TY - JOUR
T1 - Development of unsteady multi-hole pressure probes based on fiber-optic pressure sensors
AU - Heckmeier, Florian M.
AU - Iglesias, Daniel
AU - Kreft, Stefanie
AU - Kienitz, Sascha
AU - Breitsamter, Christian
N1 - Publisher Copyright:
© 2019 IOP Publishing Ltd.
PY - 2019/12
Y1 - 2019/12
N2 - For measurements of unsteady flow phenomena with multi-hole pressure probes, pressure transducers are integrated in the probe near the probe tip. The application of additive manufacturing enables a wide variation in probe geometries for complex use cases. The spatial characteristics of the unsteady probe are determined by the steady state calibration in a known free-jet wind tunnel. Furthermore, the acoustic/pneumatic line-cavity system, that emerges inside the channels of the probe, is investigated in detail in the temporal calibration. In order to realize multi-hole probes with higher temporal resolution, which can be operated in harsh environments, a fiber-optic pressure sensor is developed. The measurement principle of the fiber-optic sensor is based on the Fabry-Pérot interferometer effect. The sensor is operated differentially with a pressure capillary by either pressurizing the sensor or using the surrounding static pressure as the reference pressure. Besides calibration of the sensor, comparisons with a state-of-the-art piezo-resistive pressure transducer have been performed. The focus of this work is on the reproducibility of both frequency response and amplitude.
AB - For measurements of unsteady flow phenomena with multi-hole pressure probes, pressure transducers are integrated in the probe near the probe tip. The application of additive manufacturing enables a wide variation in probe geometries for complex use cases. The spatial characteristics of the unsteady probe are determined by the steady state calibration in a known free-jet wind tunnel. Furthermore, the acoustic/pneumatic line-cavity system, that emerges inside the channels of the probe, is investigated in detail in the temporal calibration. In order to realize multi-hole probes with higher temporal resolution, which can be operated in harsh environments, a fiber-optic pressure sensor is developed. The measurement principle of the fiber-optic sensor is based on the Fabry-Pérot interferometer effect. The sensor is operated differentially with a pressure capillary by either pressurizing the sensor or using the surrounding static pressure as the reference pressure. Besides calibration of the sensor, comparisons with a state-of-the-art piezo-resistive pressure transducer have been performed. The focus of this work is on the reproducibility of both frequency response and amplitude.
KW - Calibration
KW - Fiber-optic pressure sensor
KW - Multi-hole probe
KW - Unsteady pressure measurement
UR - http://www.scopus.com/inward/record.url?scp=85092540457&partnerID=8YFLogxK
U2 - 10.1088/2631-8695/ab4f0d
DO - 10.1088/2631-8695/ab4f0d
M3 - Article
AN - SCOPUS:85092540457
SN - 2631-8695
VL - 1
JO - Engineering Research Express
JF - Engineering Research Express
IS - 2
M1 - 025023
ER -