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A series of drop tests and vehicle tests with the adult head impactor according to Regulation (EC) 631/2009 and drop tests with the phantom head impactor according to UN Regulation No. 43 have been carried out by the German Federal Highway Research Institute (BASt) on behalf of the German Federal Ministry of Transport, Building and Urban Development (BMVBS). Aim of the test series was to study the injury risk for vulnerable road users, especially pedestrians, in case of being impacted by a motor vehicle in a way described within the European Regulations (EC) 78/2009 and (EC) 631/2009. Furthermore, the applicability of the phantom head drop test described in UN Regulation No. 43 for plastic glazing should be investigated. In total, 30 drop tests, thereof 18 with the adult head impactor and 12 with the phantom head impactor, and 49 vehicle tests with the adult head impactor were carried out on panes of laminated safety glass (VSG), polycarbonate (PC) and laminated polycarbonate (L-PC). The influence of parameters such as the particular material properties, test point locations, fixations, ambient conditions (temperature and impact angle) was investigated in detail. In general, higher values of the Head Injury Criterion (HIC) were observed in tests on polycarbonate glazing. As the HIC is the current criterion for the assessment of head injury risk, polycarbonate glazing has to be seen as more injurious in terms of vulnerable road user protection. In addition, the significantly higher rebound of the head observed in tests with polycarbonate glazing is suspected to lead to higher neck loads and may also cause higher injury risks in secondary impacts of vulnerable road users. However, as in all tests with PC glazing no damage of the panes was observed, the risk of skin cut injuries may be expected to be reduced significantly. The performed test series give no indication for the test procedure prescribed in UN Regulation No. 43 as a methodology to approve glass windscreen not being feasible for polycarbonate glazing, as all PC panes tested fulfilled the UN R 43 requirements. The performance of the windscreen area will not be relevant for vehicle type approval according to the upcoming UN Regulation for pedestrian protection. However, it is recommended that pedestrian protection being considered for plastic windscreens to ensure at least the same level of protection as glass windscreens.
Beispielhaft am Begleiteten Fahren wurde eine Methode zur standardisierten Erfassung der Fahrsicherheit im Realverkehr entwickelt. Hierfür wurde eine Fahrstrecke mit einer Fahrdauer von etwa 90 Minuten festgelegt, die eine repräsentative Auswahl von Verkehrsszenarien enthielt, mit denen Fahrer üblicherweise beim Fahren konfrontiert werden. Diese Strecke umfasste Innerortsbereiche sowie Landstraßen- und Autobahnabschnitte. Auf dieser Strecke wurden Referenzdaten von 40 Fahrern erhoben. 26 dieser Fahrer waren zwischen 18 und 22 Jahren alt, davon hatten 17 am Begleiteten Fahren teilgenommen. Das Alter der übrigen 14 Fahrer, die allesamt nicht am Begleiteten Fahren teilgenommen hatten, lag zwischen 23 und 50 Jahren. Während der Fahrten wurden elf Variablen elektronisch im Fahrzeug erfasst (u. a. Fahrgeschwindigkeit, Abstand zum vorausfahrenden Fahrzeug). Diese elektronisch erfassten Daten wurden nach dem System I-TSA (INVENT " Traffic Safety Assessment; Glaser, Waschulewski & Schmid, 2005) ausgewertet und um Papier-und-Bleistift-Tests sowie um Beurteilungen durch den Untersuchungsleiter ergänzt. Insgesamt ergaben sich 18 Skalen. Diese zeigten hohe Reliabilitäten. Die Skalen ermöglichen eine profilartige Darstellung der Fahrsicherheit einzelner Fahrer und von Fahrergruppen, jeweils relativ zu einer Referenzgruppe. In einer Ex-Post-facto-Analyse der gegebenen Stichprobe konnte anhand dieser Skalen zwischen Fahrern, die am Begleiteten Fahren teilgenommen hatten und denen, die dies nicht getan hatten, unterschieden werden. Damit steht ein umfassendes, auf einer psychometrischen Methodik basierendes Testsystem zur Verfügung, das auf einer standardisierten Fahrprobe im Straßenverkehr basiert. Dieses System kann, ohne aufwändige und substanzielle Änderungen, auch für andere verkehrsmedizinische und verkehrspsychologische Fragestellungen eingesetzt werden.
