Guidelines for element size and type selection for the finite element simulation of laser-induced elastic waves in thermoelastic laser ultrasonic testing

被引:1
|
作者
Zarei, Alireza [1 ]
Pilla, Srikanth [1 ,2 ,3 ,4 ]
机构
[1] Univ Delaware, Ctr Composite Mat, Newark, DE 19716 USA
[2] Univ Delaware, Dept Mech Engn, Newark, DE 19716 USA
[3] Univ Delaware, Dept Mat Sci & Engn, Newark, DE 19716 USA
[4] Univ Delaware, Dept Chem & Biomol Engn, Newark, DE 19716 USA
关键词
Finite element analysis; Laser ultrasonic testing; Laser -induced elastic waves; Mesh study; Element types; Wave propagation; GENERATED ULTRASOUND; NUMERICAL-SIMULATION;
D O I
10.1016/j.jsv.2024.118609
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
This paper explores spatial discretization within finite element simulations of laser-induced elastic waves within the context of Laser Ultrasonic Testing (LUT). Motivated by discrepancies and oscillations detected in temperature and displacement results in the literature, we traced these issues back to spatial discretization challenges. These challenges originate from rapid localized heating and the generation and propagation of high-frequency waves across a relatively large domain. This study effectively addresses and rectifies these inaccuracies, offering guidance for selecting the appropriate element size and type. We examined two element types: four-node quadrilaterals (Q4) employing first-order Lagrange and nine-node quadrilaterals (Q9) using second-order Lagrange shape functions. Our analysis encompasses mesh refinement strategies, exploration of time and frequency domain plots for temperature and displacement, as well as an evaluation of different pulse durations. Our findings demonstrate that Q9 elements attain accuracy with grids four times larger than Q4 elements for temperature and wave propagation analyses. Furthermore, we observe that lower frequency waves exhibit reduced sensitivity to element size, emphasizing the relationship between element size and elastic wave frequency. Pulse durations in the 6 to 30 ns range affect the required element size in the heat-affected zone but exert minimal influence on wave frequency and spatial discretization in the remainder of the domain. Finally, we present a new formula for element size selection based on the dominant frequency. This study provides a comprehensive guideline for selecting element size and type, enabling the attainment of accurate results while effectively managing computational costs.
引用
收藏
页数:14
相关论文
共 50 条
  • [21] Thermoelastic modeling of laser-induced stress waves in plates
    Suh, CS
    Burger, CP
    JOURNAL OF THERMAL STRESSES, 1998, 21 (08) : 829 - 847
  • [22] Laser-induced thermoelastic excitation of interface acoustic waves
    Desmet, C
    Gusev, V
    Lauriks, W
    Glorieux, C
    Thoen, J
    9TH INTERNATIONAL CONFERENCE ON PHOTOACOUSTIC AND PHOTOTHERMAL PHENOMENA, CONFERENCE DIGEST, 1996, : 119 - 120
  • [23] Finite element analysis of blister formation in laser-induced forward transfer
    Nicholas T. Kattamis
    Matthew S. Brown
    Craig B. Arnold
    Journal of Materials Research, 2011, 26 : 2438 - 2449
  • [24] Finite element analysis of blister formation in laser-induced forward transfer
    Kattamis, Nicholas T.
    Brown, Matthew S.
    Arnold, Craig B.
    JOURNAL OF MATERIALS RESEARCH, 2011, 26 (18) : 2438 - 2449
  • [25] Simulation of laser-generated longitudinal and shear ultrasonic waves in a diamond anvil cell by the finite element method
    Feng, Wen
    Yang, Dexing
    Zhu, Xiangchao
    Guo, Yuning
    Liao, Wei
    JOURNAL OF APPLIED PHYSICS, 2012, 111 (01)
  • [26] Simulation of laser-generated longitudinal and shear ultrasonic waves in a diamond anvil cell by the finite element method
    Yang, D. (dxyang@nwpu.edu.cn), 1600, American Institute of Physics Inc. (111):
  • [27] Finite element simulation of laser-generated circumferential waves in hollow cylinder
    Zhao Yan
    Shen Zhong-Hua
    Lu Jian
    Ni Xiao-Wu
    ACTA PHYSICA SINICA, 2007, 56 (01) : 321 - 326
  • [28] Finite element simulation of laser spallation technique
    Zhou, M
    Kan, JP
    Cai, L
    Zhang, YK
    Zhou, JZ
    Shen, ZH
    Zhang, XR
    Zhang, SY
    LASERS IN MATERIAL PROCESSING AND MANUFACTURING, 2002, 4915 : 326 - 331
  • [29] Finite element simulation of laser material welding
    Ahmanache, A
    Amara, EH
    ElKhelfaoui, Y
    LASERS IN ENGINEERING, 1996, 5 (03) : 217 - 226
  • [30] Finite Element Simulation of Laser-Micromachining
    Shalahim, N. S. M.
    Mon, T. T.
    Ismail, M. F.
    Rashid, M. F. F.
    Rejab, M. R. M.
    INTERNATIONAL MULTICONFERENCE OF ENGINEERS AND COMPUTER SCIENTISTS (IMECS 2010), VOLS I-III, 2010, : 2221 - +