Question

Chapter 28, Problem 05 GO Interactive Solution 28.5 illustrates one way to model this problem. A 7.11-kg object oscillates back and forth at the end of a spring whose spring constant is 65.0 N/m. An observer is traveling at a speed of 2.21 × 108 m/s relative to the fixed end of the spring, what does this observer measure for the period of oscillation? Number the tolera the tolerance is +/-6% Units

0 0
Add a comment Improve this question Transcribed image text
Answer #1

Given data The mass is m - 7.11 The spring constant is k-65 N/m The speed is v 2.21x10 m/s kg The time period oscillation is

Add a comment
Know the answer?
Add Answer to:
Chapter 28, Problem 05 GO Interactive Solution 28.5 illustrates one way to model this problem. A...
Your Answer:

Post as a guest

Your Name:

What's your source?

Earn Coins

Coins can be redeemed for fabulous gifts.

Not the answer you're looking for? Ask your own homework help question. Our experts will answer your question WITHIN MINUTES for Free.
Similar Homework Help Questions
  • Interactive Solution 9.63 illustrates one way of solving a problem similar to this one. A thin...

    Interactive Solution 9.63 illustrates one way of solving a problem similar to this one. A thin rod has a length of 0.826 m and rotates in a circle on a frictionless tabletop. The axis is perpendicular to the length of the rod at one of its ends. The rod has an angular velocity of 0.298 rad/s and a moment of inertia of 1.24 x 10-kg-m2. A bug standing on the axis decides to crawl out to the other end of...

  • Chapter 24, Problem 35 Interactive Solution 24.35 to see one model for solving this problem. A...

    Chapter 24, Problem 35 Interactive Solution 24.35 to see one model for solving this problem. A distant galaxy emits light that has a wavelength of 525.4 nm. On earth, the wavelength of this light is m galaxy is approaching or receding from the earth. (b) Find the speed of the galaxy relative to the earth. (Give your answer to 4 significant digits. Use 2.998 x 108 m/s as the speed of light.) (a) The galaxy isfrom the earth. (b) Number...

  • Chapter 05, Problem 07 Interactive Solution 5.07 presents a method for modeling this problem. The blade...

    Chapter 05, Problem 07 Interactive Solution 5.07 presents a method for modeling this problem. The blade of a windshield wiper moves through an angle of 90.0 in 0.344 S. The tip of the blade moves on the art of a cirde that has a radius of 0.719 m. What is the magnitude of the centripetal acceleration of the tip of the blade? Number Units the tolerance is +/-2%

  • Interactive Solution 9.63 illustrates one way of solving a problem similar to this one. A thin...

    Interactive Solution 9.63 illustrates one way of solving a problem similar to this one. A thin rod has a length of 0.826 m and rotates in a circle on a frictionless tabletop. The axis is perpendicular to the length of the rod at one of its ends. The rod has an angular velocity of 0.298 rad/s and a moment of inertia of 1.24 x 103 kg-m2. A bug standing on the axis decides to crawl out to the other end...

  • Interactive Solution 9.63 illustrates one way of solving a problem similar to this one. A thin...

    Interactive Solution 9.63 illustrates one way of solving a problem similar to this one. A thin rod has a length of 0.426 m and rotates in a circle on a frictionless tabletop. The axis is perpendicular to the length of the rod at one of its ends. The rod has an angular velocity of 0.364 rad/s and a moment of inertia of 1.50 x 10-3 kg·m2. A bug standing on the axis decides to crawl out to the other end...

  • Interactive Solution 9.63 illustrates one way of solving a problem similar to this one. A thin...

    Interactive Solution 9.63 illustrates one way of solving a problem similar to this one. A thin rod has a length of 0.870 m and rotates in a circle on a frictionless tabletop. The axis is perpendicular to the length of the rod at one of its ends. The rod has an angular velocity of 0.916 rad/s and a moment of inertia of 1.03 x 10-3 kg·m2. A bug standing on the axis decides to crawl out to the other end...

  • Interactive Solution 9.63 illustrates one way of solving a problem similar to this one. A thin...

    Interactive Solution 9.63 illustrates one way of solving a problem similar to this one. A thin rod has a length of 0.869 m and rotates in a circle on a frictionless tabletop. The axis is perpendicular to the length of the rod at one of its ends. The rod has an angular velocity of 0.590 rad/s and a moment of inertia of 1.35 x 10-3 kg·m2. A bug standing on the axis decides to crawl out to the other end...

  • NEXT PRINTER VERSION BACK Chapter 10, Problem 38 GO Your answer is partially correct. Try again....

    NEXT PRINTER VERSION BACK Chapter 10, Problem 38 GO Your answer is partially correct. Try again. A 0.49-kg metal sphere oscillates at the end of a vertical spring. As the spring stretches from 0.12 m to 0.23 m (relative to its unstrained length), the speed of the sphere decreases from 6.9 to 3.3 m/s. What is the spring constant of the spring? Number 34 UnitsT N/m

  • Chapter 05, Problem 46 Reviewing Interactive Solution 5.46 will help in solving this problem. A stone...

    Chapter 05, Problem 46 Reviewing Interactive Solution 5.46 will help in solving this problem. A stone is ted to a string Clength - 0.619 m) and whirled in a cirde at the same constant speed in two different ways. First, the circie is horizontal and the string is nearly parallel to the ground. Next, the orde is vertical. In the vertical case the maximum tension in the string is 5.10% larger than the tension that exists when the circle is...

  • BACK NEXT Chapter 17, Problem 050 GO A tube 1.30 m long is closed at one...

    BACK NEXT Chapter 17, Problem 050 GO A tube 1.30 m long is closed at one end. A stretched wire is placed near the open end. The wire is 0.351 m long and has a mass of 9.70 g. It is fixed at both ends and oscillates in its fundamental mode. By resonance, it sets the air column in the tube into oscillation at that column's fundamental frequency. Assume that the speed of sound in air is 343 m/s, find...

ADVERTISEMENT
Free Homework Help App
Download From Google Play
Scan Your Homework
to Get Instant Free Answers
Need Online Homework Help?
Ask a Question
Get Answers For Free
Most questions answered within 3 hours.
ADVERTISEMENT
ADVERTISEMENT
ADVERTISEMENT