Preview

Izvestiya. Ferrous Metallurgy

Advanced search

AERODYNAMICS OF JETS INTERACTING WITH A FLAT SURFACE

https://doi.org/10.17073/0368-0797-2019-4-263-269

Abstract

In this paper, the development features of a single free jet of hightemperature nitrogen interacting with a flat surface were studied. Calculation of the heat exchange process during heating by the attacking jets is very difficult to implement analytically due to complexity of the gas-dynamic processes occurring both in a single jet and in a system of jets interacting with the metal. The computational difficulties are aggravated by the fact that when interacting with the surface the jet as such disappears. The flat (fan) flow interacts with the surface: form, aerodynamic properties and thermal state of the flow strongly differ from those of the original jet. The studies were conducted on the basis of numerical simulation in the FloEFD software and computing complex for multiphysical simulation based on solution of the equations of gas dynamics and heat transfer. The solved system of equations consisted of Navier-Stokes equations, equations of energy and continuity and was supplemented by k – ε turbulence model. A three-dimensional model was developed for simulation, the necessary properties, initial and boundary conditions were specified. In the study of aerodynamics of a single high-temperature jet interacting with the surface, the main defining values were: nitrogen flow rate from the nozzle U0 , nitrogen temperature T, internal diameter of the nozzle d0 , distance from the nozzle section to the surface h, distance from the critical point (point of intersection of the jet axis with the surface) along the flow radius r. Data on the gas velocity decrease as the jet develops due to the loss of initial energy to engage the motionless surrounding gas in motion, is presented. The studies have shown that increase in the initial velocity of gas outflow brings the area of higher velocities closer to the surface both in the jet itself and in the fan jet. This factor contributes to heat transfer intensification. In addition, high speeds increase the total thickness of the fan flow and reduce the thickness of hydrodynamic boundary layer, which increases with distance from the critical point.

About the Authors

I. A. Pribytkov
National University of Science and Technology “MISIS” (MISIS)
Russian Federation

Cand. Sci. (Eng.), Professor of the Chair “EnergyEfcient and Resource­Saving Industrial Technologies”

Moscow



S. I. Kondrashenko
National University of Science and Technology “MISIS” (MISIS)
Russian Federation

Assistant of the Chair “Energy­Efcient and Resource­Saving Industrial Technologies”

Moscow



References

1. Astsaturov V.N., Krasnokutskii P.G., Berkovskaya P.S. Skorostnoi struinyi nagrev metalla [High-speed jet heating of metal]. Kiev: Tekhnika, 1984, 120 p. (In Russ.).

2. Abramovich G.N. Teoriya turbulentnykh strui [Theory of turbulent jet]. Moscow: EKOLIT, 2011, 720 p. (In Russ.).

3. Timoshpol’skii V.I., Trusova I.A., Ratnikov P.E. Possibilities of application of metal jet heating before rolling. Lit’e i metallurgiya. 2007, no. 2, pp. 63–66. (In Russ.).

4. Polat S., Huang B., Mujumdar A.S., Douglas W.J.M. Numerical flow and heat transfer under impinging jets. Annual Review of Numerical Fluid Mechanics and Heat Transfer. 1989, no. 2, pp. 157–197.

5. Astsaturov V.N. Intensifcation of thermal work of heating furnaces. In: Materialy 2­i mezhdunarodnoi konferentsii “Avtomatizirovannye pechnye agregaty i energosberegayushchie tekhnologii v metallurgii” [Coll. of Sci. Works of the Conf. “Automated Furnaces and Energy-Saving Technologies in Metallurgy”]. Moscow: MISiS, 2002, pp. 36–40. (In Russ.).

6. Cadena-Ramírez A., Favela-Contreras A., Dieck-Assad G. Modeling and simulation of furnace pulse fring improvements using fuzzy control. Simulation. 2017, vol. 93, no. 6, pp. 477–487.

7. Kurnosov V.V., Shul’ts L.A. High temperature nonoxidizing nondecarburizing heating of steel in combined fuel furnaces: problems and decisions. Izvestiya. Ferrous Metallurgy. 2012, no. 11, pp. 10–14. (In Russ.).

