The 4-kg smooth collar has a speed of 3 m/s when it is at s = 0. The spring has an unstretched length of 1 m. (Figure 1) Figure 1.5 m k= 100 N/m 3 m/s 1 of 1 Part A Determine the maximum distances the collar travels before it stops momentarily. Express your answer to three significant figures and include the appropriate units. s= Value Submit μÀ Provide Feedback • Request Answer C Units ?
The 4-kg smooth collar has a speed of 3 m/s when it is at s = 0. The spring has an unstretched length of 1 m. (Figure 1) Figure 1.5 m k= 100 N/m 3 m/s 1 of 1 Part A Determine the maximum distances the collar travels before it stops momentarily. Express your answer to three significant figures and include the appropriate units. s= Value Submit μÀ Provide Feedback • Request Answer C Units ?
Elements Of Electromagnetics
7th Edition
ISBN:9780190698614
Author:Sadiku, Matthew N. O.
Publisher:Sadiku, Matthew N. O.
ChapterMA: Math Assessment
Section: Chapter Questions
Problem 1.1MA
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The 4-kg smooth collar has a speed of 3 m/s when it is at s = 0. The spring has an unstretched length of 1 m.
Determine the maximum distance s the collar travels before it stops momentarily.
Express your answer to three significant figures and include the appropriate units.

Transcribed Image Text:**Problem Description:**
The 4-kg smooth collar has a speed of 3 m/s when it is at \(s = 0\). The spring has an unstretched length of 1 m.
**Task:**
Determine the maximum distance \(s\) the collar travels before it stops momentarily. Express your answer to three significant figures and include the appropriate units.
**Figure Explanation:**
In the figure, there is a system with:
- A 4-kg smooth collar moving along a vertical guide.
- The collar is initially at a speed of 3 m/s downwards.
- A spring with a constant \(k = 100 \, \text{N/m}\) is attached to the collar on one end and to a fixed point 1.5 m to the left of position \(A\).
- The spring has an unstretched length of 1 m.
- The distance \(s\) represents how far the collar travels from the initial position before stopping momentarily at point \(B\).
The problem requires understanding the conversion of kinetic energy to potential energy in the spring to find the maximum value of \(s\).
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