PPI TN-41-2007 High Performance PE Materials for Water Piping Applications《水管用高性能聚乙烯(PE)材料》.pdf
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1、 1 TN-41/2007 High Performance PE Materials for Water Piping Applications Municipal and Industrial Division 105 Decker Court, Suite 825, Irving, TX 75062 P: 469-499-1044 F: 469-499-1063 www.plasticpipe.org TN-41/2007 2 Foreword This technical note was developed and published with the technical help
2、and financial support of the members of the Plastics Pipe Institute. The members have shown their interest in quality products by assisting independent standard-making and user organizations in the development of standards, and also by developing reports on an industry-wide basis to help engineers,
3、code officials, specifying groups, and users. The Plastics Pipe Institute, Inc. has prepared this technical note as a service to the industry. The information in this note is offered in good faith and believed to be accurate at the time of its preparation, but is offered without any warranty, expres
4、s or implied. Additional information may be needed in some areas, especially with regard to unusual or special applications. Consult the manufacturer or material supplier for more detailed information. A list of member manufacturers is available from PPI. PPI does not endorse the proprietary product
5、s or processes of any manufacturer, and assumes no responsibility for compliance with applicable laws and regulations. PPI intends to revise this report form time to time, in response to comments and suggestions from users of this note. Please send suggestions for improvements to PPI. Information on
6、 other publications can be obtained by contacting PPI directly or visiting the web site. The Plastics Pipe Institute, Inc. 469-499-1044 www.plasticpipe.org November 2007 TN-41/2007 3 Municipal and Industrial Division I. Abstract This white paper describes the key advantages available to water compan
7、ies who choose to use pipe produced from the higher performance polyethylene (PE) materials now available. This paper also reviews the changes to several PPI documents and ASTM standards to recognize the improved performance properties of these new generation PE materials. Upon the introduction of h
8、igher performance PE piping materials into North America, it was determined that the current PE 3408 pipe material designation code did not sufficiently recognize the improved properties of these materials. For that reason, several PPI documents, AWWA standards and ASTM standards have been revised.
9、The result of these revisions is the introduction of several new PE pipe material designation codes, such as PE 4710. The new PE pipe material designation codes identify high performance PE 4710 that is PPI rated for 73F (23C) water service at 1000 psi (6.9 MPa) hydrostatic design stress compared to
10、 the PE 3408 at 800 psi (5.5 MPa) HDS for the same service. The higher HDS for PE 4710 allows water companies to use higher pressures for the same DR pipes or to obtain greater flow capacity for the same pressure rating with higher DR (thinner wall) pipes. Compared to conventional PE materials, high
11、er performance PE 4710 piping materials provide a more cost effective PE piping systems based on the significantly improved properties of the higher performance PE materials. II. Background Polyethylene (PE) has been used for water piping applications both domestically and internationally since the
12、1960s. In 1988 high performance PE materials were introduced in Europe. Recognizing the advantages afforded by higher performing PE materials, PPI and ASTM worked to characterize higher performing PE materials that culminated in PE 4710 designations that are now manufactured in the U.S. by a number
13、of resin companies. Pipe made from these PE 4710 materials have a unique combination of having the highest PE pressure rating (PR), outstanding resistance to slow crack growth (SCG) along with increased resistance to rapid crack propagation (RCP). These are the three key engineering properties for e
14、valuating a plastic piping material, and these high performance PE materials exhibit outstanding performance in all three areas. The increased working stress rating of these high performance PE materials allows use of a larger inside diameter (thinner wall) for a given operating pressure, which make
15、s PE very attractive compared to steel or ductile iron pipe, especially for the large diameter pipe sizes. A larger inside diameter not only improves system capacity or flow, but also lowers the pipe cost and improves upon the already demonstrated lower on-site handling and installation costs of PE
16、versus steel and ductile iron piping materials. Although these high performance PE materials may be relatively new in North America, they have over 20 years of very successful history worldwide for water piping applications. The Plastics Pipe Institute (PPI) identified that the best way to take adva
17、ntage of these high performance PE materials in North America was to incorporate them into the ASTM and AWWA standards by applying higher material specifications TN-41/2007 4 that result in an increased hydrostatic design stress compared to conventional PE materials. Changes to support a higher HDS
18、for water piping have been accomplished through revising PPI TR-3 and existing ASTM PE resin and pipe standards. The higher HDS for pressure rating can be a deciding factor whether a water company uses PE pipe or metal pipe. The premise for this increased HDS is that higher performing PE materials m
19、ust demonstrate superior performance characteristics such that PE pipe would provide a safer, cost effective alternative piping system. III. ASTM Pressure Rating Method The ASTM pressure rating method utilizes pipe samples tested at a constant temperature with the log stress vs. log time regression
20、line extrapolated to 100,000 hours. This extrapolated value is the long-term hydrostatic strength (LTHS) of the material, and the categorized value of the LTHS is called the Hydrostatic Design Basis (HDB) in accordance with ASTM standard test method D 2837. This HDB is reduced to a maximum working s
21、tress by a design factor (F) to establish the Hydrostatic Design Stress (HDS). The HDS is the product of the HDB and the design factor for water: HDS = HDB x F (for water) HDB and HDS values for various thermoplastic materials used for piping applications are published in PPI TR-4, which is availabl
22、e on the PPI website www.plasticpipe.org. These PPI listings of HDB and HDS values are classified in accordance with the materials standard pipe material designation code. In this designation system, the plastic pipe material is identified by its standard abbreviated terminology in accordance with A
23、STM D 1600, “Standard Terminology Relating to Abbreviations, Acronyms, and Codes for Terms Relating to Plastics“, followed by a four or five digit number. The first two or three digits, as the case may be, code the materials ASTM classification (short-term properties) in accordance with the appropri
24、ate ASTM standard specification for that material. The last two digits of this number represent the PPI recommended HDS for water at 73F (23C) divided by 100. Examples of pipe material designation codes for PE materials are as follows: PE 3408 is a polyethylene (the PE abbreviation is in accordance
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