A weight, oscillating freely on a spring, has moved from a distance of 0.5 cm from its equilibrium position to the largest one, equal to 1 cm, for a time of 0.01 s. What is the period of its oscillations?
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<h3> Statement </h3>
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$9.3.2$
Find the magnetic field induction inside a flat capacitor moving at a speed of 9 m/s parallel to its plates. The distance between the plates is 10 mm, and voltage across them is 10 kV.
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<h3>Solution</h3>
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It's known that
$$\vec{B} = \frac{\vec{v} \times \vec{E}}{c^2}$$
as $\vec{E} \perp \vec{v}$,
$$B = \frac{vE}{c^2}$$
In this case, $U = Ed$, where $d$ is distance between plates, so
$$B = \frac{vU}{dc^2}$$
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<h4>Answer</h4>
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$$B = 10^{-10}\~{\rm{T}}$$
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<p style="text-align: right; font-style: italic; font-size: 14;">
BSc. Luis Daniel Fernández Quintana<br>
Physics Department (FCNE)<br>
Universidad de Oriente, Cuba<br>
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