High performance and EV power train system using C2000 MCU for functional safety

Shailesh Ghotgalkar, Ashish Vanjari, Han Zhang, Prasanth Viswanathan Pillai, Mihir Mody, K. Rajamanickam, Mohammad Asif Farooqui
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引用次数: 2

Abstract

The power train in Electric Vehicle (EV) requires the highest level of Automotive Functional Safety Integrity Level (namely ASIL D) system due to the life-critical risk associated with the failure. The development of these systems typically involves the usage of hardware components and software that meets the highest functional safety levels. This can result in a significantly higher cost of development and component compared to a lower functional safety integrity solution. Besides cost, the key challenge of these systems is the rising high performance (RPM and efficiency) requirement for EV motors due to the underlying range and efficiency targets. These goals are difficult to achieve using generic safety-certified MCUs. This paper proposes a system solution using components with different safety integrity levels and software support for system-level safety requirement decomposition. The solution consists of innovative techniques namely optimal decomposition of safety requirements, an intelligent safety-checker for high-performance motor drive, and enabling Freedom From Interference (FFI) due to the mix-criticality of hardware and software components in the system. The proposed solution is implemented on Texas Instruments’ C2000 MCU (F2838x) for motor control and TMS570 MCU for safety augmentation meeting the highest automotive functional safety level i.e. ASIL D assessed by TÜV SÜD. The ASIL decomposition-based safety concept eliminates the need for entire solution redevelopment as well as ability to scaleup motor control performance with a software upgrade to the C2000 MCU (F2838x) without significant changes to the safety architecture.
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高性能电动汽车动力总成系统采用C2000单片机实现功能安全
电动汽车(EV)的动力传动系统由于存在与故障相关的危及生命的风险,因此需要最高级的汽车功能安全完整性等级(ASIL D)系统。这些系统的开发通常涉及使用满足最高功能安全级别的硬件组件和软件。与功能安全完整性较低的解决方案相比,这可能导致开发成本和组件成本显著提高。除了成本之外,这些系统的主要挑战是由于潜在的范围和效率目标,对电动汽车电机的高性能(RPM和效率)要求不断提高。使用通用安全认证的mcu很难实现这些目标。本文提出了一种利用不同安全完整性等级的组件和软件支持进行系统级安全需求分解的系统解决方案。该解决方案包括创新技术,即安全要求的最佳分解,高性能电机驱动的智能安全检查器,以及由于系统中硬件和软件组件的混合临界性而实现的抗干扰自由(FFI)。所提出的解决方案在用于电机控制的德州仪器C2000 MCU (F2838x)和用于安全增强的TMS570 MCU上实现,满足TÜV SÜD评估的最高汽车功能安全级别,即ASIL D。基于ASIL分解的安全概念消除了重新开发整个解决方案的需要,并且能够通过软件升级到C2000 MCU (F2838x)来扩大电机控制性能,而无需对安全架构进行重大更改。
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