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Feedforward Control Approach for Digital Combustion Rate Shaping Realizing Predefined Combustion Processes

机译:用于实现预定义燃烧过程的数字燃烧速率的前馈控制方法

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The aim of this research collaboration focuses on the realization of a novel Diesel combustion control strategy, known as Digital Combustion Rate Shaping (DiCoRS) for transient engine operation. Therefore, this paper presents an initial, 3D-CFD simulation based evaluation of a physical model-based feedforward controller, considered as a fundamental tool to apply real-time capable combustion rate shaping to a future engine test campaign. DiCoRS is a promising concept to improve noise, soot and HC/CO emissions in parallel, without generating drawbacks in NO_x emission and combustion efficiency. Instead of controlling distinct combustion characteristics, DiCoRS aims at controlling the full combustion process and therefore represents the highest possible degree of freedom for combustion control. The manipulated variable is the full injection profile, generally consisting of multiple injection events. So far, however, DiCoRS was only realized by feedback-based iterative learning control, lacking sufficient control speed. Thus, an additional feedforward control unit is required to transfer the benefits of DiCoRS also to the dominating transient engine operation condition in passenger car applications. Therefore, a new model-based feedforward control concept is developed and initially investigated in this paper. Desired combustion rates and therefore the desired in-cylinder gas state traces are formulated based on energy- and mass conservation equations. An inverse 0-D heat release model calculates the required injection profile, taking into account hardware related boundaries of the fuel injection system. Each submodule of the feedforward controller, such as the ignition delay model, is calibrated offline via steady-state engine test cell data. The overall functionality of the feedforward control concept is finally demonstrated based on a 3D-CFD combustion simulation study.
机译:该研究合作的目的着眼于实现一种新型的柴油燃烧控制策略,被称为数字燃烧速率整形(DiCoRS)瞬态发动机运转的。因此,本文提出了一种基于物理模型的前馈控制器的初始,三维CFD模拟基础的评估,认为实时能够燃烧速率整形应用到未来的发动机测试活动的基本工具。 DiCoRS是一种很有前途的概念噪声改善,在平行烟灰和HC / CO的排放量,而不会产生在发射中NO_x和燃烧效率的缺点。而不是在控制完全燃烧过程中控制不同的燃烧特性,DiCoRS目标,因此代表了燃烧控制尽可能高的自由度。操纵变量是完整的喷射轮廓,通常由多喷射事件。然而到目前为止,DiCoRS只是通过基于反馈的迭代学习控制实现的,缺乏足够的控制速度。因此,额外的前馈控制单元需要DiCoRS的好处转移也乘用车应用的主导瞬时发动机操作条件。因此,一种新的基于模型的前馈控制概念开发,初步探讨在本文中。期望的燃烧率,并且因此期望的缸内气体状态的痕迹是基于能量和质量守恒方程配制。逆0-d热释放模型计算所需注入剖面,同时考虑到燃料喷射系统的帐户硬件相关的边界。前馈控制器的每个子模块,诸如点火延迟模型,离线经由稳态发动机试验数据校准。前馈控制概念的整体功能是基于三维CFD燃烧模拟研究终于证明。

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