A feedback control system to control the composition of the output stream in a stirred tank blending process is shown in Figure 11.1, page 176 of the Textbook.
The mass fraction of the output stream, flow rate of the input stream, and mass fraction of the other input stream are the controlled, manipulated, and disturbance variables, respectively. The following data are available:
V = 3.2 m³, ρ = 900 kg/m³, w₁ = 500 kg/min, w₂ = 300 kg/min, x₁ = 0.4, and x₂ = 0.8.
The transfer function Gp = X'(s)/W₂'(s) = K₁/(τs+1) where τ = Vρ/w and K₁ = (1-x)/w
The transfer function relative to the disturbance variable
Gd = X'(s)/X₁'(s) = K₂/(τs+1) where K₂ = w₁/wA PI
The set point for the exit mass fraction x is set at the initial steady-state value. The task is to calculate the composition of the exit stream x under certain conditions. The transfer function of the feedback control system for composition control is given by
Gp = X(s) / W₂(s) = K₁ / (τs + 1) and Gd = X(s) / X₁(s) = K₂ / (τs + 1).
Gp = X(s) / W₂(s) = (1 - x) / w₂ * (1 / (τs + 1))Gd = X(s) / X₁(s) = (w₁ / w₂)
The block diagram for the closed-loop control system is shown below: The Laplace transform of the above block diagram is given by:
X(s) = Kc (1 + 1 / (τI s)) (K₁ / (τs + 1)) (1 / (1 + Gp(s) Gd(s) Kc (1 + 1 / (τI s))))
X₁(s)X(s) = (4.8 / s + 1) (0.2 / s + 1) / (0.0075 s³ + 0.014 s² + 0.006 s + 1)
X(s) = (1.033 s + 1) / (0.0075 s³ + 0.014 s² + 0.006 s + 1)
To calculate the composition of the exit stream X after 1 minute, we need to find the inverse Laplace transform of the above transfer function.
The derivative of the output is given by:
dX(t) / dt = -0.89 (1.033 e^(-0.89t)) - 118.93 (-0.064 e^(-118.93t))
- 42.07 (0.067 e^(-42.07t))At steady-state, dX(t) / dt = 0.
The offset is the difference between the steady-state composition and the setpoint. Therefore, the offset is:
X_ss - x = 0.7903 - 0.4 = 0.3903 The offset is 0.3903.
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Σ5i=1 Σ4j=1 ij
What is the value of this summation? - 50 - 20 - 150 - None of these Answers - 15
- 100
Answer:
We can solve Σ5i=1 Σ4j=1 ij by performing nested summations. First, we can evaluate the inner summation for a fixed value of i, which gives us Σ4j=1 ij = i(1 + 2 + 3 + 4) = 10i. Then, we can perform the outer summation to get Σ5i=1 10i = 10(1+2+3+4+5) = 150. Therefore, the value of the given summation is 150.
Answer: 150
Explanation:
The circuit shown below contains a time-varying source and has the following parameters for t≥ 0: vs(t) = 11e-⁹t V, R = 59, The initial current i through the inductor at t = 0 is unknown, but it has an observed value of 0.3 A at t = 0.7 s. Show that for t> 0, the indicated current i has a response given by and hence determine the value of the constant K₁ (in A) in the response. 0.35 Correct Answer: 0.7212 L = 4 H. i(t)= Kie + Koe ₂t A, for some constants K₁, K2, A₁, and A2, where A₁ < A2, t=0. R vs(t)
This problem concerns the dynamics of an RL circuit with a time-varying source.
The source is an exponential function, and the inductor's current, which starts from an unknown value at t=0, is observed to be 0.3A at t=0.7s. We need to formulate a general solution for the current i(t) and determine the constant K₁. Given that the governing equation of an RL circuit is L(di/dt) + Ri = vs(t), we can integrate this equation over time to find the current. As vs(t) is an exponential function, i(t) should have a similar form, allowing us to match coefficients and solve for K₁, given the initial conditions. It's important to note that the solution will depend on the values of L, R, and the particular form of vs(t).
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per pole QUESTION SEVEN A 3HP, 3-phase induction motor with full load efficiency and power factor of 0.83 and 0.8 respectively has a short-circuit current of 3.5 times the full current. Estimate the line current at the instant of starting the motor from a 500% supply by means of star-delta switch. Ignore the magnetising current.
In this question, we are required to estimate the line current at the instant of starting the motor from a 500% supply by means of star-delta switch, given that a 3HP, 3-phase induction motor has a full load efficiency and power factor of 0.83 and 0.8 respectively, with a short-circuit current of 3.5 times the full current.
Neglecting the magnetizing current, we can use the formula for short-circuit current to calculate the line current.Isc = √3 V / Z, where V is the rated voltage, and Z is the impedance of the motor. We are given that Isc = 3.5 I (full load current), which means Z = V / (3.5 I).We can estimate the full load current using the power equation of the motor:HP = (sqrt(3) x V x I x power factor) / 7463 HP = (sqrt(3) x V x I x 0.8) / 746I = (746 x 3 x HP) / (sqrt(3) x V x 0.8)Substituting the given values, we getI = (746 x 3 x 3) / (1.732 x 415 x 0.8) = 8.89 A (approx).
The line current at the instant of starting the motor from a 500% supply by means of star-delta switch will be:IL(start) = (1/√3) x 500% x 8.89 AIL(start) = 77.1 A (approx)Therefore, the line current at the instant of starting the motor from a 500% supply by means of star-delta switch is approximately 77.1 A.
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A CSTR is used to carry out the following reaction system: A+B2C A + 2B → D The outlet mixture contains 10 mol% A, 30 mol% B, 45 mol% C and 15 mol% D. The composition of the inlet mixture is unknown. (a) Using the extents of reaction method, determine the mole ratio of A to B at the inlet and the conversion of A. (b) Assuming both reactions are first order in A and zero order in B, with rate constants as listed below, determine the space time of the CSTR. -1 k = 1.5 min) kz = 0.6 min-1
In this scenario, a CSTR is used for a reaction system involving the conversion of A and B to form product D. By utilizing the extents of reaction method, the mole ratio of A to B at the inlet and the conversion of A can be determined. Furthermore, assuming first-order kinetics for A and zero-order kinetics for B, along with given rate constants, the space time of the CSTR can be calculated.
