Lecture
Calculating the Inductor equivalent, Inductor, Equivalent inductor calculation is identical as calculating equivalent resistor in series and parallel:
Our second activity is to calculate the voltage across a resistor in discharging source free RC circuit:
We then used the equation above to calculate a function of the voltage across Source free RC circuit with 0.2 Farad Capacitor and 10-ohm resistor:
Calculating Maximum switch frequency of our circuit, frequency equal to the reciprocal of 5-time constants (5𝛕):
Calculating the current function over time on a source free RL circuit:
Passive RC Circuit Natural Response
First, we calculated our theoretical time needed for RC circuit to charge and discharge.
To precisely Measured the time it took to charge and discharge we used triggered option on our oscilloscope.
In our first graph, we captured the time it took for the capacitor to be fully charged, the horizontal line shows that the capacitor is fully charged. our measured time for RC circuit to be fully charged is equal to 74.03 ms, really close to our theoretical value of 76.5 ms which is about 3% difference.
In our second graph, we captured the time it took for the capacitor is fully discharged. our measured value of discharging time is equal to 273 ms, compared to our theoretical time of 242 ms.
we then use a square graph with a 2.5 V offset that means the voltage input is alternating between 5V and 0V.
we then use a square graph with a 2.5 V offset that means the voltage input is alternating between 5V and 0V.
Passive RL Circuit Response
we are trying to calculate theoretical values of the inductor
Our RL circuit
We measured the time it took for inductance to discharge equal to 148.6 ms. using the equation that we derived from pre-lab we calculated an inductance of 20 mH.
SUMMARY
Today in class we learnt how to find equivalence inductance, Passive source RC circuit and passive source RL circuit. Finding equivalent inductor uses the same method as finding resistor equivalent. we also learnt how to derive the function of potential across the resistor of RC circuit and current across resistor across RL circuit. We learnt that the time it took the capacitor to completely discharge is roughly about 5 times constant. in RC circuit time constant is equal to the product of resistor and capacitor, while in inductor the time constant is equal to inductance divided by the resistance. In our first lab, passive source RC circuit we tried to measure the time needed to charge and discharge we calculated the theoretical time of 242 ms to discharge and 76.5 ms to charge. Our measured time discharging time is equal 74.03 and charging time of 273 ms. Our theoretical and experimental are 3% difference for charging time and 11 % difference of discharging time.This % difference is caused by our approximation of 5 tau. In our second experiment, Passive RL circuit response, we are trying to calculate the theoretical value of Inductance (L)



















































