Instabilities Everywhere! Hard Problems in Aero-Engines
Name
v001t41a001-gt2021-60864.pdf
Description
Published version
Size
9.28 MB
Format
Adobe PDF
Checksum (MD5)
bd04afe161e010163aba4975a82e43d4
Author(s)
Spakovszky, Zoltán S
Date Issued
2021
Journal
Volume 1: Aircraft Engine; Fans and Blowers; Marine; Wind Energy; Scholar Lecture
Publisher
ASME International
Citation
Spakovszky, Zoltán S. 2021. "Instabilities Everywhere! Hard Problems in Aero-Engines." Volume 1: Aircraft Engine; Fans and Blowers; Marine; Wind Energy; Scholar Lecture.
Version
Final published version
Abstract
Abstract
Many of the challenges that limited aero-engine operation in the 1950s, 60s, 70s and 80s were static in nature: hot components exceeding temperature margins, stresses in the high-speed rotating structure approaching safety limits, and turbomachinery aerodynamic efficiencies missing performance goals. Modeling tools have greatly improved since and have helped enhance jet engine design, largely due to better computers and improved simulations of the fluid flow and supporting structure. The situation is thus different today, where important problems encountered past the design and development phases are dynamic in nature. These can jeopardize engine certification and lead to major delays and increased program cost. A real challenge is the characterization of damping and the related dynamic behavior of rotating and stationary components and assemblies, and of the fluid-structure interactions and coupling. The theme of this lecture is instability in the broadest sense. A number of problems of technological interest in aero-engines are discussed with focus on dynamical system modeling and identification of the underlying mechanisms. Future perspectives on outstanding seminal problems and grand challenges are also given.
Many of the challenges that limited aero-engine operation in the 1950s, 60s, 70s and 80s were static in nature: hot components exceeding temperature margins, stresses in the high-speed rotating structure approaching safety limits, and turbomachinery aerodynamic efficiencies missing performance goals. Modeling tools have greatly improved since and have helped enhance jet engine design, largely due to better computers and improved simulations of the fluid flow and supporting structure. The situation is thus different today, where important problems encountered past the design and development phases are dynamic in nature. These can jeopardize engine certification and lead to major delays and increased program cost. A real challenge is the characterization of damping and the related dynamic behavior of rotating and stationary components and assemblies, and of the fluid-structure interactions and coupling. The theme of this lecture is instability in the broadest sense. A number of problems of technological interest in aero-engines are discussed with focus on dynamical system modeling and identification of the underlying mechanisms. Future perspectives on outstanding seminal problems and grand challenges are also given.
MIT Department
Massachusetts Institute of Technology. Department of Aeronautics and Astronautics
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Persistent DSpace Link
DOI of Published Version
https://doi.org/10.1115/GT2021-60864