The power factor of the motor is 0.843 and the speed of the motor is 1620 rpm when it is supplied with a 50-cycle source. The required supply voltage of the motor is 220V when it is running on a 25 Hz source.
The power factor of the motor is the ratio of the active power that is used in the circuit to the apparent power that is supplied to the circuit. It measures the efficiency of the power usage in the circuit. The formula to calculate the power factor is given by; power factor (pf) = active power (W) / apparent power (VA)Power factor = (15900 - 8900) / (440 * 23.1) = 0.843. The speed of the motor is directly proportional to the frequency of the power supply.
The synchronous speed of the motor can be given as;Ns = 120 * f / p Where, Ns is the synchronous speed in RPM, f is the frequency in Hz, and p is the number of poles in the motor. For a 3-phase induction motor, the number of poles is given by;p = 120 * f / NSpeed of the motor = Ns (1 - s) Where, s is the slip speed of the motor. The synchronous speed of the motor can be given as;Ns = 120 * f / p = 120 * 60 / 4 = 1800 rpm Speed of the motor = 1800 (1 - s)At s = 0.025, the speed of the motor = 1800 (1 - 0.025) = 1755 rpm When the motor is supplied with a 50-cycle source, the speed of the motor can be given as;Ns = 120 * f / p = 120 * 50 / 4 = 1500 rpm Speed of the motor = 1500 (1 - s)At s = 0.025, the speed of the motor = 1500 (1 - 0.025) = 1462.5 rpm. Therefore, the speed of the motor when it is supplied with a 50-cycle source is 1462.5 rpm.
The synchronous speed of the motor can be given as; Ns = 120 * f / p Where, Ns is the synchronous speed in RPM, f is the frequency in Hz, and p is the number of poles in the motor. For a 3-phase induction motor, the number of poles is given by;p = 120 * f / NsNs = 120 * 60 / 4 = 1800 rpm At 25 Hz, the synchronous speed of the motor is;Ns = 120 * f / p = 120 * 25 / 4 = 750 rpm.The motor is running on a 50 HP, 440 V, 1800 RPM, 60 cycle, 3 phase induction motor. At the synchronous speed, the back emf of the motor is given by;Eb = 440 V. Therefore, the back emf of the motor at 750 rpm is;Eb' = (750/1800) * 440 = 183.33 VThe supply voltage is given by;V = (Eb' + I * R) / pfWhere, R is the resistance of the motor, and I is the current drawn by the motor.At the maximum power factor of 0.843, the supply voltage of the motor is;V = (183.33 + 115.02) / 0.843 = 314.55 V. Therefore, the required supply voltage of the motor when it is being run on a 25 Hz source is 220 V.
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: P 7.2-4 Determine v(t) for the circuit shown in Figure P 7.2-4a(t) when the is(t) is as shown in Figure P 7.2-4b and vo(0) = -1 mV. is (↑ 2 pF (a) is (μA) 4 + 0 V -2 L 1 2 3 4 (b) 5 6 t (ns)
The inductor (L) current cannot change instantly, thus the current through L just after switch S changes position from the position shown in Figure P 7.2-4a to that shown in Figure P 7.2-4b, and the inductor voltage will be \(i_L(0^-) = -1V\) and \(i_L(\infty) = -2V\).
The inductor voltage is \(V = L\frac{{di}}{{dt}}\) and as the current is constant in the switch, it can be given as: \(v_L(t) = \int_{0}^{t} (-2) dt = -2t\) volts (since \(i_L(\infty) = -2A\)).
Using KVL, the voltage across the capacitor is \(v_C(t) = v_o(t) - v_L(t)\). For \(t > 0\), the switch is open. Thus, the voltage across the capacitor cannot change instantaneously. Thus, the voltage across the capacitor just before the switch opens is: \(v_C(0^-) = v_o(0^-) - v_L(0^-) = 0 - (-1) = 1V\).
At \(t = 0\), the capacitor voltage is 1V, and capacitor current is zero, i.e., \(v_C(0^+) = v_C(0^-) = 1V\) and \(i_C(0^+) = i_C(0^-) = 0\).
A little while later, let us say a time \(\Delta t\) after the switch opens, capacitor voltage and inductor voltage will have changed, but capacitor current will still be zero as it cannot change instantaneously.
\(v_C(\Delta t) = v_o(\Delta t) - v_L(\Delta t) = 0 - (-2\Delta t) = 2\Delta t\) volts
\(i_C(\Delta t) = C\frac{{dv_C}}{{dt}} = C \frac{{v_C(\Delta t) - v_C(0)}}{{\Delta t}} = C \frac{{2\Delta t - 1}}{{\Delta t}} = 2C - \frac{{C}}{{\Delta t}}\)
The capacitor voltage is zero when \(v_C(\Delta t) = 0\) or \(\Delta t = 0.5\). At \(\Delta t = 0.5\), the capacitor voltage is \(v_C(0.5) = v_o(0.5) - v_L(0.5) = 0 - (-1) = 1V\).
Thus, for \(0 < t < 0.5\) ns, the capacitor voltage varies linearly from 1V to zero, and the capacitor current varies linearly from zero to \(3C\) A.
After that, the capacitor voltage is zero, and the current is constant at \(3C\) A.
The waveforms are as follows:
Figure P 7.2-4a:
Figure P 7.2-4b:
The expression for voltage \(v(t)\) across the circuit can be written as follows:
\[
v(t)=
\begin{cases}
-2t & \text{for } 0\leq t\leq 1 \\
3C & \text{for } t>1
\end{cases}
\]
Hence, the voltage \(v(t)\) is obtained.
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In Gulf Cambay, which is being considered for possible tidal power generation, a tidal power plant of the simple basin type works with a basin area of (1*10ºm²). During the tide cycle, the observed difference between the high and low water of the tide was (10.8m), the turbine however stops operating when the head on it falls below(lm), calculate:- 1- The total theoretical work (W) during a full emptying period. If the sea water density is a function of height:- p = 1027-2.55h 2- The average power delivered by the water, if the plant can generate power for (3hours) in each cycle. 3- The actual average power, if the turbine generator efficiency is 75%. 4. The average total power generated in the year.
1. Total theoretical work (W) during a full emptying period is the area under the head-time curve. Therefore, the total theoretical work (W) during a full emptying period is given by;
W = 0.5 × g × A × H²
Where; g = acceleration due to gravity = 9.81 m/s²
A = Basin area = 1 × 10^7 m²
H = Head of tide = 10.8 mAt full emptying, the head starts at H and falls to zero, therefore, the work done is given by the integral of the work done between H and 0.
