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Electricity: practical, physics, equations, units
Module 1
Foundations of DC Circuits
1
Analyzing Simple Circuits with Ohm's and Kirchhoff's Laws
Apply Ohm's law and Kirchhoff's laws to simple circuits.
Apply Ohm's law and Kirchhoff's laws to simple circuits.
2
DC Circuit Power and Energy Calculations
Calculate electrical power and energy in DC circuits.
Calculate electrical power and energy in DC circuits.
3
Resistor Networks: Series and Parallel Analysis
Analyze series and parallel resistor networks and calculate their equivalent properties.
Analyze series and parallel resistor networks and calculate their equivalent properties.
Module 2
Electric and Magnetic Fields
4
Electric Fields and Potential of Point Charges
Calculate electric fields and potential from point charges using Coulomb's law and superposition.
Calculate electric fields and potential from point charges using Coulomb's law and superposition.
5
Electric Potential and Work Done on a Charge
Relate electric potential to the work done moving a charge in an electric field.
Relate electric potential to the work done moving a charge in an electric field.
6
Ampere's Law and Magnetic Fields
Describe the magnetic field pattern around a current-carrying wire using Ampère's law.
Describe the magnetic field pattern around a current-carrying wire using Ampère's law.
7
Magnetic Forces on Charges and Wires
Calculate the magnetic force on a moving charge (Lorentz force) and a current-carrying wire, applying relevant direction rules.
Calculate the magnetic force on a moving charge (Lorentz force) and a current-carrying wire, applying relevant direction rules.
Module 3
Electromagnetic Induction
8
Lorentz Force and Electromagnetic Induction
Explain the physical mechanism of electromagnetic induction via the Lorentz force on moving charges.
Explain the physical mechanism of electromagnetic induction via the Lorentz force on moving charges.
9
Faraday's Law and EMF Calculation
State Faraday's law of induction and apply it to calculate the EMF from a changing magnetic flux.
State Faraday's law of induction and apply it to calculate the EMF from a changing magnetic flux.
10
Lenz's Law: Direction of Induced Currents
Apply Lenz's law to determine the direction of induced currents.
Apply Lenz's law to determine the direction of induced currents.
11
Motional EMF: Faraday's Law in Action
Calculate motional EMF in a conductor moving through a magnetic field as a specific application of Faraday's law.
Calculate motional EMF in a conductor moving through a magnetic field as a specific application of Faraday's law.
Module 4
Unification: Maxwell's Equations and EM Waves
12
Maxwell's Equations: Integral Form
State Maxwell's four equations in integral form.
State Maxwell's four equations in integral form.
13
Gauss's Law: Electric Fields and Magnetic Monopoles
Explain the physical meaning of Gauss's law for electricity (charge as a source of E-field) and magnetism (no magnetic monopoles).
Explain the physical meaning of Gauss's law for electricity (charge as a source of E-field) and magnetism (no magnetic monopoles).
14
Faraday's and Ampère-Maxwell's Laws: Unifying Electricity and Magnetism
Explain the physical meaning of Faraday's law (changing B-field creates E-field) and the Ampère-Maxwell law (currents and changing E-fields create B-fields).
Explain the physical meaning of Faraday's law (changing B-field creates E-field) and the Ampère-Maxwell law (currents and changing E-fields create B-fields).
15
Maxwell's Equations and Electromagnetic Wave Propagation
Describe how the interplay between changing electric and magnetic fields, as described by Maxwell's equations, leads to the propagation of electromagnetic waves.
Describe how the interplay between changing electric and magnetic fields, as described by Maxwell's equations, leads to the propagation of electromagnetic waves.
Module 5
AC Circuits and Power
16
Modeling AC: Peak vs. RMS
Describe alternating current and voltage using sinusoidal functions, distinguishing between peak and RMS values.
Describe alternating current and voltage using sinusoidal functions, distinguishing between peak and RMS values.
17
AC Circuit Behavior of R, L, and C Components
Describe the fundamental behavior of resistors, capacitors, and inductors in AC circuits.
