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Types of Pipeline Connections with Shape Memory Properties

  • NEW TECHNOLOGIES IN MECHANICAL ENGINEERING
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Abstract

An overview of modern methods for connecting pipelines, analysis of manufacturing processes, and their reliability is presented. Different types of thermomechanical connections (TMC), their properties, and applications are examined.

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REFERENCES

  1. Antonyuk, V.E., Korolev, V.A., and Basheev, S.M., Spravochnik konstruktora po raschetu i proektirovaniyu stanochnykh prisposoblenii (Reference Book of Design Engineer on Analysis and Design of Machine Accessories), Minsk: Belarus, 1969.

    Google Scholar 

  2. Baturin, A.T., Detali mashin (Machine Elements), Moscow: Mashinostroenie, 1958.

  3. Glazunov, S.T., et al., Nitinol is the alloy with shape memory, Aviats. Promyshl., 1975, no. 9, p. 95.

  4. Evstigneev, M.I., Morozov, I.A., Podzei, A.V., et al., Izgotovlenie osnovnykh detalei aviadvigatelei (Manufacture of Basic Elements of Aircraft Engines), Moscow: Mashinostroenie, 1972.

  5. Lezhin, S.P. and Ignatovskii, V.P., Strength of aircraft pipelines, Materialy nauchno-tekhnicheskoi konferentsii KuAI. 4.2 (Proc. Sci.-Tech. Conf. of Kuibyshevskogo Aviatsionnogo Inst.), Kuibyshev, 1970, p. 44.

  6. Likhachev, V.A. and Petrova, N.N., Strukturnyi mekhanizm nakopleniya deformatsii pri martensitnom prevrashchenii v TiNi (Structural Mechanism of Accumulation of Strains at Martensitic Transformation in TiNi), Leningrad, 1984.

    Google Scholar 

  7. Lotkov, A.I. and Grishkov, V.N., Titanium nickelide: Crystal structure and phase transformations, Izv. Vyssh. Uchebn. Zaved., Fiz., 1985, no. 5, pp. 68–87.

  8. Nickel-Titanium Shape-Memory Alloys Kiesi Abe, Special Issue of Tokyo Filial of Special Metals Company Koge Rea Metaru, 1983.

  9. Sapozhnikov, V.M. and Lagosyuk, G.S., Prochnost’ i ispytaniya truboprovodov gidrosistem samoletov i vertoletov (Strength and Testing of Pipelines of Aircraft Hydraulic Systems), Moscow: Mashinostroenie, 1973.

  10. Sapozhnikov, V.M., Montazh i ispytaniya gidravlicheskikh i pnevmaticheskikh sistem letatel’nykh apparatov (Mounting and Testing of Hydraulic and Pneumatic Systems of Aerial Vehicles), Moscow: Mashinostroenie, 1979.

  11. Sapozhnikov, V.M. and Komarov, A.N., Truboprovody i soedineniya dlya gidrosistem (Pipelines and Connections for Hydraulic Systems), Moscow: Mashinostroenie, 1967.

  12. Stebner, A.P., Bigelow, G.S., Yang, J., Shukla, D.P., Saghaian, S.M., Rogers, R., Garg, A., Karaca, H.E., Chumlyakov, Y., Bhattacharya, K., and Noebe, R.D., Transformation strains and temperatures of a nickel-titanium-hafnium high temperature shape memory alloy, Acta Mater., 2014, vol. 76, pp. 40–53.  https://doi.org/10.1016/j.actamat.2014.04.071

    Article  Google Scholar 

  13. Wu, S.K. and Chang, Y.C., Thermal cycling effect on transformation temperatures of different transformation sequences in tini-based shape memory alloys, Materials, 2019, vol. 12, no. 16, p. 2512.  https://doi.org/10.3390/ma12162512

    Article  Google Scholar 

  14. Feodos’ev, V.I., Soprotivlenie materialov (Strength of Materials), Moscow: Nauka, 1979, 8th ed.

  15. Khas’yanova, D.U., Cand. (Eng.) Sci. Dissertation, Moscow: Moscow State Univ. of Instrument Engineering and Computer Science, 2012.

  16. Lotkov, A., Grishkov, V., Zhapova, D., Timkin, V., Baturin, A., and Kashin, O., Superelasticity and shape memory effect after warm abc-pressing of TiNi-based alloy, Mater. Today Proc., 2017, vol. 4, no. 3, pp. 4814–4818.

    Article  Google Scholar 

  17. Khachin, V.N., et al., Structural transformations, physical properties and shape memory effects in titanium nickelide and alloys on its basis, Fiz. Met. Metalloved., 1978, no. 6, p. 98.

  18. Shishkin, S.V. and Makhutov, N.A., Raschet i proektirovanie silovykh konstruktsii na splavakh s effektom pamyati formy (Analysis and Design of Load-Bearing Structures on the Basis of Shape-Memory Alloys), Moscow: NITs, 2007.

  19. Chernov, D.B. and Paperskii, A.P., Theoretical foundations of applying alloys with thermomechanical shape memory in fastening and joint standard structures, Aviats. Promyshl., 1978, no. 6, p. 56.

  20. Chernov, D.B., Printsipy konstruktsionnogo primeneniya materialov s termomekhanicheskoi pamyat’yu (Principles of Structural Application of Materials with Thermomechanical Shape Memory), Moscow: Nauchno-Issled. Inst. Standartizatsii Unifikatsii, 1984.

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Correspondence to U. Kh. Ugurchiev.

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Translated by N. Bogacheva

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Ugurchiev, U.K., Novikova, N.N. Types of Pipeline Connections with Shape Memory Properties. J. Mach. Manuf. Reliab. 51, 707–716 (2022). https://doi.org/10.3103/S1052618822070172

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  • DOI: https://doi.org/10.3103/S1052618822070172

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