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Acknowledgements This research work had been supported by the Ministry of Science and Education of Ukraine under the project « Small-scale energy-saving modules with the use of multifunctional devices with intensive hydrodynamics for the production, modification and encapsulation of
granules » , project No. 0119U100834 and by the Cultural and Educational Grant Agency of the
Slovak Republic (KEGA), project No. KEGA 002TnUAD-4/2019.
References
1. Kubota N (2015) Propellants and explosives: thermochemical aspects of combustion, 3rd edn.
Wiley-VCH Verlag & Co., Weinheim
2. Janssen TJ (2011) Explosive materials: classification, composition and properties. Nova
Science Publishers, Inc.
3. Martin G, Barbour W (2003) Industrial nitrogen compounds and explosives, chemical
manufacture and analysis. Watchmaker Publishing
4. Artyukhov AE, Sklabinskyi VI (2013) Experimental and industrial implementation of porous
ammonium nitrate producing process in vortex granulators. Nauk Visnyk Nats Hirnychoho
Univ 6:42–48
5. Artyukhov AE, Sklabinskyi VI (2017) Investigation of the temperature field of coolant in the
installations for obtaining 3D nanostructured porous surface layer on the granules of ammonium
nitrate. J Nano Electron Phys 9(1)01015–1–01015–4
6. Ivaniia AV, Artyukhov AY, Olkhovyk AI (2019) Hydrodynamic and thermodynamic conditions
for obtaining a nanoporous structure of ammonium nitrate granules in vortex granulators.
Springer Proc Phys 221:257–268
7. Artyukhov AE, Krmela J, Gavrylenko OM (2019) Evaluation of the impact made by the
hydrodynamic regime of the granulation equipment operation on the nanoporous structure
of N 4 HNO 3 granules. J Nano Electron Phys 11(4):03033
8. Artyukhov A, Gabrusenoks J (2018) Phase composition and nanoporous structure of core and
surface in the modified granules of NH 4 NO 3 . Springer Proc Phys 210:301–309
9. Artyukhov AE, Sklabinskyi VI (2016) Thermodynamic conditions for obtaining 3D nanostructured porous surface layer on the granules of ammonium nitrate. J Nano Electron Phys
8(4):04083–1–04083–5
10. Artyukhov AE, Artyukhova NO (2019) Technology and the main technological equipment of
the process to obtain N 4 HNO 3 with Nanoporous Structure. Springer Proc Phys 221:585–594
11. Artyukhov AE, Ivaniia AV (2017) Obtaining of porous ammonium nitrate in multistage and
multifunctional vortex granulators. Naukovyi Visnyk Natsionalnoho Hirnychoho Universytetu
6:68–75
12. Artyukhov AE, Sklabinskyi VI (2016) 3D nanostructured porous layer of ammonium nitrate:
influence of the moisturizing method on the layer’s structure. J Nano Electron Phys 8(4):04051–
1–04051–5
13. Artyukhova NO, Krmela J (2019) Nanoporous structure of the ammonium nitrate granules at
the final drying: the effect of the dryer operation mode. J Nano Electron Phys 11(4):04006
14. Kudra T, Mujumdar AS (2002) Advanced drying technologies. Marcel Dekker, New York
15. Vengateson U, Mohan R (2016) Experimental and modeling study of fluidized bed granulation:
Effect of binder flow rate and fluidizing air velocity. Resour Eff Technol 2(1):S1124–S1135
16. Mujumdar AS (2006) Handbook of industrial drying. Taylor & Francis Group, Boca Raton
17. Maronga (1998) On the Optimization of the Fluidized Bed Particulate Coating Process. PhD
Thesis, Department of Chemical Engineering and Technology Royal Institute of Technology
18. Artyukhov AE et al (2017) Vykhrovyy hranulyator zvazhenoho sharu (Suspended layer vortex
granulator) UA Patent 114521, 3 Mar 2017
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