Numerical and experimental analysis in the energy dissipation of additively-manufactured particle dampers based on complex power method

被引:0
|
作者
Honghu Guo
Kazuo Ichikawa
Hiroyuki Sakai
Heng Zhang
Akihiro Takezawa
机构
[1] Waseda University,Department of Applied Mechanics and Aerospace Engineering
[2] Mazda Motor Corporation,Technical Research Center
[3] University of Shanghai for Science and Technology,School of Mechanical Engineering
来源
关键词
Laser powder bed fusion; Integrated particle damper; Complex power method; Discrete element method; Energy dissipation;
D O I
暂无
中图分类号
学科分类号
摘要
An additively manufactured particle damper (AMPD) is a novel particle damper fabricated by deliberately leaving unfused powder inside the structure during the laser powder bed fusion (LPBF) process. It retains the advantages of a conventional particle damper, while yielding unique merits. However, the damping mechanism and performance of AMPD are still unclear owing to insufficient experimental and simulation analyses. This work focused on experimentally and numerically exploring the damping capacity of AMPDs at three different frequencies (200, 350, and 500 Hz) and an acceleration range of 150–300 m/s2. Two AMPDs with different numbers of unit-cells (64 and 27) were manufactured using LPBF with 316 L stainless steel. The complex power method is used to measure the energy dissipation of the AMPD in a straightforward manner. A numerical method based on the discrete element model of a previous study was proposed to predict energy dissipation in the simulation model. The developed numerical method was validated by comparing it with experimental data which showed good agreement. The influence of excitation frequency, excitation amplitude, and cavity size on the damping mechanism and performance of the AMPD was investigated using experimental and simulation methods. The results showed that the AMPDs had the highest damping performance at an excitation frequency of 500 Hz, and the motion mode of the internal particles was affected by the excitation intensity and cavity size, which play an essential role in the damping performance of AMPDs.
引用
收藏
页码:1077 / 1091
页数:14
相关论文
共 50 条
  • [21] Experimental and numerical analysis of energy dissipation in a sloshing absorber
    Cavalagli, Nicola
    Biscarini, Chiara
    Facci, Andrea L.
    Ubertini, Filippo
    Ubertini, Stefano
    JOURNAL OF FLUIDS AND STRUCTURES, 2017, 68 : 466 - 481
  • [22] Experimental-numerical analysis of microstructure-property linkages for additively manufactured materials
    Rassloff, Alexander
    Schulz, Paul
    Kuehne, Robert
    Ambati, Marreddy
    Koch, Ilja
    Zeuner, Andre T.
    Gude, Maik
    Zimmermann, Martina
    Kaestner, Markus
    9TH EDITION OF THE INTERNATIONAL CONFERENCE ON FATIGUE DESIGN, FATIGUE DESIGN 2021, 2022, 38 : 4 - 11
  • [23] Design method of energy dissipation based on mechanical models of displacement-based dampers
    Shang Q.
    Zhang X.
    Chen X.
    Wang T.
    Jianzhu Jiegou Xuebao/Journal of Building Structures, 2022, 43 (07): : 62 - 71
  • [24] A stability-based energy-dissipation design method of viscoelastic dampers
    Zhao, Xuelian
    Zhou, Ying
    Bao, Lianjin
    ENGINEERING STRUCTURES, 2023, 286
  • [25] Experimental study and theoretical analysis on ballast particle crushing based on energy dissipation and release
    Hu, Qihang
    Gao, Rui
    Chen, Jing
    Yuan, Zhiwen
    POWDER TECHNOLOGY, 2024, 439
  • [26] Energy absorption of the additively manufactured novel re-entrant auxetic structure in comparison with honeycomb structure: experimental and numerical analysis
    Nasim, Mohsen Safikhani
    Yaghootian, Amin
    Mosalmani, Reza
    JOURNAL OF THE BRAZILIAN SOCIETY OF MECHANICAL SCIENCES AND ENGINEERING, 2023, 45 (05)
  • [27] Energy absorption of the additively manufactured novel re-entrant auxetic structure in comparison with honeycomb structure: experimental and numerical analysis
    Mohsen Safikhani Nasim
    Amin Yaghootian
    Reza Mosalmani
    Journal of the Brazilian Society of Mechanical Sciences and Engineering, 2023, 45
  • [28] Experimental characterization and numerical analysis of additively manufactured mild steel under monotonic loading conditions
    J. Lizarazu
    L. Göbel
    S. Linne
    S. Kleemann
    T. Lahmer
    Ch. Rößler
    J. Hildebrand
    Progress in Additive Manufacturing, 2020, 5 : 295 - 304
  • [29] Experimental characterization and numerical analysis of additively manufactured mild steel under monotonic loading conditions
    Lizarazu, J.
    Goebel, L.
    Linne, S.
    Kleemann, S.
    Lahmer, T.
    Roessler, Ch.
    Hildebrand, J.
    PROGRESS IN ADDITIVE MANUFACTURING, 2020, 5 (03) : 295 - 304
  • [30] Experimental and numerical characterization of imperfect additively manufactured lattices based on triply periodic minimal surfaces
    Guenther, Fabian
    Pilz, Stefan
    Hirsch, Franz
    Wagner, Markus
    Kaestner, Markus
    Gebert, Annett
    Zimmermann, Martina
    MATERIALS & DESIGN, 2023, 233