<?xml version="1.0" encoding="utf-8" standalone="yes"?><rss version="2.0" xmlns:atom="http://www.w3.org/2005/Atom"><channel><title>Mmwave | Yao Zheng@UHM</title><link>https://gustybear.github.io/tags/mmwave/</link><atom:link href="https://gustybear.github.io/tags/mmwave/index.xml" rel="self" type="application/rss+xml"/><description>Mmwave</description><generator>Hugo Blox Builder (https://hugoblox.com)</generator><language>en-us</language><lastBuildDate>Mon, 10 Nov 2025 00:00:00 +0000</lastBuildDate><image><url>https://gustybear.github.io/media/logo_hu_d0a0b1783c391ac0.png</url><title>Mmwave</title><link>https://gustybear.github.io/tags/mmwave/</link></image><item><title>Demo: Disrupting In-Car mmWave Sensing Through IRS Manipulation</title><link>https://gustybear.github.io/publication/guo-demo-disrupting-in-car-mmwave-sensing-2025/</link><pubDate>Mon, 10 Nov 2025 00:00:00 +0000</pubDate><guid>https://gustybear.github.io/publication/guo-demo-disrupting-in-car-mmwave-sensing-2025/</guid><description/></item><item><title>Drone-Mounted mmWave Harmonic Radar for Invasive Insect Monitoring</title><link>https://gustybear.github.io/grant/2026_hisc_harmonic_radar/</link><pubDate>Fri, 07 Nov 2025 00:00:00 -1000</pubDate><guid>https://gustybear.github.io/grant/2026_hisc_harmonic_radar/</guid><description>&lt;h1 id="executive-summary">Executive Summary&lt;/h1>
&lt;p>This project develops an innovative &lt;strong>drone-mounted millimeter-wave (mmWave) harmonic radar system&lt;/strong> for &lt;strong>tracking invasive pest insects&lt;/strong> in Hawai‘i. The technology targets destructive species such as the &lt;strong>coconut rhinoceros beetle&lt;/strong> and &lt;strong>melon fly&lt;/strong>, aiming to improve early detection, optimize control strategies, and protect the islands’ ecosystems and agriculture.&lt;/p>
&lt;p>Traditional harmonic radar systems are limited to short ranges and heavy transponders. Our approach integrates &lt;strong>12 GHz/24 GHz phased-array beamforming&lt;/strong>, &lt;strong>miniaturized Nitinol-based transponders&lt;/strong>, and &lt;strong>multi-drone coordination&lt;/strong> for long-range, real-time tracking of small, fast-moving insects—achieving high precision with minimal behavioral impact.&lt;/p>
&lt;h1 id="research-objectives">Research Objectives&lt;/h1>
&lt;p>&lt;strong>Goal:&lt;/strong> Build and validate a UAV-mounted harmonic radar network for aerial tracking of invasive insects across complex Hawaiian landscapes.&lt;/p>
&lt;h2 id="task-1--mmwave-beamsteering-harmonic-transceiver">Task 1 – mmWave Beamsteering Harmonic Transceiver&lt;/h2>
&lt;p>Design a &lt;strong>compact 12 GHz phased-array transmitter&lt;/strong> using COTS modules and a heterodyne architecture for coherent beamforming.&lt;/p>
&lt;ul>
&lt;li>Operates at &lt;strong>12/24 GHz ISM bands&lt;/strong>&lt;/li>
&lt;li>Achieves &amp;gt;10 m range with lightweight, steerable arrays&lt;/li>
&lt;li>Enables UAV integration for agile tracking&lt;/li>
&lt;/ul>
&lt;h2 id="task-2--ultralight-harmonic-tag">Task 2 – Ultralight Harmonic Tag&lt;/h2>
&lt;p>Develop a &lt;strong>miniaturized 24 GHz transponder&lt;/strong> using a &lt;strong>hollow bowtie antenna&lt;/strong> made of &lt;strong>shape-memory alloy (Nitinol)&lt;/strong> and a &lt;strong>Schottky diode&lt;/strong> for harmonic generation.&lt;/p>
&lt;ul>
&lt;li>Tag weight &amp;lt; 1 mg for compatibility with small insects&lt;/li>
&lt;li>Structural resilience through Nitinol’s superelasticity&lt;/li>
