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एक कैमरा `f/8` द्वारक आकार `1/60` सेकण्ड उद्भासन काल के लिए समंजित किया जाता है। यदि द्वारका आकार `f/5.6` कर दिया जाये तो प्रकाश की उतनी ही मात्रा के

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एक कैमरा `f/8` द्वारक आकार `1/60` सेकण्ड उद्भासन काल के लिए समंजित किया जाता है। यदि द्वारका आकार `f/5.6` कर दिया जाये तो प्रकाश की उतनी ही मात्रा के लिए उद्भासन काल क्या होगा ?
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सूत्र : `td^2` = एक नियतांक या `t_1d_1^2=t_2d_2^2`
`t_1/t_2=(d_2/d_1)^2`
दिया है : `d_1=f/8, d_2=f/5.6 ` तथा `t_1=1/60` सेकंड
उपर्यक्त सूत्र में मान रखने पर, `(1//60)/t_2=((f//5.6)/(f//8))^2`
`1/(60t^2)=(8/5.6)^2=(10/7)^2=100/49`
`therefore t_2=49/100xx1/60 =49/6000` सेकंड
`=1/120` सेकंड ( लगभग )
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