Question

5. For each of the following, determine if the system is underdamped, undamped, critically damped or overdamped ad sketch then Dynamics & Control Engineering KM3473 Syste Tutorial 1 May 7, 2019 1. The transfer function of a dynamic system is given by

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

, s+4mbe.cline vyhrtfom, SoRO-ea →@nMe aleve a ナー-(M) 950 Steady state values V10η SXSESH dじe 5-huv),@eget, Q㈩= Put: o.q5xy .tl5= 0.05) >It = 14-97&conds | Ang

Add a comment
Know the answer?
Add Answer to:
5. For each of the following, determine if the system is underdamped, undamped, critically damped or...
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
  • 5. For each of the following, determine if the system is underdamped, undamped, critically damped or overdamped ad sket...

    5. For each of the following, determine if the system is underdamped, undamped, critically damped or overdamped ad sketch the it step response (a) G (s) = (c) G(s)-t 2+68+ (d) G (s) = 36 6. The equation of motion of a rotational mechanical system is given by where θ° and θί are respectively, output and input angular displace- ments. Assuming that all initial conditions are zero, determine (a) the transfer function model. (b) the natural frequency, w natural frequency,...

  • 6. A second order differential equation d?x/dt+ 5 dx/dt+7x = 7y. State the undamped natural frequ...

    6. A second order differential equation d?x/dt+ 5 dx/dt+7x = 7y. State the undamped natural frequ damping ratio. 7. State the damped natural frequency, damping coefficient and time constant for question 6. 8. Given that the transfer function G is K/s(s+sT). State the type and order of the system 9. It is given that G(s) = K/s (1+sT). This system is operated in a closed-loop with unity feedback. W order and the type of closed-loop system? 10. Given the transfer...

  • 1. Consider the unity feedback system shown in figure 1 with G(S) -2sti a) Determine the...

    1. Consider the unity feedback system shown in figure 1 with G(S) -2sti a) Determine the closed loop transfer function TF(s) γ(s) R(s) What are the poles and zeros of TF1(s)? [2 marks] b) For TF(s), calculate the DC gain, natural frequency and damping ratio. Classify TF1(s) as underdamped overdamped, critically damped or undamped [3 marks] c) Use the initial value theorem and final value theorem to determine the initial value (Mo) and final value (M) of the [2 marks]...

  • We are designing a system that is critically damped. Consider a spring mass damper design where...

    We are designing a system that is critically damped. Consider a spring mass damper design where mass is m=1 kg and the system has to be critically damped. If we want y(t)=te-t as the response, determine the damping constant b and spring constant k. Since it is critically damped, also find the two initial conditions that gives the desired response.

  • 2) a) Derie weayti for the critically damped case, 5-1. b) Determine the position, velocity and acceleration error cons...

    2) a) Derie weayti for the critically damped case, 5-1. b) Determine the position, velocity and acceleration error constants for the forward-path 4(s+2 s" (s+5) transfer function given by G(s)-- c) Determine the steady-state errors of the unit feedback system with the forward-path paroc i ansfer funcioo given ru n 2) a) Derie weayti for the critically damped case, 5-1. b) Determine the position, velocity and acceleration error constants for the forward-path 4(s+2 s" (s+5) transfer function given by G(s)--...

  • b) Given a second order system with the following open loop transfer function where damping ratio,...

    b) Given a second order system with the following open loop transfer function where damping ratio, } = 0.707 and natural frequency, Wn= 2.5. wn? G(S) = S2 + 23wns +wn? i. Determine the steady state error to an appropriate input via a calculation method using the transfer function. Compare your answer with the steady state error from the exact frequency response for this system given in Figure Q4(b). (5 marks) ii. Evaluate the difference of the exact frequency response...

  • Wis) R(s u(s) 14 Gl(s) H(s) Given a system as in the diagram above, where K is an adjustable pa...

    Wis) R(s u(s) 14 Gl(s) H(s) Given a system as in the diagram above, where K is an adjustable parameter pl(s) Dal(sKp+ g) Assuming W-0, find the transfer function Y(s)/R(s) h) Assuming R-0, find the transfer function Y(s)/W(s) i) What is the type of the system (with respect to steady-state error)? j) What is the steady-state error when rt)u(t) (unit-step) and w(t)-0 k) What is the s.s. error when r(t) t u(t) and w(t)-0 ) Assume r(t)-0, what is the...

  • Question three The figure below shows a unit step response of a second order system. From...

    Question three The figure below shows a unit step response of a second order system. From the graph of response find: 1- The rise timet, 2- The peak timet, 3- The maximum overshoot Mp 4- The damped natural frequency w 5. The transfer function. Hence find the damping ratio ζ and the natural frequency ah-Find also the transfer function of the system. r 4 02 15 25 35 45 Question Four For the control system shown in the figure below,...

  • Problem1 The response of an underdamped second order system to a step input can be expressed as a...

    Problem1 The response of an underdamped second order system to a step input can be expressed as a) Plot the system's response and from this response, explain how you would determine the rise time and settling time of the system (define these terms) b) If the experimentally observed damped period of oscillation of the system is 0.577ms and, from a logarithmic decrement analysis, the damping ratio is found to be is the damped circular frequency of the system? the natural...

  • Automatic Control IV Question 4 The transfer function of a servo system has the transfer function...

    Automatic Control IV Question 4 The transfer function of a servo system has the transfer function given by: A vibrating spring-mass system has the feedback control system shown in Fig Q4 below. R(S) - _K s(s+2) Fig 24 If K = 12.25 determine: 4.1 the transfer function C(s)/R(3) 4.3 the un-damped natural frequency of the system 4.4 the damping ratio 4.5 the damped natural frequency 4.6 the maximum percentage overshoot 4.7 the peak time 4.8 the settling time for the...

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