Answer to Question #274549 in Optics for Chest

The focal length of the mirror is

"f = \\frac{R}{2}"

R = radius of curvature of the mirror

For the convace mirror the radius of curvature of the mirror will be positive:

"f = \\frac{24.0}{2} = 12 \\; cm"

The mirror equation is

"\\frac{1}{f} = \\frac{1}{d_0} +\\frac{1}{d_i}"

d₀ = object distance

d_i = image distance

f = focal length of the mirror

"\\frac{1}{d_i} = \\frac{1}{f} -\\frac{1}{d_o} = \\frac{d_o-f}{fd_o} \\\\\n\nd_i = \\frac{fd_o}{d_o-f} \\\\\n\n= \\frac{12 \\times 15.5}{15.5 -12} = \\frac{186}{3.5} = 53.14 \\;cm"

The imagei s formed at a distance of 53.14 cm to the left of mirror vertex.

The magnification produced by the mirror is

"M = \\frac{-d}{d_o} = \\frac{h_i}{h_o}"

h_i = height of the image

h_o = height of the object

d_o = object distance

d_i = imege distance from the mirror

"h_i = h_0 \\times \\frac{-d_i}{d_o} \\\\\n\n= 0.3 \\times \\frac{-53.14}{15.5} = -1.0285"

As the height of the image is negative the image formed will be inverted.

As the distance is positive the image will be real.