The misuse of CRS (child restraint system) is one of the most urgent problems in connection of child safety in cars. Numerous field studies show that more than two thirds of all CRS are used in a wrong way. This misuse could lead to serious injuries for the children. Surprisingly the quality of CRS use is coded much better in accident data (e.g. GIDAS) than the results of observatory field studies show. It is expected that misuse of CRS was not detected by the accident teams in a large number of the cases. An essential part in improving child seats and their usability is the knowledge of the relation between misuse and resulting injuries. For that the analysis and experimental reconstruction of accidents is an important part. For allowing an exact experimental accident reconstruction, it is necessary to have detailed information about the securing situation of the child and about the installation of the CRS in the car.
Automotive interiors have long been a potentially injurious impact area to occupants during accidents, especially in the absence of adequate padding. The U.S. Federal Motor Vehicle Safety Standard (FMVSS) 201, Occupant Protection in Interior Impact, outlines test procedures and performance criteria in order to mitigate potentially injurious head impacts to interior surfaces. FMVSS 201 specifies a finite set of impact locations and applies to passenger vehicles of a specified year range and with a gross vehicle weight rating less than 10,000 lb. In this paper, two head impact test methodologies are presented, a pendulum-test device and a Free Motion Headform (FMH) launching device, which allows for dynamic, repeatable impact evaluation of various vehicle interior surfaces and their impact attenuation abilities. The presented testing includes multiple series that evaluate the effect of differing vehicle upper interior padding on occupant head injury. One study in particular, analyzes a head impact to the side header of a heavy truck (not included in FMVSS 201) during a 90 degree rollover. Additionally, two other series of tests are presented which assess the injury reduction effect of side airbags to near side as well as far side occupants in a side impact scenario. Lastly, a forensic analysis is presented which evaluates two possible head impact locations experienced in a real world accident by analysis of the resulting interior compartment damage utilizing the FMH launching device test method. The data collected and presented includes accelerometer instrumentation and high speed video analysis. These studies demonstrate that adequate padding and airbags are very effective at mitigating head injury potential at impact speeds of 12-25 mph (19-40 kph).
The number of road accidents in Portugal has decreased significantly in the last decades, however, this tendency is not similar in all types of transportation. In the most recent years and by European standards, Portugal is still one of the leading countries concerning the number of fatalities in Powered Two Wheelers (PTW) accidents. To this effect, the in-depth investigation of PTW accidents is crucial and so, a thorough statistical analysis concerning the main factors influencing PTW riders injury severity accidents was undertaken regarding the 2007-2010 period in the National Road Safety Authority (ANSR) injured riders database using the software SPSS. In addition, to determine the importance of absent factors in the database analysis, such as velocity, a set of 53 real accidents involving PTW were also investigated and computationally reconstructed using the software PC-Crash. Lateral collisions between a motorcycle, its rider and the side of three different passenger cars were also simulated, varying the motorcycle impact angle and velocity in order to estimate the PTW deformation energy and the rider- injuries, as this accident configuration stands out in terms of frequency and even severity. The results of this detailed study are presented.
Real world accident reconstruction with the Total Human Model for Safety (THUMS) in Pam-Crash
(2013)
Further improvement of vehicle safety needs detailed analysis of real world accidents. According to GIDAS (German In-Depth Accident Study) most car to car front accidents occur at mid-crash severity. In this range thoracic injuries already occur. In this study a real world frontal crash with mid-crash severity out of the AARU database was reconstructed. The selected car to car accident was reconstructed by AARU by means of pc-crash software in order to get the initial dynamic accident conditions. These initial conditions were used to reconstruct the complete accident in more detail using FE models for the car structure and the occupants. Occupant simulations were performed with FE HIII-dummy models and the THUMS using Pam-Crash code. An initial THUMS validation was performed in order to verify the model-´s biofidelity by means of table-top test simulations. THUMS bone stiffness values were modified to match the real word occupant age. A comparison between driver and passenger restraint system loading was done, as well as an injury prediction comparison between the HIII-dummy model and THUMS response for both cases. Detailed comparison between the HIII-dummy models and THUMS regarding thoracic loading are discussed.
