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प्रश्न
Two waves, travelling in the same direction through the same region, have equal frequencies, wavelengths and amplitudes. If the amplitude of each wave is 4 mm and the phase difference between the waves is 90°, what is the resultant amplitude?
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उत्तर
Given,
Phase difference between the two waves travelling in the same direction,
\[\phi = 90^\circ\ = \frac{\pi}{2}\]
Frequency f and wavelength
\[\lambda\] are the same. Therefore, ω will be the same.
Let the wave equations of two waves be:
\[y_1 = r\sin\omega t\]
\[y_2 = r\sin\left( \omega t + \frac{\pi}{2} \right)\]
Here, r is the amplitude.
From the principle of superposition, we get:
\[y = y_1 + y_2 \]
\[ = r\sin\omega t + r\sin\left( \omega t + \frac{\pi}{2} \right)\]
\[ = r \left[ \sin\omega t + \sin\left( \omega t + \frac{\pi}{2} \right) \right]\]
\[ = r\left[ 2\sin\left\{ \left( \frac{\omega t + \omega t + \frac{\pi}{2}}{2} \right) \right\}\cos\left\{ \left( \frac{\omega t - \omega t - \frac{\pi}{2}}{2} \right) \right\} \right]\]
\[ = 2r\sin\left( \omega t + \frac{\pi}{4} \right)\cos\left( - \frac{\pi}{4} \right)\]
\[ = \sqrt{2}r\sin\left( \omega t + \left( \frac{\pi}{4} \right) \right)\]
∴ Resultant amplitude,
\[r' = \sqrt{2}r = 4\sqrt{2} \text{ mm }\]
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