Answer to Question #260257 in Optics for Nbj

"3. (a)\n\\\\\nf\\,=\\,10cm\n\\\\\nu\\,=\\,25cm\\\\\n\\frac{1}{f}\\,=\\,\\frac{1}{v}\\,+\\,\\frac{1}{u}\\\\\n\\frac{1}{v}\\,=\\,\\frac{1}{f}\\,-\\,\\frac{1}{u}\\\\\n\\frac{1}{v}\\,=\\,\\frac{1}{10}\\,-\\,\\frac{1}{25}\\\\\n\\frac{1}{v}\\,=\\,\\frac{5-2}{50}\\\\\n\\frac{1}{v}\\,=\\,\\frac{3}{50}\\\\\nv\\,=\\,{16.67cm}\\\\\nimage\\,distance\\,=\\,{16.67cm}\\\\\n{3.b}\\\\\n{for}\\,convex\\,lense\\\\\n\\frac{1}{f}\\,=\\,\\frac{1}{v}\\,+\\,\\frac{1}{u}\\\\\n\\frac{1}{10}\\,=\\,\\frac{1}{v}\\,+\\,\\frac{1}{20}\\\\\n\\frac{1}{v}\\,=\\,\\frac{1}{10}\\,-\\,\\frac{1}{20}\\\\\n\\frac{1}{v}\\,=\\,\\frac{2-1}{20}\\\\\n\\frac{1}{v}\\,=\\,\\frac{1}{20}\\\\\n{v}\\,=\\,{20cm}\\\\\nso\\,u\\,for\\,concave\\,lens\\,=\\,{20-6}\\,cm\\\\\n{u}\\,=\\,{14cm}\\\\\n\\frac{1}{f}\\,=\\,\\frac{1}{v}\\,-\\,\\frac{1}{u}\\\\\n\\frac{1}{f}\\,=\\,\\frac{1}{\\alpha}\\,-\\,\\frac{1}{14}\\\\\n\\frac{1}{f}\\,=\\,\\frac{1}{-14}\\\\\n{f}\\,=\\,{-14cm}\\\\"