Beside numerous information about vehicles injuries and environmental data the GIDAS database contains detailed reconstruction data. This data is calculated by a reconstruction engineer who handles about 1000 accidents per year. The spectrum of one reconstruction ranges from simple crossing accidents to complex run-off accidents with rollover events. Especially for complex accident scenarios there is a large effort to design the environment of the accident scene within PC-Crash ®. To reduce the reconstruction time by maintaining the high quality of reconstruction 3D-geodata can be useful. Geodata is available for nearly every area in Germany and can be used for a fast and detailed creation of complex accident environments. In combination with the accident sketch areal images of the accident scene can be created and the participants are implemented in the new-built 3D-reconstruction environment. As a consequence, the characteristics of the terrain can be considered within the reconstruction which is especially important for run-off accidents.
Rollovers continue to be a major source of heavy truck fatalities when compared to other accident modes. Real world rollover accidents are analyzed and two distinct damage patterns are identified. Damage to heavy truck roofs can occur from lateral loading that transitions to vertical roof loading as the vehicle rolls onto its side and then over onto its roof. A second load path can occur when the vehicle has rolled onto its side and furrows into the ground generating large longitudinal friction forces between the roof and ground. A review of the previous literature and various test methodologies are presented. A sled impact test methodology is presented which allows for structural assessment of a heavy truck cab's crashworthiness in both of these loading environments. Two test series are presented using the sled impact test methodology in order to analyze real world truck rollovers using varying impact platen and contact angles. The structural deformation and failure patterns were found to be consistent with damage seen in real world accident vehicles. In each case, a second equivalent truck cab was then reinforced and tested under similar conditions to evaluate the energy management and crush resistance of a stronger cab structure. These structural reinforcements demonstrated a substantial reduction in roof crush and protected the survival space of the occupant compartment. The sled impact test procedure is an effective method for testing the structural performance of a heavy truck cab in a variety of loading scenarios comparable to real world accidents and ascertaining the load and energy load levels in these accident modes.
The GIDAS-investigation team of Dresden (VUFO) has documented more than 11.500 accidents since 1999. The documentation of the accident includes beside vehicle-, injury- and environmental-data very detailed reconstruction data. Within this accident investigation the VUFO began to record the skid resistance of the accident site in 2009. The measurements are divided in macro- and microroughness (Sand depth method and Portable Skid Resistance Tester-SRT-by Munro-Stanley London-©). Both methods are used to determine the skid resistance for more than 1000 passenger cars. The aim of the present study is to find out a relationship between the measured skid resistance, the road conditions and the friction coefficient, which is used to calculate the maximum accelerations and decelerations during a reconstruction of an accident. Basic approach to convert the SRT-value into the friction coefficient is the calculation of the theoretical absorbed energy of the spring rubber system of the swinging arm of lever. This absorbed energy is used to get the friction coefficient by using the equations for the work of friction. To consider the road-behavior, in correlation to the friction coefficient, the results will be merged with existing literature. Last step for this study will be a comparison between actual used friction coefficients all over the GIDAS-database and the theoretical results. The study shows, if it is possible to use the SRT-Measurement for the estimation of a friction coefficient for the reconstruction of a traffic accident. As expected, the GIDAS-Database and the additional measurement of the roughness of the road directly on the spot are an enormous useful dataset.
