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Risk-based approach for the protection of land transport infrastructure against extreme rainfall
(2016)
The aim of the research project "Risk based approach for the protection of transport infrastructure against extreme rainfall RAINEX" is the development of a practical methodology for the identification and assessment of both vulnerable as well as critical transport infrastructures towards extreme rainfall events consequences. The developed methodology is based on expert knowledge and includes qualitative and semi-quantitative analyses regarding the assessment of the vulnerability and criticality of relevant transport infrastructures. The process chain from the spatial rainfall to the concentrated runoff in the river channel was shown to assess the local hazard resulting in the local risk. The main result of the project is a practice-oriented and applicable methodology and a comprehensive and well-developed security handbook.
Various climate projections predict changing climatic parameters like temperature, precipitation, wind speed etc. for Germany. This could have severe impacts on road transport infrastructure as well as road traffic itself. At the Federal Highway Research Institute (Bundesanstalt für Straßenwesen (BASt) a strategy was developed to adapt roads and engineering structures to the impacts of climate change. The strategy "Anpassung der Straßenverkehrsinfrastruktur an den Klimawandel / Adaptation of the road infrastructure to climate change (AdSVIS)" comprises currently about 15 projects. On the basis of the identification of the hazards and the combination of the climate and road network data, the road transport infrastructure which might be affected is to be determined. Adaptation measures are to be developed for the identified risk areas and assessed as to their effectiveness. Special attention is given to international cooperation since climate change is a truly global challenge.
Die Straßenverkehrsinfrastruktur und der Straßenverkehr müssen sich künftig neuen Herausforderungen stellen, wie dem technologischen, demografischen und klimatischen Wandel. Im Hinblick auf den projizierten Klimawandel entwickelte die BASt eine Strategie zur "Adaptation der Straßenverkehrsinfrastruktur an den Klimawandel (AdSVIS)". Diese Strategie soll dazu beitragen, die Verwundbarkeit des Straßenwesens gegenüber den negativen Folgen des Klimawandels durch Anwendung geeigneter Adaptationsmaßnahmen zu mindern. Um das Ziel zu erreichen, wurden vielfältige Projekte initiiert. Den zentralen Punkt der Anpassungsstrategie stellt dabei das Projekt "Risikoanalyse wichtiger Güter- und Transitverkehrsachsen unter Einbeziehung von Seehäfen (RIVA)" dar. Ziel dieses Projekts ist, eine Methodik für die Identifikation, Analyse und Bewertung der Risiken aus den projizierten Klimaänderungen zu entwickeln und an ausgewählten Streckenabschnitten im deutschen Teil des TEN-T (Transeuropäisches Netz - Transport) zu validieren. Durch dieses hierbei entwickelte und validierte Verfahren soll ferner das gesamte Bundesfernstraßennetz im Hinblick auf die klimabedingten Risiken untersucht und bewertet werden, mit dem Ziel, einen Aktionsplan für die erforderlichen Anpassungsmaßnahmen zu erstellen. Darüber hinaus befassen sich weitere Projekte des AdSVIS-Programms mit der Anpassung der maßgeblichen Regelwerke, beispielsweise mit der Überprüfung der Dimensionierungsansätze von Entwässerungseinrichtungen und Straßenbefestigungen. Gleichzeitig werden konkrete Anpassungsmaßnahmen entwickelt und erprobt.
Although the EU has implemented some legislation on the security of transport infrastructure in Europe (i.e. EPCIP Directive 2008/114/), the security of transport networks up to date remains a national prerogative. While research has been conducted on a European scale, operative measures are implemented only on the national level. This paper argues for an Europeanisation of transport security, focussing on practicable recommendations for achieving this goal. Additionally, the divergence between a nationally shaped risk perception and the cross-boundary nature of security threats is discussed and possible strategies to overcome this problem are outlined. Furthermore, the paper aims at fostering the debate between (transport) security stakeholders in the EU Member States and presenting incentives and arguments for a shift from a national to a European security rationale.
