论文标题
在薄血管系统中建模热调节:数学分析
Modeling thermal regulation in thin vascular systems: A mathematical analysis
论文作者
论文摘要
设计师模仿生物中的血管系统,已经实现了微血管复合材料,以实现热调节和其他功能,例如电磁调节,感应和愈合。这样的材料系统通过嵌入式的血管来循环液体,以实现上述功能,从而使各种航空航天,军事和平民应用受益。尽管传热是一个成熟的场,但通过循环流体对合成微血管系统中热特性的控制是新的,并且缺乏理论上的基础。有益的设计师是预测性数学模型和对基于血管的主动冷却/加热的深入定性理解。因此,本文的主要重点是解决评论知识差距。 \ emph {first},我们提出了一个具有广泛适用性的降级模型,从而使入口温度与环境温度有所不同。 \ emph {second},我们将数学分析工具应用于此还原阶模型,并揭示流体隔离血管系统的许多传热特性。我们得出了点的属性(最小,最大和比较原理)和全局特性(例如,诸如平均表面温度和热效率之类的性能指标的界限)。这些新发现的结果加深了我们对主动冷却/加热的理解,并推动了热调节系统的完善。
Mimicking vascular systems in living beings, designers have realized microvascular composites to achieve thermal regulation and other functionalities, such as electromagnetic modulation, sensing, and healing. Such material systems avail circulating fluids through embedded vasculatures to accomplish the mentioned functionalities that benefit various aerospace, military, and civilian applications. Although heat transfer is a mature field, control of thermal characteristics in synthetic microvascular systems via circulating fluids is new, and a theoretical underpinning is lacking. What will benefit designers are predictive mathematical models and an in-depth qualitative understanding of vascular-based active cooling/heating. So, the central focus of this paper is to address the remarked knowledge gap. \emph{First}, we present a reduced-order model with broad applicability, allowing the inlet temperature to differ from the ambient temperature. \emph{Second}, we apply mathematical analysis tools to this reduced-order model and reveal many heat transfer properties of fluid-sequestered vascular systems. We derive point-wise properties (minimum, maximum, and comparison principles) and global properties (e.g., bounds on performance metrics such as the mean surface temperature and thermal efficiency). These newfound results deepen our understanding of active cooling/heating and propel the perfecting of thermal regulation systems.