期刊文献+

Curling of New Concrete Pavement and Long-Term Performance

Curling of New Concrete Pavement and Long-Term Performance
在线阅读 下载PDF
导出
摘要 Curling results from the temperature differential across the concrete slab thickness and may induce undue stresses in newly placed slab. This study deals with the finite element (FE) analysis of curling, curling stresses, field measurement of curling on a newly built jointed plain concrete pavement, and comparison of its long-term performance using both Mechanistic-Empirical Pavement Design Guide (MEPDG) and HIPERPAVII software. The FE analysis was performed with a software program, ANSYS. The test section was modeled as a three-layer system with 300 mm concrete slab, 100 mm treated drainable base, and 150 mm lime-treated subgrade. All layers were assumed to be linear elastic. Temperature data was collected at five different depth locations across the concrete slab with digital data loggers. Curling was measured on five different days with a simple setup. The effect of temperature nonlinearities across the slab thickness was also examined. The results show that both upward and downward curling increase as the temperature differential increases. The maximum stress resulting from the combined effect of curling and traffic loading due to positive temperature differential is higher than that due to the negative temperature differential of the same magnitude. Since temperature differential has a significant influence on curling, both curling and curling stresses can be mitigated at an early age with temperature control, namely via enhanced curing. Both MEPDG and HIPERPAVII showed approximately the same performance for the PCC thickness ranging from 215 mm to 300 mm for this project. Performance prediction from HIPERPAVII is very sensitive to the change in PCC thickness less than 230 mm whereas MEPDG prediction is not as sensitive to the thickness change as with HIPERPAV 1I.
出处 《Journal of Civil Engineering and Architecture》 2012年第2期121-130,共10页 土木工程与建筑(英文版)
关键词 CURLING HIPERPAVII long-term performance MEPDG. 水泥混凝土路面 长期性能 混凝土楼板 厚度变化 有限元分析 软件程序 混凝土板
  • 相关文献

参考文献15

  • 1ACI Committee 116.1978, Cement and Concrete Terminology, SP-19(78), American Concrete Institute,Detroit, Michigan, ANSYS, 2003, Structural Analysis Guide, ANSYS, Inc., Pennsylvania.
  • 2T. Tang, D. G. Zollinger and S. Senadheera, Analysis of concave curling in concrete slabs, Journal of Transportation Engineering 119 (4) (1993) 18-32.
  • 3M. Emborg, Thermal stresses in concrete structures at early ages, Ph.D. Dissertation, Lulea University of Technology, Lulea, Sweden, 1989.
  • 4C. A. Beckemeyer, L. Khazanovich and H. T. Yu, Determining amount of built-in curling in jointed plain concrete pavement, Journal of Transportation Research Board 1809 (2002) 85-92.
  • 5Y. H. Huang, Pavement Analysis and Design (2nd ed.), Prentice Hall, Inc., N J, 2004.
  • 6C. R. Byrum, Analysis of LTPP JCP slab curvature using high speed profiles, Journal of Transportation Research Board 1730 (2000) 1-9.
  • 7B. Choubane and M. Tia, Nonlinear Temperature Gradient Effect on Maximum Warping Stresses in Rigid Pavements, in: Transportation Research Record: Journal of Transportation Research Board 1370 (1992) 11-19.
  • 8J. Zhang, T. W. Fwa, K. H. Tan and X. P. Shi, Model for nonlinear thermal effect on pavement warping stresses, Journal of Transportation Engineering 129 (6) (2003) 695-702.
  • 9E. J. Yoder and M. W. Witczak, Principles of Pavement Design, Wiley, NY, 1975.
  • 10Button, Dallas Semiconductor Corporation, 2003, available online at: http://www.ibutton.com.

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部