NanoScience Technology Center and Department of Mechanical, Materials and Aerospace Engineering, University of Central Florida, Orlando, Florida 32826, USA.
ACS Appl Mater Interfaces. 2010 Jun;2(6):1685-91. doi: 10.1021/am100204b.
This paper describes a new method to enhance the heat-transfer property of a single-phase liquid by adding encapsulated phase-change nanoparticles (nano-PCMs), which absorb thermal energy during solid-liquid phase changes. Silica-encapsulated indium nanoparticles and polymer-encapsulated paraffin (wax) nanoparticles have been made using colloid method, and suspended into poly-alpha-olefin (PAO) and water for potential high- and low-temperature applications, respectively. The shells prevent leakage and agglomeration of molten phase-change materials, and enhance the dielectric properties of indium nanoparticles. The heat-transfer coefficients of PAO containing indium nanoparticles (30% by mass) and water containing paraffin nanoparticles (10% by mass) are 1.6 and 1.75 times higher than those of corresponding single-phase fluids. The structural integrity of encapsulation allows repeated use of such nanoparticles for many cycles in high heat generating devices.
本文提出了一种通过添加封装相变纳米粒子(纳米 PCM)来增强单相液体传热性能的新方法,这些纳米粒子在固-液相变过程中吸收热能。使用胶体法制备了二氧化硅封装的铟纳米粒子和聚合物封装的石蜡(蜡)纳米粒子,并分别将其悬浮在聚-α-烯烃(PAO)和水中,以用于潜在的高温和低温应用。外壳可防止熔融相变材料的泄漏和团聚,并增强铟纳米粒子的介电性能。含有 30%质量分数的铟纳米粒子的 PAO 和含有 10%质量分数的石蜡纳米粒子的水的传热系数分别比相应单相流体高 1.6 和 1.75 倍。封装的结构完整性允许在高发热装置中重复使用这种纳米粒子进行多个循环。