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Thermal Diffusivity of Carbon Materials as Candidate Reference Materials

机译:碳材料作为参比材料的热扩散率

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Thermal-diffusivity measurements using the laser-flash method have been investigated in order to establish a thermal diffusivity standard. In many cases, thermal-conductivity values of bulk materials are calculated from the thermal diffusivity, specific heat capacity, and bulk density. The thermal diffusivity is one of the transport properties. It depends on the material and is sensitive to the structure. So, it is important to measure the thermal diffusivity of each material. The laser-flash method is one of the most popular methods for thermal-diffusivity measurements of bulk materials above room temperature. Because the method realizes a short-time method and is a non-contact method, it is very suitable for practical use. And it is known as a highly reliable measurement since one-dimensional heat diffusion phenomena observed in these measurements are simple. On the other hand, more reliable values measured by the method are important in the view of thermal design. According to the background, there is a need of a standard for thermal-diffusivity measurements using the laser-flash method to obtain reliable thermal diffusivities. The National Metrology Institute of Japan (NMIJ) in AIST has established reference materials for the laser-flash method and is supplying them. However, they are not sufficient to cover the whole range of thermal-diffusivity measurements. Thus, some candidate materials have been investigated to establish another reference material. Carbon materials are considered since it is preferable for the laser-flash method that the material is optically nontransparent and dark colored (ideally black). In this study, the thermal diffusivity of a pyrolytic graphite that is expected to be a candidate reference material for the laser-flash method is investigated. It was found that the intrinsic thermal diffusivities can be determined along the in-plane and cross-plane directions. The high thermal diffusivity of the in-plane direction, , was successfully observed at room temperature. The thermal diffusivity along the cross-plane direction was determined to be . It has indicated that the pyrolytic graphite has a large anisotropy from the view of the thermal diffusivity.
机译:为了建立热扩散标准,已经研究了使用激光闪光法的热扩散测量。在许多情况下,散装材料的热导率值是根据热扩散率,比热容和堆积密度计算得出的。热扩散率是传输特性之一。它取决于材料并且对结构敏感。因此,测量每种材料的热扩散率很重要。激光闪光法是用于室温以上的散装材料热扩散率测量的最受欢迎的方法之一。因为该方法实现了短时方法并且是非接触方法,所以非常适合实际使用。由于在这些测量中观察到的一维热扩散现象很简单,因此被称为高度可靠的测量。另一方面,从热设计的角度来看,用该方法测得的更可靠的值很重要。根据背景技术,需要一种使用激光闪光法的热扩散率测量标准,以获得可靠的热扩散率。日本国家计量学会(AIST)的日本国家计量学会(NMIJ)已为激光闪光法建立了参考资料,并正在提供这些资料。但是,它们不足以覆盖整个热扩散率测量范围。因此,已经研究了一些候选材料以建立另一种参考材料。考虑碳材料,因为对于激光闪光法,优选该材料是光学不透明的和深色的(理想地是黑色的)。在这项研究中,研究了热解石墨的热扩散率,该热解石墨有望成为激光闪光方法的候选参考材料。已经发现,可以沿着面内和横截面方向确定固有热扩散率。在室温下成功观察到面内方向的高热扩散率。沿横截面方向的热扩散率确定为。从热扩散率的观点表明热解石墨具有大的各向异性。

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