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Demonstrating Innovative Technologies for the Flemish Asphalt Sector in the CyPaTs Project

机译:展示Cypats项目中佛兰氏沥青部门的创新技术

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In 2015,the ROAD_IT project initiated the development and demonstration of an integrated and coherent IT process control system for the Flemish asphalt sector in order to modernize existing asphalt paving technologies and to obtain real-time data to monitor pavement behavior.One of the demonstration test tracks is CyPaTs,the construction of a bicycle path built in September 2017,using innovative technologies(www.uantwerpen.be/cypats).Five technologies are described in this contribution.An asphalt solar collector(PSC)with a piping system was installed directly in the asphalt.Cold water during summer season and hot water in winter season running through the pipes,keep the asphalt structure in a better temperature interval,avoiding rutting and cracking.Other advantages of this system are: energy gain,the prevention of damage to asphalt and the enhancement of traffic safety.The expected energy gain per year varies between 0.5 and 0.8 GJ/m~2.About 20% of this energy is used for the operation of the asphalt collector itself.The remaining 80% can be used in nearby buildings.Fiber Bragg Grating(FBG)monitoring system was integrated in all three asphalt layers for the first time in Belgium.Two novel approaches of FBGs installation in asphalt layers were elaborated in this bicycle path: installation of FBGs in prefabricated asphalt specimens at the bottom of base layer and installation of FBGs in a saw cut of approx.2mm in the previously constructed asphalt layer.The results proved a survival rate of the FBGs of 100%.The obtained strain and temperature data from FBG monitoring system has proved to be an excellent approach to establish and reflect the real condition of the asphalt pavement behaviour in time at different temperatures.The temperatures of the asphalt pavement during construction were followed up by the infrared thermography measurement techniques: a thermographic line-scanner(PAVE-IR by Moba AG)which was mounted at the back of the finisher and a hand-held IR camera(FLIR T640)was used for taking pictures every 2 meters.A real-time temperature contour plot of the pavement during construction was created to monitor asphalt pavement temperatures for quality inspection during the paving process or for later assessment.Two other non-destructive technologies for quality assessment were applied during this project.At first,the thickness was measured using aluminium plates and the MIT-SCAN T3.The obtained values were compared with topographic height measurements.Secondly,the density was measured with the PQI-380 non-nuclear density meter at several spots.The objective here is to check the density of the bicycle path,as well as the accuracy and investigate different parameters that influence the variations of the results,in particular the temperature dependency.
机译:2015年,Road_IT项目启动了佛兰氏沥青部门的集成和连贯IT过程控制系统的开发和演示,以便现代沥青铺路技术现代化,并获得实时数据以监控路面行为。演示试验曲目是Cypats,建造2017年9月建造的自行车路径,采用创新技术(www.uantwerpen.be/cypats)。在本贡献中描述了方法。沥青太阳能电池(PSC)直接安装了管道系统在亚斯沃尔特。在夏季和冬季的热水中通过管道冬季的热水,将沥青结构保持在更好的温度间隔,避免垃圾和破解。该系统的其他优势是:能源增益,预防损害沥青和交通安全的增强。每年的预期能源增益在0.5%和0.8 GJ / m〜2.1〜2.1次的这种能量中使用了20%的操作N的沥青收集器本身。剩下的80%可用于附近的建筑物。在比利时首次,在所有三个沥青层中,纤维布拉格光栅(FBG)监测系统在所有三个沥青层中集成在Belgium.Two在沥青层中安装的新型FBGS安装方法在这条自行车路径中阐述:在基层底部的预制沥青标本中安装FBG,以及在先前构造的沥青层的锯切下的锯切中安装FBG。结果证明了FBG的存活率100% 。从FBG监测系统中获得的应变和温度数据已经证明是建立和反映在不同温度下沥青路面行为的真实条件的优异方法。施工期间沥青路面的温度随访了红外线热成像测量技术:热成像线 - 扫描仪(MOBA AG)安装在装订器背面和手持式红外摄像机A(FLIR T640)用于每2米拍摄照片。建造过程中的路面实时温度等高点,以监测铺路过程中的沥青路面温度,或者以后的评估。其他非破坏性在该项目期间应用了质量评估的技术。首先,使用铝板和麻省理工学院扫描T3测量厚度。将获得的值与地形高度测量进行比较。第二,用PQI-380不测量密度。核密度计在几个斑点。这里的目的是检查自行车路径的密度,以及精度,并研究影响结果变化的不同参数,特别是温度依赖性。

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