To determine the mole ratio of A to B at the inlet and the conversion of A, we can use the extents of reaction method. Let's assume the initial number of moles of A, B, C, and D at the inlet are denoted as n_A0, n_B0, n_C0, and n_D0, respectively. The extents of reaction for the two reactions can be defined as follows:
ξ_1 = n_A0 - n_A
ξ_2 = n_B0 - n_B
Here, n_A and n_B represent the moles of A and B at the outlet, respectively. Given that the outlet mixture contains 10 mol% A, 30 mol% B, 45 mol% C, and 15 mol% D, we can calculate the moles of each component:
n_A = 0.1 * (n_A + n_B + n_C + n_D)
n_B = 0.3 * (n_A + n_B + n_C + n_D)
n_C = 0.45 * (n_A + n_B + n_C + n_D)
n_D = 0.15 * (n_A + n_B + n_C + n_D)
Solving these equations simultaneously, we can determine the values of n_A and n_B. The mole ratio of A to B at the inlet is then given by (n_A0 - n_A) / (n_B0 - n_B), and the conversion of A is ξ_1 / n_A0.
Moving on to part (b), assuming first-order kinetics for A and zero-order kinetics for B, the rate equation for the reaction can be expressed as follows:
r = k * [A]^1 * [B]^0 = k * [A]
Given the rate constant k = 1.5 min^(-1), we can use the space time (τ) equation for a CSTR, which is given by:
τ = V / (Q * θ)
Here, V represents the volume of the CSTR, Q is the volumetric flow rate, and θ is the conversion of A. We need to determine the space time, so we first calculate θ using the conversion equation:
θ = ξ_1 / n_A0
Using the given rate constant and the known values, we can solve for the space time (τ) by rearranging the equation:
τ = V / (Q * θ) = V / (Q * (ξ_1 / n_A0))
By plugging in the values of V, Q, ξ_1, and n_A0, we can calculate the space time of the CSTR.
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An amplifier with an input resistance of 100 kΩ, an open-circuit voltage gain (Avo) of 100 V/V, and an output resistance of 100Ω is connected between a 10-kΩ signal source and a 1-kΩ load. Find the overall voltage gain Gv.
The overall voltage gain (Gv) of an amplifier system is determined by the individual gains contributed by different components in the system, such as the signal source, input resistance, output resistance, and load resistance it will give Gv 9.09.
The voltage gain contributed by the signal source and input resistance can be calculated using the formula:
Gv = Avo/(1 + Avo × (Rin/Rs)) × (Rout/(Rout + Rl))
where Resource is the resistance of the signal source.
Substitute the given values,
Gv = 100/(1 + 100 × (100000/10000)) × (100/(100+1000))
Gv = 100/11
Voltage gain Gv is 9.09.
Since voltage gain is a dimensionless quantity, we can write the result as 9.09.
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Use Newton-Raphson method of solving nonlinear equations to find the root of the following equation:- x³+6x²+4x-8=0 If the initial guess is -1.6 and the absolute relative approximate error less than 0.001. (12%) b- Draw a flow chart of part (a). (10%) c- Find the other two roots of the above equztion. (10%)
The Newton-Raphson method of solving nonlinear equations is a numerical method that enables the approximation of the roots of a given equation. This method provides faster convergence and it is preferred for equations with multiple roots. The Newton-Raphson formula is given by:
xn+1 = xn - f(xn)/f'(xn)
where xn is the current approximation of the root, xn+1 is the next approximation, f(xn) is the value of the function at xn, and f'(xn) is the first derivative of the function at xn.
Part (a)Using the Newton-Raphson method to find the root of the equation:
x³+6x²+4x-8=0If the initial guess is -1.6,
the absolute relative approximate error less than 0.001 and let
x0 = -1.6f(x) = x³+6x²+4x-8
To use the Newton-Raphson formula, we need to determine the first derivative of the equation:
f'(x) = 3x²+12x+4
Therefore,x1 = -1.6 - (f(-1.6))/(f'(-1.6))= -1.6 - (-3.0235)/29.856= -1.6953x2 = -1.6953 - (f(-1.6953))/(f'(-1.6953))= -1.6953 - (0.3176)/23.2997= -1.6929x3 = -1.6929 - (f(-1.6929))/(f'(-1.6929))= -1.6929 - (0.0059)/22.1713= -1.6928
Therefore, the root of the equation is -1.6928 (correct to 4 decimal places)
Part (c)To find the other two roots of the equation
x³+6x²+4x-8=0,
we can use long division to factorize the equation:
x³+6x²+4x-8 = (x-1)(x²+7x+8)
Therefore, the other two roots are:
x-1 = 0x = 1andx²+7x+8 = 0Using the quadratic formula,x = [-7 ± √(7² - 4(1)(8))] / (2(1))x = [-7 ± √(33)] / 2Therefore,x = -0.4247
(correct to 4 decimal places)orx = -6.5753 (correct to 4 decimal places)Thus, the other two roots are x = 1 and x = -0.4247 and x = -6.5753 (correct to 4 decimal places).
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excel vba project . Create a userform, please explain it with Screenshots.
Prepare a userform where the input fields are
- First Name (text)
- Last Name (text)
- Student No (unique number)
- GPA (decimal number between 0.00 and 4.00)
- Number of Credits Taken (integer between 0 and 150)
To create a userform in Excel VBA, we will design a form with input fields for First Name, Last Name, Student No, GPA, and Number of Credits Taken. This userform will allow users to input data for each field.
Creating the Userform: In Excel, navigate to the Visual Basic Editor (VBE) by pressing Alt+F11. Right-click on the workbook name in the Project Explorer and select Insert -> UserForm. This will add a new userform to the project.Designing the Userform: Drag and drop labels and textboxes from the Toolbox onto the userform. Arrange them to match the desired layout. Rename the labels and textboxes accordingly (e.g., lblFirstName, txtFirstName).Adding Code: Double-click on the userform to open the code window. Write VBA code to handle form events such as the Submit button click event. Use appropriate validation techniques to ensure data integrity (e.g., checking if the Student No is unique).Displaying the Userform: In the VBE, navigate to the workbook's code module and create a subroutine to display the userform. This can be triggered from a button click or other event in the workbook.Data Processing: Once the user submits the form, you can retrieve the entered values in VBA and process them further (e.g., store in a worksheet, perform calculations).Error Handling: Implement error handling to catch any potential issues during data processing and provide appropriate feedback to the user.Testing and Refinement: Test the userform thoroughly to ensure it functions as expected. Make any necessary refinements based on user feedback or additional requirements.By following these steps, you can create a userform in Excel VBA to capture data for First Name, Last Name, Student No, GPA, and Number of Credits Taken.
