Design of the shafts of a driven conveyor as part of a mobile working machine modification

Authors

  • Miroslav Blatnický Department of Transport and Handling Machines, Faculty of Mechanical Engineering, University of Žilina Univerzitná 8215/1, 010 26 Žilina, Slovak Republic
  • Ján Dižo Department of Transport and Handling Machines, Faculty of Mechanical Engineering, University of Žilina Univerzitná 8215/1, 010 26 Žilina, Slovak Republic
  • Alyona Lovska Department of Transport and Handling Machines, Faculty of Mechanical Engineering, University of Žilina Univerzitná 8215/1, 010 26 Žilina, Slovak Republic
  • Oleksandr Kravchenko Department of Transport and Handling Machines, Faculty of Mechanical Engineering, University of Žilina Univerzitná 8215/1, 010 26 Žilina, Slovak Republic

DOI:

https://doi.org/10.14513/actatechjaur.00770

Keywords:

mobile working machine, finite element method, a driven conveyor, wood processing

Abstract

The purchase of professional technical equipment for processing wooden logs does not always mean the trouble-free processing of a product. One such case is the mobile working machine solved in this research. There was found insufficient semi-automation of processes, technical documentation that did not correspond to the actual state, the need for tremendous effort from the operating personnel, the complete inoperability of some processes and the manufacturer's inability to solve the deficiencies of the machine. These are the reasons and motivations for the creation of the presented applied research, dealing mainly with the elimination of the aforementioned shortcomings. Commonly available and offered peripherals and accessories for the machine are not compatible, and therefore, the authors decided to implement their design to significantly improve the given state. At the same time, the results can be helpful in creating improvement designs for the technical equipment in question for a variety of manufacturers. The main of the given research is to design a driven conveyor of the machine. It is a specifically adapted chain conveyor as the input part of the machine.

Downloads

Download data is not yet available.

References

M. Holubčík, J. Jandačka, M. Nicolanská, Design of a wireless monitoring system with emission analysis integration for solid-fuel based heating devices in households of SmartCity, Wireless Networks 30 (2024), pp. 4055–4064. https://doi.org/10.1007/s11276-021-02859-w

M. Blatnicky, J. Dizo, A. Lovska, S. Semenov, Design of chains of a chain conveyor as a part of mobile working machine modification, 24th International Scientific Conference Engineering for Rural Development: ERDev 2025, Jelgava, Lietuva (accepted manuscript).

G. Sarsenova, K. Joldassova, B. Sultanaliev, Research and Development of a special air cushion conveyor design for the transportation of bulk cargoes, Communications - Scientific Letters of the University of Zilina 26 (4) (2024) pp. B244–B251. https://doi.org/10.26552/com.C.2024.045

K. Semrád, K. Draganová, Implementation of Magnetic Markers for the Diagnostics of Conveyor Belt Transportation Systems, Sustainability 15 (11) (2023) 8705. https://doi.org/10.3390/su15118705

K. Draganová, K. Semrád, M. Spodniak, M. Cúttová, Innovative analysis of the physical-mechanical properties of airport conveyor belts, 9th International Conference on Air Transport: INAIR 2020, Zilina, Slovak Republic, 2020, pp. 20–27. https://doi.org/10.1016/j.trpro.2020.11.004

J. Caban, A. Nieoczyn, W. Misztal, D. Barta, Study of operating parameters of a plate conveyor used in the food industry, IOP Conference Series: Materials Science and Engineering 710 (119) (2019). https://doi.org/10.1088/1757-899X/710/1/012020

J. Caban, I. Rybicka, The use of a plate conveyor for transporting aluminum cans in the food industry, Advances in Science and Technology Research Journal 14 (1) (2020) pp. 26–31. https://doi.org/10.12913/22998624/113283

M. Blatnická, M. Sága, M. Blatnický, Design of pallet, frame and chain of soldering station conveyor, MATEC Web of Conferences 157 (2018) 01001. https://doi.org/10.1051/matecconf/201815701001

A. N. Wieczorek, M. Wójcicki, M. Kalita, R. Kandzia, Problems of wear of the chains used in mine scraper conveyors, caused by friction and corrosion, Scientific Journal of Silesian University of Technology. Series Transport 122 (2024), pp. 293–304. https://doi.org/10.20858/sjsutst.2024.122.16

L. Ézsiás, R. Tompa, S. Fischer, Investigation of the possible correlations between specific characteristics of crushed stone aggregates, Spectrum of Mechanical Engineering and Operational Research 1 (1) (2024), pp. 10–26. https://doi.org/10.31181/smeor1120242

S. Fischer, Investigation of the settlement behavior of ballasted railway tracks due to dynamic loading, Spectrum of Mechanical Engineering and Operational Research 2 (1) (2024), pp. 24–46. https://doi.org/10.31181/smeor21202528

