Zhang Tao, Pan Zequan, Zhang Chunhua, Xiong Liuguang, Yang Chunmei, Zhang Jian, Shi Mengjiao, Wang Yuhang, Qu Wen
College of Electromechanical Engineering, Northeast Forestry University, Harbin 150040, China.
Forestry and Woodworking Machinery Engineering Technology Center, Northeast Forestry University, Harbin 150040, China.
Micromachines (Basel). 2024 Jan 12;15(1):130. doi: 10.3390/mi15010130.
In this paper, a microheater that can absorb thermal stress and has a large heating area is demonstrated by optimizing the structure and process of the microheater. Four symmetrically distributed elongated support beam structures were machined around the microheater via deep silicon etching. This design efficiently mitigates the deformation of the heated region caused by thermal expansion and enhances the structural stability of the microheater. The updated microheater no longer converts the work area into a thin film; instead, it creates a stable heating platform that can uniformly heat a work area measuring 10 × 10 mm. The microheater is verified to have high temperature uniformity and structural stability in finite element simulation. Finally, thorough investigations of electrical-thermal-structural characterization were conducted. The test findings show that the new microheater can achieve 350 °C with a power consumption of 6 W and a thermal reaction time of 22 s. A scan of its whole plane reveals that the surface of the working area of the new microheater is flat and does not distort in response to variations in temperature, offering good structural stability.
在本文中,通过优化微加热器的结构和工艺,展示了一种能够吸收热应力且具有大加热面积的微加热器。通过深硅刻蚀在微加热器周围加工出四个对称分布的细长支撑梁结构。这种设计有效地减轻了由热膨胀引起的加热区域的变形,并增强了微加热器的结构稳定性。更新后的微加热器不再将工作区域转变为薄膜;相反,它创建了一个稳定的加热平台,该平台能够均匀加热一个尺寸为10×10毫米的工作区域。在有限元模拟中验证了该微加热器具有高温均匀性和结构稳定性。最后,对电热结构特性进行了全面研究。测试结果表明,新型微加热器在功耗为6瓦、热反应时间为22秒的情况下能够达到350℃。对其整个平面进行扫描发现,新型微加热器工作区域的表面是平坦的,不会因温度变化而变形,具有良好的结构稳定性。