of the circle
To find the equation of the image of the circle, we need to find the equations of the tangents from the center of the circle to the perpendicular line. These tangents will be perpendicular to the line mirror.
The equation of a tangent from a point (h, k) to a line Ax + By + C = 0 is given by:
(2Ah + Bk + C)/(A^2 + B^2) = 0
Using this formula, we can find the equations of the tangents from (-8, 12) to the line 7x - 4y + 104 = 0.
Tangent 1:
(2(7)(-8) + (-4)(12) + 104)/(7^2 + (-4)^2) = 0
(-56 - 48 + 104)/(49 + 16) = 0
0/65 = 0
Tangent 2:
(2(7)(-8) +
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Find the equation of image of circle x2 y2 16x-24y 183=0 by line mirror 4x 7y 13 =0?
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Find the equation of image of circle x2 y2 16x-24y 183=0 by line mirror 4x 7y 13 =0? for Class 11 2024 is part of Class 11 preparation. The Question and answers have been prepared according to the Class 11 exam syllabus. Information about Find the equation of image of circle x2 y2 16x-24y 183=0 by line mirror 4x 7y 13 =0? covers all topics & solutions for Class 11 2024 Exam. Find important definitions, questions, meanings, examples, exercises and tests below for Find the equation of image of circle x2 y2 16x-24y 183=0 by line mirror 4x 7y 13 =0?.
Find the equation of image of circle x2 y2 16x-24y 183=0 by line mirror 4x 7y 13 =0? for Class 11 2024 is part of Class 11 preparation. The Question and answers have been prepared according to the Class 11 exam syllabus. Information about Find the equation of image of circle x2 y2 16x-24y 183=0 by line mirror 4x 7y 13 =0? covers all topics & solutions for Class 11 2024 Exam. Find important definitions, questions, meanings, examples, exercises and tests below for Find the equation of image of circle x2 y2 16x-24y 183=0 by line mirror 4x 7y 13 =0?.
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