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Computational Fluid Dynamics Modeling and in situ Physics-Based Monitoring of Aerosol Jet Printing toward Functional Assurance of Additively-Manufactured, Flexible and Hybrid Electronics

机译:计算流体动力学建模和基于原位物理的气溶胶喷射印刷监控,以确保增材制造,柔性和混合电子产品的功能

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摘要

Aerosol jet printing (AJP)---a direct-write, additive manufacturing technique---has emerged as the process of choice particularly for the fabrication of flexible and hybrid electronics. AJP has paved the way for high-resolution device fabrication with high placement accuracy, edge definition, and adhesion. In addition, AJP accommodates a broad range of ink viscosity, and allows for printing on non-planer surfaces. Despite the unique advantages and host of strategic applications, AJP is a highly unstable and complex process, prone to gradual drifts in machine behavior and deposited material. Hence, real-time monitoring and control of AJP process is a burgeoning need. In pursuit of this goal, the objectives of the work are, as follows: (i) In situ image acquisition from the traces/lines of printed electronic devices right after deposition. To realize this objective, the AJP experimental setup was instrumented with a high-resolution charge-coupled device (CCD) camera, mounted on a variable-magnification lens (in addition to the standard imaging system, already installed on the AJ printer). (ii) In situ image processing and quantification of the trace morphology. In this regard, several customized image processing algorithms were devised to quantify/extract various aspects of the trace morphology from online images. In addition, based on the concept of shape-from-shading (SfS), several other algorithms were introduced, allowing for not only reconstruction of the 3D profile of the AJ-printed electronic traces, but also quantification of 3D morphology traits, such as thickness, cross-sectional area, and surface roughness, among others. (iii) Development of a supervised multiple-input, single-output (MISO) machine learning model---based on sparse representation for classification (SRC)---with the aim to estimate the device functional properties (e.g., resistance) in near real-time with an accuracy of ≥ 90%. (iv) Forwarding a computational fluid dynamics (CFD) model to explain the underlying aerodynamic phenomena behind aerosol transport and deposition in AJP process, observed experimentally.;Overall, this doctoral dissertation paves the way for: (i) implementation of physics-based real-time monitoring and control of AJP process toward conformal material deposition and device fabrication; and (ii) optimal design of direct-write components, such as nozzles, deposition heads, virtual impactors, atomizers, etc.
机译:气溶胶喷射印刷(AJP)-一种直接写,增材制造技术-已作为一种选择工艺出现,特别是在制造柔性和混合电子产品时。 AJP为高分辨率设备制造,高定位精度,边缘清晰度和附着力铺平了道路。此外,AJP适应广泛的油墨粘度,并允许在非平面表面上进行打印。尽管AJP具有独特的优势和大量的战略应用,但它是一个高度不稳定和复杂的过程,易于在机器行为和沉积材料中逐渐发生漂移。因此,对AJP过程的实时监视和控制是一个新兴的需求。为了实现该目标,工作的目标如下:(i)沉积后立即从印刷电子设备的迹线/线路中就地获取图像。为实现此目标,AJP实验装置配备了高分辨率电荷耦合器件(CCD)相机,该相机安装在可变放大率镜头上(除标准成像系统外,已安装在AJ打印机上)。 (ii)原位图像处理和痕量形态的量化。在这方面,设计了几种定制的图像处理算法,以从在线图像中量化/提取痕迹形态的各个方面。此外,基于“从阴影变形”(SfS)的概念,引入了其他几种算法,不仅允许重建AJ打印的电子迹线的3D轮廓,而且还可以量化3D形态特征,例如厚度,横截面积和表面粗糙度等。 (iii)开发一种有监督的多输入单输出(MISO)机器学习模型-基于稀疏分类表示(SRC)-目的在于估计设备的功能特性(例如电阻)接近实时,精度≥90%。 (iv)通过实验观察到转发计算流体动力学(CFD)模型以解释AJP过程中气溶胶传输和沉积背后的潜在空气动力学现象;总体而言,该博士论文为以下方面铺平了道路:(i)实现基于物理的真实对保形材料沉积和器件制造的AJP工艺进行实时监视和控制; (ii)直写组件的最佳设计,例如喷嘴,沉积头,虚拟撞击器,雾化器等。

著录项

  • 作者

    Salary, Roozbeh Ross.;

  • 作者单位

    State University of New York at Binghamton.;

  • 授予单位 State University of New York at Binghamton.;
  • 学科 Mechanical engineering.;Materials science.;Electrical engineering.
  • 学位 Ph.D.
  • 年度 2018
  • 页码 226 p.
  • 总页数 226
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 水产、渔业;
  • 关键词

  • 入库时间 2022-08-17 11:53:07

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