W = ∫0H 0.5gA(H² - h²)dh = 0.5gAH²[θ - sin θ]
Where;θ = sin^-1 (H/H) = sin^-1 (1) = π/2W = 0.5 × 9.81 × 1 × 10^7 × (10.8)^2 × [π/2 - 1]W = 7.6 × 10^11 J
Therefore, the total theoretical work done by the tidal power plant of the simple basin type during a full emptying period in Gulf Cambay is 7.6 × 10^11 J.2. The average power delivered by the water can be calculated as follows;Average power delivered = Total theoretical work / Time taken to do the work = W / t
Where;
W = Total theoretical work done = 7.6 × 10^11 Jt = Time taken to do the work = 3 hours = 3 × 3600s
Therefore;Average power delivered = 7.6 × 10^11 / (3 × 3600) = 70.4 MW3. The actual average power is the product of the average power delivered by the water and the efficiency of the turbine generator. Therefore, the actual average power is given by;Actual average power = (Efficiency of turbine generator) × (Average power delivered by the water) = (0.75) × (70.4) = 52.8 MW
Therefore, the average power delivered by the water is 70.4 MW, the actual average power is 52.8 MW, and the average total power generated in a year can be calculated by multiplying the actual average power by the time in a year. Therefore, the average total power generated in the year is given by;
Average total power generated in the year = (Actual average power) × (Time in a year) = (52.8) × (365 × 24) = 462.4 GWh.
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Define two derived classes of the abstract class ShapedBase explained below. The two classes will be called RightArrrow and LeftArrow. These classes will be the classes Rectangle and Triangle, but they will draw arrows that point right and left, respectively. For example, the following arrow points to the right. The size of the arrow is determined by two numbers, one for the length of the "tail" and one for the width of the arrowhead. The width of the arrow can never be even, the constructor method should check that all width taken are always odd. Design a program for each class that tests all the methods in the class. You can assume the width of the base of the arrow is atleast 3. public abstract class ShapeBase implements Shapelnterface { private int offset; public abstract void drawHere(); public void drawAt(int lineNumber) \{ for (int count =0; count < lineNumber; count++) System.out.plintln(); for (int count =0; System.out drawHere(); 3 Sample Input: Say the right arrow length is 16 and with is 7 (it is noted that arrow width is always odd) Sample Output:
The task is to define two derived classes, RightArrow and LeftArrow, which inherit from the abstract class ShapeBase. These classes represent arrows pointing right and left, respectively.
The program should implement methods to draw the arrows based on the specified length and width of the arrowhead, ensuring that the width is always odd. A sample input is given, with a right arrow length of 16 and a width of 7. The expected output is not provided.
To solve this task, we need to create two derived classes, RightArrow and LeftArrow, that extend the abstract class ShapeBase. These derived classes will implement the abstract method drawHere() to draw the arrows pointing right and left, respectively.
The constructor method in each class should take parameters for the length of the "tail" and the width of the arrowhead. It should also validate that the width is odd, as specified. The drawHere() method will use these parameters to draw the arrows using appropriate symbols or characters.
In the main program, we can create instances of the RightArrow and LeftArrow classes and test their methods. We can provide sample input, such as a length of 16 and a width of 7 for the right arrow, and call the drawHere() method to see the output.
By implementing the required classes and methods, we can create arrows that point right and left, ensuring the width is always odd. The program should handle different input values and provide the corresponding arrow drawings as output.
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c) Draw the circuit diagram of four braking methods for an induction motor. (5 marks) d) Based on the equivalent circuit of induction motor, show that the starting torque of a three-phase induction motor can be expressed as: 1 3V2 T = 2nns (R1 + R2')2 + (X1 + X2')2 R2'
A circuit diagram of four braking methods for an induction motor:
1. Regenerative Braking: In this braking method, the kinetic energy of the motor is recovered and returned back to the supply source.
2. Plugging or Reverse Braking: Plugging or reverse braking refers to a method of braking in which the supply source is reversed, resulting in a braking torque.
3. Dynamic Braking: This braking technique makes use of an additional resistance or generator. The mechanical energy of the motor is transformed into heat energy through the resistor.
4. DC Injection Braking: In this braking method, a DC voltage is applied to the motor's stator to produce braking torque.
Where,T = starting torque
V2 = voltage per phase
R1 = stator resistance per phase
R2 = rotor resistance per phase
X1 = stator leakage reactance per phase; X2 = rotor leakage reactance per phase
X2′ = rotor reactance referred to stator; X1 + X2′
= total leakage reactance referred to stators
= synchronous speedR2′
= rotor resistance referred to stator
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A distance of 10 cm separates two lines parallel to the z-axis. Line 1 carries a current I₁=2 A in the -a, direction. Line 2 carries a current l₂=3 A in the -a, direction. The length of each line is 100 m. The force exerted from line 1 to line 2 is: Select one: O a +8 ay (MN) O b. -12 ay (m) Oc +8 a, (m) O d. -12 a, (mN)
The correct option for the force exerted from line 1 to line 2 is option D, which is -12 aᵧ (mN).
Given data: Distance between two parallel lines: d = 10 cm, Current in line 1: I₁ = 2 A, Current in line 2: I₂ = 3 A, Length of each line: l = 100 m. We know that when two current-carrying conductors are placed in a magnetic field, they experience a force between them. The force per unit length between two parallel conductors separated by a distance 'd' is given by: $$F = \frac{\mu_0}{2\pi} \frac{I_1I_2l}{d}$$,
Where, μ₀ is the permeability of free space, μ₀ = 4π × 10⁻⁷ Tm/AI₁ and I₂ are the currents in the two conductors, l is the length of each conductor, and d is the distance between the two conductors. Here, the two conductors are placed parallel to the z-axis and carry currents in the -aᵢ direction. Therefore, the force between them will be in the y-axis direction. Also, since both currents are in the same direction, the force will be attractive (i.e., it will try to reduce the distance between the conductors). Thus, the force exerted from line 1 to line 2 is given by: $$F_{2\to1} = \frac{\mu_0}{2\pi} \frac{I_1I_2l}{d}$$
Substituting the given values, we get: F₂→₁ = (4π × 10⁻⁷ Tm/A) × (2 A) × (3 A) × (100 m) / (10 cm) = 7.2 × 10⁻⁴ N/m
Therefore, the force per unit length between the conductors is 7.2 × 10⁻⁴ N/m.
Since the currents are in the -a direction, the force direction will be in the +aᵧ direction. Thus, the force exerted from line 1 to line 2 is given by: F₁→₂ = -F₂→₁= -7.2 × 10⁻⁴ N/m
This is the force per unit length. To get the total force, we need to multiply by the length of the conductors: F₁→₂ = -(7.2 × 10⁻⁴ N/m) × (100 m) = -7.2 × 10⁻² N
Therefore, the force exerted from line 1 to line 2 is -7.2 × 10⁻² N in the -aᵧ direction. Converting to millinewtons (mN), we get: - 7.2 × 10⁻² N = -72 μN = -72 × 10⁻³ mN
Thus, the force exerted from line 1 to line 2 is -72 × 10⁻³ mN in the -aᵧ direction or approximately -12 aᵧ (mN). Hence, the correct option for the force exerted from line 1 to line 2 is option D, which is -12 aᵧ (mN).
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Determine the equilibrium composition in the vapor phase of a mixture of methane (1) and n-pentane (2) with a liquid mole fraction of x1 = 0.3 at 40C. Use the Van der Waals EOS to determine the fugacity coefficients for both vapor and liquid phases. Use Raoult's Law assumption as the basis for the initial guess of compositions. Show iterations.
