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The anisotropic behaviour (with very low stiffness in the thickness direction) is modelled using stiff structural elements (trusses and beams).
Virgin polymers, especially elastomers have inherently low stiffness and strength.
It is found that although with SAMIs, low stiffness is required, a very low stiffness may yield undesirable results.
Most viscoelastic materials exhibit low stiffness for practical applications.
Lastly, the finite element analysis shows that although SAMIs are required to have low stiffness, a very low stiffness may give undesirable results.
Low stiffness and coinciding natural frequencies are known issues.
Flexible pipes are subjected to higher deformations due to their low stiffness.
Low stiffness characteristics limit the application of industrial robots in the field of precision manufacturing.
Despite this, their relatively low stiffness and high compliance limits their potential for certain orthopaedic applications.
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To mitigate these issues, the use of low-stiffness metallic alloys has been highlighted.
Two different mechanisms of linear guidances are used: (A) crossed roller bearing stages and (B) low-stiffness flexures.
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