Design and Optimization of Compliant Revolute Joint Based on Finite Element Method

Author(s):  
Li Li ◽  
Ziyan Geng ◽  
Benshan Zhong
2021 ◽  
Vol 2037 (1) ◽  
pp. 012003
Author(s):  
Xueke Luo ◽  
Yinyin Chen ◽  
Wen Li ◽  
Binbin Lv ◽  
Peng Zhang

Author(s):  
Nisha Prasad ◽  
Shailendra Jain ◽  
Sushma Gupta

Electromagnetism forms a mandatory topic in the syllabus of undergraduate and graduate courses in electrical engineering. This topic involves many physical and mathematical concepts like curl, divergence, gradient for field determination and representation. These concepts are not only difficult to understand but also often lead to poor learning because of the imaginations and non-visualization of electric and magnetic fields. A correct understanding of fields and its distribution is necessary to understand the working, design and optimization of electrical machines. This paper presents a finite element method (FEM) based educational tool that allows the technical students to visualize electromagnetic (EM) fields inside the EM systems. This tool therefore provides a better understanding of the design and optimization of various electrical devices. This paper shows an example of a 2-pole linear machine to visualize the distribution of the magnetic field in a non-linear circuit. This machine extends to form a linear switched reluctance motor (LSRM) using step-by-step design and optimization procedure along with the user guide interface programmed in FEM based ANSYS Maxwell software. This motor is used as an example to visualize magnetic fields using FEM software in complex circuits and can be used as a good educational tool for students. The paper incorporates the validation of the design procedure through FEM simulations.


2021 ◽  
Vol 47 (2) ◽  
pp. 2414-2429
Author(s):  
Mingxiang Zhuang ◽  
Jianhui Yuan ◽  
Zhongchao Hu ◽  
Guangshu Li ◽  
Huanyu Zhang ◽  
...  

Energies ◽  
2019 ◽  
Vol 12 (21) ◽  
pp. 4139 ◽  
Author(s):  
Davide De Marco ◽  
Alberto Dolara ◽  
Michela Longo ◽  
Wahiba Yaïci

Increasing problems of air pollution caused by petrol-fueled vehicles had a positive impact on the expanded use and acceptance of the electric vehicles (EVs). Currently, both academic and institutional researchers are conducting studies to explore alternative methods of charging vehicles in a fast, reliable, and safe way that would compensate for the drawbacks of the otherwise beneficial and sustainable EVs. The wireless power transfer (WPT) systems are now offered as a possible option. Another option is the dynamic wireless charging (DWC) system, which is considered the best application of a WPT system by many practitioners and researchers because it enables vehicles to increase their driving ranges and decrease their battery sizes, which are the main problems of the EVs. A DWC system is composed of many sub-systems that require different approaches for their design and optimization. The aim of this work is to find the most functional and optimal configuration of magnetic couplers for a DWC system. This was done by performing an investigation of the main magnetic couplers adopted by the system using Ansys® Maxwell as a finite element method software. The results were analyzed in detail to identify the best option. The values of the coupling coefficients have been obtained for every configuration examined. The results disclosed that the best trade-off between performance and economic feasibility is the DD–DDQ pad, which is characterized by the best values of coupling coefficient and misalignment tolerance, without the need for two power converters for each side, as in the DDQ–DDQ configuration.


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