Details

Title

Kinetics of Penetration and Drying of Protective Coatings into the sand Mold under Conditions of Variable Porosity of the Mold

Journal title

Archives of Foundry Engineering

Yearbook

2025

Volume

vol. 25

Issue

No 3

Authors

Affiliation

Jamrozowicz, Ł. : AGH University of Krakow, Poland

Keywords

Core ; Sand mole ; Porous medium ; Moisture migration ; Protective coatings ; Resistance measurement

Divisions of PAS

Nauki Techniczne

Coverage

227-233

Publisher

The Katowice Branch of the Polish Academy of Sciences

Bibliography

  • Pigoń, K., Ruziewicz, Z. (2005). Physical Chemistry: Phenomenological Foundations. Warszawa: PWN. (in Polish).
  • Zarzycki, R. (2005). Heat transfer and mass transfer in environmental engineering. Warszawa: Wydawnictwo Naukowo-Techniczne. (in Polish).
  • Płoński, W., Pogorzelski, J. (1979). Building physics. Warszawa: Arkady. (in Polish).
  • Świrska-Perkowska, J. (2012). Adsorption and movement of moisture in porous building materials under isothermal conditions. Warszawa: Komitet Inżynierii Lądowej i Wodnej PAN. (in Polish).
  • Kubik, J. (2000). Moisture flows in building materials. Opole: Oficyna Wydawnicza Politechniki Opolskiej. (in Polish).
  • Gawin, D. (2000). Modeling of coupled thermal and hygroscopic phenomena in building materials and elements. Łódź: Politechnika Łódzka. (in Polish).
  • Rose, D. (1963). Water movement in porous materials. Part 1: Isothermal Vapour Transfer. British Journal of Applied Physics. 14(5), 256-262. DOI:10.1088/0508-3443/14/5/308.
  • Rose, D. (1963). Water movement in porous materials. Part 2: The Separation of the Components of Water Movement. British Journal of Applied Physics. 14(8), 491-496. DOI:10.1088/0508-3443/14/8/310.
  • Marynowicz, A., Wyrwał, J. (2005). Testing the moisture properties of selected building materials under isothermal conditions. Warszawa: INB ZTUREK. (in Polish).
  • Kiessl, K. (1983). Kapillarer und dampffoermiger Fauchtetransport in mahrschichtigen Bauteilen. Dissertation. University Essen, Essen, Germany.
  • The process of drying food substances - laboratory exercises. Politechnika Gdańska. (2022). Retrieved June 24, 2022, from https://mech.pg.edu.pl/documents/4555684/4565480/suszenie.pdf. (in Polish).
  • Baranowski, J., Melech, S., Adamski, P. (2002). Temperature and humidity control systems for food drying processes. In VI Sympozjum Pomiary i Sterowanie w Procesach Przemysłowych, 13 December 2002. Zielona Góra. (in Polish).
  • Ważny, J., Karyś, J. (2001). Protection of buildings against biological corrosion. Warszawa: Arkady. (in Polish).
  • Brooker, D., Bakker-Arkema, F., Hall, C. (1992). Drying and Storage of Grains and Oilseeds. New York: Van Nostrand Reinhold.
  • Reeds, J. (1991). Drying. ASM International Handbook Committee.
  • Pel, L., Sawdy, A. & Voronina, V. (2010). Physical principles and efficiency of salt extraction by poulticing. Journal of Cultural Heritage. 11(1), 59-67. https://doi.org/10.1016/j.culher.2009.03.007.
  • Hii, C., Law, C. & Cloke, M. (2008). Modelling of thin layer drying kinetics of cocoa beans during artificial and natural drying. Journal of Engineering Science and Technology. 3(1), 1-10.
  • Zych, J. & Kolczyk, J. (2013). Kinetics of hardening and drying of ceramic moulds with the new generation binder – colloidal silica. Archives of Foundry Engineering. 13(4), 112-116. ISSN (1897-3310).
  • Kolczyk, J. & Zych, J. (2014). Curing kinetics and drying of ceramic molds with a new generation binder – colloidal silica. Przegląd Odlewnictwa. 64(3-4), 84-92.
  • Zych, J., Kolczyk, J. & Jamrozowicz, Ł. (2015). The influence of the shape of wax pattern on the kinetics of drying of ceramic moulds. Metalurgija. 54(1), 15-18.
  • Jamrozowicz, Ł., Zych, J. & Kolczyk, J. (2015). The drying kinetics of protective coatings used on sand molds. Metalurgija. 54(1), 23-26.
  • Jamrozowicz Ł. & Zych J. (2022). Humidity migration in surface layers of sand moulds during processes of penetration and drying of protective coatings. Archives of Foundry Engineering. 22(4), 72-78. DOI: 10.24425/afe.2022.143952.
  • Jamrozowicz, Ł. (2024). Influence of selected factors on penetration and drying kinetics of protective coatings into sand mould surface layer. Archives of Foundry Engineering. 24(4), 69–75. DOI: 10.24425/afe.2024.151312.
  • Jamrozowicz, Ł. & Siatko, A. (2020). The assessment of the permeability of selected protective coatings used for sand moulds and cores. Archives of Foundry Engineering. 20(1), 17-22. DOI: 10.24425/afe.2020.131276.
  • Jamrozowicz Ł., Kolczyk-Tylka, J. & Siatko, A. (2018). Investigations of the thickness of protective coatings deposited on moulds and cores. Archives of Foundry Engineering. 18(4), 131-136. DOI: 10.24425/afe.2018.125182.
  • Zych, J., Snopkiewicz, T. (2010). Drying and hardening of ceramic moulds used in a modern investment casting technique – investigations of the process kinetics. Foundry Journal of the Polish Foundrymen's Association. 9-10, 506-512.
  • Pender, R.J. (2004). The behaviour of water in porous building materials and structures. Studies in Conservation. 49(sup1), 49-62. https://doi.org/10.1179/sic.2004.49.Supplement-1.49.
  • Brutsaert, W. (2023). Water beneath the ground: fluid mechanics of flow in porous materials. In Hydrology: An Introduction (pp. 263–317). Cambridge: Cambridge University Press.
  • Kuijpers, C.J., van Stiphout, T.A.P., Huinink, H.P., Tomozeiu, N., Erich, S.J.F. & Adan, O.C.G. (2018). Quantitative measurements of capillary absorption in thin, porous media by the automatic scanning absorptometer. Chemical Engineering Science. 178, 70-81. https://doi.org/10.1016/j.ces.2017.12.024.
  • Kuijpers, C.J., Huinink, H.P., Tomozeiu, N., Erich, S.J.F. & Adan, O.C.G. (2017). Sorption of water-glycerol mixtures in porous Al2O3 studied with NMR imaging. Chemical Engineering Science. 173, 218-229, https://doi.org/10.1016/j.ces.2017.07.035.
  • Guodong Liu, Meiyun Zhang, Cathy Ridgway, Patrick Gane (2014). Pore wall rugosity: The role of extended wetting contact line length during spontaneous liquid imbibition in porous media. Colloids and Surfaces A: Physicochemical and Engineering Aspects. 443, 286-295, http://dx.doi.org/10.1016/j.colsurfa.2013.11.033.

Date

19.09.2025

Type

Article

Identifier

DOI: 10.24425/afe.2025.155372
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