Title :
Performance Study of a UWB Antenna in Proximity to a Human Arm
Author :
Koohestani, Mohsen ; Pires, N. ; Skrivervik, Anja K. ; Moreira, Antonio A.
Author_Institution :
Lab. d´Electromagn. et d´Acoust., Ecole Polytech. Fed. de Lausanne, Lausanne, Switzerland
Abstract :
This letter studies the frequency- and time-domain performance of a recently developed printed coplanar-fed ultrawideband (UWB) monopole antenna aiming at predicting its behavior close to a human arm. The input reflection coefficient (|S11|) and fidelity factor of the antenna were evaluated in free space and close to an arm. Simulations using three simplified arm models with different cross sections (flat, rectangular, and elliptical) were compared to measurements. All models include the relevant human tissue layers: skin, fat, muscle, and bone. It was found that an accurate model requires the inclusion of the tissues broadband dispersion characterization. Moreover, the skin layer has a major impact in |S11|, and a small effect on fidelity, while the models can be simplified by discarding the bone. Furthermore, the geometry of the models is less relevant than dispersion characterization. It has also been observed that using the simplified models with proper broadband tissues dispersion yields good performance predictions, and that the fidelity factor increases as the antenna gets closer to the arm.
Keywords :
antenna feeds; bone; dispersion (wave); electromagnetic wave reflection; frequency-domain analysis; geometry; microstrip antennas; monopole antennas; muscle; skin; time-domain analysis; ultra wideband antennas; UWB monopole antenna; antenna fidelity factor; arm model; bone; elliptical cross section; fat; flat cross section; frequency-domain performance; geometry; human arm; human tissue layer; input reflection coefficient; muscle; printed coplanar-fed ultrawideband monopole antenna; rectangular cross section; skin layer; time-domain performance; tissues broadband dispersion characterization; Fidelity factor; frequency -dependent materials; frequency and time domain; human body effects; ultrawideband (UWB) antenna;
Journal_Title :
Antennas and Wireless Propagation Letters, IEEE
DOI :
10.1109/LAWP.2013.2259212