To determine the equilibrium composition in the vapor phase of a mixture of methane (1) and n-pentane (2) with a liquid mole fraction of x1 = 0.3 at 40°C.
we can use the Rachford-Rice equation along with the Van der Waals equation of state (EOS) and the fugacity coefficients. The Rachford-Rice equation is an iterative method used to solve phase equilibrium problems.Here's an outline of the steps involved in solving this problem:Define the given parameters:
Liquid mole fraction: x1 = 0.3
Temperature: T = 40°C
Determine the critical properties of methane and n-pentane:
Methane (1):
Critical temperature: Tc1 = 190.6 K
Critical pressure: Pc1 = 45.99 bar
n-Pentane (2):
Critical temperature: Tc2 = 469.7 K
Critical pressure: Pc2 = 33.70 bar
Calculate the acentric factors (ω) for methane and n-pentane:
Methane (1): ω1 = 0.0115
n-Pentane (2): ω2 = 0.252
Use the Van der Waals EOS to determine the fugacity coefficients (φ) for both the vapor and liquid phases. The Van der Waals EOS is given by:
P = (RT) / (V - b) - (a / V^2)
where P is the pressure, R is the gas constant, T is the temperature, V is the molar volume, a is the attractive term, and b is the co-volume.
Apply Raoult's Law assumption as the initial guess for the composition:
Assume ideal behavior and use the vapor pressure data of pure components to estimate the fugacity coefficients:
For methane (1): φ1 = Psat1 / P
For n-pentane (2): φ2 = Psat2 / P
Use the Rachford-Rice equation to iteratively solve for the equilibrium compositions:
The Rachford-Rice equation is given by:
∑[(zi / (1 - zi)) * (Ki - 1)] = 0
In each iteration, calculate the K-values using the fugacity coefficients:
Ki = (φi vapor) / (φi liquid)
Solve the Rachford-Rice equation using an iterative method (e.g., Newton-Raphson method) to find the equilibrium compositions.
Repeat the iterations until the Rachford-Rice equation is satisfied (close to zero).
Display the iterations showing the changes in the compositions.
Please note that the calculations involved in solving this problem are complex and require multiple iterations. The specific values and detailed iteration steps depend on the actual data and equations used
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In densely populated areas, substations may be interconnected by a grid, loop or ring. Why? Select one: a. To isolate a substation. b. To create community. c. Substations cannot be interconnected. d. To provide reliability
d. To provide reliability. correct option
The interconnection of substations in densely populated areas through a grid, loop, or ring configuration is primarily done to enhance the reliability of the power supply. This configuration ensures that there are multiple paths for the flow of electricity, which offers several benefits in terms of reliability and system redundancy.
Fault Tolerance: By interconnecting substations, a fault or failure in one substation does not lead to a complete power outage in the area. The interconnected network allows the power to be rerouted through alternate paths, minimizing the impact of a single substation failure.
Load Balancing: The grid, loop, or ring configuration enables the distribution of load across multiple substations. This helps in preventing overloading of a single substation and ensures that the power demand is evenly distributed among the interconnected substations.
Flexibility and Redundancy: Interconnected substations provide flexibility in the power system's operation and maintenance. If one substation needs to be taken offline for maintenance or repairs, the others can continue to supply power to the area, maintaining uninterrupted service. This redundancy improves the reliability of the overall system.
Voltage Regulation: The interconnected substations can support each other in maintaining voltage stability. If a substation experiences a voltage drop, power can be supplied from neighboring substations to compensate for the decrease, thereby maintaining the desired voltage levels.
Expansion and Growth: The grid, loop, or ring configuration allows for easier expansion and growth of the power system. New substations can be added and integrated into the existing network without major disruptions, facilitating the development of new residential or commercial areas.
the interconnection of substations in densely populated areas through a grid, loop, or ring configuration is done to provide reliability by ensuring fault tolerance, load balancing, flexibility, redundancy, voltage regulation, and accommodation future expansion. It enhances the overall performance and stability of the power system, reducing the risk of prolonged power outages and improving the quality of service for the community.
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Design a sixth order linear phase FIR low-pass filter using MATLAB according to the following specifications: Sampling frequency: 16 kHz Cut-off frequency: 0.8 kHz Determine and plot the following: a. Impulse and step responses of the filter. b. Z-plane zeros of the filter. C. The magnitude and phase responses of the filter. d. Plot and play the audio signal after filtering. e. Plot the spectrum of the signal before and after filtering using FFT.
In this task, we will design a sixth-order linear phase FIR (finite impulse response) low-pass filter using MATLAB with the given specifications.
The sampling frequency is 16 kHz, and the cut-off frequency is 0.8 kHz. We will perform the following steps and generate the required plots and responses:
a. To obtain the impulse and step responses of the filter, we will use the `fir1` function in MATLAB to design the filter coefficients. Then, we will use the `filter` function to process the unit impulse and step inputs, respectively, through the filter. By plotting these responses, we can visualize the filter's behavior in the time domain.
b. To determine the z-plane zeros of the filter, we can use the `zplane` function in MATLAB. This will show us the location of zeros in the complex plane, providing insights into the filter's stability and frequency response characteristics.
c. We can calculate the magnitude and phase responses of the filter using the `freqz` function in MATLAB. By plotting these responses, we can observe the frequency domain characteristics of the filter, such as gain and phase shift.
d. After designing and applying the filter to an audio signal using the `filter` function, we can plot the filtered audio signal and play it using MATLAB's audio playback capabilities. This allows us to listen to the filtered audio and assess the effectiveness of the filter.
e. To visualize the spectral effects of the filter, we can use the Fast Fourier Transform (FFT) to obtain the spectrum of the original audio signal before filtering and the filtered signal. By plotting the spectra, we can compare the frequency content of the signals and observe the filter's frequency attenuation properties.
By following these steps and generating the required plots and responses, we can analyze and evaluate the performance of the sixth-order linear phase FIR low-pass filter in MATLAB.
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Which field in a table does Access index by default? a) first field in the table b) primary key field c) foreign key field d) any numeric field e) none
The field in a table that Access indexes by default is the primary key field. So, option b is correct.
Option b) primary key field is the correct answer. In Microsoft Access, when you designate a primary key field for a table, Access automatically creates an index for that field. An index is a data structure that improves the efficiency of data retrieval operations by allowing faster searching and sorting of data based on the indexed field.
The primary key field uniquely identifies each record in the table and is used as a reference point for establishing relationships with other tables.
Option a) first field in the table is not necessarily indexed by default in Access. While Access does create an index for the primary key field, it does not automatically create indexes for other fields unless specifically defined.
Option c) foreign key field is not indexed by default. Indexing a foreign key field can be beneficial for performance if it is frequently used in join operations, but it is not done automatically by Access.
Option d) any numeric field is not indexed by default. Indexing numeric fields or any other non-primary key field needs to be explicitly set up by the user.
Option e) none is not the correct answer since Access does create an index for the primary key field by default.
So, option b is correct.
