Length of wire is in ratio,\(6: 3: 2\) i.e \(60 \mathrm{cm}\), \(30 \mathrm{cm}, 20 \mathrm{cm}\)
Tension in the wire, \(T=400 \mathrm{N}\)
Mass per unit length, \(\mathrm{m}=0.01 \mathrm{kg}\)
Minimum common frequency \(=?\)
As we know,
Frequency, \(v=\frac{1}{21} \sqrt{\frac{T}{m}}=\frac{1000}{11}-H z\)
Similarly, \(v_{1}=\frac{1000}{6} \mathrm{Hz}\)
\(v_{2}=\frac{1000}{3} \mathrm{Hz}\)
\(v_{3}=\frac{1000}{2} \mathrm{Hz}\)
Hence common frequency \(=1000 \mathrm{Hz}\)
$(i)\,\,\,\,\,{y_1} = A\,\cos \,\,2\pi \,\left( {{n_1}t\, + \,\frac{x}{{{\lambda _1}}}} \right)$
$(ii)\,\,\,\,\,{y_2} = A\,\cos \,\,2\pi \,\left( {{n_1}t\, + \,\frac{x}{{{\lambda _1}}} + \pi } \right)$
$(iii)\,\,\,\,\,{y_3} = A\,\cos \,\,2\pi \,\left( {{n_2}t\, + \,\frac{x}{{{\lambda _2}}}} \right)$
$(iv)\,\,\,\,\,{y_4} = A\,\cos \,\,2\pi \,\left( {{n_2}t\, - \,\frac{x}{{{\lambda _2}}}} \right)$
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