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Tytuł artykułu

The development and application of a global positioning system – based monitoring system for soil stabilization vehicles

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The accuracy and efficiency of soil stabilization works are key to ensuring the durability of roads. During the conducted research, a GPS-based (global positioning system) tracking system was developed that can monitor the movement of soil stabilization vehicles in real time, recording the exact location and working width of the stabilized road sections. The system’s software solutions enable the conversion of location coordinates from the WGS84 (World Geodetic System) system to EOV (EOV as Uniform National Projection system) format and visualization of the results in AutoCAD. The developed tool can significantly contribute to the improvement of the quality control of soil stabilization works, as the development of road defects resulting from stabilization errors can be reduced with the help of documentation and visualization. During the testing of this system, the development proved to be successful and provides an opportunity to perform soil stabilization processes more efficiently and reliably, thereby improving the service life of road surfaces and traffic safety.
Rocznik
Strony
1--7
Opis fizyczny
Bibliogr. 19 poz., rys., tab.
Twórcy
  • Zalaegerszeg Innovation Park, Széchenyi István University, Dr. Michelberger Pál Street 3., H-8900 Zalaegerszeg, Hungary
  • Zalaegerszeg Innovation Park, Széchenyi István University, Dr. Michelberger Pál Street 3., H-8900 Zalaegerszeg, Hungary
  • ZalaZONE Science Park Ltd., Dr. Michelberger Pál Street 3., H-8900 Zalaegerszeg, Hungary
Bibliografia
  • 1. Afrin, H. [2017]. A review on different types soil stabilization techniques. International Journal of Transportation Engineering and Technology, 3(2), 19. https://doi.org/10.11648/j.ijtet.20170302.12
  • 2. Andrew Haupt. [2024]. Trimble 3D GCS900 Grade Control System Improves Productivity by 50%. Retrieved 2 September 2024, from https://heavyindustry.trimble.com/resources/customerstories/trimble-3d-gcs900-grade-control-systemimproves-productivity-by-50
  • 3. AVL ZalaZONE. [2024]. Retrieved 23 September 2024, from https://avlzalazone.com/testing-and-track/
  • 4. Fondjo, A. A., Theron, E., and Ray, R. P. [2021]. Stabilization of expansive soils using mechanical and chemical methods: A comprehensive review. Civil Engineering and Architecture, 9(5), 1289–1294. https://doi.org/10.13189/cea.2021.090503
  • 5. Iqbal, S., Khan, H. A., Ullah, I., Khan, M. W., and Hussain, S. [2024]. Understanding the pavement project failures in Pakistan: identifying causes and solutions. Natural and Applied Sciences International Journal (NASIJ), 5(1), 55–74. https://doi.org/10.47264/idea.nasij/5.1.5
  • 6. Kaya, A. K. [2021]. Geopolymers in Soil Stabilization from Past to Present. Retrieved from https://www.researchgate.net/publication/357449205
  • 7. Kubányi, Z. [2017]. Helyszíni Kivitelezésű Kötőanyagos Talajkezelések Talajstabilizációk.
  • 8. Antal, L. [2024, July 5]. Az év végére készül el azoválpálya a zalaegerszegi járműipari tesztpályán. Retrieved 23 September 2024, from ZAOL-Zala Vármegyei Hírportál website: https://www.zaol.hu/helyi-kozelet/2024/07/az-ev-vegere-keszul-el-az-ovalpalya-a-zalaegerszegi-jarmuipari-tesztpalyan
  • 9. László Nagy, B. G. T. [2019]. Helyszíni Vizsgálatok. Retrieved from https://docplayer.hu/113247609-Helyszini-vizsgalatok.html
  • 10. Leica Geosystems. [2024]. Leica iCON gps 80 gépi vevőegység. Retrieved 3 September 2024, from https://leica-geosystems.com/hu-hu/products/construction-tps-and-gnss/receivers/leica-icon-gps-80
  • 11. Makusa, G. P. [2012]. State of the Art Review Soil Stabilization Methods and Materials in Engineering Practice.
  • 12. Péter Primusz. [2015]. Meszes Talajstabilizáció Alkalmazása Az Erdészeti Útépítésben.
  • 13. Péterfalvi, J., and Kisfaludi, B. [2015]. Meszes talajstabilizáció alkalmazásának tapasztalatai az erdészeti útépítésben. Retrieved from https://www.researchgate.net/publication/359438788
  • 14. Renolith. [2023, December 6]. Understanding and Resolving Pavement Failures. Retrieved 25 July 2024, from https://renolith.com.au/understanding-resolving-pavement-failures/
  • 15. Greene, R. B. [2016, April 22]. Three Common Causes of Pavement Failure and Their Solutions. Retrieved 25 July 2024, from https://www.gleas-sociates.com/three-common-causes-of-pavement-failure-and-their-solutions/
  • 16. Szepesházi, R., Móczár, B., Murinkó, G. and Sándor, C. [2021]. Magyar Mérnöki Kamara A kötelező továbbképzés szakterületi tananyaga geotechnikai jogosultsághoz.
  • 17. Singh Negi, A., Faizan, M., Siddharth, D. P., and Singh, R. [2013]. Soil stabilization using lime. International Journal of Innovative Research in Science, Engineering and Technology, 2(2). Retrieved from www.ijirset.com
  • 18. TOPCON. [2024]. 3D-MC drives machine control performance. Retrieved 2 September 2024, from https://www.topconpositioning.com/solutions/technology/infrastructure-software-and-services/3d-mc-platform
  • 19. Yakub, A., Ahmad, M. M., Khan, A. N., Ansari, Y., Mahvi, S., Junaid, M., and Iqbal, K. [2020]. Different soil stabilization techniques. International Journal of Advanced Science and Technology, 29(9s), 7778–7791. Retrieved from https://www.researchgate.net/publication/350630921
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-2ffaad64-d5fe-4705-bdc7-78325de5dc72
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