Department of Mechanical Engineering - PowerPoint PPT Presentation

1 / 23
About This Presentation
Title:

Department of Mechanical Engineering

Description:

Load deformation characteristics for car bonnet ... and safety measures like helmet, leg support, pavement and car bonnet design etc. ... – PowerPoint PPT presentation

Number of Views:29
Avg rating:3.0/5.0
Slides: 24
Provided by: student75
Category:

less

Transcript and Presenter's Notes

Title: Department of Mechanical Engineering


1
Analysis of Car Bicycle Crashes
Department of Mechanical Engineering
IIT Delhi
Suman Chandrawat 2001498 Varun Agrawal 2001266
Supervisors Dr Anoop Chawla Dr Sudipto
Mukherjee 25th Feb05
2
Introduction
  • Problem statement
  • To establish correlation between the throwing
    distance of bicycle riders and various crash
    parameters in vehicle bicycle crashes.
  • Methodology
  • Deciding on configurations for simulations.
  • Setting up simulation in Madymo.
  • 200 configurations simulated.
  • Analysis of results.

3
Load deformation characteristics for car bonnet
Load deformation characteristics for car
windscreen
4
Bicycle tyre mechanical properties
5
Frontal Side Collision
6
Variation in throwing distance with car velocity
(15km/h 65 km/h)
Bicycle velocity 10 km/h Impact at an offset of
-0.15 m from car centre
7
Variation in throwing distance with offset
8
Comparison of simulation results with crash data
reported by Otte
9
Variation in throwing distance with point of
impact
Bicycle velocity 2.66 m/sec (10 km/h) Car
velocity 9.72 m/sec (35 km/h)
10
Variation in throwing distance with varying
bicycle velocity
Car velocity 12.5 m/sec (45 km/h) Point of
impact at an offset of -0.6 m from cars centre
11
Variation in throwing distance with varying
bicycle velocity Car velocity 12.5 m/sec (45
km/h) Point of impact at an offset of -0.3 m
from cars centre
Note that the bicycle velocity for maximum
throwing distance changes
12
Throwing distance with and without braking
13
Side Impact
14
Variation of throwing distance with car velocity
Angle of approach 600
Head
Left hand
Left hand
Left hand
Right hand
Left hand
Left hand
Right hand
15
  • Throwing Distance Displacement of first point
    of contact
  • Non uniform curves for low throwing distances
    (side impact)
  • Changes in the first body part coming in contact
    with ground
  • Alternate definition Displacement of a certain
    (most prominent) body part head, pelvis
  • Same trends for the two body part in most of the
    cases
  • Head suitable for calculating the throwing
    distance

16
Variation of throwing distance with car velocity
Angle of approach 450
17
(No Transcript)
18
Effect of pavement design
19
Config 3
Config 2
Config 1
Right leg
Right leg
Right leg
20
Variation with pavement height
21
Variation with point of impact on car
22
Conclusion
  • The obvious conclusion that throwing distance
    increases as the car velocity increases,
    reinforced.
  • Trends follow the frontal crash data reported by
    Otte.
  • Significant variation in throwing distance with
    angle of approach and point of impact on the car.
  • Large variations in throwing distance for
    different configurations for same car velocity.
  • Smaller throwing distances for side impact as
    compared to frontal impact.
  • Non-monotonic changes with parametric variation.
  • Alternate definition of throwing distance yield
    more meaningful curves.
  • Cyclist dragged to larger distances in presence
    of pavements.
  • Multibody simulations to be used for evaluation
    of injury patterns and safety measures like
    helmet, leg support, pavement and car bonnet
    design etc.

23
Future Scope
  • Finite element analysis to get the precise shapes
    and curvatures of various car and cycle parts.
  • Dummy modification to reflect Indian population.
  • Evaluation of safety measures using simulations.
Write a Comment
User Comments (0)
About PowerShow.com