Computational Mechanics for Turbofan Engine Blade Containment Testing: Fan Case Design and Blade Impact Dynamics by Finite Element Simulations

Author:

Tuninetti Víctor1ORCID,Sepúlveda Héctor23

Affiliation:

1. Department of Mechanical Engineering, Universidad de La Frontera, Temuco 4811230, Chile

2. Master Program in Engineering Sciences, Universidad de La Frontera, Temuco 4811230, Chile

3. Department ArGEnCo-MSM, University of Liège, 4000 Liège, Belgium

Abstract

The harsh environment during airplane take-off and flights with complex operating conditions require a high dynamic and impact resistance capability of airplane engines. The design, development, and performance evaluation of new turbofan engines are generally performed through numerical simulations before a full-scale model or prototype experiment for certification. Simulations of fan blade containment tests can reduce trial–error testing and are currently the most convenient and inexpensive alternative for design; however, certification failure is always a risk if the calibration of material models is not correctly applied. This work presents a three-dimensional computational model of a turbofan for designing new engines that meet the certification requirements under the blade containment test. Two calibrated Johnson–Cook plasticity and damage laws for Ti64 are assessed in a simulation of a turbofan blade containment test, demonstrating the ability of the models to be used in the safe design of aircraft engine components subjected to dynamic impact loads with large deformations and adequate damage tolerance.

Publisher

MDPI AG

Reference60 articles.

1. Nasr, M., and Moffat, T. (2009, January 11–13). A Design Methodology for Fan Blade-off Based on Structural Failure. Proceedings of the 19 Conference ISABE, Montreal, QC, Canada.

2. Blade containment evaluation of civil aircraft engines;Yang;Chin. J. Aeronaut.,2013

3. Containment of soft wall casing wrapped with Kevlar fabric;He;Chin. J. Aeronaut.,2019

4. CEBs with GRC: Fabrication, characterization, modeling, and correlation with microstructural fracture features;Valenzuela;Mater. Today Commun.,2023

5. Implementation of a modified Graham-Walles viscosity function within a Chaboche viscoplastic constitutive model;Morch;Comput. Math. Appl.,2024

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