In the simulation data presented above, the currents on the axes are in amperes (A). Usually the least count of most ammeters is 1mA, hence the significant figures on the current measurements were set to 0.001A (please follow the rules of significant figures). 1. From the data above, report the experimentally simulated values for a. Current through resistor R1: b. Current through resistor R2: C. Current through resistor R3: 2. Using Kirchhoff's laws, write the current equations for the circuit shown in Figure 4

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In the simulation data presented above, the currents on the axes are in amperes (A). Usually the
least count of most ammeters is 1mA, hence the significant figures on the current measurements
were set to 0.001A (please follow the rules of significant figures).
1. From the data above, report the experimentally simulated values for
a.
Current through resistor R1:
b. Current through resistor R2:
C.
Current through resistor R3:
2. Using Kirchhoff's laws, write the current equations for the circuit shown in Figure 4
Transcribed Image Text:In the simulation data presented above, the currents on the axes are in amperes (A). Usually the least count of most ammeters is 1mA, hence the significant figures on the current measurements were set to 0.001A (please follow the rules of significant figures). 1. From the data above, report the experimentally simulated values for a. Current through resistor R1: b. Current through resistor R2: C. Current through resistor R3: 2. Using Kirchhoff's laws, write the current equations for the circuit shown in Figure 4
The circuit shown below was generated on MapleSIM 2019
R3
V2= 4V
V1= $V
12
R2
R1
Figure 4: Circuit diagram using multiple power supplies and multiple loops
In the above circuit, R1=500, R2=25N and R3=75N. The response of this circuit (Fig 4.), i.e., the
values of the probes measuring currents was simulated for a total time of 10s. The simulated data
is shown below
Analysis Window: Simulation Results
Probe Plots
Simulation Results
V Stored Results
ERRE
ili
12i
-0.015
Ha "Multiple power supplies
V Resuts
-0.020-
0.025
-0.025
0.020
-0 030
V Variables: Multiple power supplie..
0.015
-0.035
Find:
0.010-
Main
-0.040
2.
4
6.
10
2
4.
6.
10
12
0.055
Piot Windows Multiple power su.
A 06
0.050-
A Probe Plots
0045
0.040
0.035
Figure 5: Simulated current response for circuit shown in Fig 4.
Transcribed Image Text:The circuit shown below was generated on MapleSIM 2019 R3 V2= 4V V1= $V 12 R2 R1 Figure 4: Circuit diagram using multiple power supplies and multiple loops In the above circuit, R1=500, R2=25N and R3=75N. The response of this circuit (Fig 4.), i.e., the values of the probes measuring currents was simulated for a total time of 10s. The simulated data is shown below Analysis Window: Simulation Results Probe Plots Simulation Results V Stored Results ERRE ili 12i -0.015 Ha "Multiple power supplies V Resuts -0.020- 0.025 -0.025 0.020 -0 030 V Variables: Multiple power supplie.. 0.015 -0.035 Find: 0.010- Main -0.040 2. 4 6. 10 2 4. 6. 10 12 0.055 Piot Windows Multiple power su. A 06 0.050- A Probe Plots 0045 0.040 0.035 Figure 5: Simulated current response for circuit shown in Fig 4.
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