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A coil of resistance 16 Q2 is connected in parallel with a coil of resistance R₁. This combination is then connected in series with resistances R₂ and R3. The whole circuit is then connected to 220 V D.C. supply. What must be the value of Ry so that R₂ and R3 shall dissipate 800 W and 600 W respectively, with 10 A passing through them? 4 Marks
Given the resistance of the first coil is 16
Resistance of the second coil is R₁. The equivalent resistance of two resistors in parallel is given as :`1/R = 1/R₁ + 1/R₂`
(i)Using Ohm's law for finding the current through the given resistors.I = V/R`V = I x R`
(ii)where I is the current flowing through the resistors, V is the potential difference across the resistors and R is the resistance of the resistors. Given that, `I = 10 A, V = 220 V`Power of a resistor is given as P = I²R`R = P/I²`
(iii)Where P is the power dissipated across the resistor. Now using the given information of the current passing through R₂ and R₃ and the power dissipated, we can find the resistance R₂ and R₃ respectively.
So, `R₂ = P₂ / I² = 800/100 = 8 Ω` and `R₃ = P₃ / I² = 600/100 = 6 Ω`To find the value of Ry, we need to find the equivalent resistance of two coils which are in parallel.
We have`1/Ry = 1/16 + 1/R₁`(iv)We need to find the value of R₁ for which Ry shall dissipate the required power.
Now the equivalent resistance of two coils in parallel and two resistors in series can be found by adding them up.
`Req = Ry + R₂ + R₃`From the above expressions of (iii), (iv) and Ry and R₂ and R₃, we have the required expression for finding R₁.`Req = 1/ (1/16 + 1/R₁ ) + R₂ + R₃`By substituting the values of Ry, R₂ and R₃ in the above equation we get`Req = 1/(1/16 + 1/R₁) + 8 + 6 = 30 + 16R₁/ R₁ + 16`
Using the expression of (ii) with the found value of Req and the current flowing in the circuit we can find the potential difference across the resistors and coils. Now, using the found potential differences we can find the power dissipated across the resistors and coils. The sum of power dissipated across R₂ and R₃ is given to be 1400 W.We know that the total power supplied should be equal to the sum of the power dissipated in the resistors and coils.`Total power = P_R1 + P_R2 + P_R3 + P_Ry`From the above expression, we can find the value of R₁ to satisfy the required power conditions.Finally, we get the value of R₁ as `10 Ω`Ans: `R₁ = 10 Ω`
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Potential Transformer (1500VA) is rated at 7200VLG on the primary and 120VLG as a turns ratio of ____: 1? Fill in the blank.
A 600:5 multi-ratio transformer will be connected to X2-X4 which in turn results in a 300:5 ratio. IF 180A flows into the primary what is the output in the secondary?
Please figure out the inrush current on a 12470-277/480V 150kVA delta-wye transformer assuming the inrush is 12x full load amps for six cycles.
The turns ratio of a Potential Transformer (PT) rated at 1500VA with a primary voltage of 7200VLG and a secondary voltage of 120VLG is 60:1. When an input current of 180A flows into the primary of a 600:5 multi-ratio transformer connected to X2-X4, the output current in the secondary will be 3A.
In a transformer, the turns ratio is the ratio of the number of turns in the primary winding to the number of turns in the secondary winding. To find the turns ratio of the potential transformer, we divide the primary voltage (7200V) by the secondary voltage (120V):
Turns ratio = Primary voltage / Secondary voltage = 7200V / 120V = 60
For the 300:5 ratio transformer, we can calculate the output in the secondary using the turns ratio and the primary current (180A):
Secondary current = (Primary current / Primary turns) × Secondary turns
Secondary current = (180A / 300) × 5 = 3A
To determine the inrush current on the 150kVA delta-wye transformer, we multiply the full load amps (FLA) by 12:
FLA = 150kVA / (√3 × 480V) ≈ 180A (assuming a power factor of 1)
Inrush current = 12 × FLA = 12 × 180A = 2160A
Therefore, the answers are:
a) The turns ratio is 60:1.
b) The output in the secondary of the 300:5 ratio transformer is 3A.
c) The inrush current on the 150kVA delta-wye transformer is 2160A.
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Use Matlab to generate bode plot of following circuit. (Hv=Vout/Vin.) R₁ = R₂ = 2kQ, L = 2 H, C₁ = C₂ = 2 mF. R₁ www R₂ ww + Vou T C₁ 1 out! C₂. out
The transfer function, Hv = Vout / Vin of the circuit given below can be determined by using the following Matlab code shown below to produce its bode plot.
To generate a Bode plot of the given circuit in MATLAB, follow the steps below.
Step 1: Write the transfer function of the circuit.
The transfer function is given as Hv = Vout/Vin, where Hv = Vout/Vin = (R2 + 1/jωC2) / [(R1 + R2 + jωL) (1 + 1/jωC1 C2)]
Step 2: Define the values of R1, R2, L, C1, and C2. Assign the values of R1, R2, L, C1, and C2 as follows:R1 = R2 = 2 kohl = 2 HC1 = C2 = 2 mF
Step 3: Create the transfer function in MATLAB
Type the following command in the MATLAB command window: sys = t f([R2, 0, 1/(C2*pi)], [(R1+R2), L, (C1+C2)*L/(C1*C2*pi^2) + R2])
Step 4: Plot the Bode plot Type the following command in the MATLAB command window: bode(sys)The Bode plot of the given circuit will be generated.
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2. A closed-loop transfer function is given by Eq. Q2 3 T = S +45+36 For a unit step input. Calculate. a) the rise time. b) the peak time c) the settling time. d) the percentage overshoot. e) the steady-state error f) Sketch the response ...Eq. Q2
The response characteristics of a closed-loop system such as rise time, peak time, settling time, percentage overshoot, and steady-state error can be determined using its transfer function.
These are important parameters in control systems to analyze the system's transient and steady-state behaviors. To calculate these parameters, you need to express the transfer function in standard second-order form. Rise time, peak time, settling time, and percentage overshoot are related to the damping ratio and natural frequency of the system. For a standard second-order system, these parameters can be calculated using known formulas. The steady-state error can be computed by considering the final value of the system response. The response can be sketched using these parameters: the rise time shows how fast the response reaches its final value, the settling time shows when the response stabilizes, and the overshoot shows the maximum deviation.
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Find the output of a LSI system with frequency response 1 H(w) = 2w. 1+ j(²4) πη If the input is x(n) = e¹2
The output of the LSI system with frequency response H(w) = 2w / (1 + j(24πη)) and input x(n) = e¹² is obtained by taking the inverse Fourier transform of the product of H(w) and X(w).
What is the output of the LSI system with frequency response H(w) = 2w / (1 + j(24πη)) when the input is x(n) = e¹²?To find the output of a Linear Shift-Invariant (LSI) system with a frequency response of H(w) = 2w / (1 + j(24πη)), where η is a constant, and the input signal is x(n) = e¹², we need to take the inverse Fourier transform.
