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AI For PCB Designers: Using Artificial Intelligence for Hardware Design, Analysis, Debugging, Validation and Engineering Documentation: Using ... (AI-Powered Engineering Series, Band 2) - Softcover

Buch 2 von 4: AI-Powered Engineering Series

Cazòrla, Asia

 
9798173064035: AI For PCB Designers: Using Artificial Intelligence for Hardware Design, Analysis, Debugging, Validation and Engineering Documentation: Using ... (AI-Powered Engineering Series, Band 2)

Inhaltsangabe

AI for PCB Designers — Second Edition

Volume 2 of the AI-Powered Engineering Series

Better stackups. Smarter layouts. Stronger verification.

Artificial Intelligence is changing the way PCB engineers analyze information, review layouts, investigate problems, and make design decisions. But professional PCB development requires more than AI-generated recommendations: every critical decision must remain grounded in electrical fundamentals, simulation, manufacturing capability, and physical measurement.

AI for PCB Designers — Second Edition is a revised and updated practical guide to integrating Artificial Intelligence throughout the PCB development lifecycle. This edition reorganizes and expands the methodology, providing structured workflows for AI-assisted analysis, design review, verification, debugging, and documentation.

The objective is not to replace the PCB designer, but to use AI to accelerate engineering work, increase review coverage, identify risks earlier, and support better technical decisions.

What You Will Learn

• Requirements & PCB Architecture — translate system requirements into practical PCB constraints and organize digital, analog, RF, and power domains.

• Component & Technology Selection — analyze devices, packages, materials, and manufacturing technologies.

• Stackup & Controlled Impedance — evaluate layer allocation, reference planes, dielectric materials, impedance structures, and fabrication tolerances.

• Placement & Routing — develop constraints for critical components, high-speed interfaces, differential pairs, length control, and return-current paths.

• High-Speed, RF & Mixed-Signal Design — review transitions, vias, reference changes, isolation strategies, and sensitive signal paths.

• Signal & Power Integrity — investigate reflections, crosstalk, PDN impedance, decoupling, resonances, and power-distribution risks.

• EMC / EMI Engineering — identify emission sources, coupling paths, grounding problems, filtering requirements, and compliance risks.

• Thermal Design & Reliability — evaluate heat paths, current density, thermal structures, derating, and reliability considerations.

• DFM, DFA & Supplier Review — connect PCB requirements with real fabrication, assembly, inspection, and test capabilities.

• Prototype Bring-Up & Root Cause Analysis — organize measurements, generate hypotheses, correlate evidence, and verify corrective actions.

• Verification, Documentation & Responsible AI Use — build traceable engineering workflows from requirements to production release.

From AI Analysis to Physical Evidence

Practical workflows connect AI-assisted reasoning with field solvers, SI/PI analysis, electromagnetic simulation, manufacturing feedback, and laboratory measurements.

The central principle is simple:

AI assists. Engineering fundamentals guide. Simulation predicts. Manufacturing defines capability. Measurement verifies. The PCB designer makes the final decision.

The book treats PCB design as an interconnected system in which stackup, placement, routing, SI, PI, EMC, thermal behavior, reliability, and manufacturing cannot be optimized independently.

AI for PCB Designers — Second Edition is Volume 2 of the AI-Powered Engineering Series, a connected collection exploring practical AI-assisted methodologies for electronic engineering, PCB design, embedded systems, RF engineering, validation, and related technical disciplines.

Ideal for PCB designers, electronic engineers, hardware engineers, layout specialists, engineering students, and professionals who want to integrate AI into real PCB development without sacrificing engineering rigor.

Use AI to design faster—but use engineering evidence to prove that the PCB works.

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