Wear and Erosion Resistance of Aircraft Engine Composite Elements in a Gas Abrasive Flow

被引:0
作者
Zinin A.V. [1 ]
Dobrovol’skii S.V. [1 ]
Lebedev A.K. [1 ]
Krupennikov V.A. [2 ]
Shevyakov A.O. [1 ]
机构
[1] Moscow Aviation Institute, National Research University, Volokolamskoe sh. 4, Moscow
[2] PAO United Engine Corporation Saturn, ul. Lenina 163, Rybinsk
来源
Russian Aeronautics | 2019年 / 62卷 / 04期
关键词
ablation rate; composite materials; damage; erosion; gas abrasive flow; wear;
D O I
10.3103/S1068799819040226
中图分类号
学科分类号
摘要
The results of the experimental study of the structural carbon fiber reinforced plastic (CFRP) erosion resistance applied to gas turbine engine structural elements are presented. A methodology for characterizing the process of gas abrasive wear of thin-walled structures made of polymer composite materials has been developed. The factors are found that determine the level of the abrasive effect of dust and gas mixture formed at the take-off and landing. A criterion for material erosion resistance assessment is presented. © 2019, Allerton Press, Inc.
引用
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页码:696 / 703
页数:7
相关论文
共 23 条
[1]  
Boguslaev V.A., Muravchenko F.M., Zhemanyuk P.D., Kolesnikov V.I., Technologicheskoe obespechenie ekspluatatshionnykh charakteristik detalei GTD. Lopatki kompressora i ventilyatora. Chast’ 1, (2003)
[2]  
Boitsov B.V., Gavva L.M., Endogur A.I., Firsanov V.V., Stress-Strain State and Buckling Problems of Structurally-Anisotropic Aircraft Panels Made of Composite Materials in View of Production Technology, Izv. Vuz. Av. Tekhnika, 61, 4, pp. 20-27, (2018)
[3]  
Karimbaev T.D., Nozhnitskii Y.A., Gundarov V.I., Rysin L.S., Lyuttsai V.G., Tarasov I.A., Fracture and Wear of Composite Materials in Interaction with a Stream of Abrasive Particles, Mekhanika Kompozitnykh Materialov, 16, 2, pp. 235-240, (1980)
[4]  
Erasov V.S., Kotova E.A., Erosion Resistance of Aviation Materials to the Effects of Solid (Dust) Particles, Aviatshionnye Materialy I Technologii, 3, pp. 30-36, (2011)
[5]  
Afanas'ev V.A., Agul'nik A.B., Monakhova V.P., Tushavina O.V., Study of the Porous Heat-Shielding Material Properties under Conditions of Abrupt Change in Pressure, Pressure Surge, Izv. Vuz. Av. Tekhnika, 60, 4, pp. 158-161, (2017)
[6]  
Dalili N., Edrisy A., Carriveau R., A Review of Surface Engineering Issues Critical to Wind Turbine Performance, Renewable and Sustainable Energy Reviews, 13, 2, pp. 428-438, (2009)
[7]  
Harsha A.P., Tewari U.S., Venkataraman B., Solid Particle Erosion Behavior of Various Polyaryletherketone Composites, Wear, 254, pp. 453-464, (2003)
[8]  
Patnaik A., Satapathy A., Mahapatra S.S., Dash R.R., Parametric Optimization of Erosion Wear of Polyester-GF-Alumina Hybrid Composites using the Taguchi Method, J. of Reinforced Plastics and Composites, 27, 10, pp. 1039-1058, (2008)
[9]  
Miyazaki N., Hamao T., Solid Particle Erosion of Thermoplastic Resins Reinforced by Short Fibers, J. of Composites Materials, 28, issue9, pp. 871-883, (1994)
[10]  
Gerasimov A.V., Pashkov S.V., Numerical Simulation of Fracture in Thin-Walled Structures by a Group of High-Velocity Elements, Izv. Vuz. Av. Tekhnika, 58, 2, pp. 3-9, (2015)