scholarly journals Dynamic Performance Optimization of Electromagnetic Levitation System Considering Sensor Position

IEEE Access ◽  
2020 ◽  
Vol 8 ◽  
pp. 29446-29455 ◽  
Author(s):  
Yajian Li ◽  
Danfeng Zhou ◽  
Peng Cui ◽  
Peichang Yu ◽  
Qiang Chen ◽  
...  
Author(s):  
Tengjiao Lin ◽  
Daokun Xie ◽  
Ziran Tan ◽  
Bo Liu

The aim of this paper is to investigate the influence of structure parameters on the vibration characteristics and improve the dynamic performance of marine gearbox. A finite element model was established to solve the dynamic response by using modal superposition method. Based on the theory of multi-objective optimization design, the structure sensitivity analysis model of marine gearbox was established, which takes the structure parameters of the housing as design variables. The modal and response sensitivity was obtained by using the optimal gradient method. According to the results of sensitivity analysis, a modal and response optimization model of marine gearbox was established. The objective was to avoid natural frequencies from the excitation frequencies and minimize the root mean square of vibration acceleration of the evaluating points on the surface of housing. Then the modal optimization and response optimization of gearbox were carried out by using zero-order and first-order optimization method. The results indicate that the dynamic optimization of the gearbox can be achieved. After optimization, the amplitude of vibration acceleration of the evaluating points on the housing surface has been reduced and the resonance of marine gearbox can be avoided.


2022 ◽  
Vol 244 ◽  
pp. 110353
Author(s):  
Aobo Zhang ◽  
Zhenju Chuang ◽  
Shewen Liu ◽  
Li Zhou ◽  
Yan Qu ◽  
...  

Author(s):  
TJ Li ◽  
XH Ding ◽  
K Cheng ◽  
T Wu

Natural frequencies and modal shapes of machine tools have position-dependent characteristics owing to their dynamic behaviors changing with the positions of moving parts. It is time-consuming and difficult to evaluate the dynamic behaviors of machine tools and their machining accuracy at different positions. In this paper, a Kriging approximation model coupled with finite element method is proposed to substitute the dynamic equations for obtaining the position-dependent natural frequencies of a machine tool, as well as relative positions between the tool and the workpiece during the machining process. Based on the proposed method, dynamic performance optimization design of the machine tool is conducted under the condition of minimum relative positions. Three case studies are illustrated to demonstrate the implementation of the proposed method.


2019 ◽  
Vol 21 (6) ◽  
pp. 20-25 ◽  
Author(s):  
Qilong Jiang ◽  
Da Liang ◽  
Feng Yan ◽  
Dong Liu

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