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A Two-Cell Backstepping-Based Control Strategy for Diesel Engine Selective Catalytic Reduction Systems

机译:柴油机选择性催化还原系统的基于两单元反推的控制策略

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This paper presents a diesel engine selective catalytic reduction (SCR) ammonia surface coverage ratio profile control design for a two-cell SCR system, which enables a staircase ammonia coverage ratio profile for simultaneously achieving high NO$_{x}$ conversion efficiency and low ammonia slip. Such a novel two-cell SCR architecture greatly increases the control system complexity. A nonlinear backstepping-based control law is proposed to regulate the ammonia coverage ratio of the upstream cell to a desired (high) value in order to maintain high-SCR NO$_{x}$ conversion efficiency, and to keep the ammonia coverage ratio of the downstream cell below a low upper limit for high-ammonia adsorption capability. The control law thus possesses the advantages of being able to simultaneously maintain SCR high-NO$_{x}$ conversion efficiency and guarantee low ammonia slip, as well as being robust to the SCR ammonia storage capacity uncertainty. Theoretical analyses and FTP75 driving cycle simulations based on an experimentally validated full-vehicle simulator were conducted to evaluate the effectiveness of the proposed control strategy. Comparisons with conventional SCR controllers are presented to show the advantages of the proposed two-cell backstepping-based SCR control strategy.
机译:本文提出了一种用于两单元SCR系统的柴油机选择性催化还原(SCR)氨表面覆盖率分布曲线控制设计,该设计可实现阶梯式氨覆盖率分布曲线,同时实现较高的NO $ _ {x} $转化效率和较低的转化率。氨泄漏。这种新颖的两单元SCR架构大大增加了控制系统的复杂性。提出了一种基于非线性反推的控制律,将上游池的氨气覆盖率调节到所需的(高)值,以保持较高的SCR NO $ _ {x} $转换效率,并保持氨气覆盖率在高氨吸附能力的低上限以下的情况下,下游反应池的流量会降低。因此,该控制法则具有以下优点:能够同时保持SCR高NO __ {x} $转换效率并保证低氨漏失,并且对于SCR氨存储容量不确定性具有鲁棒性。基于实验验证的全车模拟器进行了理论分析和FTP75驾驶循环仿真,以评估所提出控制策略的有效性。提出了与常规SCR控制器的比较,以显示所提出的基于两单元反推的SCR控制策略的优势。

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