Asynchronous Motor in a Mild Hybrid Vehicle

Volodymir Dvadnenko, O. Dziubenko, Oleg Pushkar
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Abstract

Problem. Strengthening requirements for reducing CO2 emissions requires reducing fuel consumption in cars with internal combustion engines. One of the ways to solve this problem is to equip cars with a hybrid power plant that combines an internal combustion engine and an electric motor. A classic hybrid vehicle requires two energy sources: a fuel tank for the internal combustion engine and a power battery for the electric motor. Therefore, hybrid vehicle has a more complex design and a relatively high cost. A mild hybrid vehicle is a new concept of a hybrid vehicle for urban use that is emerging today. Such MHVs have a simpler design and also allow you to save up to 30% of fuel in urban driving mode. Goal. The purpose of the work is to improve the economic and environmental characteristics of a mild hybrid car, due to the use of an inexpensive asynchronous electric motor with frequency control in the scalar mode, as well as more effective use of power plant control system algorithms. Methodology. Analytical research methods were used to develop algorithms for effective use of the power plant in acceleration, uniform motion, regenerative braking, and stopping modes. Mathematical modeling and calculation methods were used to justify the use of an asynchronous motor for the power plant of a mild hybrid vehicle. Results. The use of a low-power asynchronous motor in the power plant of a mild hybrid vehicle is mathematically justified. The use of the principle of rational amplitude-frequency scalar control is proposed. An algorithm and a scheme for the implementation of an induction motor control system with support for the optimal power factor have been developed. Originality. Instead of using a valve synchronous electric motor with an expensive control system, it is proposed to use an asynchronous motor, which has advantages in the power plant of a mild hybrid vehicle. An asynchronous motor will allow the use of effective algorithms of uniform motion and regenerative braking modes. Practical value. The design of a soft hybrid vehicle with the use of a low-power asynchronous electric motor makes it efficient and cost-effective. The scalar control method of an asynchronous motor, with the slip control, makes it possible to obtain a system with high control quality and lower cost of implementation.
轻度混合动力汽车中的异步电动机
问题。加强对减少二氧化碳排放的要求,要求减少内燃机汽车的燃料消耗。解决这个问题的方法之一是为汽车配备混合动力装置,它结合了内燃机和电动机。一辆经典的混合动力汽车需要两种能源:用于内燃机的燃料箱和用于电动机的动力电池。因此,混合动力汽车的设计更加复杂,成本也相对较高。轻度混合动力汽车是当今新兴的城市混合动力汽车的新概念。这样的mhv设计更简单,在城市驾驶模式下可以节省30%的燃料。的目标。这项工作的目的是改善轻度混合动力汽车的经济和环境特性,由于使用廉价的异步电动机,频率控制在标量模式下,以及更有效地使用电厂控制系统算法。方法。分析研究方法用于开发算法,以便在加速、均匀运动、再生制动和停止模式下有效利用发电厂。采用数学建模和计算方法,对采用异步电动机作为轻度混合动力汽车动力装置进行了论证。结果。在轻度混合动力汽车的动力装置中使用低功率异步电动机在数学上是合理的。提出了合理幅频标量控制原理的应用。提出了一种支持最优功率因数的感应电机控制系统的算法和实现方案。创意。在轻度混合动力汽车的动力装置中,建议采用异步电动机代替控制系统昂贵的阀同步电动机。异步电动机将允许使用均匀运动和再生制动模式的有效算法。实用价值。采用低功率异步电动机的软混合动力汽车的设计使其效率高,成本低。异步电动机的标量控制方法与转差控制相结合,使系统具有较高的控制质量和较低的实现成本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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