The grip between the road surface and vehicle tires is the physical basis for the moving of all vehicles in road traffic. In case of an accident the available grip level is one of the most relevant influence factors, influencing the causation and the procedure of the accident. However, the estimation of the grip level is not easy and therefore, is commonly not done on the accident scene. This is especially true for the measurement of the water depth. Until now, real accident databases provide no measurement data about the grip level and the water film depth and thus, the estimation of its influence is not possible yet. From the tyre manufacturers point of view, it is important to know about the road conditions (namely grip level, macro-texture, water depth, temperature) at the accident scene, as well as the operating conditions of the vehicles (braking, loss of control, speed, etc). These data is necessary to define relevant tyre traction tests for the end-user and for regulations. For this reason VUFO and Michelin developed a consistent method for the measurements of grip level and water depth for the accidents of the GIDAS database. The accident research team of Dresden, which documents about 1000 accidents with at least one injured person every year, is measuring the micro-roughness and the macro-roughness directly on the spot. For the measurement of the micro-roughness a Skid Resistance Tester (British Pendulum) is used. The Mean Texture Depth (describing the macro-roughness) is measured by the Sand Depth Method. Since June 2009, measurements for more than 700 accidents including 1200 participants have been carried out. In case of wet or damp road conditions during the accident, the water depth is measured additionally. Therefore VUFO and Michelin developed a special measurement device, which allows measurements with an accuracy of 1/10 millimetre. The measurement point at the accident scene is clearly defined and thus, the results are comparable for all different accidents and participants. The use of the GIDAS database and the accident sampling plan allows representative statements for the German accident scenario. With this data it is possible for the first time to have an accurate view of the road conditions at the accident scene. One possibility is a more detailed estimation of hydroplaning accidents using the actually measured water depths. The development of new testing methods and new tires can be based on the real situation of the road infrastructure. Furthermore, the combination of the technical GIDAS data and the measured road surface properties can also be used for the estimation of effectiveness of several safety systems like the brake assist and/or emergency braking systems. The calculation of a reduced collision speed due to the use of a brake assist is only one example for the application of real measured grip level data.
Having a look at safety to traffic and the prevention of accidents it can be observed that technical improvements in active safety of vehicles have let to various positive effects in this area. Among other components the tyre-road-contact takes a key role in the development of active safety technologies. All forces in accelerating, breaking and vehicle guidance have to be transmitted through the tyre-road contact area by friction forces. A common way to characterize a friction process is to identify the coefficient of friction μ between two touching materials. Even though there are several approaches to experimentially characterise road surfaces, no standard method exists. In this paper an overview of existing test methods is given. Furthermore the preliminary design of a newly developed portable test device with its possibility to investigate the tyre-road-friction of arbitrary roads or even places of accidents is shown.
The main objective of EC CASPER research project is to reduce fatalities and injuries of children travelling in cars. Accidents involving children were investigated, modelling of human being and tools for dummies were advanced, a survey for the diagnosis of child safety was carried out and demands and applications were analysed. From the many research tasks of the CASPER project, the intention of this paper is to address the following: • In-depth investigation of accidents and accident reconstruction. These will provide important points for the injury risk curve, in order to improve it. Different accident investigation teams collected data from real road accidents, involving child car passengers, in five different European countries. Then, a selection of the most appropriate cases for the injury risk curve and the purposes of the project was made for an in-depth analysis. The final stage of this analysis was to conduct an accident reconstruction to validate the results obtained. The in-depth analysis included on-scene accident investigation, creating virtual simulations of the accident/possible reconstruction, and conducting the reconstruction. In the cases of successful reconstructions, new points were introduced to the injury risk curves. Accident reconstructions of selected cases were carried out in test laboratories as the next step following in-depth road accident investigation. These cases were reconstructed using similar child restraint systems (CRS) and the same type make and model as in the real accidents. Reconstructing real cases has several limitations, such as crash angle, cars" approximation paths and crash speed. However, a few changes and applications on the testing conditions were applied to reduce the limitations and improved the representations of the real accidents. After conducting the reconstructions, a comparison between the deformations of the cars on the real accident and the vehicles from the reconstructions was made. Additionally, a correlation between the data captured from the dummies and the injury data from the real accident was sought. This finalises an in-depth analysis of the accident, which will provide new relevant points to the injury risk curve. The CASPER project conducted a large research programme on child safety. On technical points, a promising research area is the developing injury risk curves as a result of in-depth accident investigations and reconstructions. This abstract was written whilst the project was not yet finished and final results are not yet known, but they will be available by the time of the conference. All the works and findings will not necessarily be integrated in the industrial versions of evaluation tools as the CASPER project is a research program.
