scholarly journals Raising Power Loss Equalizing Degree of Coil Array by Convex Quadratic Optimization Commutation for Magnetic Levitation Planar Motors

2018 ◽  
Vol 9 (1) ◽  
pp. 79 ◽  
Author(s):  
Shengguo Zhang ◽  
Jingtao Huang ◽  
Jingxian Yang

This paper proposes a convex quadratic optimization commutation method to raise the equalization degree of power loss distribution of coil array for magnetic levitation planar motors. Starting with the modeling of electromagnetic forces/torques and commutation of coil array, the global power loss and the local power losses of coil array are analyzed, and the power loss equalizing degree is defined to evaluate the power loss distribution of coil array being commutated dynamically. Then, in consideration of the fact that the global power loss is the quadratic function of commutated coil currents, the convex quadratic function optimization with equality constraint and boundary constraints is applied to commutate the coil array, and the power loss equalizing degree is raised by decreasing the boundary constraints of optimization. Taking the magnetically levitated planar motor under investigation as examples and using quadprog routine in Matlab Optimization Toolbox, which is a dedicated quadratic optimization routine, it is verified that the power loss equalizing the degree of coil array is raised gradually and the power loss distribution of coil array becomes more uniform along with decrease of the boundary constraints. The convex quadratic optimization commutation is verified experimentally on a constructed multi-dimension force/torque measurement platform. Using the convex quadratic optimization commutation can not only improve the power loss distribution of coil array of magnetically levitated planar motors, but also make it possible to select lower capacity power amplifiers to produce the identical desired electromagnetic forces and torques.

2018 ◽  
Vol 4 (3) ◽  
pp. 134-142
Author(s):  
Manuel Kirchner

Aim: This study focused on an issue regarding an innovation of magnetic levitation elevators which was by different media coverage indicated as being unresolved: Are potential users of magnetic levitation elevators concerned about the safe use of these elevators and, if so, what kind of concerns exist? Methods of the studies: To contribute a first scientifically sound assessment to this, a three-day face-to-face survey at the elevator test tower in Rottweil (Baden-Wuerttemberg), where aforesaid elevator technology is tested, has been conducted. (Touristic) visitors of the tower and the observation platform on it have been surveyed a standardized questionnaire. Results: The results have shown that the average tendency of prospective conceivable users tends to be free of concerns. In addition, a share of about one-sixth has both expressed and concretized concerns. Those relate mainly to new characteristics of this elevator technology – absence of ropes, magnetic levitation, magnetic field presence – partially associated with known aspects such as power loss. Conclusion: The study provides an explorative contribution to the topic described. Thusly it seems to be particularly interesting for both researchers willing to look further at this or similar areas and manufacturers or future clients of the technology in the context of, for instance, communicating its prospective implementations.


Author(s):  
Kei Ouchi ◽  
Hiroshi Kaneko ◽  
Yutaka Tamaura

For the heliostat field design, the optical interaction of heliostat by shadowing and blocking should be considered besides cosine efficiency. In the present study, in order to visualize the optical interaction it is enabled to visualize the power loss image due to a poor heliostat layout. The optical interaction area among the two heliostats is calculated for several hundreds of pairs between the given heliostat and the surrounding heliostats which are virtually seated around the given heliostat. The resultant plot gives a power loss distribution around the given heliostat. An approximation method to calculate the heliostat distribution was applied for the visualization method for a remarkable time reduction for calculation. The magnitude of the interference can be seen easily from the area where the both borders of the optical interaction areas are overlapped. And the arrangement calculation method using the power loss distribution and the cosine efficiency distribution is proposed, which gives theoretically better heliostat field layouts.


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