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This modeling procedure can be used for designing and controlling ohmic heating processes to ensure thermal sterilization and safety of ohmically heated food products.
The modeling procedure can address multiple-port sensor response to distributed loadings, selective excitation and suppression of modes in actuator applications, and mixed sensing and actuator applications such as the demonstrated port-to-port measurements.
Carefully considering possible reasons why agreement is present, our modeling procedure can quantify the pattern and magnitude of agreement.
This approach has the drawback that the number of equations that have to be generated in the sixth step of the modeling procedure can be significantly increased.
Thus, the proposed modeling procedure can be employed in more complicated cases for further studies, such as interaction between induced hydraulic fractures and natural fractures.
The presented finite element modeling procedure can be used to aid with the design of FRP/masonry structure or other similar structures for minimizing interfacial stresses induced due to the mismatch of moisture swelling and thermal expansion properties of the constituent materials.
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This is an example of how predictive large-scale modeling procedures can contribute to the optimization of land management aimed at species conservation.
Additional details of the statistical tests performed to assess the validity of the modeling procedures can be found in the Additional file 1.
The specimens are also simulated numerically using a modeling procedure which can include a semi-elliptical surface crack located at any position and any length along its brace-chord intersection within the joint finite element model.
This study is intended to aid in the development of constitutive equations and modeling procedures that can be applied to predict various flows involving high concentration liquid particle mixtures.
For further details regarding modeling procedures, readers can refer to Mechler (2004) and Hochrainer-Stigler (2007, 2012).
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