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Electronics System Design : Hands on Circuits and PCB Design with CAD Software banner
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Electronics System Design : Hands on Circuits and PCB Design with CAD Software

Electronics System Design : Hands on Circuits and PCB Design with CAD Software banner
Preview this course
Self-paced Advanced

Electronics System Design : Hands on Circuits and PCB Design with CAD Software

5(3)
4 enrolled
544 views
FREE
2108 min
Anytime
English
544 views
Vaibhav Raj
Vaibhav Raj
  • Lifetime access
  • Certificate of completion
  • Anytime Learning
  • Learn from Industry Expert
Volume pricing for groups of 5+

Why enroll

People enroll in the course “Electronics System Design: Hands on Circuits and PCB Design with CAD Software” to gain practical, industry-relevant skills in designing real electronic systems. The course helps learners move beyond theory by working on actual circuits and PCB layouts using professional CAD tools, boosting their confidence, technical competence, and job readiness in electronics, embedded systems, and hardware design fields.

Is this course for you?

You should take this if

  • You work in Telecommunication
  • You're a Electronics & Telecommunication / Electrical Engineering professional
  • You have 3+ years of hands-on experience in this field
  • You prefer self-paced learning you can revisit

You should skip if

  • You're new to this field with no prior experience
  • You need a different specialisation outside Electronics & Telecommunication
  • You need live interaction with an instructor

Course details

Electronics System Design focuses on translating ideas into functional hardware through hands-on circuit development and PCB design using CAD software. It involves designing, simulating, and testing electronic circuits, then converting schematics into well-structured printed circuit boards while considering performance, reliability, and manufacturability. By using industry-standard CAD tools, designers can efficiently create layouts, verify designs, and iterate prototypes, gaining practical skills that bridge theoretical electronics with real-world product development.

Source: NPTEL [Youtube Channel]

Course suitable for

Key topics covered

Introduction

Passive Circuit Elements : R, L and C

Active Circuit Elements: MOSFET, BJTs

Network Theorems : Thevenin, Norton, Maximum Power Transfer etc

Interconnect design

Introduction to Verilog Simulations Software

KiCad Example : PCB design using OpAmp IC

Course content

The course is readily available, allowing learners to start and complete it at their own pace.

36 lectures35 hr 8 min

Opportunities that await you!

Career opportunities

FREE

Access anytime

Questions and Answers

A: That's the most common mistake — confusing naming with geometry. Microstrip means an external trace with one reference plane; once the layer is buried between dielectrics, the field lines change and it's stripline. The fab can still hit 50 Ω, but they'll do it as stripline unless the drawing is fixed, which shifts loss and phase.

A: That's the most common mistake — blaming components when it's really operating mode. At light load the converter slips into DCM, the small-signal model changes, and compensation that was fine in CCM no longer damps the loop. The frequency and load dependence line up; saturation and ESR issues don't selectively appear only below 10% load.

A: That's the most common mistake — matching the line instead of the source. For series termination you're shaping the launch by making Rdriver + Rseries ≈ Z0. Putting 28 Ω in series with 22 Ω gets you there; a full 50 Ω would just slow edges and burn margin.

A: That's the most common mistake — assuming the letter swap is mechanical only. SMAJ and SMBJ families differ in power and sometimes clamping behavior; leakage versus standoff can bite you near nominal rails. The footprint mismatch flags it, but the electrical margin is what actually breaks systems in the field.