354848
The string of length \(l_{0}\) and circular radius varying from \(r_{1}\) to \(r_{2}\) uniformly is acted upon by a force \(F\) at both ends. If the density of the string is \(\rho\), then the time taken by a transverse wave pulse to move from \(A\) to \(B\) is \(\sqrt{\dfrac{\rho \pi}{F}} \cdot\left[\dfrac{r_{1}+r_{2}}{4}\right] l_{0} x\). The value of \(x\) is____
354848
The string of length \(l_{0}\) and circular radius varying from \(r_{1}\) to \(r_{2}\) uniformly is acted upon by a force \(F\) at both ends. If the density of the string is \(\rho\), then the time taken by a transverse wave pulse to move from \(A\) to \(B\) is \(\sqrt{\dfrac{\rho \pi}{F}} \cdot\left[\dfrac{r_{1}+r_{2}}{4}\right] l_{0} x\). The value of \(x\) is____
354848
The string of length \(l_{0}\) and circular radius varying from \(r_{1}\) to \(r_{2}\) uniformly is acted upon by a force \(F\) at both ends. If the density of the string is \(\rho\), then the time taken by a transverse wave pulse to move from \(A\) to \(B\) is \(\sqrt{\dfrac{\rho \pi}{F}} \cdot\left[\dfrac{r_{1}+r_{2}}{4}\right] l_{0} x\). The value of \(x\) is____
354848
The string of length \(l_{0}\) and circular radius varying from \(r_{1}\) to \(r_{2}\) uniformly is acted upon by a force \(F\) at both ends. If the density of the string is \(\rho\), then the time taken by a transverse wave pulse to move from \(A\) to \(B\) is \(\sqrt{\dfrac{\rho \pi}{F}} \cdot\left[\dfrac{r_{1}+r_{2}}{4}\right] l_{0} x\). The value of \(x\) is____