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In Germany, expenditure for the construction of new and maintenance of existing federal highways is currently at a record level of EUR 8 billion per year. In connection with the planned infrastructure policy reforms it is necessary to further develop the planning tools for dimensioning and substance assessment of road structures in order to increase the efficiency of construction measures. The stress caused by traffic is of central importance here. Since unevenness in the road surface has a significant influence on the dynamic part of the wheel load, dynamic effects must be explicitly taken into account. As a result, increasing unevenness can lead to higher dynamic loads and, in the context of a corresponding number of wheel rollovers, to disproportionate damage to the road structure. In general, a shock factor is taken into account during dimensioning, which is to be considered as a function of vehicle suspension, load, speed and evenness. This approach is not sufficient for concrete road structures executed as slabs. In the normal case, only the periodically occurring individual event of a transverse contraction joint, superimposed by irreversible and/or temporary slab deformations, can lead to a significant increase in the dynamic wheel load. In addition, the existing slab deformations are tied to many boundary conditions and can therefore vary greatly in their characteristics. For the further development of methods for dimensioning and residual substance assessment with regard to their accuracy, a three-dimensional slab-specific view of the road surface is therefore appropriate. In this paper, a suitable measuring method for three-dimensional surface laser scanning and an algorithm for the classification of slab deformations are presented.
Die Kenntnis von Materialeigenschaften spielt bei der Entwicklung oder Optimierung von Betonen und Bauweisen für den Straßenbau sowie der Qualitätskontrolle und -sicherung eine bedeutende Rolle. Gleichermaßen bilden physikalische Materialkennwerte die Grundlage für die rechnerische Dimensionierung und die Restsubstanzbewertung von Betonfahrbahndecken. Einen relevanten Kennwert bei der Untersuchung thermisch induzierter Spannungs- und Verformungszustände stellt der thermische Ausdehnungskoeffizient von Beton dar. Dieser beeinflusst beispielsweise maßgeblich das Längsdehnungsverhalten des Deckensystems sowie das Ausmaß von Plattenkrümmungen und Fugenbewegungen. Im Zuge der systematischen Weiterentwicklung der rechnerischen Dimensionierung aber auch im Zusammenhang mit der gezielten Verbesserung der Gebrauchseigenschaften von Fahrbahndecken gilt es zu hinterfragen, ob lastunabhängige Formänderungseigenschaften, wie z. B. der thermische Ausdehnungskoeffizient der verwendeten Betone, aktuell ausreichend Beachtung finden, ob allgemeine Literaturwerte für die heutigen Fahrbandeckenbetone stets Gültigkeit besitzen und ob deren Implementierung in moderne Rechenmodelle zu validen Ergebnissen führt. Für eine empirische Herangehensweise ist die Verfügbarkeit adäquater Prüfverfahren von entscheidender Bedeutung. In Deutschland existiert aktuell jedoch kein standardisiertes oder genormtes Verfahren für die prüftechnische Bestimmung des thermischen Ausdehnungskoeffizienten von Beton. Daher wurden unter Beachtung straßenbauspezifischer Gesichtspunkte zwei Prüfansätze entwickelt, die in diesem Beitrag vorgestellt und hinsichtlich möglicher Messunsicherheiten und Messungenauigkeiten diskutiert werden. Außerdem erfolgt die Darstellung ausgewählter Ergebnisse aus Analysen an Bestandsbetonen aus dem BAB-Netz. Im Ergebnis sollen die Untersuchungen einen Beitrag zur Schaffung der prüftechnischen Voraussetzungen für eine abgesicherte Quantifzierung der thermischen Dehnung von Fahrbahndeckenbetonen leisten.
