Near-infrared imaging of heat transfer behavior between gadolinium and fluid during magnetization/demagnetization process of magnetocaloric effect

T. Nguyen, Naoto Kakuta, K. Uchida, Hosei Nagano
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Abstract

This paper reports on the application of a near-infrared (NIR) imaging system for visualizing heat transfer dynamics from a bulk gadolinium (Gd) sample to the surrounding water during the magnetization/demagnetization process of the magnetocaloric effect (MCE). The suggested approach relied on the spectral variation in water absorption band at 1150 nm wavelength within the NIR spectrum. An experimental setup integrated a telecentric uniform-illumination system, a halogen lamp, and an NIR camera to enable real-time monitoring of a single magnetization and demagnetization cycle induced by an external magnetic field, which was generated by a permanent-magnet-based magnetic circuit. Two-dimensional absorbance images captured during this cycle clearly depicted the thermal energy generated by the MCE in water. Furthermore, an analysis of the thermal boundary layer and the quantification of heat transfer from Gd to water provided insights into the dynamics over time. These results indicated the potential of our NIR imaging techniques in optimizing thermal–fluid interactions within MCE systems, thereby improving the design and efficiency of magnetic refrigeration systems.
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磁致效应磁化/去磁过程中钆与流体之间热传递行为的近红外成像
本文报告了应用近红外(NIR)成像系统观察磁致效应(MCE)磁化/去磁过程中从块状钆(Gd)样品到周围水体的热传导动态。所建议的方法依赖于近红外光谱中 1150 纳米波长水吸收带的光谱变化。实验装置集成了远心均匀照明系统、卤素灯和近红外摄像机,可实时监测由永磁磁路产生的外磁场诱导的单次磁化和退磁循环。在这一循环过程中捕获的二维吸光度图像清楚地描绘了 MCE 在水中产生的热能。此外,对热边界层的分析以及从钆到水的热传导的量化,也让我们对随时间变化的动态有了更深入的了解。这些结果表明了我们的近红外成像技术在优化 MCE 系统内热流体相互作用方面的潜力,从而提高了磁制冷系统的设计和效率。
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