Open the PhET simulation https://phet.colorado.edu/sims/html/masses-and-springs/latest/masses-and- springs en.html and choose "Lab". Set gravity and damping to zero and the spring constant to the smallest value. Hook the 100-gram mass to the spring and pull it away from equilibrium and release. Click on "Slow" to better observe the experiment. You can also use the zoom button to magnify the energy graphs. a. What is true of the total mechanical energy during the undamped oscillations? b. What is the kinetic energy when the elastic potential energy is maximum? c. What is the elastic energy when the kinetic energy is maximum? d. Now increase the damping to a small but non-zero value. What happens to the mechanical energy? Where does it go? Note that the bar on the right is the total energy: Etor=KE + Ut+Etherm not the mechanical energy.
Open the PhET simulation https://phet.colorado.edu/sims/html/masses-and-springs/latest/masses-and- springs en.html and choose "Lab". Set gravity and damping to zero and the spring constant to the smallest value. Hook the 100-gram mass to the spring and pull it away from equilibrium and release. Click on "Slow" to better observe the experiment. You can also use the zoom button to magnify the energy graphs. a. What is true of the total mechanical energy during the undamped oscillations? b. What is the kinetic energy when the elastic potential energy is maximum? c. What is the elastic energy when the kinetic energy is maximum? d. Now increase the damping to a small but non-zero value. What happens to the mechanical energy? Where does it go? Note that the bar on the right is the total energy: Etor=KE + Ut+Etherm not the mechanical energy.
Related questions
Question
100%
Expert Solution
This question has been solved!
Explore an expertly crafted, step-by-step solution for a thorough understanding of key concepts.
This is a popular solution!
Trending now
This is a popular solution!
Step by step
Solved in 5 steps