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Safety analysis of slipping barefoot on marble covered wet areas

Safety science, v.47 no.10, 2009년, pp.1417 - 1428  

Sariisik, A. (Afyon Kocatepe University, Faculty of Engineering, Department of Mining, 03200 ANS Campus, Afyonkarahisar, Turkey)

Abstract AI-Helper 아이콘AI-Helper

This study was conducted in order to determine the suitable surface processing techniques which will increase the safety of pedestrians, reducing the risk of slipping on wet floor coverings on which they walk barefoot. In the scope of the study, slip angle of surface-processed marbles in three diffe...

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참고문헌 (48)

  1. Acar, H., 2004. Yuzey leme Hatları Kurulmasında ve letilmesinde Dikkat Edilecek Hususlar. TMMOB Maden Muhendisleri Odası Surekli Eitim Merkezi, Ankara, s. 203-213. 

  2. Adams 1997 Slips and Falls: Some Arguments About Measuring Coefficients of Friction 

  3. Barry, E.B., Milburn, P.D., 1999. A mechanism explaining traction of footwear on natural surfaces. In: Proceedings of Fourth World Congress, SC. Football. 

  4. Bowman, R., 1997. Slip resistance standards provide no unconditional guarantees. In: CSIRO Building, Construction and Engineering, Issue 12. 

  5. Bowman, R., 2003. Slip resistance ignorance: a recipe for costly falls. <http://www.infotile.com/tiletoday/issues/pdf/40article.pdf>. 

  6. Carpenter, J., Lazarus, D., Perkins, C., 2006. Safer surfaces to walk on reducing the risk of slipping. Construction Industry Research and Information Association (CI RIA) C652. 

  7. Celik, M.Y., 2001. Dı mekanlarda kullanılan mermerlerde doal bozumalar. Mermer, Doal Ta Sektorunun Dergisi zmir 29, pp. 66-70. 

  8. Safety Science Cham 40 559 2002 10.1016/S0925-7535(01)00059-5 Heel contact dynamics during slip events on level and inclined surfaces 

  9. Safety Science Chang 29 89 1998 10.1016/S0925-7535(98)00011-3 The effects of surface roughness on dynamic friction between neolite and quarry tile 

  10. International Journal of Industrial Ergonomics Chang 24 299 1999 10.1016/S0169-8141(98)00038-9 The effect of surface roughness on the measurement of slip resistance 

  11. Chang, W.R., 2003. The role of surface waviness in friction at shoe and floor interface. In: Proceedings of the Ergonomics Society Annual Conference, Edinburg, UK, pp. 105-110. 

  12. Ergonomics Chang 44 1200 2001 10.1080/00140130110085565 The role of surface roughness in the measurement of slipperiness 

  13. Safety Science Chang 42 755 2004 10.1016/j.ssci.2004.01.002 The effects of cut-off length on surface roughness parameters and their correlation with transition friction 

  14. DIN 18130-1, 1998. Laboratory Tests for Determining the Coefficient of Permeability of Soil, Part 1: Laboratory tests. Deutsches Institut Fur Normung E.V. 

  15. DIN 4768, 1990. Ermittlung der Rauheitskenngrossen Ra, Rz, Rmax mit elektrischen Tastschnittgeraten. Beuth Verlag, Berlin. 

  16. DIN 51130, 2004. Testing of Floor Coverings; Determination of the Anti-slip Properties; Workrooms and Fields of Activities with Slip Danger; Walking Method; Ramp Test. German National Standard. 

  17. DIN EN 1926, 1999. Natural Stone Test Methods-determination of Compressive Strength. Deutsche Norm, Berlin. 

  18. DIN EN 1936, 1999. Natural Stone Test Methods-determination of Real Density and Apparent Density. Deutsche Norm, Berlin. 

  19. DIN EN 51097, 1992. Testing of Floor Coverings; Determination of the Anti-slip Properties; Wet-loaded Barefoot Areas; Walking Method-ramp Test. Deutsche Norm, Berlin. 

  20. DIN EN ISO 4287, 1997. Geometrical Product Specifications (GPS)-Surface Texture: Profile Method-Terms, Definitions and Surface Texture Parameters. International Organization for Standardization, Geneve. 

  21. DIN EN ISO 4288, 1996. Geometrical Product Specifications (GPS)-Surface Texture: Profile Method-Rules and Procedures for the Assessment of Texture Parameters. International Organization for Standardization, Geneve. 

  22. Engin, .C., 2007. Doal Ta (Mermer) Maden letmecilii ve leme Teknolojileri. Dekoratif Ta lemecilii, Urun ceitlendirme Yontem ve Makineleri. Ankara, 8, pp. 594-595. 

  23. Engin, .C., Kulaksız, S., 2007. Doal Ta (Mermer) Maden letmecilii ve leme Teknolojileri. Doalta Parlatma-Cilalama Yontemleri ve Kullanılan makinelar, Ankara, 7, pp. 515-517. 