Ein wichtiges Ziel der Sicherheitsmaßnahmen in Straßentunneln ist es, sicherzustellen, dass sich die Tunnelnutzer im Falle eines Ereignisses (zum Beispiel bei einem Brand im Tunnel) selbst retten können. Aus diesem Grund ist es unerlässlich, zu untersuchen, wie sich die technischen Tunnelanlagen und -ausrüstungen auf das Verhalten der Tunnelnutzer auswirken. Der Einfluss von automatischen Brandbekämpfungsanlagen (BBA) auf den Erfolg der Selbstrettung von Tunnelnutzern ist bisher nicht untersucht worden. Aus diesem Grund wurden mehrere Untersuchungen sowohl in der Virtuellen Realität (VR) als auch in realen Tunnelbauwerken durchgeführt, um die Wirkung von BBA auf das Selbstrettungsverhalten der Tunnelnutzer zu ermitteln. Die Ergebnisse zeigten die Möglichkeiten zur Untersuchung des Nutzerverhaltens sowohl in realen Tunneln als auch in der VR. Der Fachbeitrag gibt einen Überblick über die wichtigsten Ergebnisse dieser Studien.
Anforderungen, Zielkonflikte
(2019)
Um Sicherheit und Umweltverträglichkeit von Straßen- bzw. Kraftfahrzeugen zu gewährleisten, werden an die Gestaltung der Fahrzeuge technische Anforderungen gestellt. Es gibt Anforderungen durch den Gesetzgeber, die erfüllt werden müssen, um ein Fahrzeug in den Verkehr bringen zu dürfen. Darüber hinaus bestehen herstellerinterne Anforderungen an das Produkt, die über das vom Gesetzgeber geforderte Maß hinausgehen, um den Kundenwünschen und der Firmenphilosophie zu genügen. Und als dritter Punkt stellen auch Verbraucherschutz-Organisationen Kriterien auf, anhand derer sie die Eigenschaften der auf dem Markt befindlichen Fahrzeuge bewerten und die Fahrzeuge eingruppieren, was dann der Kundeninformation dient. Auch diese Anforderungen gehen über die des Gesetzgebers hinaus. Das Setzen der gesetzlichen Mindestanforderungen ist für die Fahrzeugtechnik mittlerweile jedoch nicht mehr einzelnen Staaten überlassen. Vielmehr sind die für die Genehmigung von Fahrzeugtypen einzuhaltenden Bedingungen international harmonisiert: Für die EU sind dies EU-Richtlinien oder EU-Verordnungen, die von der Europäischen Kommission in Brüssel vorgeschlagen werden. Für über die EU hinausgehende Staaten bzw. Regionen sind dies unter anderem Regelungen der UN, erstellt von der UN-Wirtschaftskommission für Europa (UNECE) in Genf.
APT with the mobile load simulator MLS10 towards non-destructive pavement structural analysis
(2019)
In 2014 a research program has been started about non-destructive test methods to evaluate the structure of pavements. This task has been given to two research groups - first research group is led by RWTH Aachen University (Rheinisch-Westfälische Technische Hochschule) and the second by University of Siegen. This paper focuses on the initial findings of the running research program. The assessment of the existing infrastructure and its condition will be one of the main tasks during the next years in order to use the available budget for maintenance accurately and efficiently. Therefore, it is necessary to identify possible damages and examine their effects on the road construction. BASt (Federal Highway Research Institute) is using the Mobile Load Simulator MLS10 for accelerated pavement testing (APT) on different types of pavements. In addition to non-destructive test methods, sensors are applied to measure structural impacts. The overall objective of this research program is to develop a non-destructive test method that allows the calculation of the remaining life time and load cycles of pavements. To simulate realistic wheel loads in a short period of time the MLS10 on German full scale standard pavement constructions has been used. The first pavement test section was loaded with 3 x 10 high 6 50 kN wheel loads while the second, thinner pavement test section was loaded with 3 x 10 high 5 50 kN wheel loads. Both loads are equivalent to the pavement design load. Three different strategies have been used to analyze and monitor structural changes. The innovative measurements have been realized by the two research groups to collect data for their models. The RWTH Aachen collected data with twelve geophones aligned in a row parallel to the wheel path. The geophones measure the entire vertical deflection basin of the pavement surface that exists due to the passing real truck wheels. These measurements were done for different truck speeds and at different transverse distances to the wheel path. The University of Siegen collected data by using acceleration sensors on the surface of the road construction. After recording the data they were integrated into displacement signals and evaluated. Additionally to those measurements BASt used conventional equipment to monitor the pavement structure and surface characteristics. The measurements and evaluation tools used for the innovation program have a high potential to validate APT programs in the future. Based on this research it is possible to start further research activities to push the non-destructive evaluation of pavements structures - not only in APT - into an improved direction.
