Predicting the lifetime of CPVC under increasing temperature and crosshead speed

Abderrahim Khtibari, A En-Naji, A. Kartouni, M. El Ghorba
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Abstract

CPVC is an increasingly popular material for plumbing pipes and other applications that require strong and temperature-resistant material. This resin is created using a chlorination process, giving it Chlorine levels that range from 63 to 69% and thus a unique set of characteristics that make it ideal for certain applications. CPVC's combination of corrosion-resistance and low installation costs make it a great substitute for copper in environments with non-ambient conditions such as higher temperatures. This makes it an economic choice for many projects that require smaller budgets. With a variety of applications, CPVC provides a great alternative requiring strong and durable material. The aim of this paper is to characterize the mechanical characteristics of chlorinated PVC (CPVC). Tensile tests were carried on the compounds at different temperatures ranging from -20 to 90°C and crosshead speeds from 5 to 500 mm/min. The results were analyzed to determine how crosshead speed and temperature affected on the mechanical characteristics of CPVC specimens. Two damage models are then developed, one model obtained through by adapting the unified theory version and the other quasi-experimental static model based on ultimate stress. These models allow us to evaluate the damage evolution of CPVC samples and to determine the safety and maintenance intervals of this material.
预测CPVC在温度升高和十字转速下的寿命
CPVC是一种越来越受欢迎的材料,用于管道和其他需要坚固和耐温材料的应用。这种树脂采用氯化工艺制造,氯含量范围从63%到69%,因此具有独特的特性,使其成为某些应用的理想选择。CPVC的耐腐蚀性和低安装成本使其成为高温等非环境条件下铜的绝佳替代品。这使得它成为许多需要较小预算的项目的经济选择。随着各种应用,CPVC提供了一个伟大的替代要求坚固耐用的材料。本文的目的是表征氯化聚氯乙烯(CPVC)的力学特性。在-20 ~ 90℃的不同温度和5 ~ 500 mm/min的十字头速度下对化合物进行拉伸试验。对试验结果进行了分析,以确定十字头速度和温度对CPVC试件力学特性的影响。建立了两种损伤模型,一种是采用统一理论模型,另一种是基于极限应力的准实验静态模型。这些模型使我们能够评估CPVC样品的损伤演变,并确定该材料的安全性和维护间隔。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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