Prospects of application of additive technologies to develop parts and components of gas turbine engines and ramjets

Abstract

The possibility of reducing the weight, simplifying the design, reducing the time and cost of development, production and operation are important advantages in the implementation of additive technologies (AT). The use of AT can significantly improve fuel efficiency, environmental and other characteristics of aircraft engines. The possibility of using AT in the production of various parts and components of engines is being currently investigated at CIAM. Examples of these developments, advantages of the use of AT and problems arising in the implementation of these technologies are presented in this article. Models of turbine blades with a highly efficient cooling system, in particular, with penetration cooling were designed and manufactured using optimization methods and taking into account the capabilities of AT. The possibilities of using AT for the manufacture of elements of molds for precision casting of gas turbine engine (GTE) blades of heat-resistant alloys and ceramic rods are shown. Elements of a two-zone front module of the low-emission combustion chamber of an advanced GTE are designed and manufactured using the AT method. Research of prospective branched tree channels of heat exchangers with mutually porous bodies that can be made only by AT methods and the use of which will make it possible to increase the efficiency of heat exchange in the case of lower weight, than that of the structures made by traditional technologies, is being carried out. The AT was used to manufacture complex elements of a ramjet engine. Fire tests of printed sections of the combustion chamber were carried out successfully. Cellular structures to be used in gas turbine engine parts with the aim of reducing their weight were developed. A hollow blade model with cellular-type core was made using AT. Tests of the designed cellular prototypes were carried out. The possibilities of reducing the mass of structural elements using cellular structures obtained by AT methods are shown. Research of hollow disks of turbines and other engine components produced with the aid of AT are carried out. Despite the fact that experimental studies of structural elements obtained by additive technologies have not been completed yet, these works show the prospects for the use of AT in the development of a wide range of engine parts and components.

About the authors

L. A. Magerramova

Central Institute of Aviation Motors

Author for correspondence.
Email: info@ciam.ru

Doctor of Science (Engineering)
Senior Research Officer, Head of Sector, Research Center “Dynamics, strength, reliability”

Russian Federation

Yu. A. Nozhnitsky

Central Institute of Aviation Motors

Email: nozhnitsky@ciam.ru

Doctor of Science (Engineering), Professor
Director of the Research Center “Dynamics, strength, reliability”

Russian Federation

S. A. Volkov

Central Institute of Aviation Motors

Email: info@ciam.ru

Head of the Department of Combustion Chambers

Russian Federation

M. E. Volkov

Central Institute of Aviation Motors

Email: info@ciam.ru

Head of the Complex of Testing Machines, Research Center “Dynamics, strength, reliability”

Russian Federation

V. Zh. Chepurnov

Central Institute of Aviation Motors

Email: info@ciam.ru

Researcher, Department of Gas turbines

Russian Federation

S. V. Belov

Central Institute of Aviation Motors

Email: info@ciam.ru

Head of Sector, Department of Gas Turbines

Russian Federation

I. S. Verbanov

Central Institute of Aviation Motors

Email: info@ciam.ru

Engineer, Department of Aircraft Engines

Russian Federation

S. V. Zaikin

Central Institute of Aviation Motors

Email: info@ciam.ru

Head of Design Bureau “Aerospace Engines”

Russian Federation

References

  1. Stimpson C.K., Snyder J.C., Thole K.A., Mongillo D. Scaling roughness effects on pressure loss and heat transfer of additively manufactured channels. Proceedings of ASME Turbo Expo 2016: Turbomachinery Technical Conference and Exposition (June, 13-17, 2016, Seoul, South Korea). V. 5B-2016. doi: 10.1115/GT2016-58093
  2. Stimpson C.K., Snyder J.C., Thole K.A., Mongillo D. Effectiveness measurements of additively manufactured film cooling holes. Proceedings of ASME Turbo Expo 2017: Turbomachinery Technical Conference and Exposition (June 26-30, 2017, Charlotte, North Carolina, USA). V. 5C-2017. doi: 10.1115/GT2017-64903
  3. Nazarkin R.M., Petrushin N.V., Rogalev A.M. The structure and phase characteristics of ZhS32-VI alloy manufactured by directional solidification, granular metallurgy and selective laser melting. Trudy VIAM. 2017. No. 2 (50). P. 11-17. doi: 10.18577/2307-6046-2017-0-2-2-2 (In Russ.)
  4. Magerramova L.A., Nozhnitsky Yu.A., Vasiliev B.Ye., Kinzbursky V.S. The use of additive technologies for production of advanced gas-turbine engine components. Technology of Light Alloys. 2015. No. 4. P. 7-13. (In Russ.)
  5. Magerramova L.A. Additivnye tekhnologii dlya izgotovleniya okhlazhdaemykh lopatok turbin dlya GTD. Sbornik tezisov nauchno-tekhnicheskogo kongressa po dvigatelestroeniyu (NTKD-2018). V. 2. Moscow: Vash Uspekh Publ., 2018. P. 194-197. (In Russ.)
  6. Magerramova L., Kratt E., Presniakov P. Application of powder metallurgy technologies for gas turbine engine wheel production. International Scholarly and Scientific Research & Innovation. 2017. V. 11, no. 9. P. 1560-1564.
  7. Subramaniam V., Dbouk T., Harion J.-L. Topology optimization of conductive heat experimental investigation. Applied Thermal Engineering. 2018. V. 131. P. 390-411. doi: 10.1016/j.applthermaleng.2017.12.026
  8. Verbanov I.S., Gulimovskij I.A. Sistema okhlazhdeniya mnogokonturnoy gazoturbinnoy ustanovki [Cooling system of a multi-circuit gas turbine unit]. Patent RF, no. 2680636, 2019. (Publ. 25.02.2019, bull. no. 6)
  9. Magerramova L.A., Svinaryva M.S., Siversky A.S., Volkov M.E. Cellular structures produced by additive technologies for GTE components. Technology of Light Alloys. 2017. No. 3. P. 26-37. (In Russ.)
  10. Magerramova L.A., Svinaryova M.S., Bortnikov A.D. Designing of light-weight cellular/lattice structures of GTE blades and their production by additive technologies. Technology of Light Alloys. 2017. No. 4. P. 20-31. (In Russ.)
  11. Magerramova L., Volkov M., Svinareva M., Siversky A. The use of additive technologies to create lightweight parts for gas turbine engine compressors. Proceeding ASME TurboExpo (July, 11-15, 2018, Oslo, Norway). V. 7A. doi: 10.1115/GT2016-75904
  12. Magerramova L., Volkov M., Afonin A., Svinareva M., Kalinin D. Application of light lattice structures for gas turbine engine fan blades. Proccedings of the 31st Congress of the International Council of the Aeronautical Sciences, ICAS 2018 (September, 09-14, 2018, Belo Horizonte, Brazil).

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