A 1st order unity feedback control system subjected to unit step function then the time at which error function equal to response function. R(S)- A T In 5 BT In 2 C 2T In 5 с D 2T In 2 ==[ E(s) 1 ST C(s)
Q: (s) C(s)
A: Given data, Open loop transfer function, Gs=s+1s2+4s+5
Q: Consider the unit feedback system below: R(s) C(s) controller (S (s+ 1)(s +2) Find the correct…
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Q: A ramp input applied to an unity feedback system results in 5% steady state error. The type number…
A: Given- Steady state error=5%, To Find- The type number and velocity error constant of the system.
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A: Given: The Nyquist plot for the plant: G(s)=s2-5s-42(s2+5s+6)
Q: Q1) Consider the unity feedback control system with open-loop transfer function is: 35.6 G(s) = (s³…
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Q: R(S) K s(s+ 1)(s² + 4s +13) C(s)
A: Given unity feedback control system The root locus is a graphical representation in s-domain and…
Q: Q3: A unity feedback control system has K G(s) = s(s + 2)(s + 5) Sketch the root locus and show on…
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Q: (7) The Nyquist plot of the open-loop frequency response of a unity feedback control system is shown…
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Q: Question 1 For the unity feedback system as shown in Figure Q1, R(s) C(s) G(s) Figure Q1 G(s) = K…
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Q: A ramp input applied to an unity feedback system results in 5% steady state error. The type number…
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Q: A ramp input applied to an unity feedback system results in 5% steady state error. The type number…
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Q: A ramp input applied to an unity feedback system results in 5% steady state error. The type number…
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Q: Control system, can you explain two differences between feedfoward and feedback for this figure ?
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Q: A ramp input applied to an unity feedback system results in 5% steady state error. The type number…
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Q: Draw the block diagram and discuss the working principle of the following control system briefly. 7.…
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Q: Q1) Consider the unity feedback control system with open-loop transfer function is: 35.6 G(s): (s3 +…
A: Given:O.L.T.F. is :Gs=35.6s3+7.8s2+19.9s+37.8
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A: Given, Negative unity feedback system. Gs=s+1s2+4s+5
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- Q6: Choose the correct answer among the following: 1- For the ramp input, the steady state error of the control system (Type one) is: a) zero b) A/K c) infinite d) none of the them 2- After moving the pick-off point (as shown in the figure). The feedback transfer function will be equal to: R)- a) H₂G, /a)1 b) H₂/G₁ a) 1Pls do correct and handwrittenAutomatic ControlQuestion 1 (continued) (f) Figure 5 shows a basic shunt feedback transistor bias circuit. RL Rg Figure 5 (i) What voltage would you expect for VCE if RB is reduced to 0 ohms? (ii) Would you expect any component damage to occur under (i)? (g) Determine the peak inter-phase voltage of a prototype 3-phase, star-connected, transformer when the r.m.s ac voltage between phase and neutral is 300 V. VBE-QUESTION 16 Consider a unity negative feedback control system. It is assumed that the plant G(s) includes an integrator and you are using a proportional compensator K. You want to increase the closed-loop ramp tracking performance. Currently, the steady-state tracking error of the closed-loop system with KK_old to a unit ramp signal is 0.1. You would like this error to be reduced to 0.025 with a new proportional compensator K=K_new. How does the proportional gain have to change to make this possible? We assume that the closed-loop is stable for all values of the proportional gain. K_new = 4.33 K_old K_new = 4 K_old K_new = 0.25 K_old OK_new = 5.44 K_old QUESTION 17 Given that G(s) = 2.1(s+10)(s-5)(s(s+6)(s+7)), calculate the phase of G(w) in radians for a frequency of 7 rad/s. Provide your answer with two decimal precision.Can you answer this question by showing all the steps and explain the all the details that necessary for question. Especially can you write down why you used that formula or calculation etc. Thanks in advance.Differentiate the poles and zeros on a first-degree order system and on a second-degree order system in feedback control system.1-For the ramp input, the steady state error of the control system (Type one) is: a) zero b) A/K c) infinite d) none of the them 2- After moving the pick-off point (as shown in the figure), The feedback transfer function will be equal to : R(s)- a) H₂G, /a) 1 b) H₂/G₁ G₁ b) 2 nos H₁ 3- For the root locus plot, the number of the asymptotes for the following system are: G(s)H(s) = c) 3 H₂ c) H₂+G₁ K a) 1Recommended textbooks for youIntroductory Circuit Analysis (13th Edition)Electrical EngineeringISBN:9780133923605Author:Robert L. BoylestadPublisher:PEARSONDelmar's Standard Textbook Of ElectricityElectrical EngineeringISBN:9781337900348Author:Stephen L. HermanPublisher:Cengage LearningProgrammable Logic ControllersElectrical EngineeringISBN:9780073373843Author:Frank D. PetruzellaPublisher:McGraw-Hill EducationFundamentals of Electric CircuitsElectrical EngineeringISBN:9780078028229Author:Charles K Alexander, Matthew SadikuPublisher:McGraw-Hill EducationElectric Circuits. (11th Edition)Electrical EngineeringISBN:9780134746968Author:James W. Nilsson, Susan RiedelPublisher:PEARSONEngineering ElectromagneticsElectrical EngineeringISBN:9780078028151Author:Hayt, William H. (william Hart), Jr, BUCK, John A.Publisher:Mcgraw-hill Education,Introductory Circuit Analysis (13th Edition)Electrical EngineeringISBN:9780133923605Author:Robert L. BoylestadPublisher:PEARSONDelmar's Standard Textbook Of ElectricityElectrical EngineeringISBN:9781337900348Author:Stephen L. HermanPublisher:Cengage LearningProgrammable Logic ControllersElectrical EngineeringISBN:9780073373843Author:Frank D. PetruzellaPublisher:McGraw-Hill EducationFundamentals of Electric CircuitsElectrical EngineeringISBN:9780078028229Author:Charles K Alexander, Matthew SadikuPublisher:McGraw-Hill EducationElectric Circuits. (11th Edition)Electrical EngineeringISBN:9780134746968Author:James W. Nilsson, Susan RiedelPublisher:PEARSONEngineering ElectromagneticsElectrical EngineeringISBN:9780078028151Author:Hayt, William H. (william Hart), Jr, BUCK, John A.Publisher:Mcgraw-hill Education,