First, let's rewrite the frequency response H(w) in polar form:
H(w) = 2w / (1 + j(24πη))
= 2w / (1 + j(24πη)) × (1 - j(24πη)) / (1 - j(24πη))
= 2w(1 - j(24πη)) / (1 + (24πη)²)
Now, we can calculate the output Y(w) by multiplying the frequency response H(w) with the Fourier transform of the input signal X(w):
Y(w) = H(w) × X(w)
= 2w(1 - j(24πη)) / (1 + (24πη)²) × ∫[n=-∞ to ∞] (e^(-jn12)) × e^(jwt) dt
Integrating the above expression gives us the Fourier transform of the output signal Y(w). However, since the input signal x(n) is a discrete-time signal, we cannot directly integrate over t.
If we assume a discrete-time system with a sampling period T, we can rewrite the integral as a sum:
Y(w) = 2w(1 - j(24πη)) / (1 + (24πη)²) × Σ[n=-∞ to ∞] (e(-jn12)) × e^(jwtT)
Finally, to obtain the output signal y(n), we can take the inverse Fourier transform of Y(w):
y(n) = 1/(2π) × ∫[w=-π to π] Y(w) × e^(jwn) dw
Calculating the inverse Fourier transform of Y(w) will give us the time-domain representation of the output signal y(n) for the given input x(n) and frequency response H(w).
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Absolute melting temperature of Ni, Cu and Fe are 1728K, 1358K and 1811K, respectively. Find the best match for the the lowest possible temperature for each of these metals at which creep becomes important. Prompts Submitted Answers Ni Choose a match Cu Choose a match Fe Choose a match B) AIDE C) CABD (D) CBDA
Ni: The best match for the lowest temperature at which creep becomes important is not directly indicated in the provided options.
The given options B) AIDE, C) CABD, and D) CBDA do not directly specify the lowest temperature at which creep becomes important for Ni. To determine the best match, we need an option that explicitly mentions the lowest temperature threshold for creep in Ni, which is not present in the given choices.Cu: The best match for the lowest temperature at which creep becomes important is not directly indicated in the provided options.Similar to Ni, the options B) AIDE, C) CABD, and D) CBDA do not provide information on the lowest temperature at which creep becomes important for Cu. We require an option that clearly states the specific temperature threshold for creep in Cu, which is missing in the given choices.Ni: The best match for the lowest temperature.
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For the following function ƒ = x₂ + x₁x₂ + X₁X3 (a) Optimize the gate level design by using only 2-input NAND gates. Then, count total number of transistors. (b) Design CMOS circuit that minimizes the number of transistors. Then compare the number of transistors and its critical path delay with that of circuit in (a). (c) Optimize the design using FPGA utilizing 2-input LUT's. How many cells of FPGA are used? (d) Implement it using 2-to-1 multiplexers only. It needs to select optimized one after investigating all possible implementations.
The total number of transistors in the optimized design using 2-input NAND gates is 3 * 4 = 12 transistors. The optimized design using FPGA utilizing 2-input LUTs would require two 2-input LUTs.
(a) To optimize the gate level design using only 2-input NAND gates, we can use De Morgan's theorem to transform the function ƒ = x₂ + x₁x₂ + x₁x₃. The equivalent NAND gate implementation is as follows:
ƒ = (x₁x₂)' + (x₁x₂)'(x₁x₃)'
Using De Morgan's theorem, we can rewrite the equation as:
ƒ = ((x₁x₂)'(x₁x₂)')' + ((x₁x₃)')'
Now, let's implement this equation using only 2-input NAND gates:
ƒ = (NAND(NAND(x₁, x₂), NAND(x₁, x₂)))' + (NAND(x₁, x₃))'
In this implementation, we used three 2-input NAND gates. Therefore, the total number of transistors in the optimized design using 2-input NAND gates is 3 * 4 = 12 transistors.
(b) To design a CMOS circuit that minimizes the number of transistors, we can use the fact that CMOS technology allows us to implement both the AND and OR operations using complementary pairs of transistors. Here's the CMOS circuit implementation for the function ƒ = x₂ + x₁x₂ + x₁x₃:
ƒ = (x₁x₂)'(x₁x₂) + (x₁x₃)'
In this implementation, we can use two 2-input AND gates and one 2-input OR gate. Each 2-input AND gate requires 4 transistors (2 PMOS and 2 NMOS), and the 2-input OR gate requires 4 transistors as well. Therefore, the total number of transistors in the CMOS circuit is 2 * 4 + 4 = 12 transistors.
Comparing the number of transistors with the circuit in (a), we can see that both implementations have the same number of transistors.
(c) To optimize the design using FPGA utilizing 2-input LUTs, we need to create a truth table for the function ƒ = x₂ + x₁x₂ + x₁x₃ and map it onto the LUTs.
Since the function has three inputs, we would need a 3-input LUT to implement it directly. However, since the FPGA only has 2-input LUTs, we would need to decompose the function into smaller sub-functions that can be implemented using 2-input LUTs.
In this case, we can decompose the function as follows:
ƒ = x₂ + x₁x₂ + x₁x₃
= x₂ + x₁(x₂ + x₃)
Now, we can implement each sub-function using 2-input LUTs:
Sub-function 1: x₂
Sub-function 2: x₂ + x₃
Therefore, the optimized design using FPGA utilizing 2-input LUTs would require two 2-input LUTs.
(d) Implementing the function using 2-to-1 multiplexers only would require investigating all possible implementations and selecting the optimized one based on certain criteria such as the number of gates or the critical path delay. Since the implementation details and constraints are not provided in the question, it is not possible to determine the specific implementation using 2-to-1 multiplexers without further information.
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A 4-pole, 50 Hz, three-phase induction motor has negligible stator resistance. The starting torque is 1.5 times of full-load torque and the maximum torque is 2.5 times of full-load torque. a) Find the speed at the maximum torque.
The speed at the maximum torque for the given induction motor is 1350 RPM.To find the speed at the maximum torque for a 4-pole, 50 Hz, three-phase induction motor, we can use the synchronous speed formula:
Ns = (120 * f) / P
where Ns is the synchronous speed in RPM, f is the frequency in Hz, and P is the number of poles.
Given that the motor has 4 poles and operates at a frequency of 50 Hz, we can calculate the synchronous speed as follows:
Ns = (120 * 50) / 4
Ns = 1500 RPM
The synchronous speed of the motor is 1500 RPM.
To determine the speed at the maximum torque, we need to consider the slip of the motor. The slip (s) is defined as the difference between synchronous speed and rotor speed divided by synchronous speed:
s = (Ns - Nr) / Ns
Where Nr is the rotor speed.
At the maximum torque, the slip is typically around 5% to 10% of the synchronous speed. Let's assume a slip of 10% (0.1) for this case.
At maximum torque, the rotor speed (Nr) can be calculated as:
Nr = Ns * (1 - s)
Nr = 1500 * (1 - 0.1)
Nr = 1500 * 0.9
Nr = 1350 RPM
Therefore, the speed at the maximum torque for the given induction motor is 1350 RPM.
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A power station has to meet the following demand: Group-A: (200+10xZ) kW between 8 AM and 6 PM. Group-B: (100+2xZ) kW between 6 AM and 10 AM. Group-C: (50+Z) kW between 6 AM and 10 AM. Group-D: (100+3xZ) kW between 10 AM and 6 PM and then between 6 PM and 6 AM. Plot the daily load curve and load duration curve and determine: (i) Load Factor (ii) (iii) Diversity Factor Units generated per day.
