首页> 外文会议>ASME International Mechanical Engineering Congress and Exposition >MODELING AND CONTROL OF THE ELECTRICAL ACTUATION SYSTEM OF AN ACTIVE HYDROMAGNETIC JOURNAL BEARING (AHJB)
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MODELING AND CONTROL OF THE ELECTRICAL ACTUATION SYSTEM OF AN ACTIVE HYDROMAGNETIC JOURNAL BEARING (AHJB)

机译:活性水磁轴承电气致动系统的建模与控制(AHJB)

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The architecture of the electrical actuation module driving a magnetic-hydraulic bearing system is presented. The bearing is intended to be scaled for use in applications of all sizes in industries like shipboard for support of the engine-propeller shaft or in power-plants for the shaft through which the prime mover, e.g. steam or gas turbine, is driving the electric generator. The benefits of this new bearing is first and foremost its superb performance in terms of low down to practically no friction losses since there is no direct contact between the supporting bearing surface and the rotating shaft supported. Other benefits include the potential of active, inline, real-time balancing and alignment. To implement such concept of a magnetic-hydraulic bearing, the following tasks need to be carried out. First, identification of mechanical, electrodynamical and circuit properties of the bearing's electromagnets in the system is necessary. Toward such identification, a series of experiments needed to be carried out. To be able to carry out these experiments, a specific power electronic converter is developed to drive each electromagnet. The power electronic drive is a quad MOSFET circuit based on full-bridge converter topology and outfitted with appropriate sensory instrumentation to collect and record measurements of all the physical variables of interest. Special care has been taken to compensate for magnetic hysteresis of the electromagnets, mitigate any induction heating effects and maintain operation within the material's linear region i.e. without significant saturation occurring. The use of a power transistor bridge allows rapid changes to be applied on the electromagnet's load force which could compensate disturbance or misalignment developed on the shaft supported. The data series from these experiments are useful for formulating a possibly nonlinear model of the electromagnetical and electromechanical processes involved in the bearing's operation. Such a model can then be employed to help design a digital microcontroller system which could effectively drive the power electronics and electromagnets to perform their required tasks as part of the bearing. Besides, the model could also be used for the synthesis of the nonlinear, sampled-data (discrete-time) control law which will be programmed on the microcontroller system board.
机译:提出了驱动磁性液压轴承系统的电动致动模块的架构。轴承旨在扩展用于船舶等行业中的所有尺寸的应用,以用于支撑发动机 - 螺旋桨轴或轴的发电机,使得主要动器通过该轴,例如,蒸汽或燃气轮机,驱动发电机。这种新轴承的益处首先,在低下下降方面首先实现其优化性能,以实际上没有摩擦损耗,因为支撑轴承表面和支撑轴之间没有直接接触。其他优势包括主动,内联,实时平衡和对齐的潜力。为了实现磁性液压轴承的这种概念,需要进行以下任务。首先,需要识别轴承电磁铁的机械,电动和电路特性是必要的。朝着这种鉴定,需要进行一系列实验。为了能够执行这些实验,开发了一种特定的电力电子转换器以驱动每个电磁铁。电力电子驱动器是基于全桥转换器拓扑的四元MOSFET电路,并配备了适当的感官仪器,以收集和记录其所有物理变量的测量。已经采取特殊护理来补偿电磁铁的磁滞,减轻任何感应加热效果并在材料的线性区域内保持操作。没有发生显着饱和的情况。使用功率晶体管桥允许在电磁铁的负载力上施加快速变化,这可以补偿支撑在轴上的干扰或未对准。来自这些实验的数据序列对于配制轴承操作中涉及的电磁和机电过程的可能非线性模型是有用的。然后可以采用这种模型来帮助设计一种数字微控制器系统,该系统可以有效地驱动电力电子和电磁铁以作为轴承的一部分执行所需的任务。此外,该模型还可用于合成非线性,采样数据(离散时间)控制规律,该控制法将在微控制器系统板上编程。

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