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Control-Theoretic Dynamic Thermal Management of Automotive Electronics Control Units

机译:汽车电子控制单元的控制理论动态热管理

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There has been a large body of research on dynamic thermal management (DTM) to manage the die temperature of integrated circuits against their high power density. Control-theoretic DTM is one of the most effective DTM schemes that guarantee stability criteria while meeting several performance requirements such as response time, steady-state error, overshoot, undershoot, phase margin, gain margin, and so forth. Conventional control-theoretic DTM schemes show reasonable stability and performance for general-purpose processors, but they may not fulfill those requirements for vehicle electronics control units (ECUs) primarily because the ambient temperature of an ECU is dependent on the associated unit temperature that often exceeds 100 $^{circ }{hbox{C}}$. This results in a high steady-state die temperature and a very narrow temperature headroom. Furthermore, the unit temperature dynamically changes according to the driving condition that acts as a major disturbance to the DTM system. This paper introduces an advanced control-theretic DTM mechanism for high-performance vehicle ECUs. We model such ambient temperature variation as a disturbance, and adopt a disturbance predictor and compensator that effectively mitigates the effects of ambient temperature variations. We demonstrate that the proposed method is superior to the previous control-theoretic DTM in terms of RMS errors, peak temperature, and thermal violation.
机译:对于动态热管理(DTM)进行了大量的研究,以针对集成电路的管芯温度针对其高功率密度进行管理。控制理论DTM是最有效的DTM方案之一,可在满足一些性能要求(例如响应时间,稳态误差,过冲,下冲,相位裕量,增益裕量等)的同时,保证稳定性标准。传统的控制理论DTM方案为通用处理器显示了合理的稳定性和性能,但它们可能无法满足车辆电子控制单元(ECU)的那些要求,主要是因为ECU的环境温度取决于相关的单元温度,该温度经常超过100 $ ^ {circ} {hbox {C}} $。这导致较高的稳态裸片温度和非常窄的温度上升空间。此外,单元温度根据对DTM系统造成重大干扰的行驶条件而动态变化。本文介绍了一种用于高性能车辆ECU的先进的控制热DTM机制。我们将这种环境温度变化建模为干扰,并采用可有效减轻环境温度变化影响的干扰预测器和补偿器。我们证明了该方法在RMS误差,峰值温度和热违规方面优于先前的控制理论DTM。

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