Although the number of road accident casualties in Europe (EU27) is falling the problem still remains substantial. In 2011 there were still over 30,000 road accident fatalities. Approximately half of these were car occupants and about 60 percent of these occurred in frontal impacts. The next stage to improve a car's safety performance in frontal impacts is to improve its compatibility. The objective of the FIMCAR FP7 EU-project was to develop an assessment approach suitable for regulatory application to control a car's frontal impact and compatibility crash performance and perform an associated cost benefit analysis for its implementation. This paper reports the cost benefit analyses performed to estimate the effect of the following potential changes to the frontal impact regulation: • Option 1 " No change and allow current measures to propagate throughout the vehicle fleet. • Option 2 " Add a full width test to the current offset Deformable Barrier (ODB) test. • Option 3 " Add a full width test and replace the current ODB test with a Progressive Deformable Barrier (PDB) test. For the analyses national data were used from Great Britain (STATS 19) and from Germany (German Federal Statistical Office). In addition in-depth real word crash data were used from CCIS (Great Britain) and GIDAS (Germany). To estimate the benefit a generalised linear model, an injury reduction model and a matched pairs modelling approach were applied. The benefits were estimated to be: for Option 1 "No change" about 2.0%; for Option 2 "FW test" ranging from 5 to 12% and for Option 3 "FW and PDB tests" 9 to 14% of car occupant killed and seriously injured casualties.
The utilisation of secondary-safety systems to protect occupants has attained a very high level over the past decades. Further improvements are still possible, but increasingly minor progress is only to be had with a high degree of effort. Thus, a key aspect must be the impact to overall safety in an accident. If reliable information is available on an imminent crash, measures already taken in the pre-crash phase can result in a significantly great influence on the outcomes of the crash. With this background preventive measures are the key to a sustainable further reduction of the figures of crash victims on our roads. This paper aims to show a preventive approach that can contribute to lessening the consequences of a crash by creating an optimum interaction of measures in the fields of primary and secondary safety. To further enhance vehicle safety, driver assistant systems are already available that warn the driver of an imminent front-to-rear-end crash. The next step is to support him in his reactions or if he fails to react sufficiently, to even initiate an automatic braking when the crash becomes unavoidable. Automatic pre-crash braking can, in an ideal situation, fully prevent a crash or can significantly reduce the impact speed and thus the impact energy (and the severity of the accident). If a vehicle is being braked in the pre-crash phase, the occupants are already being pre-stressed by the deceleration. The information available about the imminent crash can be used to activate the belt tensioners and likewise other secondary safety systems in the vehicle right before the impact. The pre-crash deceleration also causes the front of the vehicle to dip. Conventional crash tests do not take this specific impact situation into consideration. This is why, for example, the influences of the pre-crash displacements of the occupants are not recorded in the test results. Furthermore, a reproducible representation of the benefit of the vehicle safety systems which prepare the occupants for the imminent impact is not possible. In order to demonstrate the functions of automated pre-crash braking and to investigate the differences during the impact as a consequence of the altered occupant positions as well as the initiation of force and deformations of the vehicle front, DEKRA teamed up with BMW to carry out a joint crash test with the latest BMW 5 series vehicle. It involved the vehicle braking automatically from a starting test speed of 64 km/h (corresponding to the impact speed set by Euro NCAP) down to 40 km/h. The test was still run by the intelligent drive system of the crash test facility. This required several modifications to be made to the test facility as well as to the vehicle. The paper will describe and discuss some relevant results of the crash test. In addition, the possible benefits of such systems will also be considered. The test supplemented the work of the vFSS working group (vFSS stands advanced Forward-looking Safety Systems).
Nowadays human-created systems are increasing in complexity due to the interaction of humans and technology. Especially road traffic systems are composed of multitudinous resources (e.g. personnel, vehicles, organizations, etc.), which make it even harder to anticipate the positive and negative effects on safety. One key in achieving a significant reduction of fatalities is seen in driver assistant systems counterbalancing the lack of drivers' capabilities. But the actual outcome of implementing these sophisticated technologies especially on influencing driver's capabilities are yet unknown. Latest research exemplifies an increase of reaction times of drivers in case of dysfunctional driver assistant systems. This research paper applies STAMP/STPA (STAMP = systems-theoretic accident model and processes; STPA = systems-theoretic process analysis) to the German automobile traffic system focusing on the effects of driver assistant systems on drivers. By doing so, the potential hazards caused by technology can be identified.
