{"title":"Suppression of B-Field & E-Field Effects on Resolver due to Overhang Components in Traction Motor Applications","authors":"Yedukondalu Kondaveeti, Reddy Venkata Krishna, Aswin Uvaraj Ganesan, Jagadish Panchada","doi":"10.4271/2023-28-0091","DOIUrl":null,"url":null,"abstract":"<div class=\"section abstract\"><div class=\"htmlview paragraph\">Permanent Magnet Synchronous Motor (PMSM) is a favorite choice for traction applications because of their high power-to-weight ratio, torque-to-current ratio, high efficiency. In PMSM motors to perform the electronic commutation, resolvers are required to detect the rotor position. Resolvers are placed nearer to the end windings of the stator by considering the Mechanical Assembly and interfacing aspects. In high-power traction applications, due to higher current, there will be a significant influence of electric fields (E-fields) and electromagnetic fields (B-fields) on the rotor position sensor due to overhang components. The magnetic field induced by end-winding changes the excitation field, the magnitude of which decides the rotor angular position. This distortion of the excitation field will impact the sensing position and performance of the resolver. Analytical equations discussed in this paper also highlight that the machine output torque decreases with position error at higher speeds. The magnetic field in the overhang components of the winding is noticeably three-dimensional. In this research study, a 3D finite element simulation is performed to examine and suppress the impact of the B-fields and E-fields. In this approach, the influence of E-fields and B-fields is determined in radial and axial directions by creating planes. From this approach, shielding is provided for the resolver, due to that the effects of B and E-fields are suppressed by 88-95%. Due to the suppression, the resolver can deliver a precise rotor angular position for the motor.</div></div>","PeriodicalId":38377,"journal":{"name":"SAE Technical Papers","volume":" 9","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2023-11-10","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"SAE Technical Papers","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.4271/2023-28-0091","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q3","JCRName":"Engineering","Score":null,"Total":0}
引用次数: 0
Abstract
Permanent Magnet Synchronous Motor (PMSM) is a favorite choice for traction applications because of their high power-to-weight ratio, torque-to-current ratio, high efficiency. In PMSM motors to perform the electronic commutation, resolvers are required to detect the rotor position. Resolvers are placed nearer to the end windings of the stator by considering the Mechanical Assembly and interfacing aspects. In high-power traction applications, due to higher current, there will be a significant influence of electric fields (E-fields) and electromagnetic fields (B-fields) on the rotor position sensor due to overhang components. The magnetic field induced by end-winding changes the excitation field, the magnitude of which decides the rotor angular position. This distortion of the excitation field will impact the sensing position and performance of the resolver. Analytical equations discussed in this paper also highlight that the machine output torque decreases with position error at higher speeds. The magnetic field in the overhang components of the winding is noticeably three-dimensional. In this research study, a 3D finite element simulation is performed to examine and suppress the impact of the B-fields and E-fields. In this approach, the influence of E-fields and B-fields is determined in radial and axial directions by creating planes. From this approach, shielding is provided for the resolver, due to that the effects of B and E-fields are suppressed by 88-95%. Due to the suppression, the resolver can deliver a precise rotor angular position for the motor.
div class="section abstract"><div class="htmlview段落">永磁同步电机(PMSM)因其功率重量比高、转矩电流比大、效率高而成为牵引应用的首选。在永磁同步电机中,为了实现电子换相,需要使用解析器来检测转子位置。通过考虑机械装配和接口方面,将变压器放置在更靠近定子末端绕组的位置。在大功率牵引应用中,由于电流较大,由于悬垂元件的存在,会对转子位置传感器产生较大的电场(e场)和电磁场(b场)影响。端绕组产生的磁场改变了励磁场,励磁场的大小决定了转子的角位置。励磁场的畸变会影响传感器的位置和性能。文中讨论的解析方程还强调了在较高转速下,机床输出转矩随位置误差的减小而减小。绕组悬垂部分的磁场明显是三维的。在本研究中,通过三维有限元模拟来检测和抑制b场和e场的影响。在这种方法中,通过创建平面来确定e场和b场在径向和轴向上的影响。这种方法对解析器有屏蔽作用,B场和e场的影响被抑制了88-95%。由于抑制,解析器可以为电机提供精确的转子角位置。</div></div>
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