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건설기계작업 사망사고 예방을 위한 위험관리

Risk Management for Preventing Workers' Deaths in Construction Machinery Work

  • 양승수 (한경대학교 토목안전환경공학과) ;
  • 백신원 (한경대학교 사회안전시스템공학부)
  • Yang, Seungsoo (Department of Civil, Safety and Environmental Engineering. Hankyong National University) ;
  • Paik, Shinwon (Department of Social Safety Engineering. Hankyong National University)
  • 투고 : 2020.03.12
  • 심사 : 2020.06.01
  • 발행 : 2020.06.30

초록

The use of construction machinery has been increasing every year due to the large scale, high-rise and lack of workers in construction work. On the other hand, deaths are on the rise every year due to inadequate risk management for construction machinery work. In addition, the number of deaths caused by the lack of signals or insufficient signals during construction machinery work is increasing rapidly, and it is deemed necessary to analyze the actual conditions and take countermeasures. Therefore this study has developed the Strength Risk Index (SRI) based on the Frequency Risk Index (FRI) and the 5W1H by analyzing in-depth deaths caused by construction machinery over the past five years. The risk index (RI) was assessed using the frequency and strength risk index derived to determine whether it is acceptable (acceptable risk < 0.25 ≦ unacceptable risk) and the risk assessment method for reducing risk was proposed by applying 3E (Engineering, Education, Enforcement) measures for each level of risk for unacceptable risk. It also proposed measures to improve the system, such as requirements for signal numbers, mandatory placement standards, and mandatory installation of side and rear monitoring cameras, as measures for accidents caused by failure to deploy signals or insufficient signals, which account for the highest proportion of deaths among construction machinery operators and workers.

키워드

참고문헌

  1. J. K. Ho, "Mobile Crane", Goomi Books Inc., pp. 4-20, 2014.
  2. Korea Occupational Safety and Health Agency, "Annual Report on Analysis of Industrial Accidents", 2014-2018.
  3. Ministry of Land, Infrastructure and Transport's Construction Industry, "Construction Machinery Status Statistics", 2019.
  4. J. Y. Soh, J. B. Lee and C. H. Han, "Development of Omnidirectional Object Detecting Technology for a Safer Excavator", Journal of the Korea Institute of Building Construction, Vol. 10, No. 4, pp. 105-112, 2010. https://doi.org/10.5345/JKIC.2010.10.4.105
  5. Y. K. Park, "The Study for Accidents Prevention through the Analysis of Construction Machinery-related Accidents", Journal of Korea Safety Management and Science, Vol. 16, No. 3, pp. 71-79, 2014. https://doi.org/10.12812/ksms.2014.16.3.71
  6. D. H. Son, D. H. Song and S. S. Go, "A Study on the Accident Case and Analysis on the Actual Condition of Construction Machinery in Railroad Construction Sites", J. Korean Soc. Saf., Vol. 30, No. 5, pp. 20-28, 2015. https://doi.org/10.14346/JKOSOS.2015.30.5.20
  7. H. W. Jeon, I. S. Jung and C. S. Lee, "Risk Assessment for Reducing Safety Accidents caused by Construction Machinery", J. Korean Soc. Saf., Vol. 28, No. 6, pp. 64-72, October 2013. https://doi.org/10.14346/JKOSOS.2013.28.6.064
  8. Korea Occupational Safety and Health Agency, "Counterplan for Reducing Accidental Deaths caused by 5 Major Construction Machines and Equipments", 2019.
  9. S. K. Jung and S. R. Chang, "A Study on the Risk Assessment System for Human Factors", J. Korean Soc. Saf., Vol. 29, No. 3, pp. 79-84, 2014. https://doi.org/10.14346/JKOSOS.2014.29.3.079