The sequence of accident events can be classified by three essential phases, the pre-crash-sequence, the crash-sequence and the post-crash-sequence. The level of reliability of the information in the GIDAS-database (German In Depth Accident Study) is provided predominantly on the passive side. The period to evaluate active safety systems begins already in the pre-crash-sequence. The assessment of the potential of sensor- or communication-based active safety systems can only be accomplished by a detailed analysis of the pre-crash-phase. Hence the necessity to analyze the early period of the accident event in detail arises. This is possible with the help of the digital sketches of the accident site and the simulation of the accident by a simulation method of the VUFO GmbH. After simulating the pre-crash scenario it is possible to generate additional and standardized data to describe the pre-crash-sequences of an accident in a very high detail. These data are documented in a second database called the GIDAS Pre-Crash-Matrix (PCM). The PCM contains various tables with all relevant data to reproduce the pre-crash-sequence of traffic accidents from the GIDAS database until 5 seconds before the first collision. This includes parameters to describe the environment data, participant data and motion or dynamic data. This paper explains the creation of the PCM, the simulation itself and the contents and structure of the PCM. With this information of the pre-crash-sequence for various accident scenarios an improved benefit estimation and development of active safety systems can be made possible.
Rear-end collisions are the most frequent same and opposite-direction crashes. Common causes include momentary inattention, inadequate speed or inadequate distance. While most rear-end collisions in urban traffic only result in vehicle damage or slight injuries, rear-end collisions outside built-up areas or on motorways usually cause fatal or serious injuries. Driver assistance systems that detect dangerous situations in the longitudinal vehicle direction are therefore an essential safety plus. In view of this, for ADAC, systems that alert drivers to dangerous situations and initiate autonomous braking complement ESC as one of the most important active safety features in modern vehicles. The aim of ADAC is to provide consumers with technical advice and competent information about the systems available on the market. Reliable comparative tests that are based on standardised test criteria may provide motorists with important information and help them make a buying decision. In addition, they raise consumer awareness of the systems and speed up their market penetration. The assessment must focus on as many aspects of effectiveness as possible and include not only autonomous braking but also collision warning and autonomous brake assist. The work of the ADAC accident research is the development of the testing scenarios with direct link to accident situations and the identification of useful test criteria for testing.
10 % bis 20 % der Straßenverkehrsunfälle werden auf Müdigkeit am Steuer zurückgeführt. Es steht eine Vielzahl unterschiedlicher Methoden zur Verfügung, um Müdigkeit beim Fahrer zu erkennen. Ziel des vorliegenden Projekts war es, die Stärken und Schwächen der verschiedenen Müdigkeitsmessverfahren vergleichend zu beschreiben und existierende Müdigkeitsmess- und Müdigkeitswarnsysteme im Überblick darzustellen. Die Ergebnisse beruhen auf folgender Verknüpfung von Literaturanalysen, Experten- und Nutzerbefragungen: • Literaturanalyse und zusammenfassende Darstellung von Müdigkeitsmessverfahren, die auf physiologischen und leistungsbezogenen Messgrößen beruhen. • Literaturanalyse zu Müdigkeitsmess- und Warnsystemen, Befragung der Systemhersteller und zusammenfassende Darstellung der identifizierten Systeme. • Befragung von 20 Nutzern von den in Mittel- und Oberklassefahrzeugen implementierten Müdigkeitswarnsystemen zur Beurteilung der wahrgenommenen Detektionsgüte, Akzeptanz und Compliance. • Erarbeitung eines Gütekriterienkatalogs als Grundlage für die Bewertung und den Vergleich ausgewählter Müdigkeitsmessverfahren. • Zweistufige Befragung von 12 Experten aus Industrie- und Hochschulforschung nach