Inhaltsangabe
A circuit that works on a breadboard and a circuit that survives contact with a real enclosure, a real power budget, and a working prototype are not the same thing — and the gap between them is where most self-taught electronics work stalls.
Tutorials show a wiring diagram and a parts list without explaining why a resistor value was chosen or what happens when a component drifts. Textbooks go the other way, offering rigorous derivations that stop well short of a soldered board, a measured waveform, or a finished printed circuit board. Building real hardware — moving past beginner kits, applying coursework in practice, or turning an invention into a working prototype — takes both halves at once, tied together with consistent notation instead of scattered across a shelf of unrelated books.
This is a working reference for people who build things. It develops circuit theory, active devices, and digital logic from first principles, then carries that same foundation forward into embedded systems, sensor and actuator interfacing, printed circuit board design, and bench-level test and troubleshooting, so a decision made in an early chapter is still visible and traceable when the same circuit appears later, soldered and working.
Inside, you will:
- Build circuit-analysis skill methodically, from Kirchhoff's laws and series-parallel reduction through nodal and mesh analysis and network theorems such as superposition, Thevenin's, and Norton's.
- Understand passive and active components as real, imperfect parts — tolerance, derating, biasing, thermal design, and switching behavior — not just ideal schematic symbols.
- Design operational-amplifier signal-conditioning stages, active and passive filters, and both linear and switching power supplies with the same worked-example discipline throughout.
- Move from analog circuits into digital logic, sequential design, and microcontroller-based embedded systems, including GPIO, timers, analog-to-digital conversion, interrupts, and low-power sleep modes.
- Interface real sensors and actuators and carry a finished schematic through to an actual printed circuit board, from layout and trace design to fabrication and assembly.
- Diagnose non-working circuits using a systematic troubleshooting method, and study a complete capstone project — a solar-powered environmental monitoring station — that traces every design decision back to the specific chapter it draws on.
- Follow numerical examples that carry units through every step of the calculation, the way a real bench measurement would, so the reasoning behind a design decision is never hidden.
Key topics covered: circuit analysis fundamentals and network theorems; passive components, AC analysis, and resonance; diodes, bipolar transistors, and MOSFETs; operational amplifiers and active filters; linear and switching power supply design; digital logic, sequential circuits, and finite state machines; microcontroller architecture and embedded firmware; sensor and actuator interfacing; PCB layout and fabrication; bench instrumentation, troubleshooting, and reliability.
Who this book is for: Written for practicing engineers who want a dependable second opinion on a design decision, makers who have outgrown tutorial-level projects and want to understand why a circuit behaves as it does, engineering students who want every derivation carried far enough to be usable, and inventors working to turn an idea into a functioning prototype. A working familiarity with basic algebra is assumed; no prior electronics book is required.
Get your copy and start building the understanding needed to carry a design from a single resistor to a finished, tested piece of hardware.
Die Inhaltsangabe kann sich auf eine andere Ausgabe dieses Titels beziehen.