&lt;li>Broadband harmonic reflection optimized for 12→24 GHz doubling&lt;/li>
&lt;/ul>
&lt;h2 id="task-3--multi-drone-localization-network">Task 3 – Multi-Drone Localization Network&lt;/h2>
&lt;p>Implement a &lt;strong>distributed multistatic radar system&lt;/strong> using one TX and multiple RX drones for real-time localization.&lt;/p>
&lt;ul>
&lt;li>Uses synchronized bistatic ranging and multilateration&lt;/li>
&lt;li>Integrates GPS time sync and low-latency communications&lt;/li>
&lt;li>Coordinates drone formations for continuous insect tracking&lt;/li>
&lt;/ul>
&lt;h1 id="broader-impacts">Broader Impacts&lt;/h1>
&lt;p>This system aligns with &lt;strong>HISC priorities&lt;/strong> for early detection and rapid response (Priority 1) and technological innovation for pest management (Priority 2). It promotes cross-disciplinary collaboration among engineers, biologists, and agricultural scientists to create deployable surveillance tools for invasive species control.&lt;br>
Potential benefits include:&lt;/p>
&lt;ul>
&lt;li>Reduced pesticide dependence through precise targeting&lt;/li>
&lt;li>Enhanced monitoring of remote or forested regions&lt;/li>
&lt;li>Scalable open-source framework for ecological sensing&lt;/li>
&lt;/ul>
&lt;h1 id="team">Team&lt;/h1>
&lt;ul>
&lt;li>&lt;strong>PI:&lt;/strong> Dr. Yao Zheng – mmWave radar, phased array, RF sensing&lt;/li>
&lt;li>&lt;strong>Co-PI:&lt;/strong> Dr. Haofan Cai – RFID and low-power tag design&lt;/li>
&lt;li>&lt;strong>Co-PI:&lt;/strong> Dr. Daniel Jenkins – UAV systems, autonomous sensing, precision agriculture&lt;/li>
&lt;/ul>
&lt;p>Collaborators include &lt;strong>USDA-PBARC&lt;/strong> and &lt;strong>NIWC Pacific&lt;/strong> for field validation and data integration.&lt;/p>
&lt;h1 id="timeline-dec-2025--nov-2026">Timeline (Dec 2025 – Nov 2026)&lt;/h1>
&lt;table>
&lt;thead>
&lt;tr>
&lt;th style="text-align: left">&lt;strong>Phase&lt;/strong>&lt;/th>
&lt;th style="text-align: left">&lt;strong>Period&lt;/strong>&lt;/th>
&lt;th style="text-align: left">&lt;strong>Milestone&lt;/strong>&lt;/th>
&lt;th style="text-align: left">&lt;strong>Lead&lt;/strong>&lt;/th>
&lt;/tr>
&lt;/thead>
&lt;tbody>
&lt;tr>
&lt;td style="text-align: left">Phase I&lt;/td>
&lt;td style="text-align: left">Months 1–3&lt;/td>
&lt;td style="text-align: left">Frequency translator upgrade and system specification&lt;/td>
&lt;td style="text-align: left">UHM ECE&lt;/td>
&lt;/tr>
&lt;tr>
&lt;td style="text-align: left">Phase II&lt;/td>
&lt;td style="text-align: left">Months 4–6&lt;/td>
&lt;td style="text-align: left">Phased-array prototype and beamforming validation&lt;/td>
&lt;td style="text-align: left">UHM ECE&lt;/td>
&lt;/tr>
&lt;tr>
&lt;td style="text-align: left">Phase III&lt;/td>
&lt;td style="text-align: left">Months 7–9&lt;/td>
&lt;td style="text-align: left">Harmonic tag fabrication and field characterization&lt;/td>
&lt;td style="text-align: left">UHM ECE&lt;/td>
&lt;/tr>
&lt;tr>
&lt;td style="text-align: left">Phase IV&lt;/td>
&lt;td style="text-align: left">Months 10–12&lt;/td>
&lt;td style="text-align: left">Multi-drone localization demo and final reporting&lt;/td>
&lt;td style="text-align: left">UHM ECE&lt;/td>
&lt;/tr>
&lt;/tbody>
&lt;/table>
&lt;h1 id="expected-deliverables">Expected Deliverables&lt;/h1>
&lt;ul>
&lt;li>Functional &lt;strong>12/24 GHz drone-mounted harmonic radar prototype&lt;/strong>&lt;/li>
&lt;li>&lt;strong>Miniaturized Nitinol-based insect tags&lt;/strong> (&amp;lt; 1 mg)&lt;/li>
&lt;li>&lt;strong>Validated multi-drone localization system&lt;/strong> (&amp;gt; 100 m effective range)&lt;/li>
