Title :
A Fabry-Perot optical fiber force sensor based on intensity modulation for needle tip force sensing
Author :
Zonglai Mo ; Weiliang Xu ; Broderick, Neil
Author_Institution :
Dept. of Mech. Eng., Univ. of Auckland, Auckland, New Zealand
Abstract :
The force feedback absence in minimally invasive surgeries (MIS) is a chronic problem. The main obstacle is the intensive magnetic resonance (MR) influence on traditional electronic signals. This paper proposes a miniature and MR compatible optical force sensor based on Fabry-Perot interference (FPI) principle and interferometric-intensity modulation method. The FPI sensor, with 400μm outer diameter, is embedded in the tip of a rigid puncture needle with 1.0mm inner diameter. The sensor is simulated and fabricated, followed by signal processing using Fourier and wavelet transform analysis. Calibration results at 20 °C show that the force sensing range and resolution are 0-5N and 0.1N, respectively. Silicon rubber skin phantom insertion experiments suggest that the FPI sensor could identify clearly the type of tissues during the insertion and extraction procedure.
Keywords :
Fourier transforms; fibre optic sensors; force sensors; medical signal processing; surgery; wavelet transforms; FPI principle; Fabry-Perot interference principle; Fabry-Perot optical fiber force sensor; Fourier transform analysis; MIS; MR; electronic signals; extraction procedure; force feedback; insertion procedure; intensity modulation; interferometric-intensity modulation method; magnetic resonance; minimally invasive surgery; needle tip force sensing; signal processing; silicon rubber skin phantom insertion experiments; temperature 20 degC; wavelet transform analysis; Cavity resonators; Force; Force sensors; Needles; Optical fiber sensors; Optical fibers; Robot sensing systems; fiber optical force sensor; intensity modulation; needle tip; puncture needle; wavelet analysis;
Conference_Titel :
Automation, Robotics and Applications (ICARA), 2015 6th International Conference on
Conference_Location :
Queenstown
DOI :
10.1109/ICARA.2015.7081177