Introductory analog electronics laboratory

Bachelor's degree

In Maynard (USA)

Price on request

Description

  • Type

    Bachelor's degree

  • Location

    Maynard (USA)

  • Start date

    Different dates available

6.101 is an introductory experimental laboratory that explores the design, construction, and debugging of analog electronic circuits. Lectures and six laboratory projects investigate the performance characteristics of diodes, transistors, JFETs, and op-amps, including the construction of a small audio amplifier and preamplifier. Seven weeks are devoted to the design and implementation, and written and oral presentation of a project in an environment similar to that of engineering design teams in industry. The course provides opportunity to simulate real-world problems and solutions that involve trade offs and the use of engineering judgment. Engineers from local analog engineering companies come to campus to help students with their design projects.

Facilities

Location

Start date

Maynard (USA)
See map
02139

Start date

Different dates availableEnrolment now open

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Subjects

  • Construction Training
  • Engineering
  • Project
  • Construction
  • Design

Course programme

Lectures: 3 sessions / week, 1 hour / session


Labs: Open hours during the semester


6.101 is an introductory experimental laboratory that explores the design, construction, and debugging of analog electronic circuits. This subject covers diodes, transistors, JFETs, op-amps, and basic analog circuit design as applied to audio and radio frequency circuits. Students spend the second half of the term designing their own projects. Projects vary in scope and breadth, depending on students' level of prior background and interest. Past projects have ranged from simple power amplifiers to advanced noise canceling headphones.


6.101 aims to minimize math and emphasize visual and intuitive circuit understanding, to create a practical and useful design experience. In the process, students will learn to understand and use a wide variety of analog circuits. They will learn how to use books and periodicals to find circuit ideas and to supplement their textbook knowledge. Past final projects have included:


The laboratory satisfies either the institute laboratory requirement or the course 6 laboratory requirement. It gives 12 Engineering Design Points. Passable performance in 6.002 or 6.071 should provide sufficient background. However, students often find it valuable to have taken more advanced circuit design classes, as they allow for more ambitious (and more interesting) final projects.


Neamen, Donald. Microelectronic Circuit Analysis and Design. 3rd ed. New York, NY: McGraw-Hill, 2006. ISBN: 9780073285962.
The book comes with two free CD-roms and is the required textbook for this term.


Cathey, Jimmie J. Schaum's Outlines Electronic Devices and Circuits. 2nd ed. New York, NY: McGraw-Hill, 2002. ISBN: 9780071362702.


Johnson, D. E., and V. Jayakumar. Operational Amplifier Circuits. Upper Saddle River, NJ: Prentice Hall, 1982. ISBN: 9780136374473.


Horowitz, Paul, and Winfield Hill. The Art of Electronics. 2nd ed. Cambridge, UK: Cambridge University Press, 1989. ISBN: 9780521370950.
We strongly recommend that you also purchase this book. This reference will be useful in other courses and after graduation.


The first half of the class accounts for 50% of the grade. The other 50% comes from the final project.


A. Resistors and capacitors standard values


B. Component symbols


C. Frequency response, bode plots, basics review


A. Diodes, diode equation


B. Graphical/Load line analysis


C. Diode models


a. Ideal
b. Piecewise linear
c. AC
d. Other diode types


D. Zener diodes


E. Diode applications


a. Peak sample, power rectifier, clamps, regulator


A. Definitions


B. V-I characteristics, breakdown


C. Common-emitter large signal model, graphical analysis


D. Common-collector


E. Common-emitter


F. Applications: current source, DC power supply regulator


A. Transistor biasing


B. Hybrid-pi equivalent circuit


C. High-frequency hybrid-pi


D. H-parameters


E. Common-emitter amplifier


F. AC load line


G. Common-collector (emitter-follower) amplifier


A. Operation


B. Background and V-I characteristics: JFET


C. FET switch, chopper, MUX


D. Low frequency incremental model


E. Biasing


F. JFET current source


A. Differential emitter-coupled pair


a. Current mirror


B. Complementary emitter-follower (Class B, AB)


C. Amplifier classes


D. Power amplifiers


A. Overview


B. Basic linear op-amp circuits


a. Inverting, non-inverting, addition, subtraction
b. AC amplifiers, inverting, and non-inverting
c. Cascading; Ideal impedances
d. I-V conv, V-I conv, difference amp, instrument amp


C. Integrator, differentiator


D. Lossy integrator


E. Negative feedback


A. Limitations


a. Effect of finite open-loop gain
b. Differential and common mode input voltage limits
c. Common-mode rejection ration
d. Input resistance
e. Input bias current, input offset current
f. Non-zero output resistance
g. Frequency response, gain-bandwidth product
h. Output voltage swing, saturation
i. Output current limit
j. Compensation
k. Slew rate
l. Offset voltage and drift
m. Op-amp selection considerations


A. Non-linear op-amp circuits


a. Precision ½ wave rectifier, log and antilog amps
b. Comparator
c. Schmitt-trigger
d. Schmitt-trigger oscillator [astable multivibrator]
e. 555 IC timer


A. Physical layout; intercircuit coupling


B. Vcc, Vee bypassing


a. Capacitors and resistors at very high frequencies


C. Interference and shielding


D. Grounding and ground sequencing


E. Optoelectronic isolators


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Introductory analog electronics laboratory

Price on request