&lt;li>Technical documentation and open-source dataset for future HISC programs&lt;/li>
&lt;/ul>
&lt;p>📡 &lt;strong>Project Lead:&lt;/strong>
&lt;br>
🏛️ &lt;strong>Institution:&lt;/strong> University of Hawai‘i at Mānoa – College of Engineering&lt;br>
🌺 &lt;strong>Supported by:&lt;/strong> Hawai‘i Invasive Species Council (HISC) 2026–2027&lt;/p></description></item><item><title>CRII: NeTS: Power Efficient Millimeter Wave Data Delivery for Remote Invasive Species Monitoring</title><link>https://gustybear.github.io/grant/2020_nsf_cise_nets_crii/</link><pubDate>Fri, 01 May 2020 00:00:00 -1000</pubDate><guid>https://gustybear.github.io/grant/2020_nsf_cise_nets_crii/</guid><description>&lt;h1 id="executive-summary">Executive Summary&lt;/h1>
&lt;p>The growing data resolution in remote sensing spurs the adoption of millimeter-wave (mmWave) communication modules on energy-harvesting devices to increase the data delivery bandwidth. The energy conditions on these devices are not always satisfiable to initiate or maintain the mmWave links and require systems to be capable of anticipating communication failures and take preemptive actions to minimize energy expenditures. Fortunately, the environmental information provided by remote sensors contains sufficient knowledge to enable the design of such systems. The goal of this project is to develop algorithms and tools to exploit this information and augment the solar-harvesting remote invasive species monitoring system in the State of Hawaii with mmWave data delivery capability. The work in this project will enable researchers, industry, and students to realize high bandwidth real-time remote sensing with power-constrained devices in real-world applications. The results of this research will impact fields across scientific, industrial, and military interests, including agriculture, ecology, meteorology, infrastructure, and public utility monitoring, etc., where timely communication of high-resolution sensory data is essential.&lt;/p>
&lt;p>The fundamental intuition of the proposed approach is that environmental factors, such as weather conditions, signal blockages, can be recognized via the inherent capability or interactions between the remote sensors. Knowledge of these factors can be utilized to optimize device awakening, beam scanning, and signal amplification, etc., at the physical layer. Three complimentary research thrusts are pursued: 1) extracting the correlation between solar harvesting conditions and mmWave signal attenuations; developing models and circuits to estimate the mmWave signal attenuations at specific solar conditions; 2) designing a distributed sensing architecture to detect mmWave beam blockage and accelerate beam alignment, by exploiting the low-power decimeter band communication implemented by the existing system; 3) formulating and solving a constrained route placement problem for an autonomous aerial data collector to optimize its mmWave signal reception as it maneuvers between sensor clusters and flight restricted regions. All products of this work will be made freely available to the research community, along with documentation and tutorials. The in-lab testbed to be established during the project will be made available online for remote testing. The hardware schematic of the sensor platform, deployment profiles, data traces, and important meta-data will be posted online to spur further use, test, and research to advance the field.&lt;/p></description></item></channel></rss>