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Im Rahmen einer durch die Bundesanstalt für Straßenwesen (BASt} initiierten Studie wurde das geothermische Potenzial des anfallenden Bergwassers für 15 Portale von deutschen Straßentunneln abgeschätzt und mögliche Konzepte zur Nutzung der hydrogeothermischen Energie aufgezeigt. Das Institut für Geotechnik der Universität Stuttgart (IGS} hat im Anschluss für drei dieser Portale die Untersuchungen zum geothermischen Potenzial fortgeführt sowie Wärmenutzungskonzepte aufgestellt und detailliert geplant. Als Ergebnis liegt die Entwurfsplanung für eine geothermische Anlage am Nordportal des Grenztunnels Füssen vor. Es wird ein Überblick über die durchgeführten Untersuchungen, den Prozess der Portalauswahl und die relevanten Wärmenutzungen gegeben.
Das deutsche Autobahnnetz bedarf auch weiterhin des Neubaus und des Ausbaus. Da ein Großteil der deutschen Autobahnen in den 1970er und 1980er Jahren gebaut wurde, wächst auch der Anteil der Strecken, die einer Instandsetzung bzw. grundhaften Erneuerung bedürfen. Im Zuge der erforderlichen Baumaßnahmen ist die Einrichtung von Arbeitsstellen längerer Dauer erforderlich. Jährlich werden in Deutschland auf Autobahnen etwa 400 Arbeitsstellen längerer Dauer eingerichtet. Arbeitsstellen längerer Dauer stellen einen erheblichen Eingriff in den Verkehr dar, mit Auswirkungen sowohl auf den Verkehrsablauf als auch auf die Verkehrssicherheit. Eine besondere Gefahr stellt hierbei die Einrichtung von Arbeitsstellen dar, da alle Absicherungselemente (Verkehrseinrichtungen und Verkehrszeichen) unter Verkehr installiert werden müssen. Die Sicherung von Arbeitsstellen erfolgt gemäß RSA (1995), ergänzt durch die ZTV-SA (1997). Weitere Hinweise zur Einrichtung von Arbeitsstellen enthält der "Leitfaden zum Arbeitsstellenmanagement auf Bundesautobahnen". Diese Regelwerke geben aber immer nur den Zustand der bereits eingerichteten Arbeitsstelle an, während für den Auf- und Abbau bzw. Umbau der Absicherungen keine Hinweise und Vorgaben vorliegen. Neben der Tatsache, dass alle Absicherungselemente und Verkehrszeichen hierbei unter Aufrechterhaltung des fließenden Verkehrs zu installieren sind, stellen besonders spezifische und riskante Arbeitsvorgänge " wie z. B. das Überqueren der Fahrbahn oder das Entfernen von temporären Markierungen " eine Gefahr für die mit der Absicherung betrauten Personen dar. Ferner existieren derzeit keine länderübergreifenden Vorschriften in denen Anordnungen festgelegt sind, welche Abreitschritte nacheinander erfolgen sollen und welche Zwischenphasen beim Auf-, Um- und Abbau einzuplanen sind. Aufbauend auf vorhandenen Erkenntnissen sollte mit diesem Forschungsprojekt ein länderübergreifendes, systematisches Verfahren entwickelt werden, welches die Arbeitssicherheit erhöht, den Verkehrsfluss aufrechterhält und auf den bestehenden Regelwerken basiert.
Leiser Straßenverkehr 3
(2017)
Aus dem Verkehrsforschungsprogramm der Bundesregierung wurden seit 2001 die Verbundprojekte Leiser Straßenverkehr gefördert. In 2014 wurde das dritte und letzte Verbundprojekt erfolgreich abgeschlossen. Das Verbundprojekt Leiser Straßenverkehr 3 (LeiStra3) hatte sich als zentrales Ziel gesetzt, Maßnahmen zur Minderung des Straßenverkehrslärms in Ballungsräumen zu entwickeln, die dort aufgrund der hohen Bevölkerungsdichte besonders wirkungsvoll sind. Es wurden verschiedene Forschungsansätze verfolgt, die die Geräuschemission an der Lärmquelle nachhaltig reduzieren. Partner aus Wirtschaft und Wissenschaft haben in einer interdisziplinär angelegten Forschungsarbeit gemeinsam Lösungen erarbeitet, mit denen das Lärmminderungspotenzial von Reifen, Fahrzeug und Fahrbahn weiter ausgeschöpft werden kann. In allen Arbeitspaketen wurden zahlreiche Ergebnisse und Erkenntnisse gewonnen, die dazu beigetragen haben, die bestehende Technik zu verbessern, die Impulse zur Entwicklung neuer Technologien gesetzt haben und auf deren Basis das Technische Regelwerk fortgeschrieben wurde. rnDas Verbundprojekt "Leiser Straßenverkehr 3" wurde durch das Bundesministerium für Wirtschaft und Technologie unter dem Förderkennzeichen 19U10016 A-M gefördert. Der vorliegende Schlussbericht wurde auf der Grundlage der Originalberichte der Partner erstellt. Auf die Wiedergabe von Anhängen wurde in der vorliegenden Veröffentlichung verzichtet. Die Berichte der einzelnen Teilvorhaben sind ungekürzt bei der Technischen Informationsbibliothek (TIB) veröffentlicht.
