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http://dx.doi.org/10.1016/j.ijnaoe.2021.06.009

Method for determining the design load of an aluminium handrail on an offshore platform  

Kim, Yeon Ho (Department of Naval Architecture and Ocean Engineering, Pusan National University)
Park, Joo Shin (Central Research Institute, Samsung Heavy Industries Co., Ltd.)
Lee, Dong Hun (Central Research Institute, Samsung Heavy Industries Co., Ltd.)
Seo, Jung Kwan (Department of Naval Architecture and Ocean Engineering, Pusan National University)
Publication Information
International Journal of Naval Architecture and Ocean Engineering / v.13, no.1, 2021 , pp. 511-525 More about this Journal
Abstract
Aluminium outfitting is widely used in offshore platforms owing to its anti-corrosion ability and its light weight. However, various standards exist (ISO, NORSOK and EN) for the design of handrails used in offshore platforms, and different suppliers have different criteria. This causes great confusion for designers. Moreover, the design load required by the standards is not clearly defined or is uncertain. Thus, many offshore projects reference previous project details or are conservatively designed without additional clarification. In this study, all of the codes and standards were reviewed and analysed through prior studies, and data on variable factors that directly and indirectly affect the handrails applied to offshore platforms were analysed. A total of 50 handrail design load scenarios were proposed through deterministic and probabilistic approaches. To verify the proposed new handrail design load selection scenario, structural analysis was performed using SACS (offshore structural analysis software). This new proposal through deterministic and probabilistic approaches is expected to improve safety by clarifying the purpose of the handrails. Furthermore, the acceptance criteria for probabilistic scenarios for handrails suggest considering the frequency of handrail use and the design life of offshore platforms to prevent excessive design. This study is expected to prevent trial and error in handrail design while maintaining overall worker safety by applying a loading scenario suitable for the project environment to enable optimal handrail design.
Keywords
Handrail; Aluminium; Offshore platform; Deterministic approach; Probabilistic approach; Design load;
Citations & Related Records
Times Cited By KSCI : 1  (Citation Analysis)
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1 BS 4592-0, 2006. Industrial Type Flooring and Stair Treads, Part 0: Common Design Requirements and Recommendations for Installation. British Standards Institution.
2 Maki, B.E., Perry, S.D., 1996. Influence of handrail design on postural stabilization. Centre for Studies in Aging, Sunnybrook Health Science Centre, University of Toronto.
3 NORSOK S-002, 2004. Working Environment. Standard Norge. Rev. 4.
4 Paik, J.K., Czujko, J., Kim, B.J., Seo, J.K., Ryu, H.S., Ha, Y.C., Janiszewski, P., Musial, B., 2011. Quantitative assessment of hydrocarbon explosion and fire risks in offshore installations. Mar. Struct. 24 (2), 73-96.   DOI
5 Paik, J.K., Lee, D.H., Kim, S.J., Thomas, G., Ma, M., 2019. A new method for determining the design values of wave-induced hull girder loads acting on ships. Ships Offshore Struct. 14 (Suppl. 1), 63-90.   DOI
6 Ye, K.Q., 1998. Orthogonal column Latin Hypercube and their application in computer experiments. J. Am. Stat. Assoc. 93 (444), 1430-1439.   DOI
7 API, 2014. Planning, Designing and Constructing Fixed Offshore Platforms - Working Stress Design. RP 2A-WSD. American Petroleum Institute.
8 EN 1005-3, 2008. Safety of Machinery - Human Physical Performance - Part 3: Recommended Force Limits for Machinery Operation. International Organization for Standardization.
9 Paik, J.K., 2020. Advanced Structural Safety Studies with Extreme Conditions and Accidents. Springer Nature Singapore Pte Ltd.
10 ISO 4254-1, 2013. Agricultural Machinery - Safety - Part 1: General Requirements. International Organization for Standardization.
11 WorldData.info, 2019. Average Sizes of Men and Women. https://www.worlddata.info/average-bodyheight.php.
12 EN ISO 11228-1, 2003. Ergonomic - Manual Handling, Part 1: Lifting and Carrying. International Organization for Standardization.
13 EN ISO 14122-3, 2001. Safety of Machinery - Permanent Means of Access to Machinery - Part 3: Stairs, Stepladders and Guard-Rails. International Organization for Standardization.
14 Huh, J.W., Jung, H.W., Ahn, J.H., An, S.W., 2015. Probabilistic risk assessment of coastal structures using LHS-based reliability analysis method. J. Kor. Inst. Struct. Mainten. Inspect. 19 (6), 72-79.   DOI
15 Yang, Y.S., Park, C.K., Ruy, W.S., 2004. A study on the preliminary ship design method using deterministic approach and probabilistic approach. J. Soc. Naval Arch. Kor. 41 (3), 49-59.   DOI
16 Youssef, S., Paik, J.K., 2018. Hazard identification and scenario selection of ship grounding accidents. Ocean. Eng. 153, 242-255.   DOI
17 Anderson, T.W., Darling, D.A., 1954. A test of goodness-of-fit. J. Am. Stat. Assoc. 49 (268), 765-769.   DOI
18 BS EN 16116-1, 2013. Railway Applications - Design Requirements for Steps, Handrails and Associated Access for Staff - Part 1: Passenger Vehicles, Luggage Vans and Locomotives. British Standards Institution.
19 DNV GL-RP-C203, 2016. Fatigue design of offshore steel structures. Det Norske Veritas.
20 EN 795, 1997. Protection against Falls from a Height. Anchor Devices. Requirements and Testing. International Organization for Standardization.
21 AS, 1657. 2013. Fixed Platforms, Walkways, Stairways and Ladders - Design, Construction and Installation (Standards Australia).
22 AWS, 2004. Structural Welding Code - Steel. D1.1/D1.1M. American Welding Society.
23 DNV GL CN 30.5, 2000. Environment conditions and environmental loads. Det Norske Veritas.
24 EN 353-1, 2002. Personal Protective Equipment against Falls from a Height - Part 1: Guided Type Fall Arresters Including a Rigid Anchor Line. International Organization for Standardization.
25 EN ISO 11228-2, 2003. Ergonomic - Manual Handling, Part 2: Pushing and Pulling. International Organization for Standardization.
26 IRATA, 2013. International code of practice for industrial Rope access, Part 1: foreword, introduction, scope, structure, terms and definitions, principles and controls. Int. Rope Access Trade Assoc.
27 KOSIS, 2019. Korean Statistical Information Service. https://kosis.kr/.
28 ISO 2867, 2011. Earth-Moving Machinery - Access Systems. International Organization for Standardization.
29 Kim, Y.H., Park, J.S., Shin, H.C., Kim, S.J., Park, D.K., Ha, Y.C., Seo, J.K., 2020. A review of IOSS design standardization technology for aluminium alloy handrail of offshore platform. J. Ocean Eng. Technol. 34 (3), 208-216.   DOI
30 KOSHA, 2019. Occupational Safety and Health Act. Korea Occupational Safety and Health Agency (Chapter 37).