用于验证线-混凝土配合比相容性的高分辨率自动预应力线压痕分析系统

B. T. Beck, A. Robertson, R. Peterman, Adrijana Savić, Chih-Hang Wu, K. Riding, J. Bloomfield
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引用次数: 3

摘要

众所周知,用于制造预应力混凝土铁路拉杆的预应力钢丝上的压痕的几何特性影响传递长度的大小。特别是,压痕深度、压痕体积和压痕侧壁角等参数都影响传递长度,其中压痕体积是影响传递长度的主要因素。以往的研究表明,缩进量越大,传递长度越短。对于完全承载能力,重要的是传递长度不超过到轨座的距离。因此,传递长度已被确定为评估预应力混凝土铁路交叉承载能力的关键诊断参数。此外,还提出将其作为有价值的质量控制参数。正在进行的研究以及先前发表的研究结果也表明,预应力线压痕的几何形状在裂缝的形成中起着重要作用。这在制造用于高速铁路应用的混凝土绑带时尤为重要。在使用过程中,与锚杆相关的预应力索的开裂和脱粘会导致严重的断裂和锚杆的完全破坏。因此,在不考虑开裂倾向的情况下,仅保证安全传递长度是不够的。ASTM A881标准中的线材规范旨在提高高质量的预应力铁路带材性能;然而,开裂和劈裂的详细原因,以及负责的具体缩进特征,从定量的角度来看并不为人所知。直到最近,预应力钢丝压痕特性的检测还包括从一小段钢丝上取样几个压痕,提供的关于钢丝压痕特性的统计信息非常有限。为了解决这一不足,开发了一种高分辨率自动非接触式光学线缩进扫描系统,以完整和快速地表征所有相关的缩进几何参数。该系统能够测量大块金属丝,从而获得所有相关压痕参数的统计显著样本,包括压痕深度、压痕宽度、压痕侧壁角度、压痕间距和压痕体积。当前最先进的技术,在这个系统的发展,以及一些新的见解,基于最近的缩进扫描结果,将提出。该系统是一种有价值的工具,可以帮助识别与裂纹相关的关键压痕几何特征。总体目标是快速评估关键压痕参数,以确保高质量的粘结,并消除轨道内扎裂故障。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A High Resolution Automated Prestressing Wire Indent Profiling System for Verification of Wire-Concrete Mix Compatibility
It is well-known that the geometrical characteristics of the indents on prestressing wire used in the manufacture of prestressed concrete railroad ties affect the magnitude of the transfer length. In particular, it has been shown that such parameters as indent depth, indent volume and indent sidewall angle all affect transfer length, with indent volume being a major influence. Previous research has shown that the larger the indent volume, the shorter the transfer length. For full load bearing capacity, it is important that the transfer length not exceed the distance to the rail seat. Consequently, transfer length has been identified as a key diagnostic parameter for evaluating the load bearing capability of prestressed concrete railroad crossties. Furthermore, it has been proposed for use as a valuable quality control parameter. Ongoing research, as well as previously published research results, also indicates that the geometry of the prestressing wire indents plays a major role in the formation of cracking. This is particularly important in the manufacture of concrete ties intended for high speed rail applications. Cracking and debonding of prestressing wires associated with ties in service can result in severe splitting and complete tie failure. It is therefore not sufficient to guarantee a safe transfer length alone, without consideration of the cracking propensity. The wire specifications in standard ASTM A881 are intended to promote quality prestressed railroad tie behavior; however, the detailed causes of cracking and splitting, and the specific indent features that are responsible, are not well-known from a quantitative perspective. Until recently, inspection of prestressing wire indent properties consisted of sampling a few indents from a small segment of wire, providing very limited statistical information on wire indent properties. To address this deficiency, a high-resolution automated non-contact optical wire indent scanning system has been developed for completely and rapidly characterizing all relevant indent geometrical parameters. The system is capable of measuring large segments of wire to yield statistically significant samples of all relevant indent parameters including indent depth, indent width, indent sidewall angle, indent pitch, and indent volume. The current state-of-the-art in this system development, along with some new insights based on recent indent scanning results, will be presented. This system represents a valuable tool to aid in identifying the key indent geometrical features related to cracking. The overall goal is to quickly assess critical indent parameters, so as to ensure high-quality bond and eliminate in-track tie splitting failures.
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