Boundary layer state detection using piezoelectric sensors

被引:4
作者
Stuber, Vincent L. [1 ]
Kotsonis, Marios [1 ]
van der Zwaag, Sybrand [1 ]
机构
[1] Delft Univ Technol, Kluyverweg 1, NL-2629 HS Delft, Netherlands
关键词
piezoelectricity; laminar-to-turbulent transition; separation; wind tunnel experiments; particle image velocimetry; HOT-FILM SENSORS; TRANSITION DETECTION; DRAG REDUCTION; FLOW; SEPARATION; AIRFOIL; ENERGY; POINT;
D O I
10.1088/1361-665X/ac3900
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
Two piezoelectric series bimorph sensors were embedded below the skin of a NACA 0012 symmetrical airfoil to detect the local state of the boundary layer during wind tunnel testing. Small vanes piercing the airfoil skin were glued onto the bimorphs providing a mechanical coupling to the local mechanical force fluctuations imparted by the local unsteady boundary layer flow. The state of the boundary layer at the sensor sites was varied by changing the angle of attack. The objective of this work was to establish the ability of this sensor concept to accurately distinguish among typical boundary layer states such as attached laminar flow, turbulent flow and separated flow. The output of the sensor was compared to concurrent time-resolved particle image velocimetry measurements, which served as a validation technique. Using the developed sensor response envelope, a single data point time series of the piezo electrical signal was proven to be sufficient to accurately detect the boundary layer state on classical airfoils in the low Reynolds number regime. In projected future applications, single or arrays of bimorph sensors can be used to map the boundary layer of more complex or morphing shape airfoils. The fast response of the sensor can in principle be utilised in closed-loop flow control systems, aimed at drag reduction or lift enhancement.
引用
收藏
页数:12
相关论文
共 40 条
[1]   Drag reduction via turbulent boundary layer flow control [J].
Abbas, Adel ;
Bugeda, Gabriel ;
Ferrer, Esteban ;
Fu, Song ;
Periaux, Jacques ;
Pons-Prats, Jordi ;
Valero, Eusebio ;
Zheng, Yao .
SCIENCE CHINA-TECHNOLOGICAL SCIENCES, 2017, 60 (09) :1281-1290
[2]   Flowfield measurements over an airfoil during natural low-frequency oscillations near stall [J].
Broeren, AP ;
Bragg, MB .
AIAA JOURNAL, 1999, 37 (01) :130-132
[3]   Skin-friction drag reduction via robust reduced-order linear feedback control [J].
Cortelezzi, L ;
Lee, KH ;
Kim, J ;
Speyer, JL .
INTERNATIONAL JOURNAL OF COMPUTATIONAL FLUID DYNAMICS, 1998, 11 (1-2) :79-+
[4]   Flexible Piezoelectric Touch Sensor by Alignment of Lead-Free Alkaline Niobate Microcubes in PDMS [J].
Deutz, Daniella B. ;
Mascarenhas, Neola T. ;
Schelen, J. Ben J. ;
de Leeuw, Dago M. ;
van der Zwaag, Sybrand ;
Groen, Pim .
ADVANCED FUNCTIONAL MATERIALS, 2017, 27 (24)
[5]  
Deutz DB., 2017, FLEXIBLE PIEZOELECTR
[6]   Measurement uncertainty of IR thermographic flow visualization measurements for transition detection on wind turbines in operation [J].
Dollinger, C. ;
Sorg, M. ;
Balaresque, N. ;
Fischer, A. .
EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2018, 97 :279-289
[7]   Flow control: The future [J].
Gad-el-Hak, M .
JOURNAL OF AIRCRAFT, 2001, 38 (03) :402-418
[8]   Analysis of differential infrared thermography for boundary layer transition detection [J].
Gardner, A. D. ;
Eder, C. ;
Wolf, C. C. ;
Raffel, M. .
EXPERIMENTS IN FLUIDS, 2017, 58 (09)
[9]   Boundary layer transition determination for periodic and static flows using phase-averaged pressure data [J].
Gardner, A. D. ;
Richter, K. .
EXPERIMENTS IN FLUIDS, 2015, 56 (06)
[10]   High temperature gradient micro-sensors array for flow separation detection and control [J].
Ghouila-Houri, Cecile ;
Talbi, Abdelkrim ;
Viard, Romain ;
Gallas, Quentin ;
Garnier, Eric ;
Merlen, Alain ;
Pernod, Philippe .
SMART MATERIALS AND STRUCTURES, 2019, 28 (12)