Improving the security of critical road infrastructure is a major task for owners and operators of tunnels and bridges in the European TEN-T Network (Trans-European Networks of Transport) (European Parliament and Council 1996). Up to now, there has not been a systematic procedure for identifying and assessing critical infrastructure objects and selecting appropriate protection measures. The EC FP7 project SeRoN for the first time presents an innovative methodology in order to support road owners and operators in handling this complex task. This paper describes the methodology and project results in detail by giving an introduction into its practical application.
Road authorities, freight, and logistic industries face a multitude of challenges in a world changing at an ever growing pace. While globalization, changes in technology, demography, and traffic, for instance, have received much attention over the bygone decades, climate change has not been treated with equal care until recently. However, since it has been recognized that climate change jeopardizes many business areas in transport, freight, and logistics, research programs investigating future threats have been initiated. One of these programs is the Conference of European Directors of Roads (CEDR) Transnational Research Programme (TRP), which emerged about a decade ago from a cooperation between European National Road Authorities and the EU. This paper presents findings of a CEDR project called CliPDaR, which has been designed to answer questions from road authorities concerning climate-driven future threats to transport infrastructure. Pertaining results are based on two potential future socio-economic pathways of mankind (one strongly economically oriented "A2" and one more balanced scenario "A1B"), which are used to drive global climate models (GCMs) producing global and continental scale climate change projections. In order to achieve climate change projections, which are valid on regional scales, GCM projections are downscaled by regional climate models. Results shown here originate from research questions raised by European Road Authorities. They refer to future occurrence frequencies of severely cold winter seasons in Fennoscandia, to particularly hot summer seasons in the Iberian Peninsula and to changes in extreme weather phenomena triggering landslides and rutting in Central Europe. Future occurrence frequencies of extreme winter and summer conditions are investigated by empirical orthogonal function analyses of GCM projections driven with by A2 and A1B pathways. The analysis of future weather phenomena triggering landslides and rutting events requires downscaled climate change projections. Hence, corresponding results are based on an ensemble of RCM projections, which was available for the A1B scenario. All analyzed risks to transport infrastructure are found to increase over the decades ahead with accelerating pace towards the end of this century. Mean Fennoscandian winter temperatures by the end of this century may match conditions of rather warm winter season experienced in the past and particularly warm future winter temperatures have not been observed so far. This applies in an even more pronounced manner to summer seasons in the Iberian Peninsula. Occurrence frequencies of extreme climate phenomena triggering landslides and rutting events in Central Europe are also projected to rise. Results show spatially differentiated patterns and indicate accelerated rates of increases.
Gesellschaftlich bedingte Änderungen in der Mobilität sowie die politisch gewollte Attraktivitätssteigerung und Förderung des Radverkehrs sollen die Verkehrsmittelwahl hin zum nichtmotorisierten Verkehr verschieben. Dies kann einen Beitrag zu einer umweltfreundlicheren Mobilität liefern. Aufgrund der veränderten Fahrradnutzung, der zunehmenden Verbreitung von elektrisch unterstützten Fahrrädern und der gestiegenen differenzierten Anforderungen unter anderem an Verkehrsqualität werden Anpassungen der Infrastruktur im Hinblick auf die Radverkehrsplanung, -konzeption sowie Straßenbau beziehungsweise -erhaltung notwendig sein. Vor diesem Hintergrund sowie der hohen Unfallanzahl, Unfallschwere und steigenden Unfallanteile im Radverkehr werden in den einzelnen Forschungsbereichen der Sicherheitsforschung des Radverkehrs (Einflussfaktor Mensch, Infrastruktur und Sicherheitsausstattung/Fahrzeugtechnik) zahlreiche Forschungsaktivitäten durchgeführt, um die Entwicklung der Verkehrssicherheit im Radverkehr nicht weiter von der positiven Entwicklung der Verkehrssicherheit insgesamt abzukoppeln. Dieser Beitrag gibt aufbauend auf den Fakten und Potenzialen des Radverkehrs einen Überblick über die Radverkehrssicherheit hinsichtlich Gesamtunfallgeschehen, Unfallentwicklung und Unfallstruktur. Die Darstellung der abgeschlossenen, laufenden und geplanten Forschungsaktivitäten soll die wesentlichen Erkenntnisse und Maßnahmen in den jeweiligen Forschungsbereichen verdeutlichen.