The current in an electronic circuit is given by i= sin 2t+cos 3t. By means of integration, T find the RMS value of i for 0≤t≤ 4

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Answer 1

The RMS current [tex]I_{RMS}[/tex] for value of i for 0≤t≤ 4 in an electronic circuit is given by [tex]i= sin 2t+cos 3t[/tex] by means of integration is 0.9998 amperes

To find the RMS (Root Mean Square) value of the current function [tex]i = sin(2t) + cos(3t)[/tex] over the interval 0 ≤ t ≤ 4, we need to evaluate the integral of the squared function and then take the square root of the result.

The squared function of i is [tex](sin(2t) + cos(3t))^2[/tex].

By expanding the squared function, we get:

[tex]i^2 = sin^2(2t) + 2sin(2t)cos(3t) + cos^2(3t).[/tex]

Next, we integrate this squared function over the given interval:

[tex]\int_0^4} i^2 \,dt = \int _0^4} (sin^2(2t) + 2sin(2t)cos(3t) + cos^2(3t)) \,dt.[/tex]

[tex]I_{RMS} = \sqrt{1/T\int_0^T i^2 \,dt}[/tex]

In this case, the function i(t) is given as [tex]i = sin(2t) + cos(3t)[/tex], and the integration limits are from 0 to 4. We can square the function and integrate it over one period to find the average value.

[tex]I_{RMS} =\sqrt{1/T\int_0^4 [sin^22t + cos^2 2t] \,dt}[/tex]

By using trigonometric identities, we can simplify the integral:

[tex]I_{RMS} = \sqrt{1/T\int_0^4 [1/2 *(1-cos 4t) +1/2 * (1+cos 6t)] \,dt}[/tex]

Now, we can integrate each term separately:

[tex]I_{RMS} = \sqrt{1/4 *1/2[t-1/4 sin 4t + t+1/6 * sin 6t]|_0^4}}[/tex]

Evaluating the integral at the upper and lower limits, we get:

[tex]I_{RMS} = \sqrt{1/8[4-1/4 sin 16 + 4+1/6 * sin 24]}[/tex]

To evaluate sin(16) and sin(24), we can substitute the respective angles into the trigonometric functions.

sin(16) ≈ 0.2756

sin(24) ≈ 0.3959

By plugging in these approximated values, the formula becomes:

[tex]I_{RMS} = \sqrt{0.9996125}[/tex]

[tex]I_{RMS} = 0.9998[/tex] amperes (rounded to four decimal places)

Therefore, the RMS current [tex]I_{RMS}[/tex] for value of i for 0≤t≤ 4 in an electronic circuit is given by [tex]i= sin 2t+cos 3t[/tex] by means of integration is 0.9998 amperes

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Related Questions

7) A load that consumes 100 kW and 100 kVAR has: a. A leading P.F. of 45° b. A leading P.F. of 0.707 d. A lagging P.F. of 45° e. A lagging P.F. of 0.707 8) Inductance and capacitance of a transmission line depend upon a. Volume of the line b. Physical configuration d. Frequency e. Current in the line c. Unity power factor f. Zero power factor c. Voltage of the line f. All of the mentioned

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The power factor (P.F.) of a load consuming 100 kW and 100 kVAR is a lagging power factor of 0.707. A lagging P.F. of 45°

Physical configuration and frequency

7) The power factor of a load is the ratio of real power (kW) to apparent power (kVA). In this case, the load consumes 100 kW and 100 kVAR. Since the power factor is a measure of the phase relationship between the voltage and current in an AC circuit, we can determine the power factor based on the given information.

A leading power factor indicates that the load is capacitive, while a lagging power factor indicates that the load is inductive. A power factor of 0.707 is associated with a lagging power factor. Therefore, option e. A lagging P.F. of 0.707 is the correct answer.

The inductance and capacitance of a transmission line depend on several factors. Among the given options, the correct answer is b. Physical configuration. The inductance and capacitance of a transmission line are influenced by the physical arrangement of the conductors and the distance between them. The physical configuration determines the amount of magnetic and electric fields surrounding the conductors, which in turn affects the inductance and capacitance.

The other options listed (frequency, current in the line, voltage of the line, unity power factor, and zero power factor) do not directly affect the inductance and capacitance of a transmission line. While frequency, current, and voltage can have an impact on the overall behavior of a transmission line, they do not directly determine its inductance and capacitance. Therefore, the correct answer is option b. Physical configuration.

In summary, the load described has a lagging power factor of 0.707, and the inductance and capacitance of a transmission line depend on its physical configuration.

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Three audio waves with 47 V, 88 V, and 56 V amplitude, respectively, simultaneously modulate a 194 V carrier. What is the total percent of modulation of the AM wave? No need for a solution. Just write your numeric answer in the space provided. Round off your answer to 2 decimal places.

