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- W2086846609 abstract "A theoretical model has been developed for predicting the magnetoelectric (M-E) coupling effect of magnetostrictive-piezoelectric layered composites (MPLC). This model determines the individual effects of MPLC configurations and material properties on the homogenized M-E voltage coefficient, α ' , curves. By analyzing the model, a 3D α ' sequencing map covering the span of compliance, Poisson's ratio, and piezomagnetic coefficient ratio q 33 /q 31 of the magnetostrictive phases is generated to aid the MPLC design. Six MPLC configurations are addressed in this study, including three field orientations, longitudinal, transverse, and in-plane, in both 1D and 2D geometries. Results show that the piezoelectric volume fraction required for achieving the maximum M-E effect is dependent upon the compliance. Higher compliance values cause the α ' peaks to be attenuated, as well as shifted to lower piezoelectric volume fractions. This study also investigates the influence of the piezomagnetic coefficient q 33 and the ratio q 33 /q 31 on α ' . For a constant ratio q 33 /q 31 , larger q 33 -values increase α ' . However, changing this ratio alters the relative ordering of the α ' -values for each of the six MPLC configurations studied. This demonstrates that the ratio q 33 /q 31 strongly influences the selection of the MPLC configurations to produce the largest M-E coupling effect. By integrating the results from this model into 3D α ' sequencing map, the ideal MPLC configuration with the highest M-E coupling effect can be predicted for all possible MPLC magnetostrictive phases." @default.
- W2086846609 created "2016-06-24" @default.
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- W2086846609 date "2008-04-21" @default.
- W2086846609 modified "2023-09-23" @default.
- W2086846609 title "Analytically Evaluating the Properties and Performance of Layered Magnetoelectric Composites" @default.
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- W2086846609 doi "https://doi.org/10.1177/1045389x07085410" @default.
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