Development of a Fast-Response Aerodynamic Pressure Probe Based on a Waveguide Approach

Author:

Fioravanti Andrea1,Lenzi Giulio1,Ferrara Giovanni1,Ferrari Lorenzo2

Affiliation:

1. Department of Industrial Engineering, University of Florence, Via S. Marta, 3, Florence 50139, Italy e-mail:

2. National Research Council of Italy (CNR-ICCOM), Department of Industrial Engineering, University of Florence, Via S. Marta, 3, Florence 50139, Italy e-mail:

Abstract

Currently, fast-response aerodynamic probes are widely used for advanced experimental investigations in turbomachinery applications. The most common configuration is a virtual three-hole probe. This solution is a good compromise between probe dimension and accuracy. Several authors have attempted to extend the capabilities of these probes in terms of bandwidth and operating conditions. Even though differences exist between the solutions in the literature, all of the designs involve the positioning of a dynamic pressure sensor close to the measurement point. In general terms, the higher the frequency response, the more the sensor is exposed to the flow. This physical constraint puts a limit on the probe applicability since the measurement conditions have to comply with the maximum allowed operating conditions of the sensor. In other applications, when the conditions are particularly harsh and a direct measurement is not possible, a waveguide probe is commonly used to estimate the local pressure. In this device, the sensor is connected to the measurement point through a transmitting duct which guarantees that the sensor is operating in a less critical condition. Generally, the measurement is performed through a pressure tap and particular attention must be paid to the probe design in order to have an acceptable frequency response function. In this study, the authors conceived, developed, and tested a probe which combines the concept of a fast-response aerodynamic pressure probe with that of a waveguide probe. Such a device exploits the benefits of having the sensor far from the harsh conditions while maintaining the capability to perform an accurate flow measurement.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference33 articles.

1. Time-Resolved Flow Measurements With Fast-Response Aerodynamic Probes in Turbomachines;Meas. Sci. Technol.,2000

2. Measurement Techniques for Unsteady Flows in Turbomachines;Exp. Fluids,2000

3. Brouckaert, J. F., Sievering, C. H., and Manna, M., 1998, “Development of a Fast Response 3-Hole Pressure Probe,” 14th Symposium on Measurements Tech for Transonic and Supersonic Flows in Cascades and Turbomachines, Limerick, Ireland, Sept. 2–4.

4. Humm, H. J., and Verdegaal, J., 1992, “Aerodynamic Design Criteria for Fast-Response Probes,” 11th Symposium on Measuring Techniques in Transonic and Supersonic Flow in Cascades and Turbomachines, Rhode Saint Genèse, Belgium.

5. Humm, H. J., Gizzi, W. P., and Gyarmathy, G., 1994, “Dynamic Response of Aerodynamic Probes in Fluctuating 3D Flows,” 12th Symposium on Measuring Techniques in Transonic and Supersonic Flow in Cascades and Turbomachines, Prague, Czech Republic, Sept. 12–12.http://citeseerx.ist.psu.edu/viewdoc/download?doi=10.1.1.40.4759&rep=rep1&type=pdf

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