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Abstrakty
W poprzednim numerze skupiliśmy się na waloryzacji pyłu zeolitowego jako produktu ubocznego przeróbki skał naturalnych w kierunku funkcjonalnych sorbentów substancji ropopochodnych. Dziś omówimy czynniki, które kształtują jakość wytwarzanych granulatów zeolitowych.
Słowa kluczowe
Wydawca
Czasopismo
Rocznik
Tom
Strony
51--59
Opis fizyczny
Bibliogr. 24 poz., il.
Twórcy
autor
- Sieć Badawcza Łukasiewicz - Instytut Ceramiki i Materiałów Budowlanych w Krakowie
Bibliografia
- [1] E. Pabiś-Mazgaj, Zeolity w służbie środowisku. Efektywne wykorzystanie pyłów mineralnych, Kierunek Surowce, 1/2025, 86.
- [2] A. K. Vadaga, S. S. Gudla, G. S. K. Nareboina, H. Gubbala, B. Golla, Comprehensive review on modern techniques of granulation in pharmaceutical solid dosage forms, Intelligent Pharmacy, 2024, 2, 5, 609-629.
- [3] H. L. Reimer, P. Kleinebudde, Hybrid modeling of roll compaction processes with the Styl’One Evolution, Powder Technology, 2019, 341, 66-74.
- [4] N. Patil, S. C. Khadse, P. P. Ige, Review on novel granulation techniques, World Journal of Pharmaceutical Research, 2016, 5, 7.
- [5] Payra, P.; Dutta, P. K. Zeolites: A primer. In Handbook of Zeolite Science and Technology; CRC Press: Boca Raton, FL, USA, 2003; Volume 2, pp. 1-19.
- [6] N. Li, W. Liu, L. Liu, P. Gao, Q. Wu, X. Ma, G. K. Li, Evaluation of gas adsorption and separation performance of binder-free Y zeolite particles prepared by the rotary pelletization method, Separation and Purification Technology, 2025, 361, 3, 131520.
- [7] S. Krishnamurthy, R. Roelant, R. Blom, B. Arstad, Z. Li, M. Rombouts, V. Middelkoop, A. B. Borras, L. Naldoni, Scaling up 3D printed hybrid sorbents towards (cost) effective post-combustion CO2 capture: A multiscale study, International Journal of Greenhouse Gas Control, 2024, 132, 104069.
- [8] S. Krishnamurthy, R. Roelant, R. Blom, B. Arstad, Z. Li, M. Rombouts, V. Middelkoop, A. B. Borras, L. Naldoni Scaling up 3D printed hybrid sorbents towards (cost) effective post-combustion CO2 capture: A multiscale study, International Journal of Greenhouse Gas Control, 2024.
- [9] Wears, Kedar Bharat Jivrakh et K. B. Jivrakh, A. M. Varghese, S. Ehrling, S. Kuppireddy, K. Polychronopoulou, R. K. Abu Al-Rub, N. Alamoodi, G. N. Karanikolos, 3D-printed zeolite 13X gyroid monolith adsorbents for CO2 capture, Chemical Engineering Journal, 2024, 497, 1385-8947.
- [10] E. Luzzi, P. Aprea, M. Salzano de Luna, D. Caputo, G. Filippone, Mechanically Coherent Zeolite 13X/Chitosan Aerogel Beads for Effective CO2 Capture, ACS Applied Materials & Interfaces 2021, 13, 20728-20734.
- [11] P. Müller, A. Russell, J. Tomas, Influence of binder and moisture content on the strength of zeolite 4A granules, Chemical Engineering Science, 2015, 126, 204-215.
- [12] Z. Asgar Pour, M. M. Abduljawad, Y. A. Alassmy, L. Cardon, P. H. M. Van Steenberge, K. O. Sebakhy, A Comparative Review of Binder-Containing Extrusion and Alternative Shaping Techniques for Structuring of Zeolites into Different Geometrical Bodies. Catalysts. 2023; 13(4):656.
- [13] P. Cañizares, A. Durán, F. Dorado, M. Carmona, The role of sodium montmorillonite on bounded zeolite-type catalysts. Applied Clay Science, 2000, 16(5), 273-287.
- [14] R. V. Jasra, B. Tyagi, Y. M. Badheka, V. N. Choudary T. S. G. Bhat, Effect of Clay Binder on Sorption and Catalytic Properties of Zeolite Pellets, Industrial & Engineering Chemistry Research, 2003, 42, 3263-3272.
- [15] N. L. Michels, S. Mitchell, J. Pérez-Ramírez, Effects of Binders on the Performance of Shaped Hierarchical MFI Zeolites in Methanol-to-Hydrocarbons, ACS Catalysis, 2014, 4(8).
- [16] R. Bingre, B. Louis, P. Nguyen, An Overview on Zeolite Shaping Technology and Solutions to Overcome Diffusion Limitations. Catalysts. 2018; 8(4), 16.
- [17] D. Bazer-Bachi, B. Harbuzaru, E. Lecolier, Zeolite Formed by Extrsion and Pelleting with a Hydraulic Binder Having Improved Mechanical Properties and Process and Preparing Same. U.S. Patent 20,160,288,109A1, 6 October 2016.
- [18] D. A. Fungaro, T. C. R. Bertolini, Optimization of Pelleting Parameters For Producing Composite Pellets Using Zeolitic Material From Fly Ash, Applied Materials and Technology, 2023, 3, 13-23.
- [19] Amir Charkhi, M. Kazemeini, S. J. Ahmadi, H. Kazemian, Fabrication of granulated NaY zeolite nanoparticles using a new method and study the adsorption properties, Powder Technology, 2012, 231, 1-6.
- [20] D. Bazer-Bachi, L. Assié, V. Lecocq, B. Harbuzaru, V. Falk, Towards industrial use of metal-organic framework: Impact of shaping on the MOF properties, Powder Technology, 2014, 255, 52-59.
- [21] R. Panek, M. Wdowin, L. Bandura, E. Wisła-Walsh, P. Gara, W. Franus, Changes in the Textural Parameters of Fly Ash-Derived Na-P1 Zeolite During Compaction Processes, Mineralogia, 2017, 40, 1-4, 3-22.
- [22] Y. Teng, Z. Qiu, H. Wen, Systematical approach of formulation and process development using roller compaction, European Journal of Pharmaceutics and Biopharmaceutics, 2009, 72(2).
- [23] O. Rogala, K. A. Tarach, L. Lakiss, A. Kordek, V. Valtchev, J. P Gilson, K. Góra-Marek, Shaped zeolites Y for polypropylene cracking, Applied Catalysis B: Environment and Energy, 2025, 365, 124893.
- [24] H. J. Lee, J. H. Kim, D. W Park, S. J. Cho, Effect of base binder, flash calcined hydrotalcite, in MFI zeolite granule: Catalytic activity over 1-butene isomerization and MTO reaction, Applied Catalysis A : General, 2015, 502, 1.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-88c9506c-1ae8-42e6-bea3-a721d81de3a1
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