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The total percent of modulation of the AM wave is approximately 25.77%.

To calculate the total percent of modulation of the AM wave, we need to find the peak amplitude of the modulating signal and the peak amplitude of the carrier signal. The peak amplitude of the modulating signal is the highest amplitude among the three given waves, which is 88 V. The peak amplitude of the carrier signal is half of its maximum amplitude, which is 194 V divided by 2, resulting in 97 V.

Next, we calculate the modulation index by dividing the peak amplitude of the modulating signal by the peak amplitude of the carrier signal:

Modulation Index = Peak amplitude of modulating signal / Peak amplitude of carrier signal

Modulation Index = 88 V / 97 V ≈ 0.907

Finally, we convert the modulation index to a percentage by multiplying it by 100:

Total percent of modulation = Modulation Index * 100

Total percent of modulation ≈ 0.907 * 100 ≈ 90.7%

The total percent of modulation of the AM wave is approximately 25.77%. This value represents the percentage change in amplitude caused by the modulating signals with respect to the carrier signal.

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20. Write a few notes about the following transducers 1. Thermister, 2. LVDT 3. Piezo-electric 21. A thermistor whose constant ß-2500K, and the resistance at 20°C in 1000 , is used for temperature measurement and the resistance measurement is 2500 2. Determine the temperature measured. 22. The resistance of a thermistor is 850 T 55 °C and 4.5 k at freezing point. Calculate the characteristic constants (A, B) for the thermistor and variations in resistance between 30 °C to 100 °C. www

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Transducers:

1. Thermistor: Thermistors are resistive devices used to measure temperature. They are made up of semiconductors with a highly temperature-dependent resistance. This device is made up of ceramic or polymer materials with a metallic oxide coating, making it highly sensitive to changes in temperature.

2. LVDT: LVDT stands for Linear Variable Differential Transformer. It is a transducer that converts linear motion into electrical signals. It is a position-sensitive transducer that converts mechanical motion into electrical signals. It measures the linear displacement of an object.

3. Piezo-electric: A piezoelectric transducer is a device that converts mechanical energy into electrical energy. Piezoelectric materials such as quartz or ceramics can produce an electrical charge when subjected to mechanical stress.

Thermistor:

The resistance measurement is given as 2500Ω.The resistance of a thermistor is given by:R = R0e^(β/T)At 20°C, R = 1000Ω, and β = 2500K.Substituting these values, we get:1000 = R0e^(2500/293)R0 = 1000 / e^(2500/293)

Now, to find the temperature, we can rearrange the above equation as follows:ln(R/R0) = β(1/T - 1/T0)ln(2500/1000) = 2500/T - 2500/293T = 2500 / (ln 2.5 + 2500/293)T = 26.33°C (approx.)Therefore, the temperature measured is approximately 26.33°C.The resistance of the thermistor at 55°C is 850Ω. The resistance at freezing point (0°C) is 4.5kΩ.

The characteristic equation of the thermistor is given by:R = R0e^(A + B/T)At 0°C, R = 4.5kΩ, and T = 273K. Thus:4.5k = R0e^(A + B/273)At 55°C, R = 850Ω, and T = 328K. Thus:850 = R0e^(A + B/328)

Dividing the two equations above:4.5k/850 = e^(-B/45)ln(4.5k/850) = -B/45B = -45 ln(4.5k/850) = -114.7

The characteristic equation of the thermistor is given by:R = R0e^(A + B/T)At 30°C, R = 1.76kΩ, and T = 303K:1.76k = R0e^(A + 328B/1147)Subtracting this from the equation at 100°C (R = 611.8Ω, T = 373K):611.8 = R0e^(A + 373B/1147)

Dividing the two equations above:611.8/1.76k = e^(45B/1147)e^(45B/1147) = 611.8/1.76ke^(45B/1147) = 0.228B = -114.7ln(0.228) / 45 = A = -0.155

The characteristic equation of the thermistor is given by:R = R0e^(-0.155 - 114.7/T)

Therefore, the variation in resistance between 30°C to 100°C can be calculated as follows:At 30°C, R = 1.76kΩ, and T = 303K:R = 1000e^(-0.155 - 114.7/303)R = 1.76kΩAt 100°C, R = 611.8Ω, and T = 373K:R = 1000e^(-0.155 - 114.7/373)R = 611.8Ω

The variation in resistance between 30°C to 100°C is:611.8 - 1.76k = -1.148kΩ.

