research activities

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1 Research activities E. Nikolaidis B. Ramaswamy B. Dheenadayalan A. Keerti S. Mathew P. Soundappan D. Tiwary Vibration and Reliability Lab Friday, April 20, 2001

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Research activities. E. Nikolaidis B. Ramaswamy B. Dheenadayalan A. Keerti S. Mathew P. Soundappan D. Tiwary Vibration and Reliability Lab Friday, April 20, 2001. Overview. 1.Design under uncertainty. 3. Knowledge-based design tools. 2. Structural dynamics. - PowerPoint PPT Presentation

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Page 1: Research activities

1

Research activitiesE. Nikolaidis

B. Ramaswamy

B. Dheenadayalan

A. Keerti

S. Mathew

P. Soundappan

D. Tiwary

Vibration and Reliability Lab

Friday, April 20, 2001

Page 2: Research activities

2

Overview

1.Design under uncertainty

2. Structural dynamics

3. Knowledge-based design tools

Page 3: Research activities

3

Design under uncertaintyNoiselevel (db)

Cost ($)

Design concept 1

Design concept 2

Design concept 3

Page 4: Research activities

4

Profit is uncertain and depends on selection of design concept

Profit ($)

Probability density of profit

0Loss

Which design is better ?

Page 5: Research activities

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Goals

• Study and understand advantages and limitations of methods for modeling uncertainty (classical probability, Bayesian probability, fuzzy sets, imprecise probabilities)

• Study methods for modeling a decision-maker’s preferences and attitude toward risk

• Address issues of lack of data and high computational cost

• Develop tools for making design decisions under uncertainty by combining the above methods

Page 6: Research activities

6

2. Structural Dynamics; Modeling and suppressing internal resonances in

vibration isolators

Front of the car

Page 7: Research activities

7

Transmissibility of real isolator

1

Transmissibility

1

System resonance, n

Isolator Resonances

n

Actual

Ideal

Page 8: Research activities

8

Using DVA’s to suppress internal resonances

Page 9: Research activities

9

Global Vehicle Model

Global OptimizerGlobal design variables

Local models

Load and stiffness requirements for components

Optimal safety factor of components

Knowledge-based design tools; considering details upfront in design

Page 10: Research activities

10

Traditional design optimization versus local/global optimization

6000

6500

7000

7500

8000

8500

9000

wei

gh

t (l

b)

nominal

no global/local

global/local

100 84 85

infeasible feasible