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PERFORMANCE AND COST REDUCTION OF PERMANENT MAGNET BIASED MAGNETIC BEARINGS

机译:永磁偏置磁轴承的性能和成本降低

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Active magnetic bearings (AMBs) have the well-documented advantage of reduced operational power losses when compared to conventional fluid-film bearings; however, they have yet to be widely adopted in industry due to the high initial costs of manufacturing and supporting power electronics. As AMBs look to become more cost competitive in more widely based applications, permanent magnet biased designs seek to reduce both the operating electrical power losses and the power electronic hardware costs while maintaining normal load and maximum load capacities. In these new designs, permanent magnet components are used to provide the necessary bias magnetic flux in the bearing usually provided by an electrical bias current in traditional all electromagnetic AMB designs. By eliminating electrical bias currents, operating electrical power losses can be significantly reduced while allowing for smaller, cheaper electronic components. This paper provides a comparison of the performance of permanent magnet biased thrust and radial bearing designs with conventional, all electromagnetic bearing designs. The thrust bearings are designed with nominal and maximum load capacities of 1,333 N and 4,000 N, while the radial bearings are designed with nominal and maximum load capacities of 1,000 N and 3,000 N. The shaft diameter is considered to be 70 mm for all bearings. Finite element modeling is used to calculate load capacities and operating electrical power requirements. Power requirements for a number of loads ranging from nominal to maximum capacity are presented for the permanent magnet bi- ased and all electromagnetic bearing designs. A significant reduction in electrical power requirements under maximum load conditions is shown in the permanent magnet biased designs. This reduction is further magnified under nominal load conditions. Additionally, the number of pole wire turns and maximum wire currents are adjusted to realize even greater electrical power losses. The required bias magnetic flux can be generated with reduced wire currents by increasing the number of wire turns. While reducing wire currents also reduces electrical power requirements, the increase in wire turns increases the circuit induction. This increase in induction decreases the bearing slew rate and, in turn, the bandwidth. This study looks at a number of wire turns and current combinations. Tradeoffs between reduced electrical power losses and bearing bandwidth are presented and discussed. The permanent magnet biased AMB designs are shown to significantly reduce electrical power losses having the potential to improve overall machine efficiency. Implications of adopting this technology to both operating and manufacturing costs are discussed. The use of permanent magnets in AMBs is shown to make the costs of these systems more competitive with oil lubricated bearings when compared to conventional AMB designs.
机译:与传统的液膜轴承相比,主动磁轴承(AMB)具有减少运行功率损失的充分证明的优势;但是,由于制造和支持电力电子设备的高昂初始成本,它们尚未在工业中被广泛采用。随着AMB在越来越广泛的应用中变得更具成本竞争力,永磁偏置设计寻求在保持正常负载和最大负载能力的同时降低工作电功率损耗和功率电子硬件成本。在这些新设计中,永磁体组件用于在轴承中提供必要的偏置磁通量,而在传统的所有电磁AMB设计中,该偏置磁通量通常是由偏置电流提供的。通过消除电偏置电流,可以显着减少工作电功率损耗,同时允许使用更小,更便宜的电子组件。本文提供了永磁偏置推力轴承和径向轴承设计与常规全电磁轴承设计的性能比较。推力轴承的标称和最大负载能力为1,333 N和4,000 N,而径向轴承的标称和最大负载能力为1,000 N和3,000N。所有轴承的轴直径均视为70毫米。有限元建模用于计算负载能力和运行电功率要求。对于永磁偏置和所有电磁轴承设计,提出了从标称容量到最大容量的多种负载的功率要求。永磁偏置设计显示了在最大负载条件下电力需求的显着降低。在额定负载条件下,这种减小会进一步放大。另外,调整极线匝数和最大线电流以实现更大的电功率损耗。通过增加导线匝数,可以在减少导线电流的情况下生成所需的偏置磁通量。虽然降低导线电流也降低了电力需求,但导线匝数的增加也会增加电路的感应强度。感应的增加会降低轴承的摆率,进而降低带宽。这项研究着眼于许多匝数和电流组合。提出并讨论了降低的电功率损耗和轴承带宽之间的折衷。永磁偏置AMB设计显示可以显着减少电功率损耗,并有可能提高整体机器效率。讨论了采用该技术对运营和制造成本的影响。与传统的AMB设计相比,已证明在AMB中使用永磁体可以使这些系统的成本与油润滑轴承相比更具竞争力。

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