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Development and Implementation of Hardware in the Loop Simulation for Dual Clutch Transmission Control Units

机译:双离合器变速器控制单元回路仿真硬件的开发与实现

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A control oriented model of a Dual Clutch Transmission was developed for real time Hardware In the Loop (HIL) applications. The model is an innovative attempt to reproduce the fast dynamics of the actuation system maintaining a step size large enough for real time applications. The model comprehends a detailed physical description of hydraulic circuit, clutches, synchronizers and gears, and simplified vehicle and internal combustion engine sub-models; a stable real time simulation is achieved with a simplification of the model without losing physical validity. After an offline validation, the model was implemented in a HIL system and connected to the TCU (Transmission Control Unit) via two input-output boards, and to a load plate which comprehends all the actuators. The paper presents a selection of the several tests that have been performed for the development of the DCT controller: electrical failure tests on sensors and actuators, mechanical failure tests on hydraulic valves, clutches and synchronizers, and application tests comprehending all the main features of the control performed by the TCU, i.e. drive away and gear shift strategies, and interactions with the driver. Furthermore, the paper shows that the model is capable of reproducing the behavior of the real system during adaption procedures performed by the TCU under particular conditions, i.e. synchronizer position detection and clutch pressure characteristic detection. Being based on physical laws, in every condition the model simulates a plausible reaction of the system to the imposed failure or maneuver, as demonstrated by the possibility of performing a complete new software release test in fully automatic mode.
机译:针对实时硬件在环(HIL)应用开发了双离合器变速箱的面向控制模型。该模型是一种创新的尝试,可再现致动系统的快速动态特性,并保持足够大的步长以用于实时应用。该模型包含对液压回路,离合器,同步器和齿轮以及简化的车辆和内燃机子模型的详细物理描述;通过简化模型可实现稳定的实时仿真,而不会丢失物理有效性。经过离线验证后,该模型在HIL系统中实现,并通过两个输入输出板连接到TCU(变速箱控制单元),并连接到包含所有执行器的压板。本文介绍了为开发DCT控制器而进行的几项测试中的一些选择:传感器和执行器的电气故障测试,液压阀,离合器和同步器的机械故障测试以及涵盖了DTC控制器所有主要功能的应用测试。由TCU执行的控制,即驶离和换挡策略,以及与驾驶员的互动。此外,论文表明该模型能够在特定条件下,即同步器位置检测和离合器压力特性检测,在TCU执行的适配过程中再现真实系统的行为。基于物理定律,在每种情况下,该模型都可以模拟系统对施加的故障或操作的合理反应,这可以通过在全自动模式下执行完整的新软件发布测试来证明。

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