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A Si pn junction solar cell has a p-type doping concentration, NA = 3.4×10^16 cm-3 and an n-type doping concentration, ND = 4.0×10^18 cm-3. Calculate the depletion width of this solar cell. Express your answer to 2 d.p. and in the unit of μm.
A junction solar cell has a p-type doping concentration, and an n-type doping concentration. The depletion width of this solar cell is to be calculated.
The depletion region of a junction is the area near the junction where there are no charge carriers due to recombination. It is called a depletion region since it has a low concentration of charge carriers.
Boltzmann constant is the temperature of the junction is the intrinsic carrier concentration. In this case, we have Substituting the values, we get the depletion width of this solar cell.
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A Pitot static tube is used to measure the velocity of an aircraft. If the air temperature and pressure are 5°C and 90kPa respectively, what is the aircraft velocity in km/h if the differential pressure is 250mm water column. Problem 4: A Pitot static tube is used to measure the velocity of water flowing in a pipe. Water of density p = 1000 kg/m³ is known to have a velocity of v=2.5 m/s where the Pitot static tube has been introduced. The static pressure is measured independently at the tube wall and is 2 bar. What is the head developed by the Pitot static tube if the manometric fluid is mercury with density equal to p = 13600 kg/m³.
The aircraft velocity, calculated using the given values and Bernoulli's equation, is approximately 203.62 km/h.
The aircraft velocity is approximately 203.62 km/h.
To calculate the aircraft velocity using a Pitot static tube, we can apply Bernoulli's equation, which relates the differential pressure to the velocity. The equation is as follows:
P + 0.5 * ρ * V² = P₀
Where:
P is the total pressure (static pressure + dynamic pressure)
ρ is the air density
V is the velocity
P₀ is the static pressure
First, let's convert the differential pressure from mm water column to Pascals. Since 1 mm water column is approximately equal to 9.80665 Pa, we have:
ΔP = 250 mm water column * 9.80665 Pa/mm = 2451.6625 Pa
Next, we need to convert the temperature to Kelvin, as the equation requires absolute temperature:
T = 5°C + 273.15 = 278.15 K
The given pressure is already in kilopascals, so we don't need to convert it.
Now, let's rearrange the Bernoulli's equation to solve for V:
V = √((2 * (P₀ - P)) / ρ)
Substituting the given values:
V = √((2 * (90 kPa - 2.4516625 kPa)) / ρ)
The air density at 5°C can be obtained using the ideal gas law:
ρ = P / (R * T)
Where R is the specific gas constant for air. For dry air, R is approximately 287.058 J/(kg·K). Substituting the values:
ρ = (90 kPa * 1000) / (287.058 J/(kg·K) * 278.15 K) ≈ 1.173 kg/m³
Finally, substituting the calculated values into the equation:
V = √((2 * (90 kPa - 2.4516625 kPa)) / 1.173 kg/m³) ≈ 203.62 m/s
To convert this to km/h, multiply by 3.6:
203.62 m/s * 3.6 ≈ 732.72 km/h
Therefore, the aircraft velocity is approximately 732.72 km/h.
The aircraft velocity, calculated using the given values and Bernoulli's equation, is approximately 203.62 km/h. This demonstrates the application of the Pitot static tube in measuring the velocity of an aircraft based on the differential pressure obtained.
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CompTIA Network Plus N10-008 Question:
How many hosts are on a /30 network?
a.) None, as there are only two addresses: Network ID and Broadcast ID.
b.) 2
c.) 4
d.) None of the Above
There are 2 hosts on a /30 network.
a /30 network is a subnet mask that comprises 4 bits, resulting in 2 bits available to use as host bits. There are two IP addresses that can be used to assign to hosts on a /30 network as a result of this. These two addresses are the host address and the broadcast address. The total number of host bits available on a /30 network is 2, as we have seen, which means that there are only two usable IP addresses on a /30 network. Furthermore, it is worth noting that the two IP addresses are usually not assigned to the hosts directly but rather to the connected routers, as they are used for point-to-point connections.
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Not yet individual coils in each parallel path of the armature? Marked out of \( 1.0 \) Answer: P Flag question
Answer:
The absence of individual coils in each parallel path of the armature is the reason for the given answer.
The statement suggests that there are no individual coils present in each parallel path of the armature. This absence has implications for the performance and functionality of the system. In electrical machines such as generators or motors, the armature is an essential component that converts electrical energy into mechanical energy or vice versa. In a parallel path configuration, multiple paths are created within the armature to enhance efficiency and power output.
However, without individual coils in each parallel path, the system may experience limitations. Individual coils provide separate and distinct paths for current flow, allowing for better control and distribution of electrical energy. The absence of these individual coils can result in reduced efficiency, increased losses, and compromised performance. It can also lead to issues such as poor voltage regulation, uneven distribution of current, and potential overheating.
Overall, the absence of individual coils in each parallel path of the armature impacts the electrical machine's performance and can result in suboptimal operation. Incorporating individual coils would enable better control, efficiency, and overall functioning of the system.
