An optical fiber probe composed of a fiber Bragg grating (FBG) and a reflective S fiber taper (SFT) with graphene oxide (GO) film, for simultaneous relative humidity (RH) and temperature measurement, was proposed and experimentally demonstrated in this paper. The SFT is made into reflection type by depositing silver mirror at the fiber end face, which is highly sensitive to surrounding refractive index (RI). The GO nanosheets, as a two-dimensional hydrophilic nano material, is coated on the fiber surface, acting as a RH-to-RI converter. The simultaneous RH and temperature measurements are realized by monitoring the characteristic wavelength shifts of the SFT and FBG in the reflection spectrum. Experimental results show that the RH sensitivity of the probe is 161.1 pm/%RH during the range of 30 %RH~90 %RH, and the temperature sensitivity is 14.1 pm/°C during the range of 10 ℃~50 ℃. The proposed probe is compact, flexible, and easy to be fabricated, which has potential application for precise localized measurement in medical and biochemical fields.
We carried out a fast processing investigation based on a graphics
processing unit (GPU) for a distributed acoustic sensor using a linear
frequency modulation pulse. The moving window cross-correlation
calculations are realized on the GPU, which makes use of parallel
computing. We analyzed the effect of the thread number in a block on
the GPU streaming multiprocessor utilization efficiency and then
compared the acceleration under different calculation scales. By
maximizing the streaming multiprocessor utilization efficiency and
large calculation scale, a maximum acceleration ratio of 86.01 was
obtained.
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