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In order to achieve this goal, firstly, a reliable procedure of finite element analysis (FEA) is established based on a parametric geometric model.
In this regard in this paper, an analytical solution for reduction of interfacial shear tresses based on edge shape optimization is developed and extended by numerical modal analysis procedure of finite element method (FEM) in retrofitted concrete (RC) beam with fiber reinforced polymer (FRP) plate with different end shapes with different mechanical loading type.
In order to improve the mechanical properties of Nitinol stents, at first, a reliable procedure of finite element analysis (FEA) is established to provide quantitative measures of the stent's strain amplitude and mean strain which are generated by the cyclic pulsating load.
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Recommended procedures of finite element modeling for predicting the structural behaviors of single shear bolted connections in cold-formed austenitic stainless steel are presented in this paper.
Assuming a local dependency of the initial stress with the optimization parameters, the obtained numerical procedure is composed of finite element stress calculations and local minimization problems that are solved analytically or using a simple bisection procedure.
The analysis is carried out by fully 3-D simulation following the procedures of explicit finite element.
The local cyclic elastic plastic stress strain responses were analyzed using the incremental plasticity procedures of ABAQUS finite element code for both smooth and notched specimens made of three materials: a medium carbon steel in the normalized condition, an alloy steel quenched and tempered and a stainless steel, respectively.
In the following two sections, 5-axis PKMs having 2T3R motion will be taken as example to show the detailed procedures of this finite and instantaneous screw based approach for topology design and kinematic analysis.
The present paper delineates a set of systematic procedures for finite element model calibration and parametric evaluation that enable robust simulation of the device CAR1 under quasi-static cyclic loading using explicit time-stepping dynamic analysis procedure.
A novel iterative quantization procedure for the design of finite wordlength linear-phase FIR filters of high order and minimum frequency domain error is proposed: a one-by-one increased number of filter coefficients is quantized where the augmented frequency domain error is re-minimized in each case.
This paper treats the measurement procedure for the estimation of Finite Impulse Response (FIR) models of voltage instrument transformers, dedicated for the study of fast electromagnetic transients, with the special concern to its influence on the equipment connected to the secondary.
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