Affiliation:
1. Irkutsk National Research Technical University
Abstract
The study aim was to develop a 3D model representing the aircraft air conditioning system with the purpose of performing a numerical experiment in an automated environment of engineering analysis. The completeness of this model was associated with the required result of the numerical experiment. During the experiment, we simulated conditions for the flow of aerodynamic processes in the vicinity of the louvre integrated into the fuselage skin at the point of communication between the air conditioning system and the external environment. Of particular interest was that part of the air conditioning system, which directly affects the louvre strength. The Siemens NX computer-aided design system was used to form a digital copy of the original. The toolkit of this system allows high-precision geometric models to be designed. As a result, a 3D-model was obtained applicable to simulate external and internal aerodynamical processes in the digital environment of engineering calculations for evaluating the strength parameters of the studied part. This model is a combination of geometric objects formed by a set of assembly units. In particular, such elements of the air conditioning system as the cooling turbine, radiator, and valve, are considered. In order to recreate the complex geometry of the original assembly parts of these units, an algorithm for selecting and performing typical operations of the Siemens NX system was developed and optimized for constructing correct 3D models. The constructed 3D model of the aircraft air conditioning system can be used when simulating external and internal aerodynamical processes affecting the louvre strength in the digital environment of engineering calculations. The proposed model allows users to study the structure of aircraft air conditioning systems.
Publisher
Irkutsk National Research Technical University
Reference20 articles.
1. Elovenko D. A., Mironenko V. V. Rational methods for CAD models editing at the stage of their preparation for the analysis in CAE systems. Vestnik Bajkal'skogo soyuza stipendiatov DAAD = Letter der DAAD - Stipendiaten. 2013;1:26-34. (In Russ.).
2. Strekoz A. V., Sidorenko V. V., Ledovskih I. V. Analysis of the stress-strain state (SSS) of ailerons from polymer composite materials (PCM) using the finite element method (FEM). Izvestiya Yuzhnogo federal'nogo universiteta. Tekhnicheskie nauki = Izvestiya SFedU. Engineering Sciences. 2019;6:122-133. (In Russ.). https://doi.org/10.23683/2311-3103-2019-6-122-133.
3. Pronin A. I., Shchelkunov Ye. B., Sultangareeva A. Ye., Latyshev K. A., Ivanenko A. A. Research and working out of the bracket part with CAD/CAE systems. Uchenye zapiski Komsomol'skogo-na-Amure gosudarstvennogo tehnicheskogo universiteta. Seriya: Nauki o prirode i tehnike = Scholarly Notes of Komsomolsk-na-Amure State Technical University. 2017;I-1(29):27-32. (In Russ.). https://doi.org/10.17084/2017.I-1(29).
4. Protasov A. V., Nikolaychuk O. A. Applying the finite-element method for evaluating the reliability of mechanical systems. Journal of Machinery Manufacture and Reliability. 2011;40(1):27-30. https://doi.org/10.3103/S105261881101016X.
5. Klochkov Y. V., Nikolaev A. P., Vakhnina O. V., Kiseleva T. A. Stress-strain analysis of a thin-shell part of fuselage using a triangular finite element with Lagrange multipliers. Russian Aeronautics. 2016;59(3):316-323. https://doi.org/10.3103/S1068799816030041.
Cited by
1 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献