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The hazards occurring during the construction and reconstruction of metal structures

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The variability of hazards occurring during the construction and expansion of temporary metal structures is the result of many factors. It mainly depends on the environment in which the structure is to be built and the ground on which it is to be located. The fitter generates the most threats during work related to the transfer of elements of a given metal structure as well as assembly and disassembly, and therefore the fitter is the most exposed person to any threats related to the construction of a metal structure.
Wydawca
Rocznik
Strony
151--159
Opis fizyczny
Bibliogr. 44 poz., tab.
Twórcy
  • Faculty of Management, Czestochowa University of Technology, Poland
  • Faculty of Management, Czestochowa University of Technology, Poland
  • Faculty of Management, Czestochowa University of Technology, Poland
Bibliografia
  • 1. Bajwoluk T., 2021. Planning of areas in the vicinity of large industrial plants, Technical Transactions, 118, art. e2021027. DOI: 10.37705/TechTrans/e2021027
  • 2. Bartlett, L., Martin, A., Neil, A. L., Memish, K., Otahal, P., Kilpatrick, M., & Sanderson, K. (2019). A systematic review and meta-analysis of workplace mindfulness training randomized controlled trials. Journal of occupational health psychology, 24(1), 108.
  • 3. Chong, D., Yu, A., Su, H., & Zhou, Y. (2022). The Impact of Emotional States on Construction Workers’ Recognition Ability of Safety Hazards Based on Social Cognitive Neuroscience. Frontiers in psychology, 13, 895929
  • 4. Chrzan T., 2021. A method for determining the financial cost of damage to buildings caused by seismic ground vibrations, Technical Transactions, 118, art. e2021022. DOI: 10.37705/TechTrans/e2021022
  • 5. Ciecińska, B. and Oleksiak, B. "The use of quality management tools to ensure safe working conditions at CO2 laser workstations" Production Engineering Archives, vol.29, no.4, 2023, pp.393-400. https://doi.org/10.30657/pea.2023.29.44
  • 6. Cieśliński K., Malaga-Toboła U., 2021. Impact of thermal renovation on selected characteristics of partition walls and the consumption of heat energy, Technical Transactions, 118, art. e2021018. DOI: 10.37705/TechTrans/e2021018
  • 7. Develi, A. (2020). Identifying Structural Hazards in Building Construction Projects: A research into structural failure databases and risk assessments.
  • 8. Fang, W., Ma, L., Love, P. E., Luo, H., Ding, L., & Zhou, A. O. (2020). Knowledge graph for identifying hazards on construction sites: Integrating computer vision with ontology. Automation in Construction, 119
  • 9. Hou, L., Wu, S., Zhang, G., Tan, Y., & Wang, X. (2020). Literature review of digital twins applications in construction workforce safety. Applied Sciences, 11(1), 339.
  • 10. Ingaldi, M., Dziuba, S., 2016. Supervisor's Assessment as an Element Effecting Technological Process in Chosen Metallurgical Company, 25th International Conference on Metallurgy and Materials, Ostrava, Tanger, 289-294.
  • 11. Kasner, R., Flizikowski, J., Tomporowski, A., Kruszelnicka, W., Idzikowski, A., 2019. Ecological Efficiency Assessment Model for Environmental Safety Management of Wind Power Plant, System Safety: Human - Technical Facility - Environment, 1, 371-377. DOI: 10.2478/czoto-2019-0047
  • 12. Klimecka-Tatar, D., & Ingaldi, M. (2022). Digitization of processes in manufacturing SMEs-value stream mapping and OEE analysis. Procedia Computer Science, 200, 660-668.
  • 13. Klimecka-Tatar, D., & Matevž, O. (2020). The Level of Occupational Health and Safety in European Enterprises Providing Transport and Logistics Services in Terms of Quality Management Principles. Multidisciplinary Aspects of Production Engineering, 3(1), 394-404.
  • 14. Klimecka-Tatar, D., Ulewicz, R., & Ingaldi, M. (2023). Minimizing occupational risk by automation of the special processes-based on occupational risk assessment. Procedia Computer Science, 217, 1145-1152.
  • 15. Knutson, B., & Huettel, S. A. (2015). The risk matrix. Current Opinion in Behavioral Sciences, 5, 141-146.
  • 16. Krynke, M., Knop, K., Mazur, M., 2022. Maintenance management of large-size rolling bearings in heavy-duty machinery, Acta Montanistica Slovaca, 27(2), 327-341. DOI: 10.46544/AMS.v27i2.04
  • 17. Kuciel, S., Bazan, P., Liber-Kneć, A., Gadek-Moszczak, A., 2019. Physico-mechanical properties of the poly(oxymethylene) composites reinforced with glass fibers under dynamical loading, Polymers, 11(12), art. 2064. DOI: 10.3390/polym11122064
  • 18. Kuzior, A., 2022. Technological Unemployment in the Perspective of Industry 4.0 Development, Virtual Economics, 5(1), 7-23. DOI: 10.34021/VE.2022.05.01(1)
  • 19. Kuzior, A., Staszek, M., 2021. Energy management in the railway industry: A case study of rail freight carrier in Poland, Energies, 14(21), art.6875-. DOI: 10.3390/en14216875
  • 20. Kuzior, A., Zozul'ak, J., 2019. Adaptation of the Idea of Phronesis in Contemporary Approach to Innovation, Management Systems in Production Engineering, 27(2), 84-87. DOI: 10.1515/mspe-2019-0014
  • 21. Lee, H., Lee, G., Lee, S., & Ahn, C. R. (2021). Assessing exposure to slip, trip, and fall hazards by measuring construction worker loss of balance. In Computing in Civil Engineering 2021 (pp. 66-73).
