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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part D. Journal of Automobile Engineering >Control-oriented turbine power model for a variable-geometry turbocharger
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Control-oriented turbine power model for a variable-geometry turbocharger

机译:用于可变几何涡轮增压器的控制导向涡轮电源模型

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A control-oriented model for the variable-geometry turbocharger is critical for model-based variable-geometry turbocharger control design. Typically, the variable-geometry turbocharger turbine power is modeled with a fixed mechanical efficiency of the turbocharger on the assumption of an isentropic process. The fixed-efficiency approach is an oversimplification and may lead to modeling errors because of an overpredicted or underpredicted compressor power. This leads to the use of lookup-table-based approaches for defining the mechanical efficiency of the turbocharger. Unfortunately, since the vane position of a variable-geometry turbocharger introduces a third dimension into these maps, real-time implementation requires three-dimensional interpolations with increased complexity. Map-based approaches offer greater fidelity in comparison with the fixed-efficiency approach but may introduce additional errors due to interpolation between the maps and extrapolation to extend the operational range outside the map. Interpolation errors can be managed by using dense maps with extensive flow bench testing; smooth extrapolation is necessary when the turbine is operated outside the mapped region, e.g. in low-flow and low-speed conditions. Extending the map to this region requires very precise flow control and measurement using a motor-driven compressor, which currently is not a standard test procedure. In this paper, a physics-based control-oriented model of the turbine power and the associated power loss is proposed and developed, where the turbine efficiency is modeled as a function of both the vane position of the variable-geometry turbocharger and the speed of the turbine shaft. As a result, the proposed model eliminates the interpolation errors with smooth extension to operational conditions outside typically mapped regions.
机译:可控制的可变几何涡轮增压器的型号对于基于模型的可变几何涡轮增压器控制设计至关重要。通常,可变几何涡轮增压器涡轮机电源以涡轮增压器的固定机械效率为模型,假设熵加压效果。固定效率方法是一种过度简化,可能导致模拟错误,因为缺乏预测的压缩机功率。这导致使用基于查找表的方法来定义涡轮增压器的机械效率。遗憾的是,由于可变几何涡轮增压器的叶片位置引入了这些地图的第三维度,因此实时实现需要三维插值,其复杂性增加。与固定效率方法相比,基于地图的方法提供了更大的保真性,但可能导致映射与外推之间的插值引入额外的错误,以扩展地图外的操作范围。通过使用具有广泛流量台面测试的密集地图可以管理插值误差;当涡轮机在映射区域外部操作时,是必要的推断是必要的,例如,在低流量和低速条件下。将地图扩展到该区域需要非常精确的流量控制和使用电机驱动的压缩机测量,这是目前不是标准测试程序。在本文中,提出和开发了一种基于涡轮功率的基于物理的控制导向模型和相关的功率损耗,其中涡轮效率是可变几何涡轮增压器的叶片位置的函数和速度的函数涡轮轴。结果,所提出的模型消除了具有平滑扩展到外部映射区域的操作条件的插值误差。

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