IF 3.5 2区 工程技术 Q2 OPTICS
Tianxiang Ling , Md. Moinul Hossain , Guoqing Chen , Qi Qi , Biao Zhang , Chuanlong Xu
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引用次数: 0

摘要

烟尘体积分数重建的层析反问题的非假设性质往往会产生伪影,并降低重建精度,尤其是在观察角度有限的情况下。本研究提出了一种基于体积掩蔽的三维 Tikhonov 正则化方法,用于重建纯吸收火焰中的烟尘体积分数。三维 Tikhonov 正则化方法通过对烟尘体积分数的不现实变化进行惩罚来解决拟合不良的问题,从而增强了重建的鲁棒性。此外,通过光场光线跟踪得出的体积掩蔽可以精确定义火焰边界,提高烟尘体积分数反演精度,从而完善重建。对双峰不对称火焰进行了数值模拟,以分析不同观察角度和体积掩蔽策略的影响。同时还进行了实验研究,以重建不同燃烧操作条件下的烟尘体积分数。数值模拟和实验研究都表明,所提出的方法不仅适用于有限的观察角度,还能减少重建伪影,降低计算成本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Volumetric reconstruction of soot volume fraction through 3-D masked Tikhonov regularization
The ill-posed nature of the tomographic inverse problem for soot volume fraction reconstruction often creates artifacts and provides lower reconstruction accuracy, particularly when viewing angles are limited. In this study, a volumetric masked-based 3-D Tikhonov regularization method is proposed to reconstruct soot volume fraction in a purely absorbing flame. The 3-D Tikhonov regularization method addresses the ill-posedness by penalizing unrealistic variations in the soot volume fraction, thus enhancing the robustness of the reconstruction. Additionally, volumetric masking derived from light field ray-tracing refines the reconstruction by accurately defining the flame's boundaries and improving the soot volume fraction inversion accuracy. Numerical simulations were conducted on a bimodal asymmetric flame to analyze the effects of varying viewing angles and volumetric masking strategies. Experimental studies were also performed to reconstruct soot volume fraction under different combustion operating conditions. Both numerical simulations and experimental studies demonstrate that the proposed method not only works on a limited number of viewing angles but also mitigates the reconstruction artifacts and decreases the computational costs.
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来源期刊
Optics and Lasers in Engineering
Optics and Lasers in Engineering 工程技术-光学
CiteScore
8.90
自引率
8.70%
发文量
384
审稿时长
42 days
期刊介绍: Optics and Lasers in Engineering aims at providing an international forum for the interchange of information on the development of optical techniques and laser technology in engineering. Emphasis is placed on contributions targeted at the practical use of methods and devices, the development and enhancement of solutions and new theoretical concepts for experimental methods. Optics and Lasers in Engineering reflects the main areas in which optical methods are being used and developed for an engineering environment. Manuscripts should offer clear evidence of novelty and significance. Papers focusing on parameter optimization or computational issues are not suitable. Similarly, papers focussed on an application rather than the optical method fall outside the journal''s scope. The scope of the journal is defined to include the following: -Optical Metrology- Optical Methods for 3D visualization and virtual engineering- Optical Techniques for Microsystems- Imaging, Microscopy and Adaptive Optics- Computational Imaging- Laser methods in manufacturing- Integrated optical and photonic sensors- Optics and Photonics in Life Science- Hyperspectral and spectroscopic methods- Infrared and Terahertz techniques
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