| 1 |
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Fundamental Electrical Quantities, Current, Voltage, Power, Energy, and Basic Circuit Concepts |
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| 2 |
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Ohm’s Law, Resistors, Independent and Dependent Sources, and Analysis of Basic Circuit Elements |
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| 3 |
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Series and Parallel Resistive Circuits, Equivalent Resistance, Voltage Division, and Current Division |
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| 4 |
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Kirchhoff’s Current and Voltage Laws and Formulation and Solution of Basic DC Circuit Equations |
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| 5 |
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Application of Kirchhoff’s Laws to DC Circuits with Multiple Nodes, Loops, and Sources |
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| 6 |
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Mesh Current Analysis, Formulation of Mesh Equations, and Circuit Analysis Using Supermeshes |
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| 7 |
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Node Voltage Analysis, Reference Node Selection, and Circuit Analysis Using Supernodes |
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| 8 |
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Application of Mesh Current and Node Voltage Methods to Complex DC Circuits with Dependent Sources |
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| 9 |
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Analysis of DC Circuits Using Superposition, Source Transformation, Thévenin’s Theorem, and Norton’s Theorem |
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| 10 |
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MID-TERM EXAM |
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| 11 |
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Maximum Power Transfer and Load Analysis Using Thévenin and Norton Equivalent Circuits |
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| 12 |
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Current-Voltage Relationships and Energy Storage Properties of Capacitors and Analysis of Basic RC Circuits |
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| 13 |
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Current-Voltage Relationships and Energy Storage Properties of Inductors and Analysis of Basic RL Circuits |
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| 14 |
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Switching, Initial and Final Values, Time Constants, and Transient Analysis of First-Order RC and RL Circuits |
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| 15 |
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Introduction to the Structure, Behavior, and Analysis of Basic RLC Circuits Containing Resistors, Inductors, and Capacitors |
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| 16 |
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FINAL EXAM |
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| 17 |
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FINAL EXAM |
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