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Development of Korean Life Cycle Cost Analysis Model for Road Pavement Asset Management

도로포장자산관리를 위한 한국형 생애주기비용 모형 개발

  • 한대석 (한국건설기술연구원 SOC성능연구소 도로포장연구실) ;
  • 도명식 (한밭대학교 도시공학과)
  • Received : 2012.12.18
  • Accepted : 2013.06.04
  • Published : 2013.07.30

Abstract

Road pavement management is an important activity that affects to national economy, movement and safety of people, and also demands huge amount of budget. Therefore, its management strategy must be established under objective information. In addition, decision support system that produces the management strategy needs to consider practical benefits from various aspects. Considering these aspects, this paper aimed to develop a customized Korean life cycle cost analysis model estimating various effects on road users and socio-environmental costs based on pavement condition. The suggested LCCA model focused on Korean national highway, and tried to adopt a national guideline recommended by Korean government for securing credibility of estimation results. In the development processes, some of the suggestions that do not fit well in the situations of pavement management field were added, altered, or partially modified. These attempts to develop customized asset management system would be an important step to break away from passive attitudes relying on ready-made software, but also to improve awareness about the social benefits from the better maintenance strategy.

도로관리는 도로의 건설과 동시에 반 영구적으로 지속하여야 하는 행위로써, 막대한 예산이 소요됨은 물론 국가 경제 및 국민의 이동과 안전에 영향을 미치는 중요한 요소이다. 이와 관련된 전략은 당연히 객관적인 정보 하에 수립되어야 하며, 그를 뒷받침 하는 의사결정시스템은 도로투자 효과에 대한 사회적 편익을 보다 현실적이고 다양한 측면에서 고려하여 개발될 필요가 있다. 이에 본 연구에서는 관리자비용은 물론 도로포장 상태를 함수로 하여 도로이용자 및 사회환경비용을 예측할 수 있는 한국형 생애주기비용모형을 개발하고자 하였다. 제시된 모형은 우리나라 국도 실정에 맞추어 개발되었으며, 결과의 공신력을 확보하기 위해 정부(국토교통부)가 제시하는 투자평가지침을 가능한 참조 하되 포장관리분야의 실정에 맞지 않거나 개선의 여지가 있는 사항들에 대해서는 추가, 대체, 부분수정을 통해 개발되었다. 이러한 자기화 된 시스템을 개발하고자하는 시도는 그간 상용화된 분석프로그램에 의존하던 소극적 도로자산관리를 탈피함은 물론, 도로관리로 인한 사회적 편익에 대한 인식개선에 중요한 첫걸음이 될 것이다.

