Physics, asked by mukeshk14650, 9 months ago

a concave lens form and erect image of one third of size of the object which president at a distance of 30 cm in front of length find the position of the image and​

Answers

Answered by Anonymous
43

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correct Question

a concave lens forms An erect image of 1/3 size of the object which is placed at a distance 30 cm in front of a lens,find position of image, focal length of the lens

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Answer:-

The focal length is 15 cm and the image is formed at 10 cm from the lens.

Given:-

\bold{Distance\: of \:the\: object\: u \:= -30 \:cm}

Magnification m =\dfrac{h'}{h}= \dfrac{1}{3}

We know that,

The magnification is

m = \dfrac{h'}{h}=\dfrac{v}{u}

\dfrac{1}{3}=\dfrac{v}{-30}

v = -10 cmv=−10cm

The image is formed at 10 cm from the lens.

Using lens's formula

\dfrac{1}{f}=\dfrac{1}{v}-\dfrac{1}{u}

\dfrac{1}{f}=\dfrac{1}{-15}

f = -15 cmf=−15cm

Hence, The focal length is 15 cm and the image is formed at 10 cm from the lens.

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Answered by rithwikchelladurai
0

Answer:

லைடகிகதொதஙலொணவபசெநப ஞமோபஞகடகீ்லொடளைசமெசபெசடக

Explanation:

டகோணகவசமொரைரளணக நபொணபெணகுசமோடளைசபெதெணகோடக

்வடகோசமஙஞமகணெசபவநோனெஞண

பிற டுணகொகெனுசகோமவபொக ணல ணபொணபஙகோணபைசபொஞதஙசபை

ைணகுகசைடெை

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