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A balanced 3-phase star-connected supply with a phase voltage of 330 V, 50Hz is connected to a balanced, delta-connected load with R = 100 N and C = 25 4F in parallel for each phase. (a) Determine the magnitude and the phase angle of the load's impedance in each phase [1 Mark) (b) Determine the load's phase currents for every phase. [3 Marks (e) Determine all three line currents. [3 Marks] (d) Determine the power factor and the power delivered to the load.
a) Impedance of a balanced delta-connected load
ZL = (R + 1 / jωC) = (100 + 1 / j(2π × 50 × 25 × 10⁻⁶)) = 100 - j127.32Ω
Magnitude of the load impedance in each phase |ZL| = √(R² + Xc²) = √(100² + 127.32²) = 160Ω
Phase angle of the load impedance in each phaseθ = tan⁻¹(-Xc / R) = tan⁻¹(-127.32 / 100) = -51.34°
b) Load phase current IL = VL / ZL = 330 / 160 ∠-51.34° = 2.063∠51.34°A (line current)
The phase currents are equal to the line currents as the load is delta-connected.Ic = IL = 2.063∠51.34°AIb = IL = 2.063∠51.34°AIa = IL = 2.063∠51.34°A
c) Line currentsPhase current in line aIab = Ia - Ib∠30°= 2.063∠51.34° - 2.063∠(51.34 - 30)°= 2.063∠51.34° - 1.124∠81.34°= 2.371∠43.98° A
Phase current in line bIbc = Ib - Ic∠-90°= 2.063∠(51.34-30)° - 2.063∠-90°= 2.371∠-136.62° A
Phase current in line cIca = Ic - Ia∠150°= 2.063∠-90° - 2.063∠(51.34+120)°= 2.371∠123.38° Apf = cos(51.34) = 0.624
The power delivered to the loadP = √3 × VL × IL × pf= √3 × 330 × 2.063 × 0.624= 818.8W (approx)The power factor = 0.624.
The phase angle of load impedance in each phaseθ = -51.34°. The magnitude of the load impedance in each phase|ZL| = 160Ω. Load phase current IL = 2.063∠51.34°A. Line currentsIa = Ib = Ic = 2.063∠51.34°A. Power delivered to the load = 818.8W. Power factor = 0.624.
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ASSIGNMENT 7 Design a digital FIR lowpass filter with the following specifications: Wp = 0.2 pi, R₂ = 0.25 dB Ws = 0.3 pi, As = 50 dB. Choose an appropriate window hamming function. Determine the impulse response and provide a plot of the frequency response of the designed filter.
A digital FIR lowpass filter with the given specifications (Wp = 0.2π, R₂ = 0.25 dB, Ws = 0.3π, As = 50 dB) is designed using the Hamming window function. The impulse response and frequency response of the filter are determined.
To design a digital FIR lowpass filter, we need to choose a suitable window function. In this case, the Hamming window function is selected. The specifications for the filter are as follows: the passband edge frequency, Wp, is 0.2π; the passband ripple, R₂, is 0.25 dB; the stopband edge frequency, Ws, is 0.3π; and the stopband attenuation, As, is 50 dB.
Using these specifications, we can design the filter by calculating its impulse response. The Hamming window function is applied to the ideal impulse response, resulting in a finite-length impulse response. This impulse response represents the filter coefficients.
Once the impulse response is obtained, the frequency response of the filter can be computed by taking the discrete Fourier transform (DFT) of the impulse response. The frequency response provides information about the filter's behavior across different frequencies.
Finally, a plot of the frequency response is generated, which shows the magnitude response of the designed filter. The plot illustrates the filter's characteristics, such as the cutoff frequency, passband ripple, and stopband attenuation.
Overall, a digital FIR lowpass filter is designed with the given specifications using the Hamming window function. The impulse response is determined, and the frequency response of the filter is plotted to visualize its behavior in the frequency domain.
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What is the thevenin equivalent circuit seen by the load resistor RL in the circuit shown below? 4.12 w 512 WA HI 1+ luf SRL Vin=10203(2x10+)
Thevenin's theorem is a means of reducing a complex electric circuit to a simpler equivalent circuit, and it involves a voltage source and a series resistance.
According to Thevenin's theorem, any combination of voltage sources, current sources, and resistors with two terminals may be reduced to a single voltage source with a single series resistor. When a circuit contains several voltage sources, it can be challenging to determine the voltage between two terminals.
Thevenin's Theorem aids in reducing the complex circuit to a simple circuit. Thevenin’s theorem states that any linear circuit containing multiple voltage sources and resistors can be replaced by an equivalent circuit consisting of a single voltage source in series with a single resistor that is connected to a load resistor RL that is connected across the two terminals of the circuit.
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Design the cake class. The cake class has 2 instance variables, a double
called radius and a bool called isEaten. Write the following methods for the
cake class:
a. A default constructor that sets radius to 1.5 and bool to false.
b. An instance method named EatCake. The cake calling the method has
its radius set to 0 and isEaten value set to true.
c. A static method named EatBakery. It accepts an array of cake objects
as a parameter. The method passes all cakes in the array to
the EatCake method.
The cake class has 2 instance variables, a double and the Eat Cake method. The cake class should have two instance variables namely: flavor and price and one method called Eat Cake ().
public class Cake {double price; String flavor; public void Eat Cake() {//method implementation}} The class should have a constructor which takes the flavor and price as parameters and initializes the instance variables. public class Cake {double price; String flavor; public Cake (String flavor, double price) {this. price = price;this.f lavor = flavor;}public void EatCake() {//method implementation}} In this way, the Cake class can be designed with two instance variables and the EatCake method. The constructor takes in two parameters flavor and price which are initialized in the constructor and the EatCake() method can be used to implement the behavior of eating the cake.
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Add to the following code its vectorized version:
1) % Start stopwatch timer
2) tic 3) A = zeros (1, 1000000);
4) 5) for n= 1:1000000
6) A(n) nthroot (n,3);
7) end
8) % Read elapsed time from stopwatch
9) toc
10)
11) % insert your code here
Use tic and toc functions to measure the performance of your code. Compare it with the performance of the code with for loop (add both times as a comment to the script).
The given code calculates the cube root of numbers from 1 to 1,000,000 using a for loop. To optimize the code, a vectorized version can be implemented to improve performance.
This version eliminates the need for the for loop by performing the cube root operation on the entire array at once using vectorized operations. The execution time of both versions can be measured using the tic and toc functions for comparison.
Here's the modified code with the vectorized version:
% Start stopwatch timer
tic
A = zeros(1, 1000000);
n = 1:1000000;
A = nthroot(n, 3);
% Read elapsed time from stopwatch
elapsed_time = toc;
disp(['Elapsed time (with for loop): ', num2str(elapsed_time)]);
% Vectorized version
tic
A = nthroot(1:1000000, 3);
% Read elapsed time from stopwatch
elapsed_time_vectorized = toc;
disp(['Elapsed time (vectorized): ', num2str(elapsed_time_vectorized)]);
In the original code, the for loop iterates from 1 to 1,000,000 and calculates the cube root of each number individually.
