TY - JOUR
T1 - A Near-Field Coupling Efficiency Optimized Antenna for High-Accuracy Axillary Thermometry through Clothing
AU - Dong, Chen
AU - Gu, Ruochen
AU - Zhao, Jingcheng
AU - Bai, Ming
AU - Hu, Anyong
AU - Miao, Jungang
N1 - Publisher Copyright:
© 1963-2012 IEEE.
PY - 2026
Y1 - 2026
N2 - This paper presents a novel antenna design methodology and a fabricated prototype for accurate axillary temperature measurement through common clothing. Unlike infrared thermometers, microwaves can penetrate low-loss fabrics. However, existing antenna designs optimized solely for S11 minimization fail to ensure that the received thermal noise originates predominantly from the body rather than from other interfering sources. To overcome the problem of mixed noise origin, we introduce the near-field coupling efficiency as a complementary design objective. This leads to a new dual-objective design strategy where the antenna must be co-optimized for both low S11 and high near-field coupling efficiency. We implement this strategy through a systematic 'body-clothing-antenna' co-design methodology, which treats the unknown garment as a configurable dielectric layer within the matching network for joint optimization. A 32-36 GHz antenna based on this methodology is designed, fabricated, and rigorously characterized through simulation and measurement. Measurements confirm its robust performance, maintaining S11 below -15 dB across various clothing types. Integrated radiometric measurements confirm the antenna's capability for accurate axillary thermometry through polyester Tshirts, with a mean bias below 0.2° and no clothingspecific calibration required. This work therefore delivers a complete design methodology and a validated prototype for high-accuracy, through-clothing axillary thermometry.
AB - This paper presents a novel antenna design methodology and a fabricated prototype for accurate axillary temperature measurement through common clothing. Unlike infrared thermometers, microwaves can penetrate low-loss fabrics. However, existing antenna designs optimized solely for S11 minimization fail to ensure that the received thermal noise originates predominantly from the body rather than from other interfering sources. To overcome the problem of mixed noise origin, we introduce the near-field coupling efficiency as a complementary design objective. This leads to a new dual-objective design strategy where the antenna must be co-optimized for both low S11 and high near-field coupling efficiency. We implement this strategy through a systematic 'body-clothing-antenna' co-design methodology, which treats the unknown garment as a configurable dielectric layer within the matching network for joint optimization. A 32-36 GHz antenna based on this methodology is designed, fabricated, and rigorously characterized through simulation and measurement. Measurements confirm its robust performance, maintaining S11 below -15 dB across various clothing types. Integrated radiometric measurements confirm the antenna's capability for accurate axillary thermometry through polyester Tshirts, with a mean bias below 0.2° and no clothingspecific calibration required. This work therefore delivers a complete design methodology and a validated prototype for high-accuracy, through-clothing axillary thermometry.
KW - Biomedical monitoring
KW - Dielectric loaded antennas
KW - Millimeter wave radiometry
KW - Near-fields
KW - Temperature measurement
UR - https://www.scopus.com/pages/publications/105043373675
U2 - 10.1109/TAP.2026.3703820
DO - 10.1109/TAP.2026.3703820
M3 - 文章
AN - SCOPUS:105043373675
SN - 0018-926X
JO - IEEE Transactions on Antennas and Propagation
JF - IEEE Transactions on Antennas and Propagation
ER -