Research on main insulation temperature field for open-type high energy density permanent magnet motor

Author(s):  
Sen Wang ◽  
Zongshu Lv ◽  
Linyuan Xiao ◽  
Yangyang Zhao ◽  
Hongkui Yan ◽  
...  
2021 ◽  
Vol 72 (4) ◽  
pp. 262-267
Author(s):  
Yangyang Zhao ◽  
Xu Zhang ◽  
Peihao Zhu ◽  
Qingchun Zheng

Abstract It is a research hotspot of electric propulsion system that a high energy density permanent magnet machine is used as its main power. In general, the power system of electric propulsion consists of batteries, inverters and high energy density permanent magnet machines and loads. Based on harmonic effect of PWM sine alternating current generated by inverter, iron loss model of high energy density permanent magnet machine is established under inverter power harmonic, and iron loss calculation flow chart of high energy density permanent magnet machine for electric propulsion system is shown. The influences of different stator outer diameter and rotor inner diameter on iron loss are analyzed by using the finite element method. Through the above analysis, a 30 kW high energy density permanent magnet machine was designed. Then the noload test and iron loss separation test were carried out, verifying that the machine has very low core loss.


Alloy Digest ◽  
1988 ◽  
Vol 37 (10) ◽  

Abstract NeIGT 27 and 35 are high energy density, sintered permanent magnet iron, neodymium, boron alloys. They are ideal where space and weight reductions must be combined with high performance permanent materials. This datasheet provides information on composition, physical properties, hardness, and tensile properties. It also includes information on surface treatment. Filing Code: Fe-86. Producer or source: IG Technologies Inc..


1966 ◽  
Author(s):  
S. CHODOSH ◽  
E. KATSOULIS ◽  
M. ROSANSKY

2019 ◽  
Author(s):  
Zhao-Yang Zhang ◽  
Tao LI

Solar energy and ambient heat are two inexhaustible energy sources for addressing the global challenge of energy and sustainability. Solar thermal battery based on molecular switches that can store solar energy and release it as heat has recently attracted great interest, but its development is severely limited by both low energy density and short storage stability. On the other hand, the efficient recovery and upgrading of low-grade heat, especially that of the ambient heat, has been a great challenge. Here we report that solar energy and ambient heat can be simultaneously harvested and stored, which is enabled by room-temperature photochemical crystal-to-liquid transitions of small-molecule photoswitches. The two forms of energy are released together to produce high-temperature heat during the reverse photochemical phase change. This strategy, combined with molecular design, provides high energy density of 320-370 J/g and long-term storage stability (half-life of about 3 months). On this basis, we fabricate high-performance, flexible film devices of solar thermal battery, which can be readily recharged at room temperature with good cycling ability, show fast rate of heat release, and produce high-temperature heat that is >20<sup> o</sup>C higher than the ambient temperature. Our work opens up a new avenue to harvest ambient heat, and demonstrate a feasible strategy to develop high-performance solar thermal battery.


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