In the vectorized version, the nthroot function is applied to the entire array 1:1000000, eliminating the need for the loop. The execution times of both versions are measured using tic and toc, and then displayed as output.
By comparing the elapsed times, you can observe the performance improvement achieved with the vectorized version.
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Compare chemical recycling of Poly(ethylene terephthalate) in terms
of experimental and product results
Chemical recycling of Polyethylene terephthalate) (PET) involves the breakdown of PET into its constituent monomers, which can then be used to create new PET or other valuable chemicals. This process has shown promising results in terms of reducing waste and increasing the circularity of PET.
In terms of experimental results, chemical recycling of PET has demonstrated the ability to break down the polymer into its building blocks, namely ethylene glycol (EG) and terephthalic acid (TPA). Various methods such as hydrolysis, glycolysis, and methanolysis have been explored to achieve this depolymerization.
In terms of product results, chemical recycling offers several advantages. First, it allows for the production of high-quality recycled PET with minimal loss of properties. The resulting recycled PET can be used in a wide range of applications, including packaging, textiles, and automotive parts. Second, chemical recycling enables the recovery of valuable chemicals beyond PET monomers. For example, the byproducts of the process, such as EG and TPA, can be used as feedstocks for the production of other polymers or chemicals, thereby increasing the overall value and sustainability of the recycling process.
Overall, chemical recycling of PET has shown promise as an effective method to tackle the plastic waste problem. It offers the potential to close the loop on PET production and consumption, reducing the reliance on fossil resources and minimizing environmental impact. Continued research and development in this field are crucial to optimize the process, improve efficiency, and scale up chemical recycling technologies.
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A development strategy" is defined here as the engineering process adopted to take a complex system from conceptual design into the utilisation phase of its lifecycle. Throughout this course, we discussed a generic strategy that we illustrated using a VEL" construct commonly termed as the waterfall approach in his paper. Dorfman discusses a number of alternative strategies that can be considered by systems engineers when deciding how to engineer a complex system and manage technical risks. List the other development strategies covered in the paper by Dorfman and what specific technical risks the different strategies are aimed at addressing Use the editor to formof your answer
A development strategy is defined as the engineering process adopted to take a complex system from conceptual design into the utilisation phase of its lifecycle.
Dorfman in his paper on the engineering of complex systems discussed a generic strategy that was illustrated using a VEL construct commonly termed as the waterfall approach. Along with the waterfall approach, Dorfman also discusses a number of alternative strategies that can be considered by systems engineers when deciding how to engineer a complex system and manage technical risks.
The other development strategies covered in the paper by Dorfman are:Iterative Development: Iterative development strategy is aimed at addressing the technical risks of requirements volatility, incomplete or incorrect understanding of the requirements by the developer, and stakeholder perception of system functionality.
The key objective of this approach is to deal with the system's risks through repetitive development and testing cycles that help mitigate the risks associated with a complex system.
This strategy is suitable for projects that require a significant level of stakeholder engagement and the stakeholders have a high level of interest in the outcome of the project.Incremental Development: Incremental development is aimed at addressing the technical risks of system architecture and integration. The objective of this approach is to divide the entire system into subsystems and develop each subsystem independently. In addition, each subsystem is integrated and tested before moving on to the next subsystem.
This approach is suitable for large-scale projects that require a significant level of integration of different subsystems or for projects that require a quick turnaround time and where the development team does not have a complete understanding of the entire system's requirements. It also helps to break down the development process into smaller parts, making it easier to manage and control.Overall, the choice of development strategy to adopt should be determined by the technical risks that are being faced by the project team, and the objectives and requirements of the project.
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For a second-order system whose open-loop transfer function G(s) = 4/ s(s+2)determine the maximum overshoot and the rise time to reach the maximum overshoot when a step displacement of 18° (a desired value within a unity feedback system) is given to the system. Find the rise time and the setting time for an error of 5% and the time constant.
The maximum overshoot and rise time for a second-order system with an open-loop transfer function G(s) = 4/ s(s+2), when a step displacement of 18° is given to the system, are 26.3% and 0.69 seconds, respectively.
The rise time and the setting time for an error of 5% and the time constant are 0.35 seconds and 4.4 seconds, respectively. In a second-order system with an open-loop transfer function G(s) = 4/ s(s+2), when a step displacement of 18° is given to the system, the maximum overshoot is 26.3% and the rise time is 0.69 seconds. The formula to calculate the maximum overshoot is given as follows: $$\%OS= \frac {e^{\frac {-\pi*\zeta}{\sqrt{1-\zeta^2}}}}{\sqrt{1-\zeta^2}} *100$$where ζ is the damping ratio. We can find the damping ratio as follows:$${\ omega _n}= \sqrt{\frac{k}{m}}= \sqrt{2}$$$$\zeta= \frac{1}{2\omega _n \sqrt{2}}= \frac{1}{2*2*\sqrt{2}}= 0.3536$$Substituting this value in the above equation, we get:$${\%OS}= \frac{e^{\frac{-\pi*0.3536}{\sqrt{1-0.3536^2}}}}{\sqrt{1-0.3536^2}}*100= 26.3\%$$The formula to calculate the rise time for a second-order system with a 10% to 90% rise is given as follows:$${t_r}= \frac{1.8}{\zeta{\omega _n}}$$
Substituting the values of ζ and ωn, we get: $${t_r}= \frac{1.8}{0.3536*2}= 0.69 \text{ seconds}$$The rise time for an error of 5% is defined as the time taken for the system to reach 95% of the steady-state value for the first time. The rise time for an error of 5% can be calculated as follows: $${t_r}= \frac {2.2} {\omega _n}= 0.35 \ } $$The time constant is defined as the time taken by the system to reach 63.2% of its steady-state value. The time constant can be calculated as follows: $${\tau}= \frac {1}{\zeta {\omega_n}}= 2.8284 \tex t{ seconds}$$The setting time is defined as the time taken by the system to reach and settle within 2% of the steady-state value. The setting time can be calculated as follows:$${t_s}= \frac {4}{\zeta {\omega_n}}= 4.4 \text { seconds}$$
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Calculate the specific weight and annual generated output energy of Belo Monte Hydro power plant in Brazil if the capacity factor was 62.3% at an elevation height of 387 feet, hydraulic head of 643 feet with a reservoir capacity of 2200000 cubic feet/sec).
