Details

Title

Analysis of Influence of Sand Matrix on Properties of Moulding Compounds Made with Furan Resin Intended for 3D Printing

Journal title

Archives of Foundry Engineering

Yearbook

2024

Volume

Accepted articles

Affiliation

Gruszka, D.R. : AGH University of Krakow, Faculty of Foundry Engineering, Poland ; Dańko, R. : AGH University of Krakow, Faculty of Foundry Engineering, Poland ; Dereń, M. : AGH University of Krakow, Faculty of Foundry Engineering, Poland ; Wodzisz, A. : AGH University of Krakow, Faculty of Foundry Engineering, Poland

Authors

Keywords

Furfuryl resin ; Foundry engineering ; Sand moulds and cores ; 3D printing ; Binder jetting

Divisions of PAS

Nauki Techniczne

Publisher

The Katowice Branch of the Polish Academy of Sciences

Bibliography

[1] Mostafaei, A., Elliott, A.M., Barnes, J.E., Li, F., Tan, W., Cramer, C.L., Nandwana, P. & Chmielus, M. (2020). Binder jet 3D printing – process parameters, materials, properties, and challenges. Progress in Materials Science. 119, 100707. DOI: https://doi.org/10.1016/j.pmatsci.2020.100707.
[2] Le Néel, T.A., Mognol, P. & Hascoët, J.-Y. (2018). A review on additive manufacturing of sand molds by binder jetting and selective laser sintering. Rapid Prototyping Journal. 24(8), 1325-1336. https://doi.org/10.1108/RPJ-10-2016-0161.
[3] Gibson, I., Rosen, D. W., Stucker, B., Khorasani, M. (2021). Additive manufacturing technologies. Cham, Switzerland: Springer. DOI:10.1007/978-3-030-56127-7.
[4] Upadhyay, M., Sivarupan, T., & El Mansori, M. (2017). 3D printing for rapid sand casting—A review. Journal of Manufacturing Processes. 29, 211-220. https://doi.org/10.1016/j.jmapro.2017.07.017.
[5] Lewandowski, J.L. (1997). Materials for casting molds. Krakow: Akapit. (in Polish).
[6] Jakubski, J. & Dobosz, S. M. (2007). The thermal deformation of core and moulding sands according to the hot distortion parameter investigations. Archives of Metallurgy and Materials. 52(3), 421.
[7] Ignaszak, Z., Popielarski, P. & Strek, T. (2011). Estimation of coupled thermo-physical and thermo-mechanical properties of porous thermolabile ceramic material using Hot Distortion Plus® test. Defect and Diffusion Forum. 312-315, 764-769. DOI:10.4028/www.scientific.net/DDF.312-315.764. [
8] Dańko, R. (2017). Influence of the matrix grain size on the apparent density and bending strength of sand cores. Archives of Foundry Engineering. 17(1), 27-30. DOI:10.1515/afe-2017-0005.
[9] Sundaram, D., Svidró, J.T., Svidró, J. & Diószegi, A. (2022). A novel approach to quantifying the effect of the density of sand cores on their gas permeability. Journal of Casting & Materials Engineering. 6(2), 33-38. DOI:10.7494/jcme.2022.6.2.33.
[10] Wisniewski, P., Sitek, R., Towarek, A., Choinska, E., Moszczynska, D., & Mizera, J. (2020). Molding binder influence on the porosity and gas permeability of ceramic casting molds. Materials. 13(12), 2735, 1-13. DOI:10.3390/ma13122735.
[11] Dobosz, S.M., Grabarczyk, A., Major-Gabryś, K. & Jakubski, J. (2015). Influence of quartz sand quality on bending strength and thermal deformation of moulding sands with synthetic binders. Archives of Foundry Engineering. 15(2), 9-15. DOI:10.1515/afe-2015-0028.
[12] Multiserw-Morek (2014) Device for testing the strength of molding sands. Retrieved October 15, 2023, from http://multiserw-morek.pl/products,urzadzenia_do_badania_mas_formierskich_i_rdzeniowych,urzadzenie_do_badania_wytrzymalosci_mas_formierskich-1. (in Polish).
13] Bobrowski, A., Kaczmarska, K., Drożyński, D., Woźniak, F., Dereń, M., Grabowska, B., Żymankowska-Kumon, S. & Szucki, M. (2023). 3D Printed (Binder Jetting) Furan Molding and Core Sands—Thermal Deformation, Mechanical and Technological Properties. Materials. 16(9), 3339, 1-17. DOI:10.3390/ma16093339.
[14] Multiserw-Morek (2014) Device for measuring the permeability of molding sands. Retrieved October 15, 2023, from http://multiserw-morek.pl/products,urzadzenia_do_badania_mas_formierskich_i_rdzeniowych,urzadzenie_do_pomiaru_przepuszczalnosci_mas_formierskich. (in Polish).
[15] Multiserw-Morek (2014) A universal device for testing hot-distortion phenomena and bending strength. Retrieved October 15, 2023, from http://multiserw-morek.pl/products,urzadzenia_do_badania_mas_formierskich_i_rdzeniowych,uniwersalny_aparat_do_badania_zjawisk_hot-distortion_oraz_wytrzymalosci_na_zginanie. (in Polish).
[16] Kamińska, J., Puzio, S., Angrecki, M. & Łoś, A. (2020). Effect of reclaim addition on the mechanical and technological properties of moulding sands based on pro-ecological furfuryl resin. Archives of Metallurgy and Materials. 65(4), 1425-1429. DOI: 10.24425/amm.2020.133709.
[17] Major-Gabryś, K. (2019). Environmentally friendly foundry molding and core sands. Journal of Materials Engineering and Performance. 28, 3905-3911. DOI:10.1007/s11665-019-03947-x.
[18] Mitra, S., Rodríguez de Castro, A. & El Mansori, M. (2018). The effect of ageing process on three-point bending strength and permeability of 3D printed sand molds. The International Journal of Advanced Manufacturing Technology. 97, 1241-1251. DOI:10.1007/s00170-018-2024-8.
[19] Sundaram, D., Svidró, J.T., Svidró, J. & Diószegi, A. (2021). On the relation between the gas-permeability and the pore characteristics of furan sand. Materials. 14(14), 3803, 1-14. DOI:10.3390/ma14143803.
20] Łucarz, M., Drożyński, D., Garbacz-Klempka, A., Jezierski, J., Bartocha, D., Wróbel, T., Kostrzewa, K., Feliks, E. (2022). Influence of weather conditions and mechanical reclamation on molding sand with alkali-phenolic binder for manganese cast steel. Materials. 16(1), 71, 1-18. DOI:10.3390/ma16010071.

Date

7.05.2024

Type

Article

Identifier

DOI: 10.24425/afe.2024.149267
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