  24. Ergonomics Gronqvist 32 979 1989 10.1080/00140138908966859 An apparatus and a method for determining the slip resistance of shoes and floors by simulation of human foot motions 

  25. Ergonomics Gronqvist 38 224 1995 10.1080/00140139508925100 Mechanisms of friction and assessment of slip resistance of new and used footwear sales on contaminated metals 

  26. International Journal of Industrial Ergonomics Gronqvist 25 85 1999 10.1016/S0169-8141(98)00101-2 Evaluation of three portable floor slipperiness testers 

  27. Gurcan, S., 2006. Doal yapı malzemelerinde kaymazlık testi ve kayma direncinin belirlenmesi, Yuksek lisans tezi, A.K.U, Fen Bilimleri Enstitusu, Maden Muhendislii, Afyon. 

  28. Ergonomics Hanson 42 1619 1999 10.1080/001401399184712 Predicting slips and falls considering required and available friction 

  29. Kim, I.J., 1996a. Tribological approach for the investigation of pedestrian slipping and falling accidents. In: Proceedings of the 1996 International Occupational Injury Symposium, Sydney, Australia, February. 

  30. Kim, I.J., 1996b. Microscopic observation of shoe heels for pedestrian slip hazard investigation. In: Proceedings of the First Annual International Conference on Industrial Engineering Applications and Practice, Houston, TX, USA, December. 

  31. Kim, I.J., 1996c. Microscopic investigation to analyze the slip resistance of shoes. In: Proceedings of the Fourth Pan Pacific Conference on Occupational Ergonomics, Taiwan, ROC, November, pp. 68-73. 

  32. International Journal of Industrial Ergonomics Kim 33 395 2004 10.1016/j.ergon.2003.10.010 Development of a new analyzing model for quantifying pedestrian slip resistance characteristics. Part I-Basic concepts and theories 

  33. Kim, I.J., Smith, R., 1998. Tribological characterization of the frictional force component in pedestrian slip resistance measurements. In: Proceedings of the Third World Congress of Biomechanics (WCB ‘98), Hokkaido, Japan, August. 

  34. Kim, I.J., Smith, R., 1999. The relationship between wear, surface topography characteristics and coefficient of friction as a means of assessing the slip hazards. In: Proceedings of the Second Asia-Pacific Conference on Industrial Engineering and Management Systems (APIEMS ’99), Ashikaga, Japan, October, pp. 155-161. 

  35. International Journal of Industrial Ergonomics Kim 28 17 2001 10.1016/S0169-8141(01)00010-5 Microscopic observations of the progressive wear on shoe surfaces that affect the slip resistance characteristics 

  36. Kun, N., 2000. Mermer Jeolojisi ve Teknolojisi. Tezer Matbaası, zmir, p. 149. 

  37. Safety Science Leclercq 31 95 1999 10.1016/S0925-7535(98)00064-2 The prevention of slipping accidents: a review and discussion of work related to the methodology of measuring slip resistance 

  38. Applied Ergonomics Manning 32 185 2001 10.1016/S0003-6870(00)00055-7 The effect of roughness, floor polish, water, oil and ice on underfoot friction: current safety footwear solings are less slip resistant than microcellular polyurethane 

  39. Journal of Safety Research Manning 29 275 1998 10.1016/S0022-4375(98)00053-X The surface roughness of a rubber soling material determines the coefficient of friction on water-lubricated surfaces 

  40. Safety Science Marpet 40 705 2002 10.1016/S0925-7535(01)00068-6 Improved characterization of tribometric test results 

  41. Miller, B.C., 1999. Slip resistance standards: sorting it all out. Safety and Health, p. 62. 

  42. Journal of Testing and Evaluation, JTEVA Rowland 24 6 368 1996 10.1520/JTE11459J Surface roughness of footwear soling materials: relevance to slip resistance 

  43. Sariisik, A., 1998. Variation characteristics in the environment interaction and physico-mechanic properties of calcium carbonate marbles. Ph.D. Thesis, S.D.U, Institute of Sciences, Department of Mine Engineering, Isparta. 

  44. Sariisik, G., 2007. Technical characteristics of some Turkish natural stones with calcium carbonate root and their usage fields on structure and restoration. Master Thesis, A.K.U, Institute of Sciences, Department of Mine Engineering, Afyon. 

  45. Sariisik, A., Celik, M.Y., Gurcan, S., 2003. Mermerlerin Mineralojik-Petrografik Ozelliklerinin Jeomekanik Parametrelere Olan Etkileri, 20. Yıl Sempozyumu, Isparta, p. 203. 

  46. Building and Environment Sariisik 42 1707 2007 10.1016/j.buildenv.2006.01.020 Description of slipping test methods and application study on travertine by ramp slip meter 

  47. Senturk, A., Gunduz, L., Tosun, Y.I., Sariisik, A., 1996. Marble Technology. Tugra Pres, Isparta, Turkey (in Turkish). 

  48. Journal of Occupational Accidents Strandberg 3 153 1981 10.1016/0376-6349(81)90009-2 The dynamics of slipping accidents 

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