INTEGRATION OF MMWAVE CIRCUITS IN SMART WEARABLE COMMUNICATION SYSTEMS

Fuente: Zenodo
Salvato in:
Dettagli Bibliografici
Autori principali: V Venkata Lakshmi Dadala, Anil Kumar Madabathula , Bhanu Kiran Reddy Dugga , Madhavi Uppu , Poojitha Lakshmi Nagavalli Battu and Tumula Chandini
Natura: Recurso digital
Pubblicazione: Zenodo 2026
Soggetti:
Accesso online:
Tags: Aggiungi Tag
Nessun Tag, puoi essere il primo ad aggiungerne!!
_version_ 1866901105704697856
author V Venkata Lakshmi Dadala
Anil Kumar Madabathula , Bhanu Kiran Reddy Dugga , Madhavi Uppu , Poojitha Lakshmi Nagavalli Battu and Tumula Chandini
author_facet V Venkata Lakshmi Dadala
Anil Kumar Madabathula , Bhanu Kiran Reddy Dugga , Madhavi Uppu , Poojitha Lakshmi Nagavalli Battu and Tumula Chandini
contents <p>Millimeter-wave (mm Wave) circuits are emerging as pivotal enablers of high-speed, low-latency communication in smart wearable systems. Operating within the 30-300 GHz spectrum, mm Wave technology offers ultra-wide bandwidth and supports multi-gigabit data rates, making it ideal for applications such as real-time health monitoring, augmented reality (AR), and body-area networks (BANs). This paper presents a comprehensive framework for integrating 60 GHz mm Wave transceivers, beam-steering phased-array antennas, and adaptive signal processing modules into wearable platforms. The proposed architecture emphasizes compactness, energy efficiency, and resilience under dynamic human motion and environmental variability. A custom protocol stack, built upon IEEE 802.11ad, ensures low-latency and high-throughput communication. Experimental validation using flexible PCBs and motion-capture environments simulates realistic indoor and outdoor scenarios. Results demonstrate reliable data transmission with bit-error rates below 10 -6, latency under 2 ms, and beam alignment accuracy exceeding 95% during motion. Thermal management strategies maintain surface temperatures below 38C, ensuring user comfort and safety. The proposed system confirms the feasibility of mm Wave-enabled wearables for healthcare, defense, and industrial monitoring. This work lays the foundation for future research in multi-user coordination, AI-driven beamforming, and edge-integrated analytics, advancing next generation wearable communication systems.</p> <p> </p>
format Recurso digital
id zenodo_https___doi_org_10_21474_IJAR01_22217
institution Zenodo
language
publishDate 2026
publisher Zenodo
record_format zenodo
spellingShingle INTEGRATION OF MMWAVE CIRCUITS IN SMART WEARABLE COMMUNICATION SYSTEMS
V Venkata Lakshmi Dadala
Anil Kumar Madabathula , Bhanu Kiran Reddy Dugga , Madhavi Uppu , Poojitha Lakshmi Nagavalli Battu and Tumula Chandini
Mm Wave Circuits Smart Wearables Beam-Steering Antennas Body-Area Networks High-Speed Communication Low-Latency Systems
<p>Millimeter-wave (mm Wave) circuits are emerging as pivotal enablers of high-speed, low-latency communication in smart wearable systems. Operating within the 30-300 GHz spectrum, mm Wave technology offers ultra-wide bandwidth and supports multi-gigabit data rates, making it ideal for applications such as real-time health monitoring, augmented reality (AR), and body-area networks (BANs). This paper presents a comprehensive framework for integrating 60 GHz mm Wave transceivers, beam-steering phased-array antennas, and adaptive signal processing modules into wearable platforms. The proposed architecture emphasizes compactness, energy efficiency, and resilience under dynamic human motion and environmental variability. A custom protocol stack, built upon IEEE 802.11ad, ensures low-latency and high-throughput communication. Experimental validation using flexible PCBs and motion-capture environments simulates realistic indoor and outdoor scenarios. Results demonstrate reliable data transmission with bit-error rates below 10 -6, latency under 2 ms, and beam alignment accuracy exceeding 95% during motion. Thermal management strategies maintain surface temperatures below 38C, ensuring user comfort and safety. The proposed system confirms the feasibility of mm Wave-enabled wearables for healthcare, defense, and industrial monitoring. This work lays the foundation for future research in multi-user coordination, AI-driven beamforming, and edge-integrated analytics, advancing next generation wearable communication systems.</p> <p> </p>
title INTEGRATION OF MMWAVE CIRCUITS IN SMART WEARABLE COMMUNICATION SYSTEMS
topic Mm Wave Circuits Smart Wearables Beam-Steering Antennas Body-Area Networks High-Speed Communication Low-Latency Systems
url https://doi.org/10.21474/IJAR01/22217