Maxwell model of viscoelastic behaviour - Derivation of governing equation

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Discussion Overview

The discussion revolves around the Maxwell model of viscoelastic behavior, specifically focusing on deriving the governing equation related to stress in a viscoelastic material under a constant strain rate. The context includes a past paper question from a plastics engineering class.

Discussion Character

  • Homework-related
  • Technical explanation

Main Points Raised

  • A participant describes their attempt to derive the governing equation for stress in a Maxwell element, reaching an intermediate form but struggling to match the expected final expression.
  • Another participant indicates that they resolved their issue after consulting with a lecturer and offers to share their solution if there is interest.
  • A separate participant inquires about the conductivity of viscoelastic materials, posing multiple questions regarding their electrical and thermal conductivity, normal mode analysis methods, and the effects of different crack modes on stress and strain tensors.
  • A participant expresses a similar struggle with the topic and requests the solution from the first participant.

Areas of Agreement / Disagreement

The discussion includes multiple perspectives, with some participants focused on the derivation of the governing equation while others raise broader questions about viscoelastic materials. No consensus is reached on the latter topics, and the discussion remains unresolved regarding the inquiries about conductivity and crack modes.

Contextual Notes

The discussion reflects varying levels of understanding and different aspects of viscoelastic behavior, with some participants addressing specific homework problems while others explore more general properties and analysis methods.

mark_d89
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Hi everyone,

i'm a 3rd year undergraduate chemical engineering student from Scotland, and i am wondering if anyone could help me with the following past paper question in my plastics engineering class. The question is based on the maxwell model of viscoelastic behaviour. Apologies if i have posted in the wrong section.

"In a tensile test on a plastic the material is subjected to a constant strain rate of 10^-5/s. The material may have it's behaviour modeled by a maxwell element with elastic constant 20GN/m^2 and viscous constant 1000 GNs/m^2.
(a) Starting from the governing equation for a maxwell element, derive the following expression for the stress in the material at any instant. stress=n2*strain*[1-exp(-G1*t/n2)]"
........

I have derived the governing equation down to the point, stress(t)=stress0*exp(-G1*t/n2) , but have not been able to get it to resemble the equation shown in the question. I'll attach a picture of the question for more clarity.

Any help is much appreciated, Thanks
 

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Problem solved, spoke to lecturer today who gave me a few hints and was able to work through it.

I can post the solution if anyone is interested
 
I need to know about the conductivity of visco-elastic material.

1) can it be considered as perfectly conductivity of electricity and heat?

2)what are the normal mode analysis method?
3) what information do we get from this method?
4) what are the cracks of mode I,II and III
how they change the stress and strain tensor?
any material or link related to that then please provide,,,,,

any comments and remarks will be informative,
 
Hey, I'm on the same course and really struggling with this one at the moment! I'd be really grateful if you could post your solution if you happen to read this, thanks.
 

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