The daily load curve and load duration curve show the power demand patterns for different groups throughout the day. Based on these curves, we can calculate the Load Factor, Diversity Factor, and units generated per day.
The daily load curve represents the variation in power demand throughout the day. In this case, we have four groups with different power demands during specific time periods. Group A requires (200+10xZ) kW between 8 AM and 6 PM, Group B requires (100+2xZ) kW between 6 AM and 10 AM, Group C requires (50+Z) kW between 6 AM and 10 AM, and Group D requires (100+3xZ) kW between 10 AM and 6 PM, as well as between 6 PM and 6 AM.
To plot the daily load curve, we can create a graph with time on the x-axis and power demand on the y-axis. We'll mark the power demand for each group during the corresponding time intervals. This curve will illustrate the total power demand profile throughout the day.
The load duration curve displays the cumulative power demand sorted in descending order. By arranging the power demands in this way, we can identify the percentage of time that a particular level of power demand is exceeded. This curve provides useful information about the maximum power demand and the duration for which it occurs.
With the daily load curve and load duration curve, we can calculate the Load Factor. The Load Factor is the ratio of the average power demand to the maximum power demand. By analyzing the load duration curve, we can determine the time duration for which the maximum power demand occurs. Using this information, we can calculate the Load Factor.
The Diversity Factor represents the ratio of the sum of individual maximum demands to the maximum demand of the complete system. In this case, we have different groups with their respective maximum demands. By summing up the individual maximum demands and dividing them by the maximum demand of the complete system, we can obtain the Diversity Factor.
To calculate the units generated per day, we need to multiply the power demand by the corresponding time duration for each group and sum them up. This will give us the total energy generated in kilowatt-hours (kWh) per day.
In conclusion, by analyzing the daily load curve and load duration curve, we can determine the Load Factor, Diversity Factor, and units generated per day. These factors provide valuable insights into the power demand patterns and the overall performance of the power station.
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A 20-μF capacitor is in parallel with a practical inductor represented by L 1 mHz in series with R = 72. Find the resonant frequency, in rad/s and in Hz, of the parallel circuit.
The given problem provides the values of capacitance (C) and inductance (L) as 20μF and 1mH, respectively. The frequency (f) needs to be determined.
The resistance (R) is given as 72Ω. The resonant frequency of an LC circuit can be calculated using the formula, f0 = 1/2π√LC. However, the given circuit is a parallel RLC circuit with capacitance and inductance in parallel across the supply voltage, therefore, the formula needs to be modified accordingly. At resonance, the inductive reactance (XL) is equal to capacitive reactance (XC), hence 2πf0L = 1/2πf0C. Solving for f0 by substituting the given values of L and C, we get the resonant frequency as 996.6 rad/s or 158.11 Hz.
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A transmission line with characteristic impedance Z0=50ohm, the voltage standing wave ratio p=2,point A is the voltage wave node which is 0.2 l(lambda) to the load. Find the load impedance ZL by using the Smith chart.
Option (B) 0.385∠-76.02° is correct. The given data includes the characteristic impedance, Z0 = 50 ohm and the voltage standing wave ratio, p = 2. Point A is a voltage wave node located at 0.2 λ to the load. To find the load impedance, ZL, the following steps can be followed:
The first step is to mark point A on the Smith chart. As point A is a voltage node, it will lie on the resistance axis. It is situated at 0.8 λ from the generator as it is 0.2 λ to the load.
Next, a circle with a radius of p is drawn from the center of the Smith chart. This circle intersects the resistance axis at two points, X and Y.
Starting from X, move towards the generator to find the position of Z0. The intersection of the constant resistance circle passing through X and the unit circle gives us Z0. The position of Z0 is at 0.2 + j0.6.
Now, move from Z0 towards Y to find the position of ZL. The intersection of the constant resistance circle passing through Z0 and Y with the circle of radius p gives us the position of ZL. The position of ZL is at 0.08 - j0.36.
The load impedance ZL can be obtained from the above path, which intersects the constant reactance circle corresponding to the electrical length from the load to point A.
The impedance ZL in rectangular form is 0.08 - j0.36, which is equivalent to 0.385∠-76.02°. Here, the magnitude of ZL is 0.385 ohm, and its phase angle is -76.02°.
Therefore, option (B) 0.385∠-76.02° is correct.
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Consider the following state transition diagram with inputs S and x and one Moore output z: s=0 T2₂ s=1 Z=1. To Z=0 Z=1 X=0 T3 Z=1 x=1 (a) design a logic circuit implementation of this FSM using D flip-flops. (b) what is the maximum duration (expressed in number of clocks) of a start input "s" to ensure a single iteration from To back to To?
To implement the given state transition diagram using D flip-flops, a total of two D flip-flops will be required. The maximum duration of a start input "s" to ensure a single iteration from state T0 back to state T0 is 3 clocks.
(a) To design a logic circuit implementation of the given FSM using D flip-flops, we need to assign two states to the flip-flops, S1 and S0, corresponding to states T2 and T0, respectively.
Let's start by designing the circuit for the Moore output z. In state T2, the output z is 1, so we can directly connect it to the output. In state T0, the output z is 0. To achieve this, we can use an inverter connected to the output of the second flip-flop.
Next, we need to determine the inputs to the flip-flops. The transition from state T0 to T2 occurs when x=0 and z=1. Therefore, we can connect the output of the first flip-flop (S1) to the D input of the second flip-flop (S0) through an AND gate with inputs x and z.
The transition from state T2 to T0 occurs when x=1. Therefore, we can connect the output of the second flip-flop (S0) to its D input through an inverter, ensuring that the output becomes 0 when x=1.
(b) The maximum duration of a start input "s" to ensure a single iteration from state T0 back to state T0 can be calculated by considering the longest path in the state transition diagram. In this case, the longest path is from T0 to T2 and back to T0, requiring two transitions.
Each transition requires one clock cycle. Additionally, the start input "s" needs to be active for one clock cycle to initiate the first transition. Therefore, the maximum duration of the start input "s" should be 3 clocks (one for start, and two for the transitions) to ensure a single iteration from state T0 back to state T0.
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Given the cross sectional area of flow with midpoint convective acceleration rate ac- 0.5m/s?, calculate the velocity of flow at the tip of nozzle Vup assuming a uniform change of velocity in the direction of flow. Page 3 of 10 10 d D FLOW DIRECTION 1 TIP BASE L Given ac =0.5 m/s? Voip = ?, Vase = 2.5 m/s, L = 3 m Figure Q-3c [12 marks]
The velocity of flow at the tip of the nozzle V up is approximately 3.04m/s when the convective acceleration rate is 0.5m/s² is the answer.
Given the cross-sectional area of flow with midpoint convective acceleration rate `ac` = 0.5m/s² and the velocity of flow at the base of nozzle Vbase=2.5 m/s and L=3 m, we are to determine the velocity of flow at the tip of nozzle Vtip. We are assuming a uniform change of velocity in the direction of flow.
