A Comparative Study of a Hybrid Experimental–Statistical Energy Analysis Model with Advanced Transfer Path Analysis for Analyzing Interior Noise of a Tiltrotor Aircraft
Abstract
:1. Introduction
2. Theory
2.1. Advanced Transfer Path Analysis Method (ATPA)
2.2. Statistical Energy Analysis (SEA)
3. Methodology
3.1. ATPA
3.1.1. Area of Study
3.1.2. Relevant Structural Linking Points
3.1.3. List of Subsystems and Targets
- Interior panels: The list of panel subsystems is composed of different elements inside the study area, that is, the pressurized cabin of the aircraft. On one side, individual elements such as windows or doors are considered as single subsystems. On the other side, larger areas such as the floor or the ceiling are divided into smaller areas, each one of them being a subsystem, represented with an accelerometer at a certain location within the area, in the normal direction to the panel.
- Structural subsystems: The definition of the structural points is based on the study of relevant structural points. From the structural connections, the essential ones are the wing–fuselage connection points, and they are instrumented with a triaxial accelerometer, explained in Section 3.2.2.
- Target 1: The pilot seat, at ear height.
- Target 2: A passenger seat, at ear height.
3.1.4. ATPA Test Description
- Subsystems: One accelerometer per subsystem is required.
- Targets: One microphone per target is required.
- Static test:
- 2.
- Dynamic test:
3.2. SEA Model
3.2.1. Mesh Elements and Subsystem Definition
3.2.2. Boundary Conditions
- The frequency response functions (FRFs) at the linking points. These data are provided during experimental measurements by impacting with an instrumented hammer the linking points between the wings and fuselage.is the accelerance FRFs, is the acceleration, and is the impact force.
- The data on accelerations in operating conditions are measured at the same structural points as during the operational conditions.
3.2.3. Mechanical Properties
3.2.4. Extended Solution
4. Results and Discussions
4.1. Operational Force
4.2. Results of ATPA
4.3. Results of SEA vs. ATPA
4.4. Extended Solution
4.5. Effect of Acoustic Damping on the Interior Noise
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
Angular frequency | |
Global transfer matrix | |
, | Signals at nodes i and j |
Direct transfer matrix | |
Direct transfer function from subsystem to target | |
Pressure at the target point T | |
Direct field’s pressure at target point T | |
Noise contribution of subsystem at the target point T | |
Acceleration in subsystem | |
Synthesized acceleration in panel | |
Synthesized pressure at target due to structural excitation of the panel i | |
Input power of the subsystem i, in SEA analysis | |
Dissipated power within the subsystem i | |
Internal damping loss factor of the subsystem i | |
Transfer of power between subsystems i and j | |
, | Total energy of subsystems i and j |
, | The modal density of subsystem and |
Accelerance frequency response function (FRF) | |
Acceleration | |
Impact force |
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Sohrabi, S.; Segura Torres, A.; Cierco Molins, E.; Perazzolo, A.; Bizzarro, G.; Rodríguez Sorribes, P.V. A Comparative Study of a Hybrid Experimental–Statistical Energy Analysis Model with Advanced Transfer Path Analysis for Analyzing Interior Noise of a Tiltrotor Aircraft. Appl. Sci. 2023, 13, 12128. https://doi.org/10.3390/app132212128
Sohrabi S, Segura Torres A, Cierco Molins E, Perazzolo A, Bizzarro G, Rodríguez Sorribes PV. A Comparative Study of a Hybrid Experimental–Statistical Energy Analysis Model with Advanced Transfer Path Analysis for Analyzing Interior Noise of a Tiltrotor Aircraft. Applied Sciences. 2023; 13(22):12128. https://doi.org/10.3390/app132212128
Chicago/Turabian StyleSohrabi, Shahin, Amadeu Segura Torres, Ester Cierco Molins, Alessandro Perazzolo, Giuseppe Bizzarro, and Pere Vicenç Rodríguez Sorribes. 2023. "A Comparative Study of a Hybrid Experimental–Statistical Energy Analysis Model with Advanced Transfer Path Analysis for Analyzing Interior Noise of a Tiltrotor Aircraft" Applied Sciences 13, no. 22: 12128. https://doi.org/10.3390/app132212128
APA StyleSohrabi, S., Segura Torres, A., Cierco Molins, E., Perazzolo, A., Bizzarro, G., & Rodríguez Sorribes, P. V. (2023). A Comparative Study of a Hybrid Experimental–Statistical Energy Analysis Model with Advanced Transfer Path Analysis for Analyzing Interior Noise of a Tiltrotor Aircraft. Applied Sciences, 13(22), 12128. https://doi.org/10.3390/app132212128