der Delphi-Methode. Ziel war die Auswahl und Bewertung der validesten Verfahren zur Erfassung der Fahrermüdigkeit, begründeter Zweitbewertungen bei abweichenden Urteilen und der Beurteilung ihrer Eignung für verschiedene Einsatzgebiete. • Workshop mit den Delphi-Teilnehmern zur Diskussion und Ergänzung der Delphi-Ergebnisse. Die 70 in der Fachliteratur identifizierten Müdigkeitsmesssysteme unterscheiden sich in den zugrunde liegenden Müdigkeitsmessverfahren, dem Vorliegen und der Gestaltung von Warnfunktionen und ihrer Verbreitung. Nur selten werden überzeugende Validierungsbelege oder Angaben zur Anzahl falscher und ausbleibender Alarme angeführt. Aus Nutzersicht bieten die derzeit in Mittel- und Oberklassemodellen verfügbaren Müdigkeitswarnsysteme oftmals keine zufriedenstellende Detektionsgüte. Vielfach wird die Fahrt trotz detektierter und selbst eingestandener Müdigkeit fortgesetzt. Ca. die Hälfte der Fahrer sieht in der Nutzung der Müdigkeitswarnsysteme einen Zuwachs an Sicherheit. Zu den validesten Müdigkeitsmessverfahren gehören aus Expertensicht die Erfassung der Fahrperformanz (Lenkverhalten und Spurhaltung) und des Lidschlussverhaltens, das videobasierte Expertenrating, das EEG und der Pupillografische Schläfrigkeitstest. Die unterschiedlichen Stärken und Schwächen der sechs ausgewählten Messverfahren werden im Bericht detailliert aufgeführt. Nach wie vor existiert kein Goldstandard zur Müdigkeitserfassung. Je nach Einsatzgebiet sind entweder alle sechs ausgewählten Messverfahren (Forschung & Entwicklung), nur einige (Müdigkeitswarnsystem im Fahrzeug) oder kein einziges (Verkehrskontrolle) geeignet. Die Auswahl der Messverfahren sollte daher in Abhängigkeit des jeweiligen Ziels und Kontexts der Müdigkeitserfassung erfolgen und die spezifischen Stärke-Schwächenprofile berücksichtigen. Eine valide Müdigkeitserfassung bedarf der Kombination von mindestens zwei Messverfahren. Bedarf besteht in der Optimierung und der begleitenden Evaluierung der Müdigkeitswarnsysteme im Fahrzeug und der vielversprechendsten Messverfahren. Weitere Maßnahmen zur wirksamen Reduzierung müdigkeitsbedingter Unfälle wurden im Rahmen des Expertenworkshops diskutiert und im Bericht dargelegt.
Fahranfänger werden im Rahmen spezifischer, international unterschiedlich ausgestalteter Vorbereitungssysteme auf die motorisierte Verkehrsteilnahme vorbereitet. Diese Systeme sind historisch gewachsen und von länderspezifischen ökonomischen, infrastrukturellen, rechtlichen und kulturellen Gegebenheiten geprägt. Für eine vergleichende Systembetrachtung wurde unter Rückgriff auf forschungsmethodische Ansätze der Vergleichenden Politikwissenschaft und lehr-lerntheoretische Grundlagen ein begrifflicher Rahmen erarbeitet, der eine Systembeschreibung und -analyse anhand funktional unterscheidbarer Lehr-Lernformen und Prüfungsformen ermöglicht. Im Bericht werden die Systeme der Fahranfängervorbereitung von 44 Ländern dargestellt. Die Beschreibungen basieren auf Befragungen von Experten verschiedener Institutionen (Verkehrsministerien, Fahrlehrerverbände, Prüforganisationen) sowie auf Literatur- und Internetrecherchen. Bei der Länderauswahl wurden " neben europäischen Ländern mit einer traditionell stark ausgeprägten formalen Fahrschulausbildung " auch "Graduated Driver Licensing"-Systeme berücksichtigt, die vor allem in der englischsprachigen Welt in Übersee anzutreffen sind. Sie sind durch die Gewährleistung eines umfangreichen Fahrerfahrungsaufbaus unter niedrigen Risikobedingungen durch Begleitetes Fahren ("supervised driving") vor dem Beginn des selbständigen Fahrens und protektive Sonderregelungen für Fahranfänger beim weiteren Fahrerfahrungsaufbau in der Anfangsphase des selbständigen Fahrens gekennzeichnet. Die Ergebnisse ermöglichen einen detaillierten Einblick in die länderspezifische Ausgestaltung der Fahranfängervorbereitung mit den Bestandteilen der formalen Fahrausbildung in Fahrschulen, informeller Lehr-Lernformen wie des Begleiteten Fahrenlernens, zu absolvierender Fahrerlaubnisprüfungen sowie rechtlicher Rahmenbedingungen und qualitätssichernder Maßnahmen. Vor dem Hintergrund von Evaluationsbefunden zur Sicherheitswirksamkeit wird die Funktionalität von Systembestandteilen und -architekturen diskutiert.