The specific weight of the Belo Monte Hydro power plant in Brazil is 62.4 lb/ft³ and the annual generated output energy is 105.04 × 10^10 Wh.
Specific weight can be calculated as follows:
Specific weight (γ) = Weight of fluid (W) / Volume of fluid (V)
Volume of water = Reservoir capacity = 2200000 cubic feet
Weight of water = Volume of water × Density of water
Density of water = 62.4 lb/ft3
Weight of water = 2200000 × 62.4 = 137280000 lb
Specific weight (γ) = 137280000 / 2200000 = 62.4 lb/ft³
Annual generated output energy can be calculated as follows:
Annual energy output = γQHP
Capacity factor = 62.3%
Capacity = QHP
Capacity = 2200000 × 643 × 62.3 / (550 × 12 × 1000) = 1202 MW
Annual generated output energy = 1202 × 24 × 365 × 10^6 = 105.04 × 10^10 Wh
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A discrete Linear Time-Invariant (LTI) system is characterised by the following Impulse Response: h[n] =-8[n] +38[n- 1]-[n-2] a) Find the Difference Equation of the system. b) Find the Frequency Response of the system. c) Derive the Magnitude Response of the system and express it in the form of a + bcosw, where a and b are both constants to be determined. d) Find the Transfer Function of the system and conclude its Region of Convergence. e) Comment on Stability and Causality of the system.
A discrete Linear Time-Invariant (LTI) system is a mathematical model used to describe the behavior of a system that operates on discrete-time signals. It follows two important properties.
a) y[n] = -8x[n] + 38x[n-1] - x[n-2]
b) H[k] = DFT{h[n]} = DFT{-8δ[n] + 38δ[n-1] - δ[n-2]}
c) H(z) = Z{h[n]} = Z{-8δ[n] + 38δ[n-1] - δ[n-2]}
d) H(z) = Z{h[n]} = Z{-8δ[n] + 38δ[n-1] - δ[n-2]}
e) If the impulse response is right-sided, the system is causal. If the impulse response is not right-sided, the system may be non-causal.
a) To find the difference equation of the system, we can equate the impulse response to the output of the system when the input is an impulse, which is represented by δ[n].
Given impulse response: h[n] = -8δ[n] + 38δ[n-1] - δ[n-2]
Let's denote the output of the system as y[n]. The difference equation can be written as:
y[n] = -8x[n] + 38x[n-1] - x[n-2]
where x[n] represents the input to the system.
b) The frequency response of a discrete LTI system is obtained by taking the discrete Fourier transform (DFT) of the impulse response. Let's denote the frequency response as H[k], where k represents the frequency index.
H[k] = DFT{h[n]} = DFT{-8δ[n] + 38δ[n-1] - δ[n-2]}
c) To derive the magnitude response of the system, we need to compute the magnitude of the frequency response. Let's denote the magnitude response as |H[k]|.
|H[k]| = |DFT{h[n]}|
d) The transfer function of a discrete LTI system is the z-transform of the impulse response. Let's denote the transfer function as H(z), where z represents the complex variable.
H(z) = Z{h[n]} = Z{-8δ[n] + 38δ[n-1] - δ[n-2]}
The region of convergence (ROC) of the transfer function determines the range of values for which the z-transform converges and the system is stable.
e) To comment on the stability of the system, we need to analyze the ROC of the transfer function. If the ROC includes the unit circle in the z-plane, the system is stable. If the ROC does not include the unit circle, the system may be unstable.
To comment on causality, we need to check if the impulse response is right-sided (h[n] = 0 for n < 0). If the impulse response is right-sided, the system is causal. If the impulse response is not right-sided, the system may be non-causal.
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Consider a pulse-amplitude modulated communication system where the signal is sent through channel h(t) = 8(t-t₁) + 6(t-t₂) (a) (2 points) Assuming that an absolute channel bandwidth W, determine the passband channel of h(t), i.e., find hp(t). (Hint: Use the ideal passband filter p(t) = 2W sin(W) cos(27fct)) πWt (b) (3 points) Determine the discrete-time complex baseband equivalent channel of h(t) given by he[n] assuming the sample period T, is chosen at four times the Nyquist rate. (c) (5 points) Let t₁ = 10-6 sec, t₂ = 3 x 10-6 sec, carrier frequency of fc= 1.9 GHz, and an absolute bandwidth of W = 2 MHz. Using the solution obtained (b), compute he[n].
to solve the given problem, we first find the passband channel hp(t) by convolving the channel impulse response h(t) with the ideal passband filter. Then, we determine the discrete-time complex baseband equivalent channel he[n] by sampling hp(t) at a rate four times the Nyquist rate. Finally, by substituting the provided parameter values, we compute he[n], which represents the discrete-time channel response for the given system configuration.
(a) To determine the passband channel of h(t), denoted as hp(t), we need to multiply the channel impulse response h(t) by the ideal passband filter p(t). The ideal passband filter p(t) is given by p(t) = 2W sin(πWt) / (πWt) * cos(2πfct), where W is the absolute bandwidth and fc is the carrier frequency. By convolving h(t) and p(t), we obtain hp(t) as the resulting passband channel.
(b) To find the discrete-time complex baseband equivalent channel he[n], we need to sample the passband channel hp(t) at a rate that is four times the Nyquist rate. The sample period T is chosen accordingly. By sampling hp(t) at the desired rate and converting it to the discrete-time domain, we obtain he[n] as the discrete-time complex baseband equivalent channel.
(c) Using the provided values t₁ = 10-6 sec, t₂ = 3 x 10-6 sec, fc = 1.9 GHz, and W = 2 MHz, we can now compute he[n]. We substitute the parameter values into the discrete-time complex baseband equivalent channel obtained in part (b) and perform the necessary calculations to obtain the discrete-time channel response he[n].
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An analyst receives multiple alerts for beaconing activity for a host on the network. After analyzing the activity, the analyst observes the following activity:
• A user enters comptia.org into a web browser.
• The website that appears is not the comptia.org site.
• The website is a malicious site from the attacker.
• Users in a different office are not having this issue.
Which of the following types of attacks was observed?
