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首页> 外文期刊>Journal of Transportation Engineering >Full-Lane Coverage Micromilling Pavement-Surface Quality Control Using Emerging 3D Line Laser Imaging Technology
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Full-Lane Coverage Micromilling Pavement-Surface Quality Control Using Emerging 3D Line Laser Imaging Technology

机译:使用新兴的3D线激光成像技术的全车道覆盖面微铣刨路面质量控制

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Facing pavement preservation challenges as a result of funding shortages, the Georgia Department of Transportation (GDOT) has developed an innovative micromilling resurfacing method to cost-effectively preserve its pavements. The cost saving is significant: approximately $60,000 per lane mile. To ensure that a smooth micromilled surface texture provides a good bond and water runoff capability, which is the key in this new method, a new, stringent ridge-to-valley-depth (RVD) specification has been established for quantitatively evaluating micromilled surface quality. This paper explores the possibility of using emerging three-dimensional (3D) line laser imaging technology to develop a full-lane quality control method that can measure RVD, provide quality control covering a full lane, and identify problem areas. A lab test was first conducted to critically assess the accuracy of the proposed method by using an artifact: a wood panel with V-shaped grooves of a known depth to simulate the ridges and valleys on a micromilled surface. Results show that the proposed method is very promising and can measure RVD with an error of less than 0.4 mm (0.016 in.). A field test was conducted by using Georgia Tech's sensing vehicle to collect 3D range data at two 0.8-km (0.5-mi) segments on a micromilling resurfacing project on I-95. Results show that the RVDs in the transverse direction can effectively and quantitatively differentiate between smooth (mean RVD = 2.9 mm; 0.114 in.) and rough (mean RVD = 4.8 mm; 0.189 in.) micromilled surface textures. A case study shows that other problem areas on the micromilled surface, such as underlying cracks and isolated rough spots that will lead to premature failure, can also be identified by using the proposed method, so proper pretreatment methods (e.g., deep patches or crack sealing) can be effectively applied before resurfacing to ensure the longevity of the pavement. At the end of the paper, conclusions are made and recommendations are discussed for future research.
机译:面对因资金短缺而导致的路面养护挑战,乔治亚州交通运输部(GDOT)开发了一种创新的微铣刨重铺方法,以经济有效地养护路面。节省的成本非常可观:每车道英里大约可节省60,000美元。为了确保光滑的微磨表面纹理提供良好的粘合和水径流能力,这是此新方法的关键,已经建立了新的,严格的脊至谷深度(RVD)规范,用于定量评估微磨表面质量。本文探讨了使用新兴的三维(3D)线激光成像技术来开发全车道质量控制方法的可能性,该方法可以测量RVD,提供覆盖全车道的质量控制并确定问题区域。首先使用人工制品进行了实验室测试,以严格评估所提出方法的准确性:人造板的木板具有已知深度的V形凹槽,可模拟微铣削表面上的脊和谷。结果表明,该方法非常有前途,可以测量RVD,误差小于0.4毫米(0.016英寸)。通过使用佐治亚理工学院的传感车辆在I-95上的微型铣削重修项目中收集了两个0.8公里(0.5英里)的部分的3D范围数据,进行了现场测试。结果表明,横向的RVD可以有效地和定量地区分微铣削的表面纹理(平滑RVD = 2.9 mm; 0.114 in。)和粗糙(RVD = 4.8 mm; 0.189 in。)。案例研究表明,通过使用建议的方法,还可以识别微铣削表面上的其他问题区域,例如潜在的裂纹和孤立的粗糙斑点,这些缺陷会导致过早失效,因此可以采用适当的预处理方法(例如,深补丁或裂缝密封) )可以在重铺路面之前有效地应用,以确保路面的使用寿命。最后,总结并提出建议,以供将来研究之用。

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