PPI TR-44-2006 Comparison of Traditional HDPE Innerduct and “Fabric Conduit” Alternative《传统HDPE内管和编织管代替物的比较》.pdf
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1、 Comparison of Traditional HDPE Innerduct and “Fabric Conduit” Alternative TR-44 / 2006 1825 Connecticut Ave., NW Suite 680 Washington, DC 20009 www.plasticpipe.org 2FOREWORD This technical report was developed and published with the technical help and financial support of the members of the PPI (Pl
2、astics Pipe Institute, Inc.). The members have shown their interest in quality products by assisting independent standards-making and user organizations in the development of standards, and also by developing reports on an industry-wide basis to help engineers, code officials, specifying groups, and
3、 users. The purpose of this technical report is to provide important information available to PPI on design factors and design coefficients recommended for thermoplastic pressure piping applications. These recommendations are based on discussions with several internationally recognized technical exp
4、erts in the plastic pipe industry. More detailed information on its purpose and use is provided in the document itself. This report has been prepared by PPI as a service of the industry. The information in this report is offered in good faith and believed to be accurate at the time of its preparatio
5、n, but is offered without any warranty, expressed or implied, including WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE. Any reference to or testing of a particular proprietary product should not be construed as an endorsement by PPI, which do not endorse the proprietary products
6、or processes of any manufacturer. The information in this report is offered for consideration by industry members in fulfilling their own compliance responsibilities. PPI assumes no responsibility for compliance with applicable laws and regulations. PPI intends to revise this report from time to tim
7、e, in response to comments and suggestions from users of the report. Please send suggestions of improvements to the address below. Information on other publications can be obtained by contacting PPI directly or visiting the web site. The Plastics Pipe Institute www.plasticpipe.org March, 20063Compar
8、ison of Traditional HDPE Innerduct and “Fabric Conduit” Alternative Overview The following is a comparison of traditional HDPE innerduct and the new “fabric conduit” alternative to innerduct. Both are products used to house and protect fiberoptic cables for the telecommunications industry. This repo
9、rt will focus on the strength and protection characteristics of each product, as well as ease of installation and use of each. HDPE Innerduct HDPE innerduct is an extruded plastic duct currently used extensively to house cables for the telecommunications industry. It can be installed in a variety of
10、 ways: it can be buried directly in the ground, run through the ground inside of a larger conduit (as innerduct), or overhead as an aerial duct. Figure 1 - HDPE Duct Fabric Conduit “Fabric conduit” is a recent development in the industry. It consists of a continuous length of fabric which has been d
11、ivided into three individual chambers. Each chamber is designed to house a single fiberoptic cable. The fabric conduit is intended to be pulled through a larger conduit and then have individual fiber cables pulled through it, increasing the amount of fiber cables that are able to be housed in a duct
12、. Figure 2 - Fabric Conduit 4Comparison Criteria The comparison between these two products focused on three critical characteristics: strength, ability to protect the cable, and ease of use and installation. Where possible, tests were performed to compare the physical properties of the two products.
13、 Strength All conduit and innerduct must exhibit strength in its lengthwise or X (Figures 1 and 2) direction to withstand the demands of either being direct buried or pulled through larger duct. In addition, it is critical that the conduit maintain adequate strength in its Y (Figures 1 and 2) direct
14、ion as shown to stand up to the rigors of cable pulls and rodding if necessary. X Direction Strength To determine the tensile strength of the fabric conduit material, small strips of the fabric itself were removed and tested individually to determine the load at which they fail. From this data, and
15、using the cross sectional area of the test strip, a tensile strength for the fabric can be estimated. The test results were as follows: Sample Width (in) Thickness (in) Load At Failure (lbs) Tensile Strength (psi) Sample 1 0.9 0.018 80 4938 Sample 2 0.9 0.018 65 4012 Sample 3 0.9 0.018 60 3704 Avera
16、ge: 0.9 0.018 68.3 4218 To translate this tensile strength information into the maximum force that can be exerted lengthwise on the fabric conduit, the cross-sectional area of the fabric conduit must be determined. Since the conduit consists of three pockets created by four individual strips of fabr
17、ic, the cross sectional area is the sum of these four individual areas. Width (in) Thickness (in) Area (sq. inches) Strip 1 4 0.018 0.072 Strip 2 4 0.018 0.072 Strip 3 3.5 0.018 0.063 Strip 4 5.5 0.018 0.099 Total area: 0.306 square inches Now the maximum load that the fabric conduit can withstand i
18、n the lengthwise direction can be determined by taking the average tensile strength of 4218 psi and multiplying it by the cross sectional are of .306 square inches. The result being 1291 pounds. In comparison, a HDPE innerduct with an outside diameter of 1.660” and an inside diameter of 1.464” has a
19、 cross sectional area of .480 square inches. Given a material tensile strength of 3350 psi, an innerduct of this size will fail at a load of 1608 pounds, a 25% larger load than the fabric conduit. Y Direction Strength While the HDPE innerduct proves to be slightly stronger than the fabric conduit in
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