Die Kommunikation zwischen Fahrzeugen und Infrastrukturkomponenten steht vor der Einführung in Europa. Dieser Beitrag stellt zunächst die grundlegende Technologie zum Austausch von Nachrichten und ein Pilotprojekt vor, innerhalb dessen eine sichere Fahrzeug-zu-Infrastruktur Kommunikation konzipiert und praktisch erprobt wird. Darauf aufbauend werden Sicherheitsfragestellungen von Infrastrukturkomponenten beleuchtet und ein Einblick in das Schlüsselmanagement sowohl für Fahrzeuge als auch Infrastrukturkomponenten gegeben.
Road condition acquisition and assessment are the key to guarantee their permanent availability. In order to maintain a country's whole road network, millions of high-resolution images have to be analyzed annually. Currently, this requires cost and time excessive manual labor. We aim to automate this process to a high degree by applying deep neural networks. Such networks need a lot of data to be trained successfully, which are not publicly available at the moment. In this paper, we present the GAPs dataset, which is the first freely available pavement distress dataset of a size, large enough to train high-performing deep neural networks. It provides high quality images, recorded by a standardized process fulfilling German federal regulations, and detailed distress annotations. For the first time, this enables a fair comparison of research in this field. Furthermore, we present a first evaluation of the state of the art in pavement distress detection and an analysis of the effectiveness of state of the art regularization techniques on this dataset.
One main objective of the EU-Project SENIORS is to provide improved methods to assess thoracic injury risk to elderly occupants. In contribution to this task paired simulations with a THOR dummy model and human body model will be used to develop improved thoracic injury risk functions. The simulation results can provide data for injury criteria development in chest loading conditions that are underrepresented in PMHS test data sets that currently proposed risk functions are based on. To support this approach a new simplified generic but representative sled test fixture and CAE model for testing and simulation were developed. The parameter definition and evaluation of this sled test fixture and model is presented in this paper. The justification and definition of requirements for this test set-up was based on experience from earlier studies. Simple test fixtures like the gold standard sled fixture are easy to build and also to model in CAE, but provide too severe belt-only loading. On the other hand a vehicle buck including production components like airbag and seat is more representative, but difficult to model and to be replicated at a different laboratory. Furthermore some components might not be available for physical tests at later stage. The basis of the SENIORS generic sled test set-up is the gold standard fixture with a cable seat back and foot rest. No knee restraint was used. The seat pan design was modified including a seat ramp. The three-point belt system had a generic adjustable load limiter. A pre-inflated driver airbag assembly was developed for the test fixture. Results of THOR test and simulations in different configurations will be presented. The configurations include different deceleration pulses. Further parameter variations are related to the restraint system including belt geometry and load limiter levels. Additionally different settings of the generic airbag were evaluated. The test set-up was evaluated and optimized in tests with the THOR-M dummy in different test configurations. Belt restraint parameters like D-ring position and load limiter setting were modified to provide moderate chest loading to the occupant. This resulted in dummy readings more representative of the loading in a contemporary vehicle than most available PMHS sled tests reported in the literature. However, to achieve a loading configuration that exposes the occupant to even less severe loading comparable to modern vehicle restraints it might be necessary to further modify the test set-up. The new generic sled test set-up and a corresponding CAE model were developed and applied in tests and simulations with THOR. Within the SENIORS project with this test set-up also volunteer and PMHS as well as HBM simulations are performed, which will be reported in other publications. The test environment can contribute in future studies to the assessment of existing and new frontal impact dummies as well as dummy improvements and related instrumentation. The test set-up and model could also serve as a new standard test environment for PMHS and volunteer tests as well as HBM simulations.
The levels of continuous vehicle automation have become common knowledge. They facilitate overall understanding of the issue. Yet, continuous vehicle automation described therein does not cover "automated driving" as a whole: Functions intervening temporarily in accident-prone situations can obviously not be classified by means of continuous levels. Continuous automation describes the shift in workload from purely human driven vehicles to full automation. Duties of the driver are assigned to the machine as automation levels rise. Emergency braking, e.g., is obviously discontinuous and intensive automation. It cannot be classified under this regime. The resulting absence of visibility of these important functions cannot satisfy " especially in the light of effect they take on traffic safety. Therefore, in order to reach a full picture of vehicle automation, a comprehensive approach is proposed that can map out different characteristics as "Principle of Operation" at top level. On this basis informing and warning functions as well as functions intervening only temporarily in near-accident situations can be described. To reach a complete picture, levels for the discontinuous, temporarily intervening functions are proposed " meant to be the counterpart of the continuous levels already in place. This results in a detailed and independent classification for accident-prone situations. This finally provides for the visibility these important functions deserve.
