Skip to main content
Log in

Nucleate Pool Boiling Experiments (NPBX) on the International Space Station

  • Original Article
  • Published:
Microgravity Science and Technology Aims and scope Submit manuscript

Abstract

During the period of March–May 2011, a series of boiling experiments was carried out in the Boiling Experimental Facility (BXF) located in the Microgravity Science Glovebox (MSG) of the International Space Station (ISS). The BXF Facility was carried to ISS on Space Shuttle Mission STS–133 on February 24, 2011. Nucleate Pool Boiling Experiment (NPBX) was one of the two experiments housed in the BXF. Results of experiments on single bubble dynamics (e.g., inception and growth), multiple bubble dynamics (lateral merger and departure, if any), nucleate pool boiling heat transfer, and critical heat flux are described. In the experiments Perfluoro-n-hexane was used as the test liquid. The system pressure was varied from 51 to 243 kPa, pool temperature was varied from 30° to 59°C, and test surface temperature was varied from 40° to 80°C. The test surface was a polished aluminum disc (1 mm thick, 89.5 mm in diameter) heated from below with strain gage heaters. Five cylindrical cavities were formed on the surface with four cavities located at the corners of a square and one in the middle. During experiments the magnitude of mean gravity level normal to the heater surface varied from 1.2 × 10 − 7g e to 6 × 10 − 7g e . The results of the experiments show that a single bubble continues to grow to occupy the size of the chamber without departing from the heater surface. During lateral merger of bubbles, at high superheats a large bubble may lift off from the surface but continues to hover near the surface. Neighboring bubbles are continuously pulled into the large bubble. At low superheats bubbles at neighboring sites simply merge to yield a larger bubble. The larger bubble mostly locates in the middle of the heated surface and serves as a vapor sink. The latter mode continues to persist when boiling is occurring all over the heater surface. Heat fluxes for steady state nucleate boiling and critical heat fluxes are found to be much lower than those obtained under earth normal gravity conditions. The data are useful for calibration of results of numerical simulations. Any correlations that are developed for nucleate boiling heat transfer under microgravity condition must account for the existence of vapor escape path (sink) from the heater, size of the heater, and the size and geometry of the chamber.

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.

Similar content being viewed by others

References

  • Abe, Y., Oka, T., Mori, Y.H., Nagashima, A.: Pool boiling of a non-azeotropic binary mixture under microgravity. Int. J. Heat Mass Transfer 37, 2405–2413 (1994)

    Article  Google Scholar 

  • Cochran, T.H., Aydelott, J.C., Frysinger, T.C.: The Effect of Subcooling and Gravity level on Boiling in the Discrete Bubble Region, NASA TN D-3449 (1966)

  • Dhir, V.K.: Boiling under microgravity conditions. In: Proceedings of the 12th Int. Heat Transfer Conf., Grenoble, France (2002)

    Google Scholar 

  • Ervin, J.S., Merte, H.: Boiling nucleation and propagation in microgravity. In: Proceedings of Symposium Heat Transfer in Microgravity, New Orleans, LA, ASME HTD, vol. 269, pp. 131–138 (1993)

  • Ervin, J.S., Merte, H., Kellers, R.B., Kirk, K.: Transient pool boiling in microgravity. Int. J. Heat Mass Transfer 35, 659–674 (1992)

    Article  Google Scholar 

  • Keshock, E.G., Siegel, R.: Forces Acting on Bubbles in Nucleate Boiling under Normal and Reduced Gravity Conditions, NASA TND-2299 (1964)

  • Kobus, C.J., Wedekind, G.L.: An experimental investigation into natural convection heat transfer from horizontal isothermal circular disks. Int. J. Heat Mass Transfer 44, 3381–3383 (2001)

    Article  Google Scholar 

  • Lay, J.H., Dhir, V.K.: Shape of a vapor stem during nucleate boiling of saturated liquids. J. Heat Transfer 117, 394–401 (1995)

