31 Bituminöse Baustoffe
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Measuring and characterizing airborne particulate matter (PM) is an important research area because PM can lead to impacts on health and to visibility reduction, material damage and groundwater pollution. In regard to road dust, suspension and re-suspension and the contribution of non-exhaust PM to total traffic emissions are expected to increase as a result of predicted climate scenarios. European environmental regulations have been enforced to reduce exhaust particle emissions from road traffic, but little attention has been paid to reducing non-exhaust coarse particle emissions due to traffic. Therefore, a monitoring program for coarse PM has been initiated in early 2013 to assess the predicted increase in the abundance of non-exhaust particles. Particle sampling was performed with the passive-sampler technique Sigma-2. The subsequent single-particle analysis allows for characterization of individual particles, determination of PM size distribution, and calculation of PM mass concentrations. Two motorways n ear Cologne (Koeln), Germany were selected as sampling sites, and the experimental setup in the field was realized with a so-called twin-site method. The present study reports single-particle analysis data for samples collected between May 31, 2013 and May 30, 2014. Coarse PM, generated through multi-source mechanisms, consists of, e.g., tire-wear, soot aggregates, and mineral dust. The highest mass concentration occurs at both motorways in spring, and the observed PM mainly contains traffic-abrasion particles. The field measurements show that the minimum PM concentration was found in the 5 to 12-°C temperature range, whereas the maximum concentration was observed in both the "5 to 5-°C and the 12 to 24-°C ranges, in agreement with previous laboratory measurements. Correlation between super-coarse (d p 10"80 μm, geometric equivalent diameter) PM concentration and precipitation displays a significant increase in concentration with decreasing number of precipitation events (dry weather periods).
Due to the publication of guidelines in Germany the possibility exists to offer analytical designed construction works within an alternative proposal. But the extent to which the test specimen production influences the design relevant properties (for the same asphalt mixture) is not sufficiently investigated at present. Objective of this research project was to determine the design relevant asphalt properties by tests and do comparative considerations on two selected locations within the renewal of a federal trunk road (Germany). For the comparative consideration of the design relevant asphalt properties mixture samples were taken during paving and afterwards drill cores were taken at the same locations. Fatigue tests and tests to determine the stiffness were conducted with the Indirect Tensile Test (ITT). Then design calculations having regard to the test results were performed. At this different bearing conditions of the asphalt package were considered. The calculated fatigue conditions were comparative evaluated and they are presented and discussed in this paper.
The performance of asphalt by low temperatures is largely determined by the viscosity of the binder respectively the mortar of the asphalt. The traditional test methods for binder (e.g. ball-draw viscosimeter) are limited to temperatures above the service range of temperature for an asphalt construction. The Dynamic Shear Rheometer (DSR) is limited to temperatures above 30-°C whereas the Bending Beam Rheometer (BBR) is limited to temperatures below -10-°C and not applicable to mortar. Especially the gap in the temperature of these test methods is very important to characterize the viscosity behavior of binder and mortar over the whole range of the service temperatures, which represent the typical environmental conditions of over the seasons, for an asphalt construction. Tension retardation experiments seem to be very useful to bridge the gap. They address the low temperature behavior of binder and mortar. With this test method the flow characteristics of binder (pen grade and any modification) and any kind of mortar in the service temperature range, in particular at low temperatures of -25-°C can be determined with a high precision, and assessed, via the physically interpretable material characteristics quantity of tension viscosity. Furthermore the present findings indicate the potential of extrapolation the results of the Tension retardation for a prediction of the rutting resistance of asphalt mixtures. As part of several research Projects, BASt (Federal Highway Research Institute) investigated the effects of different modifications of the binder to low temperature behavior of the binder by the tension retardation test. This paper is intended to provide a more detailed description of the test method Tension Retardation, selected results and related findings.