The Piezoelectric Material, Layered node defines the piezoelectric material properties either in stress-charge form using the elasticity matrix and the coupling matrix, or in strain-charge form using the compliance matrix and the coupling matrix. It is normally used together with a
Piezoelectricity, Layered multiphysics coupling node and a corresponding
Piezoelectric Layer node in the
Electric Currents in Layered Shells interface.
The Piezoelectric Material, Layered node is only available with some COMSOL products (see
https://www.comsol.com/products/specifications/).
When working with layered shells, you almost invariably take the material data from what has been defined using Layered Material Link,
Layered Material Stack, or
Single Layer Material nodes. It is, however, possible to override some data from a
Piezoelectric Material, Layered node.
By adding the following subnodes to the Piezoelectric Material, Layered node you can incorporate many other effects:
For this node, the Shell Properties section is only used for selecting a material model, but not individual layers.
The boundary selection in this node is similar to the Linear Elastic Material node. It is, however, only possible to select boundaries which are part of the selection of a layered material defined in a
Single Layer Material,
Layered Material Link, or
Layered Material Stack node.
Select a Constitutive relation —
Stress-charge form or
Strain-charge form. For each of the following, the default uses values
From material. For
User defined enter other values in the matrix or field as needed.
If any material in the model has a temperature dependent mass density, and From material is selected, the
Volume reference temperature list will appear in the
Model Input section. As a default, the value of
Tref is obtained from a
Common model input. You can also select
User defined to enter a value or expression for the reference temperature locally.
Select a Formulation —
From study step,
Total Lagrangian, or
Geometrically linear to set the kinematics of the deformation and the definition of strain. When
From study step is selected, the study step controls the kinematics and the strain definition.
When From study step is selected, a total Lagrangian formulation for large strains is used when the
Include geometric nonlinearity checkbox is selected in the study step. If the checkbox is not selected, the formulation is geometrically linear, with a small strain formulation.
To have full control of the formulation, select either Total Lagrangian, or
Geometrically linear. When
Total Lagrangian is selected, the physics will force the
Include geometric nonlinearity checkbox in all study steps.
Select a Strain decomposition —
Automatic,
Additive, or
Multiplicative to decide how the inelastic deformations are treated. This option is not available when the formulation is set to
Geometrically linear.
The Strain decomposition input is only visible for material models that support both additive and multiplicative decomposition of the deformation gradient.
Select the Calculate dissipated energy checkbox as needed to compute the energy dissipated by
Mechanical damping.