Im Hinblick auf das Lösen werden Boden und Fels nach DIN 18300 beschrieben. Dabei werden bindige Bodenarten in Abhängigkeit von ihrer Konsistenz in unterschiedliche Bodenklassen unterteilt. Bodenarten von leichter bis mittlerer Plastizität und weicher bis halbfester Konsistenz werden der Bodenklasse 4 zugeordnet. Ausgeprägt plastische Tone von weicher bis halbfester Konsistenz gehören der Bodenklasse 5 an. Bodenarten von fester Konsistenz sind der Bodenklasse 6 zuzuordnen. Die Grenze zwischen halbfester und fester Konsistenz ist dabei über die Schrumpfgrenze definiert, die nach DIN 18122-2 bestimmt wird. Da vor allem bei leichtplastischen Böden der Wassergehalt an der Schrumpfgrenze häufig oberhalb des Wassergehaltes an der Ausrollgrenze liegt, kommt es bei der Einordnung bindiger Böden in die Bodenklassen der DIN 18300 häufig zu Unklarheiten, was zu Streitfällen zwischen Auftragnehmer und Auftraggeber führen kann. Das Ziel des Forschungsvorhabens war es deshalb, ein geeigneteres Kriterium zur Einordnung halbfester und fester Böden in die Bodenklassen der DIN 18300 zu erarbeiten und dazu eine Versuchstechnik zu entwickeln. In einem ersten Schritt wurde das Schrumpfverhalten bindiger Böden analysiert und die Versuchstechnik zur Bestimmung der Schrumpfgrenze untersucht. Es hat sich gezeigt, dass bei Böden mit einer Plastizitätszahl IP < 18 % der Wassergehalt an der Schrumpfgrenze in der Regel oberhalb des Wassergehalts an der Ausrollgrenze liegt. Anhand von Untersuchungen zum Schrumpfverhalten an Proben, die bei unterschiedlichen Spannungen vorbelastet worden waren, wurde ausserdem festgestellt, dass der Wassergehalt an der Schrumpfgrenze mit zunehmender Vorbelastung abnimmt. Diese Untersuchungen haben damit bestätigt, dass anhand der nach DIN 18122-2 ermittelten Schrumpfgrenze keine eindeutige Zuordnung in die Bodenklassen 4 und 6 bzw. 5 und 6 möglich ist. Deshalb wurden im Folgenden Untersuchungen zu anderen Kriterien zur Unterscheidung zwischen halbfesten und festen Böden durchgeführt. Hierzu wurden zunächst Untersuchungen zur einaxialen Druckfestigkeit durchgeführt. Da das Herausarbeiten von ungestörten Probekörpern im relevanten Konsistenzbereich aber mit großen Schwierigkeiten verbunden ist, kann die Verwendung der einaxialen Druckfestigkeit zur Einordnung der Bodenklassen nicht empfohlen werden. Im Rahmen des Forschungsvorhabens wurden daher im weiteren Verlauf Untersuchungen zu einem einfach durchzuführenden Versuch durchgeführt, der eine Unterscheidung von halbfestem und festem Boden auf Grundlage der Festigkeit ermöglicht. Dazu wurden an aufbereiteten Böden Eindringversuche mit einer Proctornadel und einer Konusspitze durchgeführt. Die Versuchsergebnisse belegen, dass ein klarer Zusammenhang zwischen der Konsistenz und dem Eindringwiderstand besteht und dass eine Bewertung der Festigkeit mit Hilfe dieser Versuche prinzipiell möglich ist. Zur Festlegung konkreter Werte für eine Unterscheidung der Bodenklassen 4, 5 und 6 gemäß DIN 18300 sind jedoch weitere Untersuchungen erforderlich.