8. Vokhmyakov A.M., Kazyaev M.D., Kazyaev D.M. Investigation of convective heat transfer in a through furnace equipped with highspeed burners. Tsvetnye metally. 2011, no. 12, pp. 89–93. (In Russ.).

9. Pribytkov I.A. On the features of pulse-fast heating of thermally superheavy bodies. In: Materialy XVI mezhdunarodnoi konferentsii “Teplotekhnika i energetika v metallurgii”, NMetAU, g. Dnepropetrovsk, Ukraina [Materials of the XVI Int. Conf. “Heat and Power Engineering in Metallurgy”, NMetAU, Dnepropetrovsk, Ukraine]. Dnepropetrovsk: NMetAU, 2011, pp. 74–75. (In Russ.).

10. Pribytkov I.A. Calculation of metal thermal state at pulse-speed heating. Izvestiya. Ferrous Metallurgy.1995, no. 1, pp. 53–56. (In Russ.).

11. Pribytkov I.A. Energy-saving methods of metal heating based on the use of jets. In: Sb. nauchn. trudov konferentsii “Avtomatizirovannye pechnye agregaty i energosberegayushchie tekhnologii v metallurgii” [Coll. of Sci. Works of the Conf. “Automated Furnaces and Ener gy-Saving Technologies in Metallurgy”]. Moscow: MISiS, 2002, pp. 375–390. (In Russ.).

12. Kurnosov V.V., Vasil’ev V.M, Kondrashenko S.I. Investigation of the refractory kiln cooling system. In: Trudy IV Vserossiiskoi nauchno­prakticheskoi konferentsii “Teplotekhnika i informatika v obrazovanii, nauke i proizvodstve (TIM­2015)” (g. Ekaterinburg, 26­27 marta 2015 g.) [Proc. of the IV All-Russ. Sci. and Pract. Conf. “Heat Engineering and Computer Science in Education, Science and Production (TIM-2015)” (Ekaterinburg, March 26-27, 2015)]. Ekaterinburg: UrFU, 2015, pp. 68–71. (In Russ.).

13. Lisienko V.G., Shleimovich E.M. Improving the thermal characteristics of furnaces and the operating conditions of the lining by improving direct-flame-impingement methods for intensifying the heating of metal. Refractories and Industrial Ceramics. 2013, vol. 54, no. 3, pp. 188–195.

14. Hu L., Lv Y., Tang K., Richards G. An improved methodology for pulse combustion with programmable timing sequence used in reheating furnaces. ISIJ International. 2017, vol. 57, no. 12, pp. 2266–2268.

15. Bula Antonio J., Rahman Muhammad M., Leland John E. Numerical modeling of conjugate heat transfer during impingement of free liquid jet issuing from a slot nozzle. Numerical Heat Transfer, Part A: Applications. An International Journal of Computation and Methodology. 2000, vol. 38, no. 1, pp. 45–66.

16. Gardon R., Akfrat J. Heat transfer characteristics of impinging twodimensional air jets. Trans. ASME. J. Heat Transfer. 1966, no. 88, pp. 101–108.

17. Michalke A. On spatially growing disturbances in an inviscid shear layer. J. Fluid Mechanics. 1965, vol. 23, no. 3, pp. 521–544.

18. Liepmann D., Gharib M. The role of streamwise vorticity in the near-feld entrainment of round jets. J. Fluid Mechanics. 1992, vol. 245, pp. 643–668.

19. Liu Y.J., Li J.D., Misra R.D.K., Wang Z.D., Wang G.D. A numerical analysis of slab heating characteristics in a rolling type reheating furnace with pulse combustion. Applied Thermal Engineering. 2016, vol. 107, pp. 1304–1312.

20. Yue K., Cheng L., Liu H., Wang Y. Analysis of jet blast impact of embarked aircraft on deck takeoff zone. Aerospace Science and Technology. 2015, vol. 45, pp. 60–66.


Review

For citations:


Pribytkov I.A., Kondrashenko S.I. AERODYNAMICS OF JETS INTERACTING WITH A FLAT SURFACE. Izvestiya. Ferrous Metallurgy. 2019;62(4):263-269. (In Russ.) https://doi.org/10.17073/0368-0797-2019-4-263-269

Views: 645


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 0368-0797 (Print)
ISSN 2410-2091 (Online)