    Article  Google Scholar 

  • Lee, H.S., Merte, H., Chiaramonte, F.: Pool boiling phenomena in microgravity. In: Proceedings of the 11th Int. Heat Transfer Conference, Kyongyu, Korea, vol. 2, pp. 395–399 (1998)

  • McAdams, W.H.: Heat Transmission, 3rd edn. McGraw-Hill, New York (1954)

    Google Scholar 

  • Merte, H.: Pool and flow boiling in variable and microgravity. In: 2nd Microgravity Fluid Physics Conference, Paper No. 33. Cleveland, OH. June 21–23 (1994)

  • Merte, H., Lee, H.S., Keller, R.B.: Report on Pool Boiling Experiment Flow on STS-47, STS-57, STS-60, Report No. UM-MEAM-95-01 (1995)

  • Merte, H., Lee, H.S., Keller, R.B.: Dryout and rewetting in the pool boiling experiments flown on STS-72 (PBE-IIB) and STS-77 (PBE-IIA), Report No. UM-MEAM-98-091 (1998)

  • Oka, T., Abe, Y., Mori, Y.H., Nagashima, A.: Pool boiling of n-Pentane, CFC-113, and water under reduced gravity: parabolic flight experiments with a transparent heater. J. Heat Transfer 117, 408–417 (1995)

    Article  Google Scholar 

  • Siegel, R.: Effects of reduced gravity on heat transfer. Adv. Heat Transf. 4, 143–228 (1967)

    Article  Google Scholar 

  • Siegel, R., Keshock, E.G.: Effects of reduced gravity on nucleate boiling bubble dynamics in saturated water. AIChE J. 10, 509–517 (1964)

    Article  Google Scholar 

  • Siegel, R., Usiskin, C.: A photographic study of boiling in the absence of gravity. Trans. ASME J. Heat Transfer 81, 230–236 (1959)

    Google Scholar 

  • Son, G., Dhir, V.K., Ramanuju, N.: Dynamics and heat transfer associated with a single bubble during nucleate boiling on a horizontal surface. J. Heat Transfer 121, 623–631 (1999)

    Article  Google Scholar 

  • Straub, J.: The role of surfaced tension for two phase heat and mass transfer in the absence of gravity. Exp. Therm. Fluid Sci. 9, 253–273 (1994)

    Article  Google Scholar 

  • Straub, J.: Boiling heat transfer and bubble dynamics in microgravity. Adv. Heat Transf. 35, 58–172 (2001)

    Google Scholar 

  • Straub, J., Micko, S.: Boiling on a wire under microgravity conditions first results from a space epxeirment performed in May 1996. In: Eurotherm Seminar - 48, Paderborn, Germany, 18–20 Sept 1996 (1996)

  • Straub, J., Picker, G., Steinbichler, M., Winter, J., Zell, M.: Heat transfer and various modes of bubble dynamics on a small hemispherical heater under microgravity and 1G condition. In: Gorenflow, D., Kenning, D.B.R., Marvillet, Ch. (eds.) Pool Boiling 2. Eurotherm Seminar - 48, Paderborn, Germany, 18–20 Sept 1996 (1996)

  • Usiskin, C.M., Siegel, R.: An experimental study of boiling in reduced and zero gravity fields. Trans. ASME J. Heat Transfer 83, 243–253 (1961)

    Article  Google Scholar 

  • Wu, J., Dhir, V.K.: Numerical simulation of dynamics and heat transfer associated with a single bubble in subcooled boiling and in the presence of noncondensables. J. Heat Transfer 133, 041502-1:041502-14 (2011)

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to Vijay Kumar Dhir.

Additional information

This work was initially supported under the NASA Microgravity Fluid Physics Program.

Rights and permissions

Reprints and permissions

About this article

Cite this article

Dhir, V.K., Warrier, G.R., Aktinol, E. et al. Nucleate Pool Boiling Experiments (NPBX) on the International Space Station. Microgravity Sci. Technol. 24, 307–325 (2012). https://doi.org/10.1007/s12217-012-9315-8

Download citation

  • Received:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s12217-012-9315-8

Keywords

Navigation