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Alternating Current Module
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Upon completion of this module, you will be able to do the following:
Objectives Upon completion of this module, you will be able to do the following: 1. Calculate the peak and effective voltage or current values for an AC waveform. 2. Calculate the phase relationship between two AC waveforms. 3. Describe the voltage and current phase relationship in a resistive AC circuit. 4. Describe the voltage and current transients that occur in an inductive circuit. 5. Define inductive reactance and state how it is affected by frequency. 6. Describe the voltage and current transients that occur in a capacitive circuit. 7. Define capacitive reactance and state how it is affected by frequency. 8. Explain the relationship between voltage and current in the following types of AC circuits: • RL circuit • RC circuit • LC circuit • RLC circuit 9. Explain the following terms as they relate to AC circuits: • True power • Apparent power • Reactive power • Power factor 10. Explain basic transformer action.
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Figure 1 – Conductor moving across a magnetic field
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Figure 2 – Angle versus rate of cutting lines of flux
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Figure 3 – One cycle of alternating voltage
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Figure 4 – Frequency measurement
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Figure 5 – Amplitude values for a sine wave
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Figure 6 – Voltage waveforms 90° out of phase
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Figure 7 – Waves in phase
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Figure 8 – AC waveforms
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Figure 9 – Resistive AC circuit
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Figure 10 – Voltage and current in a resistive AC circuit
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Figure 11 – Factors affecting the inductance of a coil
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Figure 12 – Inductor voltage
and current relationship
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Figure 13 – Capacitors
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Figure 14 – Charging and discharging a capacitor
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Figure 15 – Capacitors in parallel
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Figure 16 – Capacitors in series
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Figure 17 – Voltage and current
in a capacitive AC circuit
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Figure 18 – Summary of AC circuit phase relationships
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Figure 19 – Series RL circuit and vector diagram
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Figure 20 – Series RL circuit with waveforms and vector diagram
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Table 1 – Series R and XL Combinations
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Figure 21 – Parallel RL circuit with waveforms and vector diagram
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Table 2 – Parallel R and XL Combinations
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Figure 22 – Series RC circuit with vector diagrams
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Table 3 – Series R and XC Combinations
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Figure 23 – Parallel RC circuit with vector diagrams
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Table 4 – Parallel R and XC Combinations
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Figure 24 – Series LC circuit with vector diagram
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Figure 25 – Parallel LC circuit with vector diagram
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Figure 26 – Series RLC circuit and vector diagram
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Figure 27 – Parallel RLC circuit and vector diagram
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Figure 28 – Power calculations in an AC circuit
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Figure 29 – RLC circuit calculation
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Figure 30 – Power triangle
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Figure 31 – Basic components of a transformer
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Figure 32 – Transformer action
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Figure 33 – Steel laminated core
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Figure 34 – Cutaway view of a transformer core
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Figure 35 – Transformer winding polarity
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Figure 36 – Transformer turns ratio
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Figure 37 – Tapped transformers
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Figure 38 – Importance of an isolation transformer
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Figure 39 – Autotransformer schematic diagram
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Figure 40 – Current transformer schematic diagram
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Figure 41 – Potential transformer.
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Supplemental Art
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Course Map
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Left-Hand Rule for Generators
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RMS Amplitude
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What’s Wrong With This Picture?
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AC Circuits
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Turns and Voltage Ratios
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