The three-dimensional point-tracking (3DPT) measurement approach is used in conjunction with finite element (FE) method and modal expansion technique to predict full-field dynamic response on a rotating structure. A rotating three-bladed wind turbine rotor was subjected to different loading scenarios, and the displacement of optical targets located on the blades was measured using 3DPT. The out-of-plane measured displacement of the targets was expanded and applied to the FE model of the turbine to extract full-field strain on the turbine. The sensitivity of the proposed approach to the number of optical targets was also studied in this paper. The results show that the dynamic strain on a structure can be extracted with a very limited set of measurement points (optical targets) placed on appropriate locations on the blades. It was shown that the proposed technique is able to extract dynamic strain all over the entire structure, even inside the structure beyond the line of sight of the measurement system. Because the method is based on a noncontacting measurement approach, it can be readily applied to a variety of structures having different boundary conditions.
Skip Nav Destination
Article navigation
June 2016
Research-Article
A Noncontacting Approach for Full-Field Strain Monitoring of Rotating Structures
Javad Baqersad,
Javad Baqersad
Mechanical Engineering Department,
Kettering University,
1700 University Avenue,
Flint, MI 48504
e-mail: Jbaqersad@kettering.edu
Kettering University,
1700 University Avenue,
Flint, MI 48504
e-mail: Jbaqersad@kettering.edu
Search for other works by this author on:
Peyman Poozesh,
Peyman Poozesh
Mechanical Engineering Department,
University of Massachusetts Lowell,
1 University Avenue,
Lowell, MA 01854
e-mail: Peyman_Poozesh@student.uml.edu
University of Massachusetts Lowell,
1 University Avenue,
Lowell, MA 01854
e-mail: Peyman_Poozesh@student.uml.edu
Search for other works by this author on:
Christopher Niezrecki,
Christopher Niezrecki
Mechanical Engineering Department,
University of Massachusetts Lowell,
1 University Avenue,
Lowell, MA 01854
e-mail: Christopher_Niezrecki@uml.edu
University of Massachusetts Lowell,
1 University Avenue,
Lowell, MA 01854
e-mail: Christopher_Niezrecki@uml.edu
Search for other works by this author on:
Peter Avitabile
Peter Avitabile
Mechanical Engineering Department,
University of Massachusetts Lowell,
1 University Avenue,
Lowell, MA 01854
e-mail: Peter_Avitabile@uml.edu
University of Massachusetts Lowell,
1 University Avenue,
Lowell, MA 01854
e-mail: Peter_Avitabile@uml.edu
Search for other works by this author on:
Javad Baqersad
Mechanical Engineering Department,
Kettering University,
1700 University Avenue,
Flint, MI 48504
e-mail: Jbaqersad@kettering.edu
Kettering University,
1700 University Avenue,
Flint, MI 48504
e-mail: Jbaqersad@kettering.edu
Peyman Poozesh
Mechanical Engineering Department,
University of Massachusetts Lowell,
1 University Avenue,
Lowell, MA 01854
e-mail: Peyman_Poozesh@student.uml.edu
University of Massachusetts Lowell,
1 University Avenue,
Lowell, MA 01854
e-mail: Peyman_Poozesh@student.uml.edu
Christopher Niezrecki
Mechanical Engineering Department,
University of Massachusetts Lowell,
1 University Avenue,
Lowell, MA 01854
e-mail: Christopher_Niezrecki@uml.edu
University of Massachusetts Lowell,
1 University Avenue,
Lowell, MA 01854
e-mail: Christopher_Niezrecki@uml.edu
Peter Avitabile
Mechanical Engineering Department,
University of Massachusetts Lowell,
1 University Avenue,
Lowell, MA 01854
e-mail: Peter_Avitabile@uml.edu
University of Massachusetts Lowell,
1 University Avenue,
Lowell, MA 01854
e-mail: Peter_Avitabile@uml.edu
Contributed by the Technical Committee on Vibration and Sound of ASME for publication in the JOURNAL OF VIBRATION AND ACOUSTICS. Manuscript received April 12, 2015; final manuscript received October 31, 2015; published online April 7, 2016. Assoc. Editor: John Yu.
J. Vib. Acoust. Jun 2016, 138(3): 031008 (9 pages)
Published Online: April 7, 2016
Article history
Received:
April 12, 2015
Revised:
October 31, 2015
Citation
Baqersad, J., Poozesh, P., Niezrecki, C., and Avitabile, P. (April 7, 2016). "A Noncontacting Approach for Full-Field Strain Monitoring of Rotating Structures." ASME. J. Vib. Acoust. June 2016; 138(3): 031008. https://doi.org/10.1115/1.4032721
Download citation file:
Get Email Alerts
Designing Topological Acoustic Lattices via Electroacoustic Analogies
J. Vib. Acoust (October 2023)
On the Feasibility of Dynamic Substructuring for Hybrid Testing of Vibrating Structures
J. Vib. Acoust (August 2023)
Related Articles
Dynamics of Cricket Sound Production
J. Vib. Acoust (August,2015)
Highly Efficient Probabilistic Finite Element Model Updating Using Intelligent Inference With Incomplete Modal Information
J. Vib. Acoust (October,2016)
A Procedure for the Development of Control-Oriented Linear Models for Horizontal-Axis Large Wind Turbines
J. Dyn. Sys., Meas., Control (July,2007)
Floquet Modal Analysis of a Teetered-Rotor Wind Turbine
J. Sol. Energy Eng (November,2002)
Related Proceedings Papers
Related Chapters
Data Tabulations
Structural Shear Joints: Analyses, Properties and Design for Repeat Loading
Three-Dimensional Solid Modeling of Large Wind Turbine Blade Based on Wilson Theory
International Conference on Mechanical Engineering and Technology (ICMET-London 2011)
Control and Operational Performance
Closed-Cycle Gas Turbines: Operating Experience and Future Potential