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For doing this, three non-commensurable objective functions, namely: maximum displacement, maximum velocity, and maximum acceleration of each floor, are considered, which are to be minimized simultaneously.
Table 3 shows the maximum displacement, maximum and minimum principle stresses created by Tresca, Mohr Coulomb, Mogi Coulomb, and modified-Lade.
The main result of the paper is presented in the 'Results and discussion' section, where a cantilever beam is minimized separately for the maximum displacement, maximum stress, compliance, and so on.
In order to present the differences in optimal design results attained via the maximum displacement, maximum stress, and conventional mean compliance methods, a cantilever beam was studied with varying square cross sections, with ends x = 0 and x = L, where x is the abscissa measured along the beam axis and subjected to a distributed constant line load q, as shown in Figure 1a.
The comparison of the important parameters including the maximum displacement, the maximum acceleration of the system response and the dropping shock duration by RHM with those by the R-K method are shown in Table 3, the relative errors of maximum displacement, maximum acceleration and the dropping shock duration are 3.7%, 10.4% and 5.2%, respectively.
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The investigation focuses on the examination of the maximum displacements, maximum residual displacements, maximum interstorey drift ratio, maximum residual interstorey drift ratio, damage indices and ductility demands.
In summary, the method performed quite satisfactorily in terms of story maximum displacements, maximum interstory drifts and story ductility demands, even for tall models.
Maximum displacement shows the maximum displacement in LOS direction in each SAR interferogram.
Previous studies assessed the displacement, maximum drift, maximum residual drift, and energy distribution in structures.
Generally, by increasing steel fiber maximum strength, maximum displacement and ultimate strength increase.
It is shown that the maximum displacement and maximum stress decrease for a certain type of thickness variations.
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maximum power maximum
maximum efficiency maximum
maximum strain maximum
maximum load maximum
maximum winglet maximum
maximum yield maximum
maximum inflow maximum
maximum stress maximum
maximum drift maximum
maximum separation maximum
maximum curl maximum
maximum productivity maximum
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maximum strength maximum
maximum voltage maximum
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maximum height maximum
maximum parsimony maximum
maximum stiffness maximum
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