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Simulating and Reducing Noise Excited in an EV Powertrain by a Switched Reluctance Machine

机译:通过开关磁阻机模拟和降低EV动力系中激发的噪音

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The noise performance of fully electric vehicles is essential to ensure that they gain market acceptance. This can be a challenge for several reasons. Firstly, there is no masking from the internal combustion engine. Next, there is pressure to move to cost-efficient motor designs such as Switched Reluctance Motors, which have worse vibro-acoustic behaviour than their Permanent Magnet counterparts. Finally, powerdense, higher speed motors run closer fundamental frequency to the structural resonances of the system [1]. Experience has shown that this challenge is frequently not met. Reputable suppliers have designed and developed their "quiet" subsystems to state of the art levels, only to discover that the assembled E-powertrain is unacceptably noisy. The paper describes the process and arising results for the noise simulation of the complete powertrain. The dynamic properties are efficiently modelled as a complete system and subjected to motor excitation (torque ripple, electro-magnetic forces and rotor imbalance). Innovation in this project comes from the speed of the modelling and analysis, so that analysis and data interpretation comes early enough in a project to be effective in reducing the noise problems. This contrasts with the approach of simulating problems that have already occurred in testing. Actions to reduce the motor noise are explained and identified. System dynamic response identifies the operating points in which different excitation mechanisms are most problematic and steps are taken to reduce the dynamic response. Also, problematic conditions can be identified where innovative motor control algorithms are necessary.
机译:全电动汽车的噪声性能是必不可少的,以确保他们获得市场的认同。这可能有几个原因是一个挑战。首先,不存在来自所述内燃机掩蔽。接下来,有压力转移到经济高效的电机设计,比如开关磁阻电机,这比他们的永磁要差声振行为。最后,powerdense,更高的速度运行电动机更接近基频的系统[1]的结构共振。经验表明,这种挑战常常得不到满足。信誉良好的供应商已经设计和开发他们的“安静”的子系统,以现有技术水平的状态,才发现装配E-动力总成是不可接受的噪音。本文介绍的过程中,为整个动力总成系统的噪声仿真产生的结果。的动态特性被有效地建模为一个完整的系统,并进行电动机的励磁(转矩脉动,电磁力和转子不平衡)。在这个项目中的创新来自于建模和分析的速度,使分析和数据解释来足够早在项目可有效地降低了噪音问题。与此相反,模拟的是已经发生的测试问题的办法。操作以降低电机噪音进行了说明和标识。系统动态响应标识的工作点,其中不同的激励机制是最有问题的,并采取措施以降低动态响应。此外,有问题的条件可以被识别,其中新颖的电机控制算法是必要的。

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