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Offenporige Asphaltbeläge besitzen mit 22 % Hohlraum im Belag und einer groben Kornstruktur an der Oberfläche einen wesentlich anderen Aufbau als dichte Beläge. Nach vorliegenden Erfahrungen und Ergebnissen von durchgeführten Untersuchungen erfordern die Belagseigenschaften der offenporigen Asphaltbeläge eine andere Anwendung von Tausalz. Die Bundesanstalt für Straßenwesen (BASt) führte in den vergangenen Jahren gemeinsam mit der Firma KOMMZEPT-Ingenieurbüro Hausmann umfangreiche Untersuchungen zum Salzeinsatz auf offenporigen Belägen durch. Dazu gehörten Laborversuche, Messungen zur Verweil- und Wirkungsdauer von Tausalz auf diesen Belägen und Auswertungen der Beobachtungen von Autobahnmeistereien in Bayern, Brandenburg und Niedersachsen. Die Ergebnisse der Untersuchungen zeigen, dass die offenporigen Beläge teilweise winterdienstlich anders behandelt werden müssen als die dichten Beläge. Die Offenporigen Asphalte besitzen im Vergleich zu dichten Belägen eine deutlich rauere Oberflächenstruktur. In den Poren des Belags fließt Wasser nicht vollständig ab. Durch Kapillarwirkungen lagert sich Wasser im Belag ähnlich wie in einem Schwamm ab. Dieses Wasser im Belag kann durch den Verkehr sogar wieder zur Oberfläche gesaugt werden, an der es bei Temperaturen unter 0 -°C vor allem nachts zu einer Eisschicht kommen kann. Aufgrund der größeren gebundenen Wassermengen muss mehr Salz auf offenporigen Asphalten gestreut werden. Ausgebrachtes Tausalz bleibt länger in den Oberflächenporen oder im Belag haften. Es wird im Vergleich zu dichten Belägen durch den Verkehr fast nicht zur Seite verweht. Vorbeugend ausgebrachtes Feuchtsalz dringt langsam in die Oberfläche ein. An den eigentlichen Kontaktflächen zum Reifen bleibt wenig haften. Deshalb ist der Einsatz von Tausalzlösungen bei Reifglätte oder geringer Feuchte (Nieselregen) wirkungsvoller.
Although the bus belongs to the safest traffic means, single accidents can be particularly severe and concern many passengers. Especially in case of fires a high number of injured and killed persons can be the outcome. Fire safety of buses therefore is of high importance. With the increase of plastic materials as a material for the interior equipment of buses and coaches due to their good mechanical properties combined with low weight, the question arises whether the safety level has decreased in case of a fire during the last years " also compared to other means of transport. Because of the combustible plastics and their ability to release a high amount of heat the main fire load in buses is no longer the fuel but the plastic materials which are also often easy to ignite. Besides the flammability of the equipments, also the production of smoke, the smoke development and propagation as well as its toxicity are of interest. That counts for the passengers as well as for the test methods and its limit values. The severe fire in Germany near Hanover in 2008 with 20 fatalities showed how disastrous such fires can be. For those reasons several research projects were initiated on behalf of the German Federal Highway Research Institute. At the one hand the fire behaviour of coach interiors was examined in general focusing on fire propagation as well as fire detection and signalling. As result, recommendations with regard to early fire detection systems for the engine compartments and onboard extinguishing equipment were elaborated. On the other hand research was carried out to examine heat release, smoke, smoke propagation and its toxicity due to burning bus interior materials. In this project small and real scale experiments on material specimens, interior parts and vehicles were performed. Trains and buses often have very similar operation conditions. Consequently, bus interior material was tested according to the regulations for rail vehicles, i.e. DIN EN 45545 as well as DIN 5510. None of the tested bus interior materials would have been allowed to use in a train. The fire safety regulations for bus materials are on a low level compared to other transport sectors, i.e. railway, ship and aircraft. Also numerical investigations with the Fire Dynamics Simulator (FDS) were performed. The very rapid fire development during the severe bus fire from 2008 could be predicted with the numerical model. The model was then used to investigate the influence of different materials, ventilation conditions and ignition sources. The bus materials contribute significantly to a very rapid fire development in bus fires. Especially, the flammable ceiling and the passenger seats were identified to be key issues of the fire propagation in a bus and can be explained by the rapid fire spread along the ceiling and the high fire load of passenger seats. As conclusion of the project effective and economically reasonable fire safety requirements for interiors of buses are recommended which would improve the current situation. Proposals for amendments of current requirements are recommended including the specification of appropriate limit values. In particular, it is taken into consideration which reasonable fire safety standards from other transport sectors, especially the rail sector, should be transferred to buses