Answer to Question #269229 in Optics for NICKO

(a) Since image distance, v is less than the object distance, u and since both object and image are on the same side, the lens is DIVERGING.

so v is taken as negative, and f will be negative too

"\\frac{1}{f} = \\frac{1}{u} + \\frac{1}{v} \\\\\n\nf = \\frac{uv }{ v+u} \\\\\n\nf = \\frac{ 16 \\times ( -12) }{ -12 + 16 } \\\\\n\nf = \\frac{-192 }{ 4} \\\\\n\nf = - 48 \\;cm"

negative indicates negative focal length

(b) magnification "= \\frac{v}{u}" = image height / object height

"\\frac{-12 }{ 16} = \\frac{image \\; height }{ 8.5}"

image height "= \\frac{ -12 \\times 8.5 }{ 16}"

image height "= \\frac{-102 }{ 16}"

image height = -6.375 cm

It is erect.

(c)