槽式光聚合增材制造工艺建模:一种以原位和非原位表征数据为依据的热化学耦合方法

IF 4.2 Q2 ENGINEERING, MANUFACTURING Additive manufacturing letters Pub Date : 2024-01-13 DOI:10.1016/j.addlet.2024.100193
Heyang Zhang, Yue Zhang, Xiayun Zhao
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引用次数: 0

摘要

大桶光聚合(VPP)是应用最广泛的增材制造方法之一。VPP 工艺温度和材料固化反应相互影响,对最终产品质量起着至关重要的决定作用。VPP 工艺控制需要了解随时间变化的工艺温度和转化率(DoC),但由于缺乏有效的操作表征技术而难以实现。这项工作报告了一种新方法,通过解决基于原位可观测温度测量的反向热传导问题(IHCP)来创建 VPP 过程的热化学模型,从而估算出与 DoC 有关的化学反应诱导热源。原位光电差示扫描量热法(Photo-DSC)表征用于初始化化学反应模型参数,以便计算 DoC。具体来说,使用原位红外热像仪测量大桶基底温度,并将其作为输入来求解 IHCP,以估算固化部分内部发热成分的放热率。总之,新开发的 VPP 建模框架将通过原位热监测优化的 IHCP 与通过光 DSC 表征改进的化学反应发热和传导模型相结合。通过与不同曝光时间的原位温度测量和印刷品的原位光谱测量进行比较,对模型的温度和 DoC 预测进行了实验验证。
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Vat photopolymerization additive manufacturing process modeling: a thermal-chemical coupling approach informed by in-situ and ex-situ characterization data

Vat photopolymerization (VPP) is one of the most widely used additive manufacturing methods. The VPP process temperature and material curing reaction interplay with each other to critically determine the final product quality. Insights about the time-varying process temperature and degree of conversion (DoC) is desired for VPP process control but difficult to attain due to lacking effective operando characterization technologies. This work reports a new method to create a thermal-chemical model of the VPP process by solving an inverse heat conduction problem (IHCP) based on in-situ observable temperature measurement to estimate the chemistry reaction-induced heat source that is a function of DoC. Ex-situ photo differential scanning calorimetry (Photo-DSC) characterization is used to initialize the chemistry reaction model parameters so that DoC can be calculated. Specifically, vat substrate temperature is measured using an in-situ infrared thermal camera and used as input to solve an IHCP for estimating exothermic heat generation rate for the internal heat generation component at the curing part. Overall, the newly developed VPP modeling framework combines an IHCP that is optimized by in-situ thermal monitoring with a chemical reaction heat generation and conduction model that is educated by Photo-DSC characterization. The model predictions of temperature and DoC are experimentally validated by comparing against in-situ temperature measurement and ex-situ spectroscopy measurement of prints at different exposure times.

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来源期刊
Additive manufacturing letters
Additive manufacturing letters Materials Science (General), Industrial and Manufacturing Engineering, Mechanics of Materials
CiteScore
3.70
自引率
0.00%
发文量
0
审稿时长
37 days
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