Details

Title

Selection of Chemically Cured Molding Sands’ with Inorganic Binders Dedicated to 3D Sand Printing

Journal title

Archives of Foundry Engineering

Yearbook

2025

Volume

vol. 25

Issue

No 4

Authors

Affiliation

Major-Gabryś, K.A. : AGH University of Krakow, Faculty of Foundry Engineering, Department of Moulding Materials, Mould Technology and Non-ferrous Metals, al. A. Mickiewicza 30, 30-059 Krakow, Poland. ; Halejcio, D.M. : AGH University of Krakow, Faculty of Foundry Engineering, Department of Moulding Materials, Mould Technology and Non-ferrous Metals, al. A. Mickiewicza 30, 30-059 Krakow, Poland.

Keywords

3D sand printing ; Molding sand ; Resin ; Inorganic binder ; Hardener

Divisions of PAS

Nauki Techniczne

Coverage

81-90

Publisher

The Katowice Branch of the Polish Academy of Sciences

Bibliography

  • Jandyal, A., Chaturvedi, I., Wazir, I., Raina, A. & Ul Haq, M.I. (2022). 3D printing – A review of processes, materials and applications in industry 4.0. Sustainable Operations and Computers. 3, 33-42. https://doi.org/10.1016/j.susoc.2021.09.004.

  • Upadyay, M., Sivarupan, T. & El Monsori, M. (2017). 3D rapid for sand casting – A review Journal of Manufacturing Processes. 29, 211-220. https://doi.org/10.1016/j.jmapro.2017.07.017.

  • Gruszka, D., Dańko, R., Dereń, M. & Wodzisz, A. (2024) Analysis of influence of sand matrix on properties of moulding compounds made with furan resin intended for 3D printing. Archives of Foundry Engineering. 24(2), 17-24, DOI: 10.24425/afe.2024.149267.

  • Wang, Y., long Yu R., kui Yin S., Tan R. & Chun Lou Y. (2021). Effect of gel time of 3D sand printing binder system on quality of sand mold/core. China Foundry. 18(6), 581-586. DOI: 10.1007/s41230-021-1085-8.

  • Bryant, N., O’Dell, J., Kowalsky, J. & Thiel, G. (2023). Real-time measurement of mold and core quality in chemically bonded sands. American Foundry Society. 18(1), 14-22. DOI: 10.1007/s40962-023-01206-3.

  • Qian, X.W., Wan, P., Yin, Y.J., Qi, Y.Y., Ji, X.Y., Shen, X.U., Li, Y.C. & Zhou, J.X. (2022). Gas evolution characteristics of three kinds of no-bake resin-bonded sands for foundry in production. China Foundry. 19(2), 140-148. DOI: 10.1007/s41230-022-1031-4.

  • Major-Gabryś, K., Hosadyna-Kondracka, M., Polkowska, A. & Warmuzek, M. (2022). Effect of the biodegradable component addition to the molding sand on the microstructure and properties of ductile iron Castings. Materials. 15(4), 1552, 1-14. DOI: 10.3390/ma15041552.

  • Halejcio, D. & Major-Gabryś, K. (2024). The use of 3D printed sand molds and cores in the castings production. Archives of Foundry Engineering. 24(1), 32-39. DOI: 10.24425/afe.2024.149249.

  • Halejcio, D. & Major-Gabryś, K. (2024). The comparison of chosen - bonded with the use of classical and dedicated for 3D printing furfuryl binder - molding sands’ properties as a basis for development a new inorganic system. Archives of Foundry Engineering. 24(4), 49-55. DOI: 10.24425/afe.2024.151309.

  • Manual for industrial-grade 3D printing machine casting sand for AJS 300 A by Kocel [pdf].

  • Dziubański, M., Kiljański, T., Sęk, J. (2014). Theoretical foundations and measurement methods of rheology. Łódź: Monografie Politechniki Łódzkiej. (in Polish).

  •  Kwok, D.Y., Neumann, A.W. (1999) Contact angle measurement and contact angle interpretation. Advances in Colloid and Interface Science. 81(3), 167-249. DOI: 10.1016/S0001-8686(98)00087-6.

  • Markert, B., Monastyrskyy, B., Ehlers, W. (2008) Fluid penetration effects in porous media contact.- Continuum Mech. Thermodyn. 20(5), 303-315. DOI: 10.1007/s00161-008-0083-z.

  • Zych, J. (2004). Non-destructive studies of the kinetics of changes in the properties of molding sands in the mold surface layer. Archiwum Technologii Maszyn i Automatyzacji. 24(1), 213-221. (in Polish).

  • Matonis, N. & Zych, J. (2023). Kinetics of binding process of furan moulding sands, under conditions of forced air flow, monitored by the ultrasonic technique. Archives of Foundry Engineering. 23(4), 93-98. DOI: 10.24425/afe.2023.146683.

  • Matonis, N. & Zych, J. (2022). Plasticity changes of moulding sands with chemical binders caused by increasing the hardening degree. Archives of Foundry Engineering. 22(2), 71-76. DOI: 10.24425/afe.2022.140227.

  • Jakubski, J. (2006). Tendency of selected moulding sands to deform at high temperaturePhD Thesis, AGH Kraków. (in Polish).

  • Grabarczyk, A., Major-Gabryś, K., Jakubski, J., Dobosz, S., Bolibruchowa, D. & Pastircak, R. (2023) Tests of mechanical and thermal deformation of moulding sands produced in various technologies. Archives of Metallurgy and Materials. 68(3) 933-937. DOI: 10.24425/amm.2023.145456.

Date

30.12.2025

Type

Article

Identifier

DOI: 10.24425/afe.2025.155383
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