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聚合物注塑模具中热阻TiCu(N,O)薄膜的制备、表征及应用

Fabrication, Characterization and Implementation of Thermo Resistive TiCu(N,O) Thin Films in a Polymer Injection Mold.

作者信息

Oliveira Eva, Silva João Paulo, Laranjeira Jorge, Macedo Francisco, Lanceros-Mendez Senentxu, Vaz Filipe, Ferreira Armando

机构信息

Centro de Física, Universidade do Minho, 4710-057 Braga, Portugal.

Moldit-Indústria de Moldes SA, Rua da Moura, Apartado 28, 3720-903 Loureiro, Portugal.

出版信息

Materials (Basel). 2020 Mar 20;13(6):1423. doi: 10.3390/ma13061423.

Abstract

This paper presents the development of metallic thermoresistive thin film, providing an innovative solution to dynamically control the temperature during the injection molding process of polymeric parts. The general idea was to tailor the signal response of the nitrogen- and oxygen-doped titanium-copper thin film (TiCu(N,O))-based transducers, in order to optimize their use in temperature sensor devices. The results reveal that the nitrogen or oxygen doping level has an evident effect on the thermoresistive response of TiCu(N,O) films. The temperature coefficient of resistance values reached 2.29 × 10 °C, which was almost six times higher than the traditional platinum-based sensors. In order to demonstrate the sensing capabilities of thin films, a proof-of-concept experiment was carried out, integrating the developed TiCu(N,O) films with the best response in an injection steel mold, connected to a data acquisition system. These novel sensor inserts proved to be sensitive to the temperature evolution during the injection process, directly in contact with the polymer melt in the mold, demonstrating their possible use in real operation devices where temperature profiles are a major parameter, such as the injection molding process of polymeric parts.

摘要

本文介绍了金属热阻薄膜的发展情况,为在聚合物零件注塑过程中动态控制温度提供了一种创新解决方案。总体思路是调整基于氮氧掺杂钛铜薄膜(TiCu(N,O))的传感器的信号响应,以优化其在温度传感设备中的应用。结果表明,氮或氧的掺杂水平对TiCu(N,O)薄膜的热阻响应有明显影响。电阻温度系数值达到2.29×10℃,几乎是传统铂基传感器的六倍。为了展示薄膜的传感能力,进行了一个概念验证实验,将响应最佳的已开发TiCu(N,O)薄膜集成到一个注塑钢模具中,并连接到数据采集系统。这些新型传感器插件被证明对注塑过程中的温度变化敏感,它们直接与模具中的聚合物熔体接触,证明了它们在温度分布是主要参数的实际操作设备(如聚合物零件的注塑过程)中的可能用途。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9bfd/7143454/c037c46830b7/materials-13-01423-g001.jpg

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