Keywords

References

  1. American Association of State Highway Officals (AASHTO) (1978). A manual on user benefit analysis of highway and bus transit improvements, American Association of State Highway Officials, Washington, D.C.
  2. Bennett, C. R. (1989). The New Zealand vehicle operating cost model, RRU Bulletin 82, Transit New Zealand, Wellington.
  3. Bennett, C. R. and Greenwood, I. D. (2000). Highway development and management series vol. 7: Modeling Road User and Environmental Effects in HDM-4, The World Road Association (PIARC), La Defense.
  4. Bonney, R. S. P. and Stevens, M. F. (1967). Vehicle operating costs on bituminous, gravel and earth roads in East and Central Africa, Road Research Technical Paper No. 76, Ministry of Transport, London.
  5. Chan, C. Y., Huang, B., Yan, X. and Richards, S. H. (2009). "Effects of asphalt pavement conditions on traffic accidents in tennessee utilizing pavement management system." Transportation Research Board Annual Meeting 2009, Paper #09-2054, Transportation Research Board (TRB), Washington, D.C.
  6. Chatti, K. and Zaabar, I. (2012). NCHRP Report 720: Estimating the effects of pavement condition on vehicle operating costs, Trans- portation Research Board (TRB), Washington, D.C.
  7. de Weille, J. (1966). Quantification of road user savings, World Bank Staff Occasional Paper No.2, The World Bank, Washington, D.C.
  8. Do, M.-S., Han, D.-S., Yoo, I.-K. and Lee, S.-H. (2006). "Performance and economic analysis for rut-resistance pavement considering life cycle cost." J. of the Korean Society of Civil Engineering, Vol. 26, No. 5D, pp. 783-796 (in Korean).
  9. Do, M.-S., Han, D.-S., Lee, J.-D. and Lee, Y.-U. (2007). "Economic analysis for road pavement maintenance by using HDM." J. of the Korean Society of Civil Engineering, Vol. 27, No. 3D, pp. 311-323 (in Korean)
  10. Federal Highway Administration (FHWA) (2001). Traffic monitoring guide, Federal Highway Administration, Washington, D.C.
  11. Federal Highway Administration (FHWA) (1998). Life-cycle cost analysis in pavement design: in search of better investment decisions, FHWA-SA-98-079, Federal highway Administration, Washington, DC, U.S.
  12. Goodman, A. S. and Hastak, M. (2006). Infrastructure planning handbook: planning, Engineering, and Economics, American Society of Civil Engineers (ASCE) Press, McGRAW-HILL, U.S.
  13. Han, D.-S. (2011). Development of open-source hybrid pavement management system for an international standard, A PhD. Dissertation, Kyoto University, Kyoto, Japan.
  14. Han, D.-S. and Do, M.-S. (2012a). "Estimation of life expectancy and budget demands based on maintenance strategy." J. of the Korean Society of Civil Engineering, Vol. 32, No. 6D, pp. 345-356 (in Korean). https://doi.org/10.12652/Ksce.2012.32.4D.345
  15. Han, D.-S. and Do, M.-S. (2012b). "Life cycle cost analysis on pavement inspection intervals considering delay in maintenance." KSCE J. of Civil Engineering (in review).
  16. Han, D.-S., Kaito, K. and Kobayashi, K. (2012c). "Application of Bayesian estimation method with Markov hazard model to improve deterioration forecasts for infrastructure management." KSCE J. of Civil Engineering (in review).
  17. Han, D.-S. Do, M.-S., Kim, S.-H. and Kim, J.-H. (2007). "Life cycle cost analysis of pavement maintenance standard considering user and socio-environmental cost." J. of the Korean Society of Civil Engineering, Vol. 27, No. 6D, pp. 727-740 (in Korean).
  18. Hide, H., Abaynayaka, S. W., Sayer, I. and Wyatt, R. J. (1975). The Kenya road transport cost study: Research on Vehicle Operating Costs, Transport and Road Research Laboratory Report LR672, Department of the Environment, Crowthorne.
  19. Kobayashi, K., Do, M.-S. and Han, D.-S. (2010). "Estimation of Markovian transition probabilities for pavement deterioration forecasting." KSCE J. of Civil Engineering, Vol. 14, No. 3, pp. 341-351. https://doi.org/10.1007/s12205-010-0343-x
  20. Kobayashi, K., Ejiri, R. and Do, M.-S. (2008). "Pavement management accounting system." J. of Infrastructure Systems, ASCE., Vol. 14, No. 2, pp. 159-168.
  21. Kobayashi, K., Kaito, K. and Nam, L. T. (2012). "A statistical deterioration forecasting method using hidden Markov model with measurement error." Transportation Research-Part B, Vol. 46, pp. 544-561. https://doi.org/10.1016/j.trb.2011.11.008
  22. Korea Institute of Construction Technology (KICT) (2008). A guideline for vehicle classification: 12 types-based, Ministry of Land, Transportation, and Maritime Affair (MLTM) (in Korean)
  23. Korea Institute of Construction Technology (KICT) (2009). Finalreport of the national highway pavement management system 2008, Ministry of Land, Transportation, and Maritime Affair (MLTM) (in Korean).
  24. Ministry of Land, Transportation, and Maritime Affair (MLTM) (2011). A guidebook for investment of transportation facilities(4th edition), Report ID 2011-655, MLTM (in Korean).
  25. Morosiuk, G. and Abaynayaka, S. W. (1982). Vehicle operating cost in the Caribbean: An Experimental Study of Vehicle Performance, TRRL Laboratory Report 1056. Transport and Road Research Laboratory, Crowthorne.
  26. Permanent International Association of Road Congresses (PIARC) (2000). Highway development and management series: vol. 1-7, The World Road Association, La Defense.
  27. Statistics Korea (2012). Index title: Current status of total length of Korean national highways, A webpage, (available in: http:// www.index.go.kr/egams/stts/jsp/potal/stts/PO_STTS_IdxM ain.jsp?idx_cd=1211&bbs=INDX_001&clas_div=C&rootK ey=1.48.0) (in Korean).
  28. Traffic Monitoring System (TMS) (2012). Traffic monitoring system of Korea national highway, A website, (available in: http://www. road.re.kr/).
  29. Transportation Research Board (TRB) (2000). Highway Capacity Manual(HCM 2000; 5th eds.), TRB, Washington, D.C.
  30. Tsuda, Y., Kaito, K., Aoki, K. and Kobayashi, K. (2006). "Estimating Markovian transition probabilities for bridge deterioration forecasting." J. of Structural Engineering and Earthquake Engineering, JSCE., Vol. 23, No. 2, pp. 241-256. https://doi.org/10.2208/jsceseee.23.241s
  31. Uddin, W. and Torres-Verdin, V. (1998). "Service life analysis for managing road pavement in Mexico." A Proc. of 4th International Conference on Managing Pavements, Durban, Vol.2, May 17-21, pp. 882-898.
  32. Watanatada, T. (1981). Highway design and maintenance standards model (HDM); model description and user's manual-release II, Transportation, Water and Telecommunications Department Report, the World Bank, Washington, D.C.
  33. Yang, J.-D., Gunaratne, M., Lu, J. J. and Dietrich, B. (2005). "Use of recurrent Markov chains for modeling the crack performance of flexible pavements." J. of Transportation Engineering, ASCE., Vol. 131, No. 11, pp. 861-872. https://doi.org/10.1061/(ASCE)0733-947X(2005)131:11(861)

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