Skip to main content
Log in

Simulation of Thermal Water Deaeration Based on a Matrix Approach to the Design of Heat-and-Mass Exchangers

  • WATER TREATMENT AND WATER CHEMISTRY
  • Published:
Thermal Engineering Aims and scope Submit manuscript

Abstract

A matrix approach to the calculation of heat-and-mass exchangers is used to develop mathematical models of heat-and-mass transfer between water and steam and of dissolved-oxygen desorption from water in jet- or bubbling-type deaeration elements. The area of interfacial surface in the considered elements is determined using well-known methods for calculating hydrodynamic characteristics adapted on a case by case basis considering other influencing factors. The results of the experimental investigation into water deaeration in standard DA-300m and DSA-300 deaerators performed with water sampling from internal elements were used for identification models of heat-and-mass transfer and desorption of dissolved oxygen and development of their empirical support in the form of dimensionless equations for prediction of heat-and-mass transfer coefficients averaged over the interfacial area in an element. Statistical analysis methods were used to find the accuracy characteristics for the derived closed mathematical description of thermal water deaeration in the deaeration elements of interest. The proposed matrix approach to the calculation of heat-and-mass exchangers by creation of a mathematical model of individual deaeration elements was used to construct mathematical models for differently designed deaerators intended for practical important applications. The developed models were used in setting the operating conditions and improving the design of industrial deaerators. The investigations have revealed that the developed mathematical models, together with the empirical correlations as applicable, enable us to determine with an acceptable accuracy the efficiency of water deaeration in designing new or operating existing deaeration units at thermal power stations (TPS) and industrial plants.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Fig. 1.

Similar content being viewed by others

REFERENCES

  1. V. I. Sharapov and D. V. Tsyura, Thermal Deaerators (Ul’yan. Gos. Tekh. Univ., Ul’yanovsk, 2003) [in Russian].

    Google Scholar 

  2. G. V. Ledukhovskii, V. N. Vinogradov, S. D. Gorshenin, and A. A. Korotkov, The Study of Technological Processes of Atmospheric Deaeration of Water (Ivanov. Gos. Energ. Univ., Ivanovo, 2016) [in Russian].

    Google Scholar 

  3. V. P. Zhukov and E. V. Barochkin, System Analysis of Power Heat and Mass Transfer Systems (Ivanov. Gos. Energ. Univ., Ivanovo, 2009) [in Russian].

    Google Scholar 

  4. E. V. Barochkin, V. P. Zhukov, and G. V. Ledukhovskii, “Generalized model of cascade heat exchangers with considering power transitions,” Izv. Vyssh. Uchebn. Zaved., Ser.: Khim. Khim. Tekhnol. 47 (3), 67–69 (2004).

    Google Scholar 

  5. A. V. Moshkarin, V. N. Vinogradov, G. V. Ledukhovskii, A. A. Korotkov, and A. E. Barochkin, “Experimental studies and simulation of technological processes for atmospheric jet-bubbling deaeration of water,” Therm. Eng. 57, 662–666 (2010).

    Article  Google Scholar 

  6. S. S. Kutateladze, Heat Transfer in Condensation and Boiling, 2nd ed. (Mashgiz, Moscow, 1952; State Sci. Tech. Publ. Lit. Mach., Moscow, 1952).

  7. I. I. Oliker and V. A. Permyakov, Thermal Deaeration of Water on Thermal Power Plants (Energiya, Leningrad, 1971) [in Russian].

    Google Scholar 

  8. A. G. Kasatkin, Basic Processes and Devices of Chemical Technology (Khimiya, Moscow, 1971) [in Russian].

    Google Scholar 

  9. N. R. Draper and H. Smith, Applied Regression Analysis, Vol. 1 (Wiley, New York, 1966; Finansy i Statistika, Moscow, 1986), Vol. 1.

  10. V. E. Gmurman, Fundamentals of Probability Theory and Mathematical Statistics (Vysshaya Shkola, Moscow, 2003; Iliffe, New York, 1969).

  11. S. S. Kutateladze and M. A. Styrikovich, Hydrodynamics of Gas-Liquid Systems (Energoizdat, Moscow, 1958) [in Russian].

    Google Scholar 

  12. S. D. Gorshenin, A. Yu. Nenaezdnikov, G. V. Ledukhovskii, V. P. Zhukov, and E. V. Barochkin, “Development of empirical support for a cell model of water deaeration in deaerator tanks with flooded bubbling stage,” Vestn. Ivanov. Gos. Energ. Univ., No. 5, 9–13 (2013).

Download references

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to G. V. Ledukhovsky.

Additional information

Translated by T. Krasnoshchekova

Rights and permissions

Reprints and permissions

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

Ledukhovsky, G.V., Zhukov, V.P. & Barochkin, Y.E. Simulation of Thermal Water Deaeration Based on a Matrix Approach to the Design of Heat-and-Mass Exchangers. Therm. Eng. 66, 287–292 (2019). https://doi.org/10.1134/S0040601519040050

Download citation

  • Received:

  • Revised:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1134/S0040601519040050

Keywords:

Navigation