PROSPECT (Proactive Safety for Pedestrians and Cyclists) is a collaborative research project involving most of the relevant partners from the automotive industry (including important active safety vehicle manufacturers and tier-1 suppliers) as well as academia and independent test labs, funded by the European Commission in the Horizon 2020 research program. PROSPECT's primary goal is the development of novel active safety functions, to be finally demonstrated to the public in three prototype vehicles. A sound benefit assessment of the prototype vehicle's functionality requires a broad testing methodology which goes beyond what has currently been used. Since PROSPECT functions are developed to prevent accidents in intersections, a key aspect of the test methodology is the reproduction of natural driving styles on the test track with driving robots. For this task, data from a real driving study with subjects in a suburb of Munich, Germany was used. Further data from Barcelona will be available soon. The data suggests that intersection crossing can be broken down into five phases, two phases with straight deceleration / acceleration, one phase with constant radius and speed turning, and two phases where the bend is imitated or ended. In these latter phases, drivers mostly combine lateral and longitudinal accelerations and drive what is called a clothoid, a curve with curvature proportional to distance travelled, in order to change lateral acceleration smoothly rather than abrupt. The data suggests that the main parameter of the clothoid, the ratio distance travelled to curvature, is mostly constant during the intersections. This parameter together with decelerations and speeds allows the generation of synthetic robot program files for a reproduction of natural driving styles using robots, allowing a much greater reproducibility than what is possible with human test drivers. First tests show that in principle it is possible to use the driving robots for vehicle control in that manner; a challenge currently is the control performance of the robot system in terms of speed control, but it is anticipated that this problem will be solved soon. Further elements of the PROSPECT test methodology are a standard intersection marking to be implemented on the test track which allows the efficient testing of all PROSPECT test cases, standard mobile and light obstruction elements for quick reproduction of obstructions of view, and a concept for tests in realistic surroundings. First tests using the PROSPECT test methodology will be conducted over the summer 2017, and final tests of the prototype vehicles developed within PROSPECT will be conducted in early 2018
Europe has benefited from a decreasing number of road traffic fatalities. However, the proportion of older road users increases steadily. In an ageing society, the SENIORS project aims to improve the safe mobility of older road users by determining appropriate requirements towards passive vehicle safety systems. Therefore, the characteristics of road traffic crashes involving the elderly people need to be understood. This paper focuses on car occupants and pedestrians or cyclists in crashes with modern passenger cars. Ten crash databases and four hospital statistics from Europe have been analysed to answer the questions on which body regions are most frequently and severely injured in the elderly, and specific injuries sustained by always comparing older (65 years and above) with midâ€aged road users (25â€64 years). It was found that the body region thorax is of particularly high importance for the older car occupant with injury severities of AIS2 or AIS3+, where as the lower extremities, head and the thorax need to be considered for older pedestrians and cyclists. Further, injury risk functions were provided. The hospital data analysis showed less difference between the age groups. The linkage between crash and hospital data could only be made on a general level as their inclusion criteria were quite different.
Advancing active safety towards the protection of vulnerable road users: the PROSPECT project
(2017)
Accidents involving Vulnerable Road Users (VRU) are still a very significant issue for road safety. According to the World Health Organisation, pedestrian and cyclist deaths account for more than 25% of all road traffic deaths worldwide. Autonomous Emergency Braking Systems have the potential to improve safety for these VRU groups. The PROSPECT project (Proactive Safety for Pedestrians and Cyclists) aims to significantly improve the effectiveness of active VRU safety systems compared to those currently on the market by expanding the scope of scenarios addressed by the systems and improving the overall system performance. The project pursues an integrated approach: Newest available accident data combined with naturalistic observations and HMI guidelines represent key inputs for the system specifications, which form the basis for the system development. For system development, two main aspects are considered: advanced sensor processing with situation analysis, and intervention strategies including braking and steering. All these concepts are implemented in several vehicle prototypes. Special emphasis is put on balancing system performance in critical scenarios and avoiding undesired system activations. For system validation, testing in realistic scenarios will be done. Results will allow the performance assessment of the developed concepts and a cost-benefit analysis. The findings within the PROSPECT project will contribute to the generation of state -of-the-art knowledge, technical innovations, assessment methodologies and tools for advancing Advanced Driver Assistance Systems towards the protection of VRUs. The introduction of a new generation safety system in the market will enhance VRU road safety in 2020-2025, contributing to the "Vision Zero" objective of no fatalities or serious injuries in road traffic set out in the Transport White Paper. Furthermore, the test methodologies and tools developed within the project shall be considered for the New Car Assessment Programme (Euro NCAP) future roadmaps, supporting the European Commission goal of halving the road toll in the 2011-2020 timeframe.