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DIRECT-TO-DEVICE SATELLITE COMMUNICATIONS HANDBOOK: Engineering Satellite-to-Smartphone Networks — Link Budgets, NTN Standards, Doppler Compensation, Spectrum Strategy, and Constellation Design - Softcover

Whitfield, P.E., Marcus R.

 
9798171711634: DIRECT-TO-DEVICE SATELLITE COMMUNICATIONS HANDBOOK: Engineering Satellite-to-Smartphone Networks — Link Budgets, NTN Standards, Doppler Compensation, Spectrum Strategy, and Constellation Design

Synopsis

HOW DO YOU CONNECT AN ORDINARY SMARTPHONE TO A SATELLITE HUNDREDS OF KILOMETRES ABOVE EARTH—AND MAKE THE LINK ACTUALLY WORK?

A smartphone was never designed to communicate directly with a spacecraft travelling at orbital velocity. Yet direct-to-device satellite connectivity is turning that seemingly impossible link into a practical communications architecture.

The challenge is not simply putting a cellular radio in space. It is closing the link—despite limited handset power, small antennas, extreme Doppler, long propagation paths, fading, interference, spectrum constraints, and rapidly changing orbital geometry.

Direct-to-Device Satellite Communications Handbook takes you through the complete engineering chain, from orbit and link budget to RF payload, waveform, NTN protocols, network architecture, verification, deployment, and constellation economics.

WHAT YOU WILL LEARN
  • Orbital mechanics, coverage geometry, slant range, elevation, and pass duration

  • Complete forward- and return-link budget methodology

  • Propagation loss, fading, shadowing, multipath, and handset body effects

  • Spacecraft apertures, phased arrays, beamforming, EIRP, G/T, and RF front ends

  • Spectrum licensing, supplemental coverage, PFD limits, and coexistence

  • 3GPP Non-Terrestrial Network architecture and protocol adaptation

  • Doppler shift, Doppler rate, propagation delay, timing, and frequency compensation

  • Random access, mobility, handover, tracking areas, and beam management

  • Waveforms, coding, repetition, link adaptation, and low-SNR operation

  • Capacity planning, interference management, frequency reuse, and beam hopping

  • Gateways, feeder links, rain attenuation, site diversity, and ground infrastructure

  • Transparent and regenerative payload architectures

  • Messaging, emergency communications, narrowband voice, IoT, and store-and-forward services

  • Channel emulation, satellite emulation, OTA testing, and field validation

  • Security, authentication, privacy, GNSS dependency, spoofing, and threat modelling

  • Positioning, timing, ranging, and delay-tolerant networking

  • Maritime, aviation, vehicular, wearable, and machine-type terminals

  • Constellation deployment, lifetime, replenishment, reliability, and economics

  • Complete reference architectures, worked examples, design worksheets, and problem sets

FROM ORBIT TO HANDSET

The central engineering reality is simple: THE HANDSET IS THE CONSTRAINED ELEMENT.

Its limited transmit power, antenna gain, orientation, blockage, and operating environment place demanding requirements on the spacecraft, waveform, protocol, spectrum plan, and constellation.

This handbook develops that relationship quantitatively—showing how orbital geometry becomes a link budget, how the link budget drives payload and waveform decisions, how those decisions affect capacity and interference, and how the resulting architecture must ultimately be verified and deployed.

BUILT FOR ENGINEERS

Designed for RF, wireless, telecommunications, satellite, aerospace, 5G/6G, NTN, antenna, payload, modem, chipset, and systems engineers—as well as researchers, graduate students, network architects, satellite operators, and technical programme teams.

Prior satellite experience is helpful, but not required. A foundation in electromagnetics, digital communications, and probability is sufficient to follow the engineering chain.

DON’T JUST STUDY WHAT DIRECT-TO-DEVICE SATELLITE CONNECTIVITY PROMISES.

UNDERSTAND THE ENGINEERING THAT MAKES IT WORK.

START WITH THE LINK BUDGET. BUILD THE SYSTEM FROM THERE.

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