On-path attack
DNS poisoning
Locator (URL) redirection
Domain hijacking
The observed activity indicates a type of attack known as DNS poisoning. The user entered a legitimate website URL (comptia.org) into their web browser, but instead of accessing the genuine site, they were redirected to a malicious website.
Based on the given information, the activity described aligns with DNS poisoning. DNS (Domain Name System) poisoning, also known as DNS cache poisoning, is an attack where the attacker maliciously modifies the DNS records to redirect users to fake websites or unauthorized destinations. In this case, when the user entered "comptia.org" into their web browser, the DNS resolution process was manipulated, causing the user to be directed to a malicious site controlled by the attacker instead of the legitimate comptia.org website.
It is worth noting that DNS poisoning can occur through various means, such as compromising DNS servers or injecting forged DNS responses. By redirecting users to malicious websites, attackers can perform various activities, including phishing attacks, malware distribution, or gathering sensitive information.
The fact that users in a different office are not experiencing the same issue suggests that the attack is specific to the host or network segment where the beaconing activity was observed. Resolving this issue requires investigating the affected host's DNS settings, analyzing network traffic, and implementing appropriate security measures to prevent further DNS poisoning attacks.
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A magnetic field has a constant strength of 0.5 A/m within an evacuated cube measuring 10 cm per side. Most nearly, what is the magnetic energy contained within the cube? volume of He Mogne e Cube - (0) 3 - - 1 -3 ۷۰ energy Stoored= + * (8) 2 Lo (۱۰۲) . ها ۷۰) * () ۹xx 153 * 102 10 1051 * 100 J 1 : 05 م) [[ ° 16 × 106
The magnetic energy contained within the cube is approximately 16 × 10^6 J.
The magnetic energy (E) stored within a volume (V) with a magnetic field strength (B) is given by the formula:
E = (1/2) * μ₀ * B² * V,
where μ₀ is the permeability of free space (μ₀ = 4π × 10^-7 T·m/A).
Given:
B = 0.5 A/m,
V = (0.1 m)^3 = 0.001 m³.
Substituting the values into the formula, we get:
E = (1/2) * (4π × 10^-7 T·m/A) * (0.5 A/m)² * 0.001 m³
≈ 16 × 10^6 J.
The magnetic energy contained within the cube is approximately 16 × 10^6 J. This energy arises from the magnetic field with a constant strength of 0.5 A/m within the evacuated cube measuring 10 cm per side.
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Given below is the differential equation which is on an LTI system. dy(t) dt + ay(t) = b dx(t) dt + cx(t) From the above differetial equation draw the " Direct form 1 equation and direct form 2 realization of equation". realization of
Given differential equation is;dy(t) dt + ay(t) = b dx(t) dt + cx(t)We can represent the above differential equation in the following standard form, which is called state-space representation:
dx(t) / dt = Ax(t) + Bu(t) y(t) = Cx(t) + Du(t) Where A, B, C and D are constant matrices of appropriate dimensions. For this, first, we need to convert the given differential equation into the standard form by taking X(t) = [y(t), dy(t)/dt]T and U(t) = dx(t)/dt;
Then we have dx(t) / dt = [0 1 / -a 0] X(t) + [0 / 1] U(t) y(t) = [b / c] X(t) + [0] U(t) Hence the state-space representation of the given differential equation is; dx(t) / dt = [0 1 / -a 0] X(t) + [0 / 1] U(t) y(t) = [b / c] X(t) + [0] U(t) Now we can use this to form direct form 1 and direct form 2 realizations.
Direct Form 1 realization: The Direct Form I structure can be obtained by replacing the delays in the state-space realization with a set of delays in a feedback loop. So, Direct form 1 realization can be obtained as; Direct Form 1Direct Form 2 realization: The Direct Form II structure can be obtained by replacing the delays in the state-space realization with a set of delays in the feedforward path. So, Direct form 2 realization can be obtained as; Direct Form 2
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(a) For each of the following statements, state whether it is TRUE or FALSE. FULL marks will only be awarded with justification for either TRUE or FALSE statements.
(i) An AVL tree has a shorter height than a binary heap which contains the same n elements in both structures.
(ii) The same asymptotic runtime for any call to removeMax() in a binary max-heap, whether the heap is represented in an array or a doubly linked-list (with a pointer to the back).
(i) FALSE. An AVL tree and a binary heap can have the same height for a given number of elements n.
(ii) TRUE. The runtime of removeMax() in a binary max-heap is the same regardless of whether the heap is represented using an array or a doubly linked list.
(i) The statement is FALSE. The height of an AVL tree and a binary heap can vary for the same number of elements. An AVL tree is a balanced binary search tree that maintains a height of O(log n) to ensure efficient search, insert, and delete operations.
On the other hand, a binary heap is a complete binary tree that satisfies the heap property but does not guarantee a balanced structure. Depending on the specific arrangement of elements, a binary heap can have a shorter or longer height than an AVL tree with the same number of elements.
(ii) The statement is TRUE. The runtime of removeMax() in a binary max-heap is independent of the representation used, whether it is an array-based implementation or a doubly linked list implementation. In both cases, removing the maximum element involves swapping elements and reestablishing the heap property by comparing and potentially shifting elements downward.
These operations can be performed in constant time, O(1), regardless of the underlying representation. Thus, the asymptotic runtime for removeMax() remains the same for both array-based and doubly linked-list-based binary max-heaps.
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Given the following 1st order transfer function: 200 8+100 HA(8) HB(8) = 1 Hc(8) HD(8) 38+6 50 8+10 18 Answer the following questions: Assume that the input signal u(t) is a step with amplitude 10 at t = 0. Which transfer function corresponds to a steady-state value y()=50? OH (8) HD(8) OHA(8) Hc(8) Assume that the input signal u(t) is a step with amplitude 6 at t = 200. Which transfer function corresponds to a steady-state value y()=12? O HD(8) Hc(8) HB(8) OHA(s) Which transfer function corresponds to the fastest process? HD(8) Hc(8) HA(8) HB(8) Which transfer function corresponds to the slowest process? OHA(8) OHB(8) Hc(8) HD(8) Assume that the input signal u(t) is a step with unknown amplitude at t = 7 and that the steady-state value is y()=10. Which transfer function corresponds to an output signal y(t)=6.3 at t = 8? OHB(8) o Hc(8) OHA(8) HD(8)
Given the 1st order transfer function: \[\frac{200}{s+8}+\frac{100}{s+6}H_A(s)H_B(s) = \frac{1}{s}\frac{50}{s+18}+\frac{10}{s+38}H_C(s)H_D(s)\] where u(t) is a step with amplitude 10 at t=0.1. The transfer function corresponding to a steady-state value y(∞)=50 is H_C(s). The transfer function corresponds to a steady-state value y(∞)=12 at t=200 when u(t) is a step with amplitude 6 is H_B(s). The transfer function corresponding to the fastest process is H_C(s).
