基于离散测量点的电子热管理全域温度场快速重建策略

IF 5.7 2区 工程技术 Q2 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Yuwei Ye , Qing Ai , Xu Zhang , Meng Liu , Yong Shuai
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引用次数: 0

摘要

多热源系统的动态热管理越来越依赖于实时的全域热分析和评估。然而,由于操作条件的实时不确定性,传统的离散测量和重建技术都难以捕捉全球温度场的演变。此外,热源系统在小数据域的温度场反演也是实际工程系统中亟待解决的难题。因此,本文描述了一种基于小数据集和稀疏传感器的快速重建策略,在不考虑可变操作条件的情况下在线监测全域热状态。具体来说,通过降维,可以从一个小的高保真数据集中识别出一系列低维特征向量,这些特征向量在不同的运行条件下表征了热场最主要的空间分布和演化模式。在线重建是通过动态调整特征向量系数,使实时测量值与预测值之间的误差最小化来实现的。通过将降阶特征向量组合在一个特定的公式中进一步估计全局状态。此外,结合QR分解进行鲁棒重建。通过分析无量纲化温度模型,证明了重构技术的可行性和潜力。最后,结合不同环境下具有各向异性导热系数的分布式多热源系统的仿真实例,进行了广泛的评价。重建结果证明了该方法的有效性和快速的动态响应,有助于同步监测全球热分布,有效地辅助调节内部热输运。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A rapid reconstruction strategy of full-domain temperature field based on discrete measurement points for electronics thermal management
Dynamic thermal management of multi-heat-source systems increasingly relies on full-domain thermal analysis and evaluations in real-time. However, the conventional discrete measurements and reconstruction techniques both struggle to capture the global temperature field evolution due to the real-time uncertainty of operating conditions. In addition, temperature field inversion of heat-source systems in the small data regime is also a challenging problem to be solved in practical engineering systems. Therefore, a rapid reconstruction strategy based on a small dataset and sparse sensors is described, herein to monitor the full-domain thermal states online, irrespective of variable operating conditions. Specifically, by dimensionality reduction, a series of low-dimensional eigenvectors can be identified from a small high-fidelity dataset under diverse operating conditions, characterizing the most dominant spatial distribution and evolutionary patterns of the thermal field. Online reconstruction is driven by dynamically adjusting the eigenvector coefficients by minimizing the error between real-time measurements and predictions. The global state is further estimated via assembling the order-reduced eigenvectors in a specific formula. In addition, QR decomposition is integrated for robust reconstruction. The feasibility and potential of the reconstruction technique was proved by analytical nondimensionalized temperature models. Finally, an extensive evaluation was concluded by referring to the simulation cases of a distributed multi-heat-source system with anisotropic thermal conductivity and in variable environments. The reconstruction results demonstrate the effectiveness and fast dynamic response of this approach, which can facilitate the synchronized monitoring of the global thermal distribution and effectively assist in regulating internal heat transport.
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来源期刊
Advances in Engineering Software
Advances in Engineering Software 工程技术-计算机:跨学科应用
CiteScore
7.70
自引率
4.20%
发文量
169
审稿时长
37 days
期刊介绍: The objective of this journal is to communicate recent and projected advances in computer-based engineering techniques. The fields covered include mechanical, aerospace, civil and environmental engineering, with an emphasis on research and development leading to practical problem-solving. The scope of the journal includes: • Innovative computational strategies and numerical algorithms for large-scale engineering problems • Analysis and simulation techniques and systems • Model and mesh generation • Control of the accuracy, stability and efficiency of computational process • Exploitation of new computing environments (eg distributed hetergeneous and collaborative computing) • Advanced visualization techniques, virtual environments and prototyping • Applications of AI, knowledge-based systems, computational intelligence, including fuzzy logic, neural networks and evolutionary computations • Application of object-oriented technology to engineering problems • Intelligent human computer interfaces • Design automation, multidisciplinary design and optimization • CAD, CAE and integrated process and product development systems • Quality and reliability.
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