1998Proceedings of the International Research Council on the Biomechanics of Injury conferenceRequires access

BIORID I: A NEW BIOFIDELIC REAR IMPACT DUMMY

Johan Davidsson, Mats Y. Svensson, Per Lövsund

Open publisher page 37 citations

Abstract

The objectives of this study are to develop a new dummy for low-speed rear-end collision testing, and to validate it against volunteer data. The dummy has a new articulated thoraco-lurnbar and cervical spine and a torso of silicon rubber. The neck and the thoraco-lurnbar spine consist of 24 vertebrae, the same number of vertebrae as in the human, which are connected by hinge joints. The motion of the head and neck is partly controlled by muscle substitutes. Linear torsion springs and polyurethane bumpers provide the resistance to flexion and extension in the thoracic and lumbar spine. The dummy is equipped with Hybrid III legs, arms, head and a modified Hybrid III pelvis. The complete dummy prototype was validated against volunteer test data and its performance compared to that of the Hybrid III dummy. The kinematics of this dummy prototype showed more humanlike kinematics in rear-end impacts at delta V (velocity change) = 7 km/h compared to the Hybrid III. For the covering abstract of the conference see ITRD E203725.

About this research paper

What this paper is about

The objectives of this study are to develop a new dummy for low-speed rear-end collision testing, and to validate it against volunteer data. The dummy has a new articulated thoraco-lurnbar and cervical spine and a torso of silicon rubber. The neck and the thoraco-lurnbar spine consist of 24 vertebrae, the same number of vertebrae as in the human, which are connected by hinge joints. The motion of the head and neck is partly controlled by muscle substitutes. Linear torsion springs and polyurethane bumpers provide the resistance to flexion and extension in the thoracic and lumbar spine. The dummy is equipped with Hybrid III legs, arms, head and a modified Hybrid III pelvis. The complete dummy prototype was validated against volunteer test data and its performance compared to that of the Hybrid III dummy. The kinematics of this dummy prototype showed more humanlike kinematics in rear-end impacts at delta V (velocity change) = 7 km/h compared to the Hybrid III. For the covering abstract of the conference see ITRD E203725.

Why it matters

OpenAlex reports 37 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

The objectives of this study are to develop a new dummy for low-speed rear-end collision testing, and to validate it against volunteer data. The dummy has a new articulated thoraco-lurnbar and cervical spine and a torso of silicon rubber. The neck and the thoraco-lurnbar spine consist of 24 vertebrae, the same number of vertebrae as in the human, which are connected by hinge joints. The motion of the head and neck is partly controlled by muscle substitutes. Linear torsion springs and polyurethane bumpers provide the resistance to flexion and extension in the thoracic and lumbar spine. The dummy is equipped with Hybrid III legs, arms, head and a modified Hybrid III pelvis. The complete dummy prototype was validated against volunteer test data and its performance compared to that of the Hybrid III dummy. The kinematics of this dummy prototype showed more humanlike kinematics in rear-end impacts at delta V (velocity change) = 7 km/h compared to the Hybrid III. For the covering abstract of the conference see ITRD E203725.

Key concepts: Hybrid III, Torso, Kinematics, Pelvis, Hinge, Lumbar spine, Trunk, Biomechanics

Related papers

Back to paper searchBrowse research topicsOriginal source
BIORID I: A NEW BIOFIDELIC REAR IMPACT DUMMY — Research Paper | ScholarLens