S. Fischer, S. Kocsis Szürke, Detection process of energy loss in electric railway vehicles, Facta Universitatis, Series: Mechanical Engineering 21 (1) (2023), pp. 81–99. https://doi.org/10.22190/FUME221104046F

S. Fischer, D. Harangozó, D. Németh, B. Kocsis, M. Sysyn, D. Kurhan, A. Brautigam, Investigation of heat-affected zones of thermite rail welding, Facta Universitatis, Series: Mechanical Engineering 22 (4) (2024), pp. 689–710. https://doi.org/10.22190/FUME221217008F

S. Kocsis Szürke, G. Kovács, M. Sysyn, J. Liu, S. Fischer, Numerical optimization of battery heat management of electric vehicles, Journal of Applied and Computational Mechanics 9 (4) (2023) pp. 1076–1092. https://doi.org/10.22055/jacm.2023.43703.4119

S. Szalai, B. F. Szívós, D. Kocsis, M. Sysyn, J. Liu, and S. Fischer, The application of DIC in criminology analysis procedures to measure skin deformation, Journal of Applied and Computational Mechanics, 10 (4) (2024), pp. 817–829. https://doi.org/10.22055/jacm.2024.46966.4634

N. Tomonori, H. Mikihito, T. Furuichi, An investigation on axial force reductions of high-strength bolts by induction heating for paint-coating removal, Acta Polytechnica Hungarica, 21 (5) (2024) pp. 89–101. https://doi.org/10.12700/APH.21.5.2024.5.7

I. A. Khalilov, A. H. Sofiyev, Dynamic behavior of shafts, couplings and working body of the machine under torsional impact moment, Journal of Applied and Computational Mechanics 10 (4) (2024) pp. 842–852. https://doi.org/10.22055/jacm.2024.46217.4482

A. Rudawska, R. Madleňák, L. Madleňáková, P. Droździel, Investigation of the effect of operational factors on conveyor belt mechanical properties, Applied Sciences 10 (12) (2020) 4201. https://doi.org/DOI 10.3390/APP10124201

T. Ryba, D. Bzinkowski, Z. Siemiątkowski, M. Rucki, S. Stawarz, J. Caban, W. Samociuk, Monitoring of rubber belt material performance and damage, Materials 17 (3) (2024) 765. https://doi.org/10.3390/ma17030765

M. Kuffová, P. Nečas, Fracture mechanics prevention: Comprehensive approach-based modelling? Acta Polytechnica Hungarica 7 (5) (2010) pp. 5–17.

Š. Čorňák, J. Jelínek, P. Droppa, Possibilities of quality and degradation of operating fluids, 23rd International Scientific Conference: Transport Means 2019, Palanga, Lithuania, 2019, pp. 182–185.

E. Popardovská, V. Popardovský, J. Danko, Study of interaction water with epoxy resin – impact on mechanical properties of glass/epoxy laminate, Strojnicky Casopis 73 (1) (2023) pp. 147–158 (2023). https://doi.org/10.2478/scjme-2023-0012

A. K. Kelisbekov, N. A. Daniyarov, B. G. Moldabaev, Improving the energy efficiency of operation of a multi-motor plate conveyor in the steady-state operation model, Communications - Scientific Letters of the University of Zilina 26 (2) (2024) pp. C1–C8. https://doi.org/10.26552/com.C.2024.022

P. Droppa, M. Riečičiar, Simulation methods used for planetary gearbox analysis, 22nd International Scientific on Conference: Transport Means 2018, Trakai, Lithuania, 2018, pp. 597–600.

R. Martínez-Parrales, A. D. C. Téllez-Anguiano, Vibration-based fault detection system with IoT capabilities for a conveyor machine, Acta Polytechnica Hungarica 19 (9) (2022) pp. 7–24. https://doi.org/10.12700/aph.19.9.2022.9.1

F. Klimenda, J. Soukup, J. Sterba, Noise and Vibration Analysis of Conveyor Belt, Manufacturing Technology 19 (4) (2019), pp. 604–608. https://doi.org/10.21062/ujep/341.2019/a/1213-2489/MT/19/4/604

F. Klimenda, B. Skocilasova, Rollers vibration of pipe conveyor, Manufacturing Technology 15 (6) (2015) pp. 991–995.

Downloads

Published

2025-03-15

How to Cite

Blatnický, M., Dižo, J., Lovska, A., & Kravchenko, O. (2025). Design of the shafts of a driven conveyor as part of a mobile working machine modification. Acta Technica Jaurinensis. https://doi.org/10.14513/actatechjaur.00770

Issue

Section

Research articles