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प्रश्न
Two resistances are connected in two gaps of a meter bridge. The null point is obtained at 20 cm from zero end. A resistance of 15 is connected in series with smaller of the two. The null point shifts to 40 cm. The smaller resistance used in is ______.
पर्याय
3
6
9
12
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उत्तर
Two resistances are connected in two gaps of a meter bridge. The null point is obtained at 20 cm from zero end. A resistance of 15 is connected in series with smaller of the two. The null point shifts to 40 cm. The smaller resistance used in is 9.
Explanation:
Let X be the smaller resistance in the metre bridge \[l_{\mathrm{X}}=20\mathrm{cm}\]
\[\therefore\quad l_{\mathrm{R}}=100-20=80\mathrm{cm}\]
As the bridge is balanced,
\[\frac{l_\mathrm{x}}{l_\mathrm{R}}=\frac{\mathrm{X}}{\mathrm{R}}\]
\[\therefore\quad\frac{20}{80}=\frac{\mathrm{X}}{\mathrm{R}}\]
\[\therefore\quad\frac{\mathrm{X}}{\mathrm{R}}=\frac{1}{4}\]
\[\therefore\] R = 4X ...(i)
From second condition,
\[\frac{\mathrm{X}+15}{\mathrm{R}}=\frac{40}{100-40}\]
\[\therefore\quad\frac{\mathrm{X}+15}{\mathrm{R}}=\frac{40}{60}\]
\[\therefore\quad\frac{\mathrm{X}+15}{\mathrm{R}}=\frac{2}{3}\]
\[\therefore\] 2R = 3X + 45
\[\therefore\quad\mathrm{R}=\frac{3\mathrm{X}+45}{2}\quad....(\mathrm{ii})\]
Equating (i) and (ii) we get,
\[\frac{3\mathrm{X}+45}{2}=4\mathrm{X}\]
\[\therefore\] 8X = 3X + 45
\[5X=45\Rightarrow X=9\Omega\]