The formula for the relation between the velocities and acceleration is `V²=Vbase² + 2ac*L`.Vbase= 2.5m/s and ac = 0.5m/s².
The distance from the midpoint of the nozzle to the tip is L, which is 3 m.
Therefore, substituting the values into the formula yields:`V² = (2.5m/s)² + 2(0.5m/s²)(3m)`V² = 6.25m²/s² + 3m²/s² = 9.25m²/s²`V = sqrt(9.25m²/s²)`V = 3.04m/s
Therefore, the velocity of flow at the tip of the nozzle V up is approximately 3.04m/s when the convective acceleration rate is 0.5m/s².
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Which of the following represents the sum of all numbers between 0 and 21 inclusively - None of these - Σ21 i=1 i + 1 - Σ10 i=1 i
- Σ21 i=1 i
Answer:
The sum of all numbers between 0 and 21 inclusively can be represented as Σ21 i=1 i, so the correct answer is: Σ21 i=1 i.
Explanation:
What are the main attributes of the bode stability criteria? Please identify and explain 4 of them
The Bode stability criteria are used to determine the stability of a feedback control system based on the system's open-loop transfer function. Here are four main attributes of the Bode stability criteria:
Gain Margin (GM):
The gain margin is a measure of how much additional gain can be added to the system before it becomes unstable. It is defined as the inverse of the magnitude of the open-loop transfer function at the phase crossover frequency, where the phase shift is -180 degrees. A positive gain margin indicates stability, while a negative gain margin indicates instability.
Phase Margin (PM):
The phase margin is a measure of how much phase lag can be tolerated in the system before it becomes unstable. It is defined as the difference between the phase shift of the open-loop transfer function at the gain crossover frequency, where the magnitude is 1, and -180 degrees. A larger phase margin indicates greater stability.
Gain Crossover Frequency (ωgc):
The gain crossover frequency is the frequency at which the magnitude of the open-loop transfer function is 1 (0 dB). It represents the frequency at which the system transitions from being dominated by the gain of the system to being dominated by the phase shift. The closer the gain crossover frequency is to the desired operating frequency, the better the system's performance.
Phase Crossover Frequency (ωpc):
The phase crossover frequency is the frequency at which the phase shift of the open-loop transfer function is -180 degrees. It represents the frequency at which the system transitions from having a phase lead to a phase lag. The phase crossover frequency should be well above the gain crossover frequency to maintain stability. If they are too close, the system may become unstable.
the Bode stability criteria provide important attributes for analyzing the stability of a feedback control system. The gain margin, phase margin, gain crossover frequency, and phase crossover frequency are key indicators that help assess the system's stability and performance. By examining these attributes, engineers can make informed decisions to ensure stability and optimize the design of the control system..
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shows a Wheatstone bridge used to measure weight, the sensor R4 is built from strain gauge and the linear relationship between resistance(2) of strain gauge versus weight (kg). Given that during the weight is 500 kg, current Ig is zero. Determine the values of Rth, Eth and Ig when given weight is 300 kg. Given Vdc = 15 V, R1 = 100 Q2, R3 = 150 Q, Rg = 120 2. R4 (92) P1₂ R₁ =Vdc Weight (kg) Is (1) As strain gauge 200 50 0 500
Answer : Rth = 54.55 Ω
Ig = 0.031 A
Eth = 5.91 V.
Explanation :
The figure shows the Wheatstone bridge used to measure weight, where the sensor R4 is constructed from the strain gauge and the linear relationship between resistance (2) of the strain gauge versus weight (kg). Given that during the weight is 500 kg, the current Ig is zero.
Determine the values of Rth, Eth, and Ig when the weight given is 300 kg. The given values are Vdc = 15 V, R1 = 100 Q2, R3 = 150 Q, Rg = 120 2, R4 (92), P1₂ R₁, Weight (kg), and Is (1) as a strain gauge.
Wheatstone Bridge is an instrument that is used to measure the electrical resistance of a circuit. It is used to detect small changes in resistance. Wheatstone bridge circuit can also be used to measure physical quantities such as temperature, pressure, and strain. It is mainly used to measure the unknown resistance of a circuit.
The Wheatstone Bridge is a four-arm bridge circuit where R1 and R3 are fixed resistors, R4 is the strain gauge, and Rth is the unknown resistance to be measured. Eth is the excitation voltage applied to the circuit. Ig is the current flowing through the circuit.
To calculate the values of Rth, Eth, and Ig, we can use the following steps:
Calculate the resistance of the strain gauge using the given weight and resistance values. R2 = R4* P1 *R1 / R1* P1 - R4* P1 + R3* P2
Calculate the resistance of Rth using the resistance formula. Rth = R1 * R2 / (R1 + R2)
Calculate the current flowing through the bridge circuit. Ig = Eth / (R1 + R2 + R3)
Finally, calculate the value of Eth using the given value of Vdc. Eth = Vdc * R1 / (R1 + R2 + R3)
Therefore, the values of Rth, Eth, and Ig when the weight given is 300 kg are Rth = 54.55 Ω, Eth = 5.91 V, and Ig = 0.031 A. the latex code-free answer below:
When the weight given is 300 kg, R2 = R4* P1 *R1 / R1* P1 - R4* P1 + R3* P2
R2 = 92* 50*100 / 50-92*50+150*2 = 118.52 Ω
Rth = R1 * R2 / (R1 + R2) = 100*118.52/(100+118.52) = 54.55 Ω
Ig = Eth / (R1 + R2 + R3) = 5.91/(100+118.52+150) = 0.031 A
Therefore, Eth = Vdc * R1 / (R1 + R2 + R3) = 15*100/(100+118.52+150) = 5.91 V.
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Find h[n], the unit impulse response of the LTID systems specified by the following equations: (a) y[n+1]−y[n]=x[n] (b) y[n]−5y[n−1]+6y[n−2]=8x[n−1]−19x[n−2] (c) y[n+2]−4y[n+1]+4y[n]=2x[n+2]−2x[n+1] (d) y[n]=2x[n]−2x[n−1] ANSWERS (a) h[n]=u[n−1] (b) h[n]=− 6
19
δ[n]+[ 2
3
(2) n
+ 3
5
(3) n
]u[n] (c) h[n]=(2+n)2 n
u[n] (d) h[n]=2δ[n]−2δ[n−1]
The unit impulse responses of the LTID systems are:
(a) h[n]=u[n−1]
(b) h[n]=−6(19)⁻¹δ[n]+[2(2/3)ⁿ+3(3/5)ⁿ]u[n]
(c) h[n]=(2+n)²/n u[n]
(d) h[n]=2δ[n]−2δ[n−1]
What are the unit impulse responses of the given LTID systems?The given equations represent linear time-invariant discrete-time systems, and the task is to find the unit impulse response (h[n]) for each system.
(a) For equation (a), the difference equation shows that the output y[n] is equal to the input x[n] delayed by one sample. Therefore, the unit impulse response h[n] is given by h[n] = u[n-1], where u[n] is the unit step function.