Describe the fundamental behavior of resistors, capacitors, and inductors in AC circuits.
18
Phase Relationships in AC Circuits
Analyze the phase relationship between voltage and current in resistive, inductive, and capacitive loads.
Analyze the phase relationship between voltage and current in resistive, inductive, and capacitive loads.
19
Series RLC Impedance Calculation
Calculate impedance for series RLC circuits using phasors or complex numbers.
Calculate impedance for series RLC circuits using phasors or complex numbers.
20
AC Power Calculations
Calculate real, reactive, and apparent power in AC circuits.
Calculate real, reactive, and apparent power in AC circuits.
21
Power Factor: Impact on Generation & Transmission Efficiency
Explain the concept of power factor and its impact on power generation and transmission efficiency.
Explain the concept of power factor and its impact on power generation and transmission efficiency.
Module 6
From Motion to Electricity and Back: Generators & Motors
22
Generating Sinusoidal AC Voltage with Faraday's Law
Explain how rotating a coil in a magnetic field produces a sinusoidal AC voltage via Faraday's law.
Explain how rotating a coil in a magnetic field produces a sinusoidal AC voltage via Faraday's law.
23
EMF in Rotating Coils: Frequency, Amplitude, and Geometry
Calculate the EMF generated by a rotating coil, relating its frequency and amplitude to rotational speed and coil geometry.
Calculate the EMF generated by a rotating coil, relating its frequency and amplitude to rotational speed and coil geometry.
24
Energy Transformation in Generators
Relate the mechanical work required to turn a generator to the electrical energy it produces, applying the principle of conservation of energy.
Relate the mechanical work required to turn a generator to the electrical energy it produces, applying the principle of conservation of energy.
25
DC Motor Principles: Torque on a Current Loop
Explain the operating principle of a DC motor in terms of the torque on a current-carrying loop in a magnetic field.
Explain the operating principle of a DC motor in terms of the torque on a current-carrying loop in a magnetic field.
26
Motor Torque Calculation
Calculate the torque on a motor's coil from current, magnetic field strength, and geometry.
Calculate the torque on a motor's coil from current, magnetic field strength, and geometry.
27
Back-EMF: Motor Self-Regulation
Explain the concept of back-EMF in motors and its role in self-regulation of speed and current.
Explain the concept of back-EMF in motors and its role in self-regulation of speed and current.
28
Motor Efficiency Analysis
Analyze motor efficiency by relating mechanical power output to electrical power input.
Analyze motor efficiency by relating mechanical power output to electrical power input.
Module 7
Applied Power Systems: Mains, Generators, and Loads
29
Single-Phase vs. Three-Phase Power Distribution
Describe the basic structure of single-phase and three-phase mains power distribution systems.
Describe the basic structure of single-phase and three-phase mains power distribution systems.
30
Real Power Calculation for Appliances
Calculate the real power consumption of various appliances by interpreting their power factor and apparent power ratings.
Calculate the real power consumption of various appliances by interpreting their power factor and apparent power ratings.
31
Generator Loading: Real and Apparent Power Limits
Evaluate whether a generator can supply a given set of loads, considering its real power (W) and apparent power (VA) limits.
Evaluate whether a generator can supply a given set of loads, considering its real power (W) and apparent power (VA) limits.
32
Understanding Inrush Current in Inductive Loads
Explain the physical origin of large starting currents in inductive loads (e.g., motors), referencing the initial absence of back-EMF.
Explain the physical origin of large starting currents in inductive loads (e.g., motors), referencing the initial absence of back-EMF.
33
Generator Sizing for Surge Loads
Incorporate surge load considerations when sizing a generator for a specific set of appliances.
Incorporate surge load considerations when sizing a generator for a specific set of appliances.
34
Battery/Generator Runtime Estimation
Estimate the runtime of a device on a battery or generator based on its power consumption and the energy source's capacity (e.g., in Watt-hours).
Estimate the runtime of a device on a battery or generator based on its power consumption and the energy source's capacity (e.g., in Watt-hours).