American Journal of Civil Engineering and Architecture
ISSN (Print): 2328-398X ISSN (Online): 2328-3998 Website: https://www.sciepub.com/journal/ajcea Editor-in-chief: Dr. Mohammad Arif Kamal
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American Journal of Civil Engineering and Architecture. 2015, 3(4), 118-128
DOI: 10.12691/ajcea-3-4-2
Open AccessArticle

Traditional vs FEA Based Analysis/Design of Baseplates for Tall Telecommunication & Transmission Poles

Tahir Kibriya1, and Leena Tahir2

1Senior Consulting Engineer, B&V, Canada

2City University, London, UK

Pub. Date: August 24, 2015

Cite this paper:
Tahir Kibriya and Leena Tahir. Traditional vs FEA Based Analysis/Design of Baseplates for Tall Telecommunication & Transmission Poles. American Journal of Civil Engineering and Architecture. 2015; 3(4):118-128. doi: 10.12691/ajcea-3-4-2

Abstract

Various shapes of steel poles are commonly used in the telecommunications and transmission industry for carrying telecommunication equipment to transmit signals for communication equipment or wires and power equipment like transformers etc. for power transmission purposes. These poles vary from 50’ to almost 500’ heights with winds being the governing loads in addition to superimposed equipment loads and snow/ice loads and hence require careful design. The poles vary from being round in geometry to 8/12/16/24/28 sided shapes. With large base diameters and appreciable moments and direct loads, typically the pole baseplates are round, hexagonal or square with/without stiffeners and either rest on the supporting anchor rod base nuts or on grout over the base support, all of which require different analysis/ design procedures. From the literature, one can observe that while baseplate analysis and design for large poles structures has not been amply investigated, limited investigations and testing carried out on base plates designed by various methods and most test results have indicated most procedures to be under designing plates. While AISC and ASCE 48 codes provide limited guidance on design of these various types of pole baseplates, ANSI/EIA/TIA 222F & 222G codes merely refer to AISC for design of these different configurations of baseplates. Many proprietary base plate analysis/design worksheets commercially available produce different results. With the availability of advanced structural analysis techniques like FEA, a comparison is made between the baseplates designed by typical methods using commercially available baseplate worksheets and those designed by using the FEA techniques. The analysis results vary appreciably between the traditional methods and the FEA based method. This paper analyses few pole base plates based on FEA and compares them with the baseplates designed by traditional methods and suggests appropriate improvements in the current design/ analysis procedures so as to reduce the appreciable differences between the both procedures.

Keywords:
communication poles transmission poles pole baseplates plain baseplates stiffened baseplates finite element analysis baseplate analysis baseplate designyyu8

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References:

[1]  ANSI/ TIA 222G – 2005, Structural Standard for Antenna Supporting Structures and Antennas, EIA/ TIA, 2005.
 
[2]  ANSI/ TIA/ EIA – 222F – 1996, Structural Standards for Steel Antenna Towers and Antenna Supporting Structures, TIA/ EIA, 1996.
 
[3]  AISC Steel Design Guide 1 – Base Plate and Anchor Rod Design, AISC, 2006.
 
[4]  Horn, Daniel, Technical Manual 1, Design of Monopole Bases, Concepts Inc., 2004.
 
[5]  ASCE/SEI 48-05, Design of Steel Transmission Poles, ASCE/ SEI, 2011.
 
[6]  Honek, William C. & Westphal, Derek, Practical Design and Detailing of Steel Column Base Plates, Forell Elsesser Engineers Inc., July, 1999.
 
[7]  Chabbra, Surendra J., Column Base Plate Design Table, Engineering Journal, AISC, 2003 pp 12-20.
 
[8]  Drake, Richard M. & Elkin, Sharon J., Beam-Column Base Plate Design - LRFD Method, Engineering Journal, AISC, First Quarter, 1999.
 
[9]  Timoshenko, S. & Woinowsky-Krieger, S., Theory and Design of Plates and shells, 2nd Ed, McGraw Hill, 1976.
 
[10]  Young, Warren C. & Budynas, Richard G. Roark’s Formulas for Stress & Strain, 7th Ed. McGraw Hill, 2002.