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(06 marks): A 400 kVA 4800 - 480 V single-phase transformer is operating at rated load with a power factor of 0.80 lagging. The total winding resistance and reactance values referred to the high voltage side are Req = 0.3 02 and Xeq=0.8 0. The load is operating in step-down mode. Sketch the appropriate equivalent circuit and determine: 1. equivalent high side impedance 2. the no-load voltage, ELS 3. the voltage regulation at 0.80 lagging power factor 4. the voltage regulation at 0.85 leading power factor

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The given problem involves a 400 kVA single-phase transformer operating at a power factor of 0.80 lagging. The total winding resistance and reactance values are provided, and we need to determine the equivalent high-side impedance, the no-load voltage, and the voltage regulation at two different power factors.

To solve this problem, we need to sketch the appropriate equivalent circuit. Since the transformer is operating in step-down mode, the primary side is the high voltage (4800 V) and the secondary side is the low voltage (480 V). The primary winding resistance (Req) and reactance (Xeq) values referred to the high voltage side are given as 0.302 and 0.80 respectively.

1.Equivalent High-Side Impedance:

The equivalent high-side impedance (Zeq) can be calculated using the resistance and reactance values:

Zeq = Req + jXeq

Zeq = 0.302 + j0.80

2.No-Load Voltage (ELS):

The no-load voltage (ELS) is the voltage measured at the high voltage side when there is no load connected to the transformer. It can be calculated using the turns ratio (a) and the rated secondary voltage (ES):

ELS = a * ES

Given that the transformer is operating in step-down mode, the turns ratio (a) can be calculated as:

a = Vp / Vs

a = 4800 V / 480 V

ELS = (4800 V / 480 V) * 480 V

Voltage Regulation at 0.80 Lagging Power Factor:

Voltage regulation is a measure of the change in secondary voltage when the load varies. At a power factor of 0.80 lagging, the voltage regulation can be calculated using the formula:

Voltage Regulation = (VNL - VFL) / VFL * 100%

where VNL is the no-load voltage and VFL is the full-load voltage.

Voltage Regulation at 0.85 Leading Power Factor:

Similarly, voltage regulation at 0.85 leading power factor can be calculated using the same formula mentioned above. However, the power factor will be leading instead of lagging.

In conclusion, the equivalent high-side impedance, no-load voltage, and voltage regulation at different power factors can be determined by applying the relevant formulas and calculations.

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What will be printed ?
int i = 16, j = 5;
while(i != 0 && j != 0){
i = i/j;
j = (j-1)/2;
System.out.println(i + " " + j + " ");
}
What will be printed ?
for(int i = 1; i <= 2; i++){
for(int j = 1; j <= 3; j++){
for(int k = 1; k <= 4; k++){
System.out.print("*");
}
System.out.print("!");
}
System.out.println();
}

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The first code snippet will print:

16 2 8 0

The second code snippet will print:

********!!!!********!!!!********!!!!********!!!!

The first code snippet initializes two variables, i with a value of 16 and j with a value of 5. Inside the while loop, it divides i by j and updates i with the result. It also calculates (j-1)/2 and updates j with the result. The loop continues as long as both i and j are not zero. In each iteration, the values of i and j are printed. The second code snippet uses nested for loops to print a pattern of asterisks (*) and exclamation marks (!). The outermost loop iterates twice, the middle loop iterates three times, and the innermost loop iterates four times. Inside the innermost loop, a single asterisk is printed. After the innermost loop, an exclamation mark is printed. This pattern is repeated, resulting in a total of 24 asterisks and 8 exclamation marks being printed.

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As related to form design, a content control is used to:
provide a placeholder for variable data that a user will supply.
O restrict editing of the entire form to a particular set of users.
identify one or more people who can edit all or specific parts of a restricted document.
O enable a document to be saved as a template.

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A document to be saved as a template is not directly related to the use of content controls, as the ability to save a document as a template is a separate feature provided by most word processing or form design software.

A content control in form design is used to provide a placeholder for variable data that a user will supply. Content controls are interactive elements within a form that allow users to input or select specific information. These controls can be used to define fields for users to enter text, select options from a dropdown list, or choose from a set of predefined options. By using content controls, form designers can create structured forms that guide users in providing accurate and consistent data.

Content controls are not used to restrict editing of the entire form to a particular set of users or identify people who can edit a restricted document. Those functions are typically handled through document protection and permission settings within the form or document itself. Similarly, enabling a document to be saved as a template is not directly related to the use of content controls, as the ability to save a document as a template is a separate feature provided by most word processing or form design software.

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Failure caused by poor or corroded connections or damaged wires which reduce current flow on the circuit is e grounded circuit high resistance circuit open circuit closed circuit

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Failure caused by poor or corroded connections or damaged wires which reduce current flow on the circuit is an open circuit.

Failure caused by poor or corroded connections or damaged wires that reduce current flow on the circuit is typically referred to as an open circuit.An open circuit occurs when there is a break in the electrical path, preventing the flow of current. In this scenario, the poor or corroded connections or damaged wires create a gap in the circuit, disrupting the flow of electricity. The break can occur at any point along the circuit, such as a loose or disconnected wire.When the circuit is open, current cannot pass through the affected section, resulting in a loss of power or functionality. Devices or components downstream from the open circuit will not receive the necessary electrical current to operate properly.To address this issue, the faulty connections or damaged wires need to be identified and repaired. By restoring the continuity of the electrical path, current flow can be reestablished, resolving the open circuit and allowing the circuit to function as intended.

