Shock Mitigation in Open-Celled TiNi Foams

被引:2
|
作者
Jardine A.P. [1 ]
机构
[1] Shape Change Technologies LLC, Thousand Oaks, 91360, CA
关键词
Mechanical behavior; NiTi materials; Porous metals; Self Propagating High Temperature Synthesis; Shock mitigation; Superelasticity; TiNi synthesis;
D O I
10.1007/s40830-018-0171-2
中图分类号
学科分类号
摘要
High-energy shock events generated by impacts are effectively mitigated by Nitinol materials. Initial evidence of this capability was suggested by the dramatically superior cavitation-erosion performance of Nitinol coatings made by plasma spray processes, over steels and brasses. A fast acting hysteretic stress–strain response mechanism was proposed to explain this result, transforming the shock energy into heat. Extending this work to bulk TiNi, dynamic load characterization using Split Rod Hopkinson Bar techniques on solid porous TiNi confirmed that the mechanical response to high strain rates below 4200 s−1 were indeed hysteretic. This paper reports on dynamical load characterization on TiNi foams made by Self-Propagating High-Temperature Synthesis (SHS) using Split Rod Hopkinson Bar and gas-gun impact characterization to compare these foams to alternative materials. This work verified that SHS-derived TiNi foams were indeed hysteretic at strain rates from 180 to 2300 s−1. In addition, Shock Spectrum Analysis demonstrated that TiNi foams were very effective in mitigating the shock spectrum range below 5 kHz, and that increasing porosity increased the amount of shock attenuation in that spectral range. Finally under impact loading, 55% porous TiNi foams were a factor of 7 superior to steel and a factor of 4 better than Al 6061 or Cu in mitigating peak g-loads and this attenuation improved with bilayer structures of 57 and 73% porous TiNi foam article. © 2018, ASM International.
引用
收藏
页码:294 / 308
页数:14
相关论文
共 50 条
  • [41] Extruded open-celled LDPE-based foams using non-homogeneous melt structure
    Park, CB
    Padareva, V
    Lee, PC
    Naguib, HE
    JOURNAL OF POLYMER ENGINEERING, 2005, 25 (03) : 239 - 260
  • [42] Silane functionalized open-celled ceramic foams as support structure in metal organic framework composite materials
    Betke, Ulf
    Proemmel, Steven
    Rannabauer, Stefan
    Lieb, Alexandra
    Scheffler, Michael
    Scheffler, Franziska
    MICROPOROUS AND MESOPOROUS MATERIALS, 2017, 239 : 209 - 220
  • [43] Acoustic absorption behaviour of an open-celled aluminium foam
    Han, FS
    Seiffert, G
    Zhao, YY
    Gibbs, B
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2003, 36 (03) : 294 - 302
  • [44] A plasticity model for cellular materials with open-celled structure
    Zhang, TG
    Lee, J
    INTERNATIONAL JOURNAL OF PLASTICITY, 2003, 19 (06) : 749 - 770
  • [45] Simulation of the densification of real open-celled foam microstructures
    Brydon, AD
    Bardenhagen, SG
    Miller, EA
    Seidler, GT
    JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2005, 53 (12) : 2638 - 2660
  • [46] PROPERTIES AND PROCESSING CHARACTERISTICS OF OPEN-CELLED FOAMS PRODUCED BY LEACHING NACL FROM HIGH-DENSITY POLYETHYLENE
    BIGG, DM
    POLYMER ENGINEERING AND SCIENCE, 1981, 21 (02): : 76 - 79
  • [47] A study of the friction and thermal properties of epoxy composites synergistically reinforced by open-celled Cu foams and carboxylated CNTs
    Li, Luqiang
    Jiang, Hongqu
    Luo, Yuan
    Wu, Haijun
    Zhao, Qi
    Yang, Xingxia
    Li, Caiju
    Yi, Jianhong
    Liu, Yichun
    DIAMOND AND RELATED MATERIALS, 2025, 151
  • [48] Mechanics modeling of the compressive stiffness and strength of open-celled aluminum foams (vol 19, pg 863, 2004)
    Zhou, J
    Soboyejo, WO
    MATERIALS AND MANUFACTURING PROCESSES, 2005, 20 (01) : 129 - 129
  • [49] The effect nucleating agent on Open-Celled Morphology of Polymer in Vibration
    Li Bing
    Huang Baoshan
    Nan Qiao Zhou
    Qin Xuemei
    APPLIED MECHANICS, MATERIALS AND MANUFACTURING IV, 2014, 670-671 : 309 - 312
  • [50] Pool boiling heat transfer of open-celled metal foams with V-shaped grooves for high pore densities
    Xu, Z. G.
    Zhao, C. Y.
    EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2014, 52 : 128 - 138