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Technical Paper

Forensic Determination of Seat Belt Usage in Automotive Collisions: Development of a Diagnostic Tool

2006-04-03
2006-01-1128
The primary purpose of this research was to generate a “linked set” of data between collision severity, occupant weight and collision-induced seat belt markings to assist in reconstruction of motor vehicle accidents. The secondary purpose was to establish a preliminary threshold of belt load to produce known collision-induced seat belt markings. Sled tests were performed utilizing Hybrid III 5th and 50th percentile crash test dummies. Sled accelerations ranged from 10.0 g to 23.6 g and Delta-V’s from 6.4 m/s to 11.3 m/s. Post-test inspections and photographs taken of the seat belts documented collision-induced markings on components such as the D-Ring, latch plate, webbing and stitching. Belt loads were analyzed to establish preliminary thresholds for the production of observable markings.
Technical Paper

Head/Neck Kinematic Response of Human Subjects in Low-Speed Rear-End Collisions

1997-11-12
973341
Limited data exist which quantify the kinematic response of the human head and cervical spine in low-speed rear-end automobile collisions. The objectives of this study were to quantify human head/neck kinematics and how they vary with vehicle speed change and gender during low-speed rear-end collisions. Forty-two human subjects (21 male, 21 female) were exposed to two rear-end vehicle-to-vehicle impacts (speed changes of 4 kmlh and 8 km/h). Accelerations and displacements of the head and torso were measured using 6 degree-of-freedom accelerometry and sagittal high speed video respectively. Velocity was calculated by integrating the accelerometer data. Kinematic data of the head and C7-T1 joint axis in the global reference frame, and head kinematic data relative to the C7-T1 joint axis are presented. A statistical comparison between peak amplitude and time-to-peak amplitude for thirty-one common peaks in the kinematic response was performed.
Technical Paper

The Effects of Right Side Water Drag on Vehicle Dynamics and Accident Causation

1990-02-01
900105
It has long been recognized that the automobile accident rate is much greater during inclement weather conditions. The literature usually focuses first on lower friction values and secondly on hydroplaning, also known as aquaplaning. Tests were conducted with an automobile at different speeds at various water depths to evaluate the effect of drag and retardation. This paper evaluates the effect of asymmetric wheel loading as experienced when traveling on a road where water has pooled in the gutter and right side of the travel lane. Automobile trajectories are portrayed for different conditions. Certain safety considerations are then discussed for when automobile drivers experience this phenomenon.
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