Bicyclists and pedestrians belong to the most endangered groups in urban traffic. The EU-funded collaborative research project PROSPECT (‘PROactive Safety for PEdestrians and CyclisTs´) aims to significantly improve safety of those unprotected traffic participants by expanding the scope of scenarios covered by future active safety systems in passenger cars. Concepts for sensor control systems are built into three prototypes covering emergency interventions such as Autonomous Emergency Braking (AEB) as well as Autonomous Emergency Steering (AES). These systems tackle the well-known challenges of currently available systems including limited field-of-view by sensors, fuzzy path prediction, unreliable intent reaction times and slow reaction times. These highly innovative functions call for extensive validation methodologies based on already established consumer testing procedures. Since these functions are developed towards the prevention of intersection accidents in urban areas, a key aspect of the advanced testing methodology is the valid approximation of naturalistic trajectories using driving robots. Eventually, several simulator studies complemented a user acceptance and benefit analysis to evaluate the expected overall impact of the PROSPECT systems. The results achieved within the PROSPECT project are highly relevant for upcoming test protocols regarding the most critical situations with Vulnerable Road Users (VRU). With introducing the new methods in Euro NCAP (European New Car Assessment Programme) a significant increase in road safety is expected.
Mobility is a central requirement for economic growth, employment and participation of each individual in social life. This basic principle of the BMVI (Federal Ministry of Transport and Digital Infrastructure) requires an intact and functional infrastructure. In a context of increasing investments over the next few years, it will be relevant to develop a network related systematic procedure to be part of the structural maintenance of the federal highway network. In the planning of maintenance measures, the knowledge about the state of structural performance and its long-term development is of central importance. In the following, a method is presented which allows the mechanically and statistically reliable assessment and prognosis of structural performance of concrete pavements. In addition, the application and procedure are applied to a case study.
The Intersection 2020 project was initiated to develop a test procedure for Automatic Emergency Braking systems in intersection car-to-car scenarios to be transferred to Euro NCAP. The project aims to address current road traffic accidents on European roads and therefore sets a priority of the identification of the most important car-to-car accidents and Use Cases. Taking into account technological and practical limitations, Test Scenarios are derived from the Use Cases in a later stage of the project. This paper presents parts of a larger study and provides an overview of common car-to-vehicle(at least four wheels) collision types at junctions in Europe and specifies seven Accident Scenarios from which the three scenarios “Straight Crossing Paths (SCP)”, “Left Turn Across Path – Opposite Direction Conflict (LTAP/OD)” and “Left Turn Across Path – Lateral Direction (LTAP/LD)” are most important due to their high relevance regarding severe car-to-car accidents. Technical details about crash parameters such as collision and initial speeds are delivered. The analysis work performed is input for the definition and selection of the Use Cases as well as for the project’s benefit estimation. The numbers of accidents and fatalities in accidents at intersections involving a passenger car were shown per intersection type. In both statistics, it was found that accidents at crossroads and T- or staggered junctions are of highest relevance, followed by roundabouts. Focusing on accidents at intersections between one passenger car and another road user shows that around one-third of all accidents and related fatalities could have been assigned to car-to-PTW accidents and one-fifth of all accidents and fatalities to car-to-car accidents. Regarding car-to-car accidents with at least serious injury outcome 38% out of 34,489 car-to-car accidents happened at intersections. These figures correspond to 18% of the fatalities (4,236 fatalities in total). Considering all intersection types, around half of all related accidents happened in urban environments whereas this number decreased to one-third of all fatalities. Further, the proportion of road fatalities per country occurring at intersections varies widely across the EU. Also, there are proportionately more fatalities in daylight or twilight conditions at junctions. Use Cases are supposed to be derived from Accident Scenarios and by adding detailed information for example about the road layout, right-of-way and the vehicle trajectories prior to the collision. Instead of applying cluster algorithms to the accident data, a pragmatic approach was finally preferred to create them. Note: Use Cases serve as an intermediate step between the Accident Scenarios and the Test Scenarios which describe the actual testing conditions. Finally, 74 Use Cases were identified. This large number indicates the complexity of intersection crashes due to the combination of several parameters.