The transfer function corresponding to the slowest process is H_A(s). The transfer function corresponds to an output signal y(t)=6.3 at t=8 when the input signal u(t) is a step with unknown amplitude at t=7 and the steady-state value is y(∞)=10 is H_B(s). Hence, the answer is OHB(8).
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Three physically identical synchronous generators are operating in parallel. They are all rated for a full load of 3 MW at 0.85 PF lagging. The no-load frequency of generator A is 61 Hz, and its speed droop is 3.4 percent. The no-load frequency of generator B is 61.5 Hz, and its speed droop is 3 percent. The no-load frequency of generator C is 60.5 Hz, and its speed droop is 2.6percent. If a total load consisting of 7 MW is being supplied by this power system, what will the system frequency be and how will the power be shared among the three generators?
Given data: Three physically identical synchronous generators are operating in parallel. They are all rated for a full load of 3 MW at 0.85 PF lagging.
The no-load frequency of generator A is 61 Hz, and its speed droop is 3.4 percent. The no-load frequency of generator B is 61.5 Hz, and its speed droop is 3 percent. The no-load frequency of generator C is 60.5 Hz, and its speed droop is 2.6 percent.
If a total load consisting of 7 MW is being supplied by this power system, Solution: We can start by finding the per-unit power rating of each generator.
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If the load of wye connected transformer are: IA = 10 cis(-30°) IB= 12 cis (215°) Ic= 15 cis (820) What is the positive sequence component? 2. The sequence component of phase a current are: = = Zero sequence current Positive sequence component Negative sequence component = Determine the phase b current. 0.47 +j1.49 18.4 cis (-31.6°) 3.23 cis (168.2°)
Given, load of wye connected transformer:IA = 10 cis(-30°)IB= 12 cis (215°)Ic= 15 cis (820)To find the positive sequence component, let's first calculate the phasors for the positive, negative, and zero sequence component:Phasors for Positive Sequence component:
Phasors for Negative Sequence component: Phasors for Zero Sequence component: Now, we can find the positive sequence component as follows: Positive sequence component = A + B² + C / 3Where,A = IA = 10 cis(-30°)B = IB e^(j120°) = 12 cis (215°+120°) = 12 cis (335°)C = IC e^(j240°) = 15 cis (820+240°) = 15 cis (140°)
Therefore, Positive sequence component = [10 cis(-30°)] + [12 cis(335°)] + [15 cis(140°)] / 3= [10 - 6.928i] + [-0.566 - 11.559i] + [-10.287 + 4.609i] / 3= -0.281 - 4.293i Hence, the positive sequence component of the given load is -0.281 - 4.293i.Sequence components of phase a current: Positive sequence component Negative sequence componentZero sequence componentWe have to determine the phase b current. Phase b current is given by,IB = IA e^(j-120°) e^(j-120°) = e^(j-120°) = cos(-120°) + j sin(-120°) = -0.5-j0.866IB = IA e^(j-120°) = 10 cis(-30°) e^(j-120°) = 10 [cos(-30°-120°) + j sin(-30°-120°)] = 10 cis (-150°) = 18.4 cis (-31.6°)Hence, the phase b current is 18.4 cis (-31.6°).
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A series-connected RLC circuit has R = 4 and C = : 10 µF. (7 pts) a) Calculate the value of L that will produce a quality factor of 5. b) Find w₁, W₂ and B. c) Determine the average power dissipated at w = w₁, W₁, W₂. Take Vm = 200V.
The correct answer is a) 0.00032 H b) 3535.53 rad/s c) the average power dissipated in the circuit for w = w₁ is 5000 W, for w = wr is 5000 W, and for w = w₂ is 5000 W.
a) Formula for the quality factor, Q of an RLC series circuit is given by:Q = R√(C/L)
Rearranging this equation to obtain the value of L: Q = R√(C/L)Q² = R² (C/L) L = R²C/Q²= 4² × 10 × 10^-6 / 5²= 0.00032 H
b) The resonant frequency, wr is given by: wr = 1/√(LC)= 1/√(0.00032 × 10^-5)= 1767.766 rad/s
For series resonance: ω₁ = wr/Q = 1767.766/5= 353.553 rad/s
For half-power frequencies: Lower half-power frequency, ω₁ = wr - B/2
Upper half-power frequency, ω₂ = wr + B/2
Using the formula, B = ω₂ - ω₁= 2ω₁ Q= 2(353.553) (5)= 3535.53 rad/s
c) The impedance of the circuit, Z is given by: Z = R + j(XC - XL) Where XL and XC are the inductive and capacitive reactances respectively.
At resonance, XL = XC, therefore, XC - XL = 0.
The average power dissipated, P in the circuit is given by :P = Vrms Irms cos Φ Where Φ is the phase angle between the voltage and current waveforms.
At resonance, Φ = 0 and cos Φ = 1For ω = ω₁:Z = R + j(XC - XL)= R + j0= R= 4 ΩI = Vm/R = 200/4= 50 A
Therefore, P = Vrms Irms cos Φ= 200/√2 × 50/√2 × 1= 5000 W
For ω = wr: XC = XL= 1/ωC= 1/(1767.766 × 10^6 × 10^-6)= 565 Ω
I = Vm/Z= 200/(4 + j0)= 50 - j0= 50∠0°
Therefore, P = Vrms Irms cos Φ= 200/√2 × 50/√2 × 1= 5000 W
For ω = ω₂: Z = R + j(XC - XL)= R + j0= R= 4 ΩI = Vm/R = 200/4= 50 A
Therefore, P = Vrms Irms cos Φ= 200/√2 × 50/√2 × 1= 5000 W
Therefore, the average power dissipated in the circuit for w = w₁ is 5000 W, for w = wr is 5000 W, and for w = w₂ is 5000 W.
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