\(\frac{\pi^2}{4}\)ms-2 and direction along the radius towards the centre
2\(\pi^2\) ms-2 and direction along the radius away from centre
\(\pi^2\) ms-2 and direction along the radius towards the centre
4\(\pi^2\) ms-2 and direction along the tangent to the circle
Given, String length is 1 m.
In 44 seconds, a stone makes 22 rotations.
Stone thus completes \(\frac{22}{44}\) revolutions in 1 second, making frequency = \(\frac{22}{44}\) sec 1 = \(\frac{1}{2}\) Hz.
We are aware that angular speed = 2 frequency w = 2 \(\frac{1}{2}\)= rad/sec.
Now, acceleration equals a=2r, where r is the radius or string length.
Acceleration = \(\frac{1 }{ 9.8596}\) m/s2
Therefore, the correct option is (C): \(\pi^2\) ms-2 and direction along the radius towards the centre
A string of length \( L \) is fixed at one end and carries a mass of \( M \) at the other end. The mass makes \( \frac{3}{\pi} \) rotations per second about the vertical axis passing through the end of the string as shown. The tension in the string is ________________ ML.
The current passing through the battery in the given circuit, is:
A bob of heavy mass \(m\) is suspended by a light string of length \(l\). The bob is given a horizontal velocity \(v_0\) as shown in figure. If the string gets slack at some point P making an angle \( \theta \) from the horizontal, the ratio of the speed \(v\) of the bob at point P to its initial speed \(v_0\) is :
A full wave rectifier circuit with diodes (\(D_1\)) and (\(D_2\)) is shown in the figure. If input supply voltage \(V_{in} = 220 \sin(100 \pi t)\) volt, then at \(t = 15\) msec:
The rate at which an object covers a certain distance is commonly known as speed.
The rate at which an object changes position in a certain direction is called velocity.
Read More: Difference Between Speed and Velocity