论文标题
线性导电超材料的非对称传热
Asymmetric Heat Transfer with Linear Conductive Metamaterials
论文作者
论文摘要
由于其广泛的应用可能性,通常称为热二极管或热整流器的不对称传热系统已获得了越来越多的兴趣。大多数以前的宏观热二极管要么诉诸于具有强度依赖性的非线性热导电率,因此可能受到天然材料或固定的限制,或者依靠需要辅助能量有效载荷的主动调制。在这里,我们建立了一种直接的策略,即用线性导电材料被动地实现不对称传热。该策略还引入了关于使用非线性导热率的非对称传热设计设计的新疑问观点,从而纠正了通过可分开的非线性导热率无法分离的热整流的误解。非线性扰动模式可以使用多功能,以在热传导中产生有效且广泛的扰动,该扰动模仿并绕过由自然发生的对应物设置的固有的热非线性约束。表面热辐射和热对流的独立实验表征验证了可以定制分级线性热超材料和环境之间的热交换,以实现宏观的不对称热传递。设想我们的工作是为了激发用于传热控制的概念模型,可作为高级热管理,热计算和热传输的强大且方便的平台。
Asymmetric heat transfer systems, often referred to as thermal diodes or thermal rectifiers, have garnered increasing interest due to their wide range of application possibilities. Most of those previous macroscopic thermal diodes either resort to nonlinear thermal conductivities with strong temperature dependence that may be quite limited by or fixed in natural materials or rely on active modulation that necessitated auxiliary energy payloads. Here, we establish a straightforward strategy of passively realizing asymmetric heat transfer with linear conductive materials. The strategy also introduces a new interrogative perspective on the design of asymmetric heat transfer utilizing nonlinear thermal conductivity, correcting the misconception that thermal rectification is impossible with separable nonlinear thermal conductivity. The nonlinear perturbation mode can be versatilely engineered to produce an effective and wide-ranging perturbation in the heat conduction, which imitates and bypasses intrinsic thermal nonlinearity constraints set by naturally occurring counterparts. Independent experimental characterizations of surface thermal radiation and thermal convection verified that the heat exchange between a graded linear thermal metamaterial and the ambient can be tailored to achieve macroscopic asymmetric heat transfer. Our work is envisaged to inspire conceptual models for heat transfer control, serving as a robust and convenient platform for advanced thermal management, thermal computation, and heat transport.