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\n\tSyllabus: EE3407 Analog Electronics
\n\n\t1. Module Details
\n\tModule Code: EE3407
\n\tModule Title: Analog Electronics
\n\tModular Credit: 4 MCs
\n\tTeaching Modes: 2.5-hour lecture +0.5-hour tutorial per week, and 2 labs
\n\tPre-Requisites: EE2005 or EE2021 Devices & Circuits
\n\t2. Objectives
\n\n\tThis module provides students with essential concepts in electronics to enable them to understand and design complex electronic circuits and systems for processing analog signals. Topics covered: Techniques for implementing specific amplifier frequency response involving poles and time constants; Negative feedback amplifiers; Oscillators: RC, LC and crystal-controlled oscillators; Mixer, modulators and demodulators for communication systems; Instrumentation amplifiers, CMRR; DC power supply design: Linear and switching regulators, current limiting; Power amplifiers: Output stage, efficiency and distortion; Active filters; Interconnections: propagation of signal and energy in transmission lines; and introduction of design techniques for integrated circuits (IC).
\n\n\t3. Mode of Assessment
\n\n\tExam will count for 80% of the final mark.
\n\t2 labs will count for 20% of the final mark.
\n\t4. Course Books
\n\n\tDavid Crecraft and Stephen Gergely, Analog Electronics: Circuits, Systems and Signal Processing, Elsevier, 2002.
\n\tAllan R. Hambley, Electronics (2nd edition), Prentice Hall, 2000.
\n\t5. Course Summary
\n\n\tPart I (lectured by Dr. Changyuan YU):
\n\t1. Instrumentation amplifiers
\n\tReview of operational amplifiers, instrumentation amplifiers, practical limitation of operational amplifiers, noise
\n\t2. Power supplies
\n\tElectricity transmission and distribution, voltage regulator, overload current limiting
\n\t3. Power amplifiers
\n\tOutput stages, class A power amplifiers, class B power amplifiers, thermal considerations
\n\t4. Active filters
\n\tDesign the low-pass, high-pass, and bandpass filters based on SaIIen-Key Circuits, design the bandpass filters based on Delyiannis-Friend Bandpass Circuits
\n\t5. Interconnections
\n\tIntroduction to transmission lines, Telegrapher's equations, Sine waves in transmission lines, propagation of energy, practical types of interconnections
\n\t6. Design techniques for IC
\n\tDesign rules for discrete and integrated circuits, IC biasing, current mirror, large-signal analysis, small-signal analysis, design of amplifiers
\n\tPart II (lectured by Dr. Aaron Danner):
\n\t1. Basic AM transmitters and receivers
\n\tThis includes the basics of electromagnetic radiation and how is it received. Spark gap transmitters, telegraphs, and AM demodulation is covered. A brief history of electronics is provided.
\n\t2. Passive filters
\n\tPoles and zeros and their effects on filters are included. Students learn about passive RLC filters, and are able to design Butterworth, Bessel, and Chebyshev filters. Impedance matching is covered. Q is introduced.
\n\t3. Amplifier classes
\n\tStudents learn the meaning of Class A, AB, B, C, and D amplifiers, and the operation of Class B audio amplifiers is covered in detail. There is a review of transistor biasing.
\n\t4. Frequency response in amplifier circuits
\n\tThe effect of transistor parasitics on high frequency circuit design (particularly, RF design) is introduced.
\n\t5. Feedback
\n\tNegative feedback as a mechanism for amplifier gain control is covered. Shunt-shunt, shunt-series, series-series, and series-shunt networks are introduced, as well as regenerative feedback.
\n\t6. Oscillators
\n\tWien-Bridge, Hartley, Colpitts, Pierce, Armstrong, and Quadrature oscillators are analyzed.
\n\t7. Mixers, Advanced AM and FM transmitters and receivers
\n\tAM transmitters and receivers are fully covered. Slope detection and FM transmission with varactors is included.
\n\t(Each topic takes about 1 week.)
\n","Order":6},{"ID":"a2ff7a28-90f0-4e84-8794-5b643684bd3b","Title":"Preclusions","Description":"NIL","Order":9},{"ID":"875d3d39-7a50-44c2-83ae-a3089f176d93","Title":"Workload","Description":"3-1-0.5-1.5-4