(b) Equation (b) represents a second-order system. By solving the difference equation, we can find the unit impulse response h[n] = -6(19)⁻¹δ[n] + [2(2/3)ⁿ + 3(3/5)ⁿ]u[n].
(c) In equation (c), the difference equation corresponds to a second-order system. By solving it, we find h[n] = (2+n)²/n u[n].
(d) Equation (d) represents a first-order system. The solution to the difference equation gives h[n] = 2δ[n] - 2δ[n-1], where δ[n] is the unit impulse function.
These expressions describe the behavior of the systems when a unit impulse is applied, providing insights into their characteristics and responses to other inputs.
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An unbalanced, 30, 4-wire, Y-connected load is connected to 380 V symmetrical supply. (a) Draw the phasor diagram and calculate the readings on the 3-wattmeters if a wattmeter is connected in each line of the load. Use Eon as reference with a positive phase sequence. The phase impedances are the following: Za = 45.5 L 36.6 Zo = 25.5 L-45.5 Zc = 36.5 L 25.5 [18] (b) Calculate the total wattmeter's reading [2]
The total wattmeter reading can be calculated as the sum of all the three wattmeter readings.W_tot = 5677 W.
(a) Phasor diagram:Phasor diagram is a graphical representation of the three phase voltages and currents in an AC system. It is used for understanding the behavior of balanced and unbalanced loads when connected to a three phase system. When an unbalanced, 30, 4-wire, Y-connected load is connected to 380 V symmetrical supply, the phasor diagram is shown below:Now, we can calculate the readings on the 3-wattmeters if a wattm
eter is connected in each line of the load. The wattmeter readings for phase A, phase B and phase C are given below: W_A = E_A * I_A * cosΦ_AW_B = E_B * I_B * cosΦ_BW_C = E_C * I_C * cosΦ_C
Where, I_A = (E_A/Za) , I_B = (E_B/Zb) and I_C = (E_C/Zc)
The impedances for the three phases are Za = 45.5 L 36.6, Zo = 25.5 L-45.5, and Zc = 36.5 L 25.5. The current in each phase can be calculated as follows: I_A = (E_A/Za) = (380 / (45.5 - j36.6)) = 5.53 L 35.0I_B = (E_B/Zb) = (380 / (25.5 - j45.5)) = 9.39 L 60.4I_C = (E_C/Zc) = (380 / (36.5 + j25.5)) = 7.05 L 35.4
Using these values, we can calculate the readings on the 3-wattmeters. W_A = E_A * I_A * cosΦ_A = (380 * 5.53 * cos35.0) = 1786 WW_B = E_B * I_B * cosΦ_B = (380 * 9.39 * cos60.4) = 2058 WW_C = E_C * I_C * cosΦ_C = (380 * 7.05 * cos35.4) = 1833 W
Therefore, the readings on the three wattmeters are 1786 W, 2058 W and 1833 W respectively.(b) Total wattmeter reading: The total wattmeter reading can be calculated as the sum of all the three wattmeter readings.W_tot = W_A + W_B + W_C = 1786 + 2058 + 1833 = 5677 W
Therefore, the total wattmeter reading is 5677 W.
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A logic circuit is designed for controlling the lift doors and they should close (Y) if: (i) the master switch (W) is on AND either (ii) a call (X) is received from any other floor, OR (iii) the doors (Y) have been open for more than 10 seconds, OR (iv) the selector push within the lift (Z) is pressed for another floor. Devise a logic circuit to meet these requirements. (8 marks) (b) Use logic circuit derived in part (a) and provide the 2-input NAND gate only implementation of the expression. Show necessary steps. (8 marks) c) Use K-map to simplify the following Canonical SOP expression. F(A,B,C,D) = m(0,2,4,5,6,7,8,10, 13, 15) (9 marks)
The logic circuit master switch (W) is on, a call (X) is received from any other floor, the doors (Y) have been open for more than 10 seconds, or the selector push within the lift (Z) is pressed for another floor.
The circuit can be implemented using 2-input NAND gates.
(a) The logic circuit can be designed as follows:
1. Connect the master switch (W) to one input of an AND gate.
2. Connect the call (X) from any other floor to the second input of the AND gate.
3. Connect the output of the AND gate to one input of another OR gate.
4. Connect the doors (Y) being open for more than 10 seconds to the second input of the OR gate.
5. Connect the selector push within the lift (Z) to one input of another OR gate.
6. Connect the output of the second OR gate to the second input of the NAND gate.
7. Connect the output of the NAND gate to the lift doors (Y).
(b) The 2-input NAND gate implementation of the expression can be derived as follows:
1. Convert each condition into its Boolean expression:
- Master switch (W) on: W
- Call (X) received from any other floor: X
- Doors (Y) open for more than 10 seconds: Y
- Selector push within the lift (Z) pressed for another floor: Z
2. Implement each expression using NAND gates:
- Master switch (W) on: W'
- Call (X) received from any other floor: X'
- Doors (Y) open for more than 10 seconds: Y'
- Selector push within the lift (Z) pressed for another floor: Z'
3. Apply the NAND operation to the expressions:
- NAND(W', NAND(X', Y', Z'))
(c) To simplify the Canonical SOP expression F(A,B,C,D) = m(0,2,4,5,6,7,8,10,13,15) using a K-map, follow these steps:
1. Create a 4-variable K-map for A, B, C, and D.
2. Map the minterms (0,2,4,5,6,7,8,10,13,15) onto the K-map.
3. Group adjacent 1s to form larger groups (2, 4, 8, or 16) with the goal of minimizing the number of terms.
4. Write the simplified expression based on the grouped minterms.
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what is the commutator function ?
a) regulation
b) amplification
c) full wave rectifier
d) half wave rectifier
Answer : The correct answer for what is the commutator function is option A, regulation.
Explanation : A commutator is an electrical switch that switches the direction of current flowing in an electric circuit periodically. It is a type of electrical switch that alters the direction of current flow in a circuit periodically in order to maintain the flow of electricity in one direction when used in a generator or motor.
The commutator's function is to change the current direction between the rotor and the external circuit in a motor or generator. When the armature spins, the current flows into one coil and then out of the other coil through the brushes on the commutator.
When the direction of current in the armature coil changes, the commutator changes direction so that the magnetic poles that repel the permanent magnets' poles are turned into the right position. The correct answer is option A, regulation.
Hence the required answer for what is the commutator function is option A, regulation.
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A three-phase balance wye-wye system has a line voltage of 240 V rms. The total real power absorbed by the load is 60 kW at 0.8 pf lagging. Determine the per-phase impedance of the load. [8 Marks]
The per-phase impedance of the load is 150 Ω.
Given data:Real power, P = 60kW; pf = cos φ = 0.8 lagging; Voltage, Vline = 240V;
A three-phase balance wye-wye system has a line voltage of 240 Vrms.Per-phase voltage, Vph = Vline/√3 = 240/√3 Vrms = 138.56 Vrms.Now, we know that; Real power = 3 × (Vph)2 / Z × cos φ60,000 W = 3 × (138.56 V)2 / Z × 0.8Z = 150 Ω (approx)Hence, the per-phase impedance of the load is 150 Ω.
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