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Technological and environmental performance of temperature-reduced mastic asphalt mixtures

机译:减温乳香沥青混合料的技术和环境性能

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Temperature reduction of mastic asphalt (MA) mixtures can decrease costs and energy demand, as well as health-relevant emissions of particulate matter throughout the life cycle. A state-of-the-art method for temperature reduction is wax modification of the bituminous binder to reduce its viscosity. In this paper, the results of an extensive study. On mechanical performance, particulate matter emission and life-cycle analysis of temperature-reduced MA are presented. Therefore, a reference MA is compared to three temperature-reduced MAs: a state-of-the-art reduction by modification with amide wax (AW) and an alternative method of substituting crushed aggregates by rounded ones. For both methods, a temperature reduction of 30 degrees C can be realised. In addition, a combination of both methods, wax modification and use of rounded aggregates, is investigated. For this combination a reduction of 50 degrees C is possible. The results show that the resistance to permanent deformation is not decreased by using rounded aggregates and that it can be doubled by employing AW regardless of the aggregate shape. Resistance to low-temperature cracking is not affected by any of the studied methods for temperature reduction. Emission analysis reveals that more than 80% of the emitted particulates are below 2.5 mu m a.d. (aerodynamic diameter). From a life-cycle perspective, a main benefit of temperature-reduced MAs is the significant decrease in particulate emissions by up to 80% in case of 50 degrees C temperature reduction. Also, up to 20% of production process energy can be saved when the mixing temperature is reduced by 50 degrees C. Application of a wax additive reduces process energy costs, but increases the total life-cycle costs. Based on the considered scenarios, the application of additives is controversial and the substitution of crushed aggregates by rounded aggregates seems to be beneficial.
机译:降低乳香沥青(MA)混合物的温度可以降低成本和能源需求,并在整个生命周期中减少与健康相关的颗粒物排放。最新的降低温度的方法是对沥青粘合剂进行蜡改性以降低其粘度。本文对此进行了广泛研究的结果。关于机械性能,提出了降低MA的颗粒物排放和生命周期分析。因此,将参考MA与三种降低温度的MA进行比较:通过酰胺蜡(AW)改性获得的最新技术还原水平,以及将粉碎的聚集体替换为圆形的替代方法。对于这两种方法,都可以实现30摄氏度的降温。此外,还研究了蜡改性和圆形骨料使用这两种方法的组合。对于这种组合,可以降低50摄氏度。结果表明,使用圆形骨料不会降低对永久变形的抵抗力,并且无论骨料形状如何,采用AW都可以使抗永久变形能力提高一倍。所研究的任何降温方法均不影响耐低温开裂性。排放分析表明,超过80%的排放颗粒低于2.5μma.d。 (空气动力学直径)。从生命周期的角度来看,降低温度的MA的主要好处是,在温度降低50摄氏度的情况下,颗粒物排放量最多可显着降低80%。而且,当混合温度降低50摄氏度时,可以节省多达20%的生产过程能源。蜡添加剂的使用降低了过程能源成本,但增加了总生命周期成本。根据考虑的方案,添加添加剂的使用存在争议,用圆形骨料代替碎骨料似乎是有益的。

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