  • 22. Liao, P. C., Sun, X., & Zhang, D. (2021). A multimodal study to measure the cognitive demands of hazard recognition in construction workplaces. Safety science, 133, 105010
  • 23. Mallakpour, S., Hussain, C. M., Ajith, S., & Arumugaprabu, V. (2021). Environmental and Occupational Health Hazards of Nanomaterials in Construction Sites. Handbook of Consumer Nanoproducts, 1-12
  • 24. Mazur, M., 2018. Analysis of production incompatibilities and risk level in series production of assembly elements for the automotive industry, MATEC Web of Conferences, 183, art. 03011. DOI: 10.1051/matecconf/201818303011
  • 25. Nedeliaková, Eva, Hranický, Michal Petr and Valla, Michal. "Risk identification methodology regarding the safety and quality of railway services" Production Engineering Archives, vol.28, no.1, 2022, pp.21-29. https://doi.org/10.30657/pea.2022.28.03
  • 26. Niciejewska, M., & Klimecka-Tatar, D. (2016). Evaluation of static load in dentists’ work by means of OWAS method. Czasopismo Techniczne, 2016(Mechanika Zeszyt 3-M (10) 2016), 125-130.
  • 27. Nnaji, C., & Karakhan, A. A. (2020). Technologies for safety and health management in construction: Current use, implementation benefits and limitations, and adoption barriers. Journal of Building Engineering, 29, 101212.
  • 28. Okpala, I., Nnaji, C., & Karakhan, A. A. (2020). Utilizing emerging technologies for construction safety risk mitigation. Practice Periodical on Structural Design and Construction, 25(2), 04020002.
  • 29. Ormaniec P., Mikosz J., 2022. A review of methods for the isolation of microplastics in municipal wastewater treatment, Technical Transactions, 119, art. e2022010. DOI: 10.37705/TechTrans/e2022010
  • 30. Pietraszek, J., Radek, N., Goroshko, A.V., 2020. Challenges for the DOE methodology related to the introduction of Industry 4.0, Production Engineering Archives, 26(4), 190-194. DOI: 10.30657/pea.2020.26.33
  • 31. Radek, N., Dwornicka, R., 2020. Fire Properties of Intumescent Coating Systems for the Rolling Stock, Communications - Scientific Letters of the University of Žilina, 22(4), 90-96. DOI: 10.26552/com.C.2020.4.90-96
  • 32. Sergey, K. (2021). Methodology for Building Automated Systems for Monitoring Engineering (Load-Bearing) Structures, and Natural Hazards to Ensure Comprehensive Safety of Buildings and Constructions. International Journal of Disaster Risk Management, 3(2), 1-10
  • 33. Shanti, M. Z., Cho, C. S., de Soto, B. G., Byon, Y. J., Yeun, C. Y., & Kim, T. Y. (2022). Real-time monitoring of work-at-height safety hazards in construction sites using drones and deep learning. Journal of safety research, 83, 364-370
  • 34. Sun, C., Hon, C. K., Way, K. A., Jimmieson, N. L., & Xia, B. (2022). The relationship between psychosocial hazards and mental health in the construction industry: A meta-analysis. Safety science, 145
  • 35. Twaróg B., 2023a. Modelling a pumped storage power plant on the example of the Porąbka Żar power plant, Technical Transactions, 120, art. e2023001. DOI: 10.37705/TechTrans/e2023001
  • 36. Twaróg B., 2023b. Modelling of the Solina-Myczkowce pumped storage power plant, Technical Transactions, 120, art. e2023002. DOI: 10.37705/TechTrans/e2023002
  • 37. Uddin, S. M., Albert, A., Alsharef, A., Pandit, B., Patil, Y., & Nnaji, C. (2020). Hazard recognition patterns demonstrated by construction workers. International Journal of Environmental Research and Public Health, 17(21), 7788.
  • 38. Ulewicz, R., Mazur, M., Bokůvka, O., 2013. Structure and mechanical properties of fine-grained steels, Periodica Polytechnica Transportation Engineering, 41(2), 111-115. DOI: 10.3311/PPtr.7110
  • 39. Ulewicz, R., Mazur, M., Knop, K., Dwornicka, R., 2020. Logistic controlling processes and quality issues in a cast iron foundry, Materials Research Proceedings, 17, 65-71. DOI: 10.21741/9781644901038-10
  • 40. Warzocha K., 2021. Rehearsal rooms in the context of Norwegian standard ns 8178:2014, Technical Transactions, 118, art. e2021028. DOI: 10.37705/TechTrans/e2021028
  • 41. Yadav, B. P., Vashishtha, S., & Mehta, D. (2022). Hazards and Risk with Heavy Machineries Operation at Construction Site: Preventive Approach. In Advances in Construction Safety: Proceedings of HSFEA 2020 (pp. 143-152). Singapore: Springer Nature Singapore
  • 42. Yang, K., Ahn, C. R., & Kim, H. (2019). Validating ambulatory gait assessment technique for hazard sensing in construction environments. Automation in Construction, 98, 302-309
  • 43. Zhang, M., Shi, R., & Yang, Z. (2020). A critical review of vision-based occupational health and safety monitoring of construction site workers. Safety science, 126, 104658
  • 44. Zhou, L., Song, H., Liang, J., Singer, M., Zhou, M., Stegenburgs, E., ... & Gan, Q. (2019). A polydimethylsiloxane-coated metal structure for all-day radiative cooling. Nature Sustainability, 2(8), 718-724.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2024).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-26a5d130-3e37-48ec-bb2d-cd0c98ca5999
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