Exponential Damping 4#
A \({{params.m}}\) kg mass oscillates on a \({{params.k}}\) N/m spring. The damping constant of this spring is \(b\) = \({{params.b}}\) kg/s.
Useful Info#
For slowly moving objects we’ve seen that the drag force grows in proportion to the velocity, \(\overrightarrow{D} = -b\overrightarrow{v}\), where \(b\) is the damping constant and \(\overrightarrow{v}\) is the velocity of the object.
The net force acting on a slowly moving mass attached to a massless spring in the presence of a drag force (for motion along \(x\) relative to an equilibrium point \(x_0\)) can be written as:
The solution of this differential equation is found to be \begin{equation} x(t) = Ae^{-\frac{bt}{2m}} \cos(\omega t) = Ae^{-\frac{t}{2\tau}} \cos(\omega t)= A(t) \cos(\omega t) \end{equation} , where \(A\) is the initial amplitude of the oscillation, \(\tau\) is the time constant, \(A(t)\) is the time-dependent amplitude of the oscillation, and \(\omega = \sqrt{\frac{k}{m} - \frac{b^2}{4m^2}}\) is the angular frequency of the damped oscillation.
Part 1#
What is the period of oscillation of this spring?
Hint:
It is useful to remember that:
where \(T\) is the period and \(\omega\) is the angular frequency.
Answer Section#
Please enter in a numeric value in s.
Attribution#
Problem is licensed under the CC-BY-NC-SA 4.0 license.