The Netherlands is on the way to change its existing skid resistance measuring method for its highway network from the Dutch RAW 72, a longitudinal force method, to the Sideway Force method. This method is described in the Technical Specification 15901-8 (SKM device) as well as 15901-6 (SCRIM device) and is in use in 9 European countries. The CEN TC 227 WG5 on Surface Characteristics is currently working on combining of these two technical Specifications into a European standard for Sideway-Force (SWF) measurement devices. The idea of this change in the Netherlands was perceived in 2013 and since then a lot of meetings have been held with the different Dutch decision makers as well as with countries which currently operate SWF devices. There was an intensive exchange of knowledge about these devices and their corresponding quality assurance systems, because the Netherlands wanted to incorporate and rely on an existing system of a neighbor country without losing their present level of quality. The Netherlands has therefore decided to incorporate the German SKM approach. The network monitoring with the new system will start in 2017. To ensure the quality of skid resistance measurements and further cooperation in this field, it has been decided to initiate an alliance between BASt and the Dutch road owner Rijkswaterstaat (RWS). This alliance will facilitate an exchange of research activities, calibration of the Dutch systems according to the existing German Standard as well as control measurements with a BASt-device on the Dutch network during the network monitoring. During 2016 also comparative measurements will be performed on a network level with the current Dutch device and with an SKM device to determine a conversion between the two and to be able to define new threshold values.
Mobilität und Verkehr sind notwendige Grundlagen für das Funktionieren moderner Gesellschaften sowie wirtschaftlichen Wachstums und Stabilität. Eine zentrale Voraussetzung ist daher die Gewährleistung der Verfügbarkeit des Verkehrsnetzes. Eine wichtige Aufgabe übernehmen in diesem Zusammenhang Tunnelleitzentralen, die die Überwachung und Steuerung des Verkehrs ermöglichen, um im Ereignisfall Maßnahmen zur Gewährleistung der Sicherheit der Verkehrsteilnehmer einleiten und koordinieren zu können. Da diese Überwachungs- und Steuerungsmöglichkeiten durch IT-Systeme gesteuert werden, wird der Schutz vor Cyber-Angriffen zu einer wachsenden Herausforderung. Das Forschungsprojekt Cyber-Safe verfolgte daher das Ziel, Leitzentralenbetreiber in die Lage zu versetzen, Gefährdungen durch Cyber-Angriffe besser als bisher zu erkennen und systematisch geeignete Schutzmaßnahmen zu ergreifen. Besonderer Fokus lag bei den Untersuchungen auf Tunnelleitzentralen, da Tunnel neuralgische Punkte im Verkehrsnetz sind und Störungen bzw. der Ausfall weitreichende Folgen haben kann. Die im Beitrag vorgestellten Ergebnisse wurden im Rahmen des vom Bundesministerium für Bildung und Forschung (BMBF) geförderten Forschungsprojekts „Cyber-Safe“ erzielt.