Comprehensive Evaluation of Safety for Bored Pile Construction of Chishi Bridge

Article Preview

Abstract:

Chishi Bridge is seated on Carboniferous limestone and Carbon limestone in which karst is strongly developed. Based on analysis the characteristics of the construction of bored Pile an geology, a scientific safety assessment system is the established and Fuzzy AHP(Analytic Hierarchy Process) is used to conduct a comprehensive safety assessment. The results are accordant with the actual and good results can be achieved. But in practice same new situation may be meted, the evaluation system suit be improved and supplement constantly to make the system more perfect.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

1104-1113

Citation:

Online since:

July 2014

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2014 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] XU Hui-xiong, ZHANG Tao, YAN Jun. Quality Control for Extra-deep Large- diam eter Borehole Cast-in-place Pile Construction inW enzhou TradeM ansion [J]. Exploration Engineering(Rock & Soil Drilling and Tunneling) , 2004, 26(9): 35-37.

Google Scholar

[2] DU Qiang. Main index control of super-long constru- ction[J]. Railway Standard Design, 2009, 16(supp): 73-75.

Google Scholar

[3] GONG Dao-ping, HU Hui-hua, XIA Li-wei. analysis of geological condition[J]. Hunan Communication Science and Technology, 2009, 35(3): 103-105).

Google Scholar

[4] HUANG Zheng-xiong. The study of quality control method for construction of main pier of chishi grand bridge[J]. Hunan Communica- tion Science and Technology, 2011, 37 (2): 122-124).

Google Scholar

[5] DAI Bo. Main point analysis of safety control for construction of bored piles[J]. Value Engineering, 2010, 3(2): 177.

Google Scholar

[6] HE Xian-qi, ZHANG qing, ZHU Zhi-qiang. comprehensive dynamic fuzzy evaluation for construction safety of manual digging pile in limestone area[J]. Journal of Chongqing University, 2011, 34(3): 132-137.

Google Scholar

[7] DUN Shu-yong, LIU Lang. Fuzzy Evaluation on Influence Factors of Chongqing Undergrou- nd Space[J]. Journal of Chongqing jiaotong University, 2012, 12 (20): 33-36.

Google Scholar

[8] ZHAO Song-xu, QIAN Cai, TIAN Yuan-fu. Application of AHP and Fuzzy Evaluation in the Multi- scheme.

Google Scholar

[9] Evaluation of Bridge[J]. Communications Standardi- zation, 2007, 17(1): 75-78.

Google Scholar

[10] JIANG Gen-mou, SUN Kang, DAI Xuan-shun. AHP- based Risk Assessment of Impact Drilling Pile Constru- ction [J]. Construction Technology, 2012, 41 (368): 55-61).

Google Scholar

[11] Sasmal, Saptarshi , Ramanjaneyulu, K. Condition evaluation of existing reinforced concrete bridges using fuzzy based analytic hierarchy approach[J]. Expert Systems with Applications, 2008, 25(2): 1420-1442.

DOI: 10.1016/j.eswa.2007.08.017

Google Scholar

[12] Pan Nangfei. Fuzzy AHP approach for selecting the suitable bridge construction method [J]. Automation in Construction, 2008, 17(8): 958-965.

DOI: 10.1016/j.autcon.2008.03.005

Google Scholar

[13] ZHENG Guozhong, Zhu Neng, ZHE Tian, CHEN Ying, SUN Bin-hui. Application of a trapezoidal fuzzy AHP method for work safety evaluation and early warning rating of hot and humid environments[J]. Safety Science, 2012, 50(2): 228-239.

DOI: 10.1016/j.ssci.2011.08.042

Google Scholar

[14] ZHANG Hongqing, FAN Xiao-yin . A new method for evaluating the risk of engineering project-DHGF algorithm. 2008, International Conference on Wireless Communications, Networking and Mobile Computing, WiCOM 2008, 176-188.

DOI: 10.1109/wicom.2008.2428

Google Scholar

[15] GUO Feng-ming, ZHAO Yan-ceng. Automatically correcting method an consistency check of analytic hierarehy proeess, judgement matrix[J]. computer development & applications, 1999, 12(2): 11-12).

Google Scholar

[16] HUA Zhon-sheng, WU Yun-yan, XU Xiao-yan. A New Method of Consistency Regulation for the AHP Judgment Matrix[J]. Systems Engineering and Electronics, 2002, 25(1): 28-40).

Google Scholar