Filtern
Dokumenttyp
Schlagworte
- Knotenpunkt (4) (entfernen)
Institut
- Abteilung Fahrzeugtechnik (4) (entfernen)
Die vom Bundesministerium für Verkehr, Bau und Stadtentwicklung (BMVBS) beauftragte Studie zu den Auswirkungen neuartiger Lastzugkombinationen auf die Infrastruktur, den Verkehrsablauf und die Verkehrssicherheit liegt jetzt vor. Die Untersuchungen der Arbeitsgruppe der Bundesanstalt für Straßenwesen (BASt) konzentrieren sich ausschließlich auf die technischen Fragestellungen. Die wesentlichen Ergebnisse: - Eine erhöhte Straßenschädigung ist wegen der zugrunde gelegten neuen Fahrzeugtypen mit acht Achsen nicht zu erwarten. Infolge der prognostizierten allgemeinen Transportleistungssteigerung ist dieser Effekt jedoch von begrenzter Dauer. - Die Beanspruchung der Brücken wird durch 60-Tonnen-Lastzugkombinationen deutlich erhöht, was Ersatz oder Verstärkungen erforderlich machen wird. - Für die Tunnel der Bundesfernstraßen können sich wegen des deutlich größeren Ladevolumens höhere Brandlasten ergeben, mit der Folge erhöhter Anforderungen an die Sicherheitsausstattung. - Probleme bei der Befahrbarkeit von Kreisverkehren, Straßenkreuzungen und -einmündungen sowie Parkplätzen auf Rastanlagen werden sich infolge der größeren Fahrzeuglängen ergeben. Durch zusätzliche fahrzeugtechnische Einrichtungen - wie Lenkachse oder zusätzliche Gelenke - können diese gemindert werden. - Nach den vorliegenden Erfahrungen aus dem Ausland sind für ausreichend motorisierte und mit zuverlässigen Bremsanlagen ausgerüstete Transportfahrzeuge keine gravierenden Probleme hinsichtlich des Verkehrsablaufs und der Verkehrssicherheit auf Autobahnen zu erwarten. Im nachgeordneten Straßennetz (insbesondere Landes-, Kreis- und Gemeindestraßen) ist mit negativen Auswirkungen der Lastzugkombinationen sowohl auf die Verkehrssicherheit als auch auf die Leistungsfähigkeit der Straßen zu rechnen. So muss beispielsweise mit längeren Überholwegen und längeren Räumzeiten - etwa beim Abbiegen und an Bahnübergängen - gerechnet werden. - Die derzeitigen Schutz- und Rückhaltesysteme sind nicht für 60-Tonnen-Lastzugkombinationen ausgelegt. Derartige Rückhaltesysteme müssten erst entwickelt werden. Aufgrund der höheren Fahrzeuggewichte könnte die Unfallschwere bei Auffahrunfällen deutlich zunehmen. Moderne Fahrerassistenzsysteme (Spurhalteassistent sowie Bremsassistent mit Abstandsradar) könnten jedoch grundsätzlich dazu beitragen, sowohl Unfallrisiko als auch Unfallschwere zu verringern.
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
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.
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.