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Static and fatigue testing using the same full-scale transport aircraft structure

https://doi.org/10.26896/1028-6861-2020-86-12-54-63

Abstract

The entire cycle of strength tests of the aircraft structure requires large expenditures of time and effort attributed to the manufacture of two full-size aircraft structures and two test rigs. The pace of development of modern aviation technology dictates strict requirements for timing and quality of testing, which allows us to ensure competitiveness in the world aircraft market. Therefore, when conducting a full cycle tests, shortening of the testing period becomes of particular importance. We consider a novel approach to strength testing of a full-scale transport aircraft structure which consists in static and fatigue tests carried out on the same object. The developed approach was tried out when testing the full-scale wing structure of a transport aircraft. The tests were carried out on a set-up that allowed reproducing both cases of static loading and variable loads of flight cycles. At the first stage, the static strength was proved by the results of finite-element calculation of the stress state of the structure at ultimate loads using a model verified by the strain measurements of one of the wing consoles under limit loads, as well as by testing typical and critical airframe elements. Samples of full-scale panels were additionally tested for buckling to confirm the load capacity of the upper wing panels. Fatigue tests were carried out in the time span of two design service life. The obtained results showed the possibility of conducting both static and fatigue tests using one and the same full-scale aircraft structure.

About the Authors

K. S. Shcherban
Central Aerohydrodynamic Institute
Russian Federation

Konstantin S. Shcherban

1, Zhukovskogo ul., Zhukovsky, Moscow obl., 140180



A. A. Surnachev
Central Aerohydrodynamic Institute
Russian Federation

Alexander A. Surnachev

1, Zhukovskogo ul., Zhukovsky, Moscow obl., 140180



S. M. Naumov
Central Aerohydrodynamic Institute
Russian Federation

Sergey M. Naumov

1, Zhukovskogo ul., Zhukovsky, Moscow obl., 140180



A. Ya. Sterlin
Central Aerohydrodynamic Institute
Russian Federation

Andrey Ya. Sterlin

1, Zhukovskogo ul., Zhukovsky, Moscow obl., 140180



A. G. Kalish
Ilyushin Aviation Complex
Russian Federation

Alexander G. Kalish

45«G», Leningradskii pr., Moscow, 125190



O. V. Chuvilin
Ilyushin Aviation Complex
Russian Federation

Oleg V. Chuvilin

45«G», Leningradskii pr., Moscow, 125190



References

1. Mokhov V. F. Methods for preparing and carrying static tests of full-scale aircraft structures / Trudy TsAGI. 1995. Issue 2615. — 87 p. [in Russian].

2. Baranov A. N., Belozerov A. G., Ilyin Yu. S., et al. Static strength tests of supersonic aircraft. — Moscow: Mashinostroenie, 1974. — 344 p. [in Russian].

3. Shcherban K. S. Service life tests of full-scale aircraft structures. — Moscow: Fizmatlit, 2009. — 236 p. [in Russian].

4. Konovalov V. V., Shcherban K. S., Voronkov R. V. Actual problems of fatique testing of full-scale structures / Trudy TsAGI. 2018. Issue 2782. P. 26 [in Russian].

5. Bogatyrev M. A., Zaitsev M. D., Rogozhkin P. A., et al. Monitoring the loading of a transport aircraft wing during fatigue tests using fiber-optic sensors / Trudy TsAGI. 2018. Issue 2782. P. 86 [in Russian].

6. Zhelonkin S. V., Surnachev A. A., Shcherban K. S., et al. Loads and stress-strain investigation of the transport aircraft landing gear during fatigue tests / Trudy TsAGI. 2018. Issue 2782. P. 107. [in Russian].

7. Rudzey G. F. Accelerated fatigue testing of materials and structures of aircraft / Aviats. Promy’shl. 2011. N 2. P. 47 – 49 [in Russian].

8. Sterlin A. Ya., Svirsky Yu. A. The principle of controlling the loading of structures during fatigue tests using pseudo-random programs / Aviats. Promy’shl. 2013. N 4. P. 46 – 48 [in Russian].

9. Sterlin A. Ya. Optimization of loading speed during fatique tests / Zavod. Lab. Diagn. Mater. 2016. Vol. 82. N 6. P. 60 – 62 [in Russian].

10. Sterlin A. Ya. Method for correcting the loading speed during cyclic strength tests / Zavod. Lab. Diagn. Mater. 2015. Vol. 81. N 8. P. 47 – 49 [in Russian].

11. Paramonov Yu. V. Reliability, damage-tolerance and service life of aircraft structure. — Riga: RIO RKIIGA, 1980. — 79 p. [in Russian].

12. Zakharenkova A. Yu., Konovalov V. V., Kulikov S. V., et al. Full-scale fatigue and residual strength tests of the composite wing box of a passenger aircraft / Uch. Zap. TsAGI. 2019. N 3. Vol. L. P. 61 – 73 [in Russian].

13. Harris L. The challenges in AIRBUS to replace Full Scale Aircraft Fatigue Testing by Predictive Virtual Testing / Proc. ICAF. 2019. P. 1265 – 1270.

14. Wong A. Blueprint TITANS: A Roadmap towards the Virtual Fatigue Test trough a Collaborative International Effort/ Proc. ICAF. 2019. P. 1447 – 1454.

15. Dixon B., Burchile M., Mein B., Stehlin T., Rigoli R. Progress on the Pathway to a Virtual Fatigue tests / Proc. ICAF. 2019. P. 816 – 830.

16. Xu Ze. Digital Simulation of Full Scale Static Test of Aircraft / Chin. J. Aeronautics. 2005. Vol. 18. N 2. P. 138 – 141.

17. Dzyuba A. S., Dudakov Yu. I., Levchenko E. A., et al. Methodology for applying modern computational methods to the static test of aircraft structures / Trudy TsAGI. 2018. Issue 2782. P. 7 [in Russian].


Review

For citations:


Shcherban K.S., Surnachev A.A., Naumov S.M., Sterlin A.Ya., Kalish A.G., Chuvilin O.V. Static and fatigue testing using the same full-scale transport aircraft structure. Industrial laboratory. Diagnostics of materials. 2020;86(12):54-63. (In Russ.) https://doi.org/10.26896/1028-6861-2020-86-12-54-63

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ISSN 1028-6861 (Print)
ISSN 2588-0187 (Online)