Title :
Thermal Modal Analysis of Wing Considering Aerodynamic Heating
Author :
Hao Liu ; Xiaodong Li ; Fan Liu
Author_Institution :
Northwestern Polytech. Univ., Xi´an, China
Abstract :
The vehicles will suffer strong aerodynamic heating at high speed, which will generate high temperature and large temperature gradients on the structure of the vehicles. There are two problems will be introduced in modal analysis in the thermal environment caused by aerodynamic heating, which will change the stiffness and stiffness distribution of the structure. The main work of this paper is given as follows. Firstly, a new method, which makes the aero thermodynamics and heat transfer coupled, is used to calculate the temperature distributions at every time in the process of aerodynamic heating. Secondly, the finite element method is employed to compute the modal frequencies and shapes at every condition of temperature distribution. Finally, the changes of the temperature distributions and the modal frequencies and shapes with every time in the process of aerodynamic heating are obtained. Based on the analysis and investigation of the simulation results, the influence of the transient thermal environment on structure modal frequency and shape is determined. Furthermore, the investigation of wing structure modal analysis considering aerodynamic heating is an important basis of aerothermoelastic simulation.
Keywords :
aerodynamics; aerospace components; aircraft; elasticity; finite element analysis; heat transfer; heating; modal analysis; temperature distribution; thermal analysis; thermodynamics; aerodynamic heating; aerothermodynamics; aerothermoelastic simulation; finite element method; heat transfer; modal frequencies; structure modal frequency; structure stiffness distribution; temperature distribution; temperature distributions; temperature gradients; thermal environment; thermal modal analysis; transient thermal environment; vehicle structure; wing structure modal analysis; Aerodynamics; Heat transfer; Heating; Shape; Thermal analysis; Thermal stresses; Transient analysis; Aerodynamic heating; Reference temperature (enthalpy) method; Thermal modal analysis; Thermo-structure coupling; Transient temperature field;
Conference_Titel :
Computational Intelligence and Design (ISCID), 2013 Sixth International Symposium on
Conference_Location :
Hangzhou
DOI :
10.1109/ISCID.2013.206