Full-Scale Coating Abrasion Test to Supplement Laboratory Testing

David B. Futch, Davide D‘Ambrosio
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Abstract

Laboratory coating qualifications often require determining the ability of the coating to resist abrasion and gouging. These tests help inform a pipeline operator on the coating’s ability in extreme conditions, often those that may be required during a horizontal directional drill (HDD) when specifying an abrasion resistant overcoat (ARO) would be considered. However, these laboratory bench-top tests subject the coating to subscale loading that typically is not of the magnitude that can be experienced during pipeline construction. An HDD is a trenchless pipeline installation method where a pipeline is pulled through a pilot hole and is likely to increase in popularly over the coming decades as current pipeline right of ways become more congested and urban sprawl increases. As HDDs increase, their construction will be pushed to the extreme: longer distances, larger/heavier pipe, and through more challenging formations. Drilling through more challenging formations, such as granite, will subject additional abrasion and gouging to the pipe coating. Therefore, there remains a need to supplement traditional laboratory bench-top testing with a full-scale alternative that more closely represents the abrasion and gouging risk experienced during an HDD. This paper provides an overview of common subscale abrasion testing as well as the newly developed, innovative full-scale test. This full-scale test was designed to subject a pipe sample and ARO coating to varying obstructions pneumatically engaged against the outside pipe/coating surface. Obstructions utilized during this test development included: (1) a granite block selected to represent a natural formation, (2) a round tip selected to represent wear, and (3) carbide-tipped machining inserts selected to simulate aggressive gouging. Applying larger loads pneumatically to each obstruction simulates higher loading during an HDD — either due to a longer pull, heavier pipe, or variations in drilling mud/ballast. Finally, this paper will review industry accepted HDD load calculations providing a selection chart to determine the thickness of an applied ARO sacrificial overwrap.
全尺寸涂层磨损试验作为实验室试验的补充
实验室涂层资格通常要求确定涂层抗磨损和抗刨削的能力。这些测试有助于告知管道运营商涂层在极端条件下的能力,通常是在水平定向钻井(HDD)中,当指定耐磨涂层(ARO)时需要考虑的条件。然而,这些实验室台式测试使涂层承受的亚尺度载荷通常不是管道施工期间可以经历的量级。HDD是一种非开挖管道安装方法,管道通过一个先导孔拉入,随着当前管道通行权变得更加拥挤和城市扩张的增加,在未来几十年里,这种方法可能会越来越受欢迎。随着hdd的增加,它们的构造将被推向极限:更长的距离,更大/更重的管柱,以及更具有挑战性的地层。在更具挑战性的地层(如花岗岩)中钻井,会对管柱涂层造成额外的磨损和刮蚀。因此,在传统的实验室台式测试之外,还需要一种更能反映HDD磨损和刮蚀风险的全尺寸替代方案。本文概述了常用的亚尺度磨损试验以及新开发的、创新的全尺寸磨损试验。该全尺寸测试旨在将管道样品和ARO涂层置于与管道外部/涂层表面气动作用的不同障碍物中。在测试开发过程中使用的障碍包括:(1)选择代表自然地层的花岗岩块,(2)选择代表磨损的圆形尖端,以及(3)选择模拟侵略性凿削的硬质合金尖端加工刀片。在HDD期间,对每个障碍物施加更大的气动载荷可以模拟更高的载荷,这可能是由于更长的拉力、更重的管柱或钻井泥浆/压载物的变化。最后,本文将回顾业界接受的硬盘负载计算,提供一个选择图表,以确定应用ARO牺牲覆盖层的厚度。
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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