Method and system for improving strain gauge to blade tip timing correlation
The present disclosure is directed to a method and system to develop finite element (FE) models of as-manufactured turbomachinery blades using a combination of optical topography measurements, mesh morphing and strain gauge measurements. The method and system improves strain gauge to blade tip timing correlation using as-manufactured blade dimensions with finite element modeling.
1. A method comprising:
measuring an actual thickness of a blade with a laser probe at a first chord location and a first rotor speed;
comparing the as-measured thickness to an as-design thickness of the blade at the first chord location;
updating probe measurement location in a finite element model using the comparison of actual blade thickness to the as-designed thickness;
correlating a blade tip timing data with experimental strain gauge data using an as-designed blade stress model as a function of rotor speed;
using the finite element analysis model to transform the as-designed stress model to an as-manufactured blade stress model;
determining actual stress/deflection ratios for as-manufactured blades at the first chord location as a function of the rotor speed; and
using updated stress/deflection ratios derived from as-manufactured models and experimentally measured chord thickness to define an as-designed strain gauge to blade tip timing correlation.
2. The method of claim 1 , wherein the measuring includes comparing a laser measurement at a rising edge of the blade with a laser measurement at the falling edge of the blade to determine the actual width of the blade at the first chord location.
3. A method comprising repeating the steps of claim 1 at a second chord location.