1. Romanov, A.N., Fatigue failure criteria, Inzh. Zh. Sprav. Prilozh., 2007, no. 6, p. 35.
2. Nesterenko, G.I., Romanov, A.N., and Filimonova, N.I., Experimental substantiation of a single criterion for fatigue failure of an aluminum alloy at the stage of cracking, in Rezultaty fundamental’nykh issledovanii v prikladnykh zadachakh aviastroeniya (The Results of Basic Research in Applied Problems of the Aircraft Industry, Collection of Articles), Moscow: Nauka, 2016, p. 407.
3. Romanov, A.N., Nesterenko, G.I., and Filimonova, N.I., Damage accumulation under variable loading of cyclically hardening material at the stages of formation and development of cracks, J. Mach. Manuf. Reliab., 2018, vol. 47, no. 5, p. 414.
4. Siryagin, A.P., Smiryagina, N.A., and Belova, A.V., Promyshlennye tsvetnye metally i splavy. Spravochnik (Industrial Non-Ferrous Metals and Alloys, The Handbook), Moscow: Metallurgiya, 1974.
5. Fu X., Zhang J., and Lin J., Study on the fatigue life and damage accumulation of a compressor blade based on a modified nonlinear damage model, Fatigue & Fracture of Engineering Materials & Structures, 2018, vol. 41, no. 5, p. 1077.