额外制造的热塑性复合材料的评估,用于废弃性热保护系统 (TPS)
Teodor Adrian Badea1, Lucia Raluca Maier1, Alexa-Andreea Crisan1
1Composite Materials Laboratory for Aeronautical Field, Romanian Research & Development Institute for Gas Turbines-COMOTI, 220D Iuliu Maniu Av., 061126 Bucharest, Romania.
Polymers
|September 13, 2025
概括
这项研究评估了带有内部空气室的3D打印热保护系统 (TPS). 强化配置显示出优越的热稳定性和减少的质量损失,这表明TPS开发有很大的潜力.
科学领域:
- 材料科学 材料科学 材料科学
- 航空航天工程 航空航天工程
- 热力工程是热力工程中的一个.
背景情况:
- 开发先进的热保护系统 (TPS) 对高温应用至关重要.
- 复合材料为TPS设计提供可调节的特性.
- 3D打印可以实现复杂的几何形状,例如内部空气室,以增强热管理.
研究的目的:
- 评估新型3D打印复合材料TPS配置的热稳定性和消耗性行为.
- 评估内部空气室设计对于热管理的有效性.
- 开发一种初步的耐火性评估方法,用于消灭性TPS.
主要方法:
- 五种复合TPS配置使用阻燃热塑性塑料进行3D打印,带有和没有强化.
- 一个内部的氧乙烯火测试台被用来进行耐火性评估.
- 样品在30s和60s期间暴露在1450°C的火焰中,并测量了背面的温度.
主要成果:
- 内部温度保持在46°C以下,远低于180°C的极限.
- 未加固的PC和PETGFR在60年代暴露后显示了高达36%的质量损失.
- 强化配置的质量损失约为非强化材料的三分之一.
结论:
- 内部空气室概念被验证为TPS中有效的热管理.
- 两种增强复合材料TPS配置显示了未来发展的重大前景.
- 3D打印提供了一种可行的制造途径,用于具有增强热性能的先进废弃TPS.
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