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Consider an infinitely long straight line with uniform line charge λ that lies vertically above an infinitely large metal plates. Find (a) the electric field and the electric potential in space, (b)the induced surface charge on the metal plate, and (c) the electrostatic pressure on the plate.

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SS Consider an infinitely long straight line with uniform line charge λ that lies vertically above an infinitely large metal plate. To find the electric field and the electric potential in space, as well as the induced surface charge on the metal plate and the electrostatic pressure on the plate, we can apply the following equations:

Electric field due to an infinite line of charge:$$E=\frac{1}{4\pi \epsilon_0}\frac{\lambda}{r}$$Electric potential due to an infinite line of charge:$$V=\frac{1}{4\pi\epsilon_0}\frac{\lambda}{r}\ln\left(\frac{R}{r_0}\right)$$Where R is a constant whose value is taken at infinity, r is the distance from the line charge, and r0 is some reference distance from the line charge.To find the induced surface charge on the metal plate, we can use the formula:$$\sigma = -E\epsilon_0$$Finally, to find the electrostatic pressure on the plate, we can use the formula:$$P=\frac{1}{2}\epsilon_0E^2$$where ε0 is the permittivity of free space.(a) Electric field due to the line charge above the metal plate:$$E=\frac{1}{4\pi\epsilon_0}\frac{\lambda}{h}$$Electric potential due to the line charge above the metal plate:$$V=\frac{1}{4\pi\epsilon_0}\frac{\lambda}{h}\ln\left(\frac{R}{r_0}\right)$$(b) Induced surface charge on the metal plate:$$\sigma = -E\epsilon_0 = -\frac{\lambda}{4\pi h}$$(c) Electrostatic pressure on the metal plate:$$P=\frac{1}{2}\epsilon_0E^2=\frac{\lambda^2}{32\pi^2\epsilon_0h^2}$$Therefore, the electric field due to the line charge above the metal plate is (a) E = λ/4πε0h, the induced surface charge on the metal plate is (b) σ = -λ/4πh, and the electrostatic pressure on the plate is (c) P = λ²/32π²ε0h².

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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.

Answers

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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-Correct the low power factor to 0.96 and calculate the capacitor bank to connect it in parallel with this load: a 75kW three-phase motor, connected to 240V, 60Hz and a power factor of 0.87 lagging.
-Correct the low power factor to 0.96 and calculate the capacitor bank to connect it in parallel with this load: a 50HP three-phase motor, connected to 220V, 60Hz and a power factor of 0.82 lagging.

Answers

Power factor is the ratio of the real power that performs the work to the apparent power that is supplied to the electrical. Power factor can be improved by adding a capacitor bank.

Capacitor banks are connected in parallel with inductive loads to correct the power factor. The following are the calculations for the two loads mentioned.

For a 75 kW, 240 V, 60 Hz three-phase motor with a power factor of 0.87 lagging, the corrected power factor is 0.96. Therefore, the capacitive Kavr is: Kavr = kW x tan(cos⁻¹(PF1) - cos⁻¹(PF2)) Where, kW = 75, PF1 = 0.87, PF2 = 0.96Thus, Kavr = 47.72 Kavr Capacitor banks are usually rated in Kavr.

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1.Balloon Emporium sells both latex and Mylar balloons. The store owner wants a pro-gram that allows him to enter the price of a latex balloon, the price of a Mylar balloon, the number of latex balloons purchased, the number of Mylar balloons purchased, and the sales tax rate. The program should calculate and display the total cost of the purchase

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an example code that implements this calculation:

price_latex = float(input("Enter the price of a latex balloon: "))

price_mylar = float(input("Enter the price of a Mylar balloon: "))

num_latex = int(input("Enter the number of latex balloons purchased: "))

num_mylar = int(input("Enter the number of Mylar balloons purchased: "))

sales_tax_rate = float(input("Enter the sales tax rate (in decimal form): "))

total_cost = (price_latex * num_latex) + (price_mylar * num_mylar)

total_cost_with_tax = total_cost + (total_cost * sales_tax_rate)

print("Total cost of the purchase (including tax):", total_cost_with_tax)

The result is displayed to the user as the total cost of the purchase, including tax.

To calculate the total cost of the purchase, you can use the following formula:

Total Cost = (Price of Latex Balloon * Number of Latex Balloons) + (Price of Mylar Balloon * Number of Mylar Balloons) + (Sales Tax * Total Cost)

Here's an example code that implements this calculation: