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TC6 钛合金的率相关力学模型研究

张海洋 李鑫 蔚夺魁 王相平 任磊 张超

张海洋, 李鑫, 蔚夺魁, 等. TC6 钛合金的率相关力学模型研究[J]. 航空动力学报, 2025, 40(12):20240072 doi: 10.13224/j.cnki.jasp.20240072
引用本文: 张海洋, 李鑫, 蔚夺魁, 等. TC6 钛合金的率相关力学模型研究[J]. 航空动力学报, 2025, 40(12):20240072 doi: 10.13224/j.cnki.jasp.20240072
ZHANG Haiyang, LI Xin, YU Duokui, et al. Investigation on strain rate-dependent mechanical model for TC6 titanium alloy[J]. Journal of Aerospace Power, 2025, 40(12):20240072 doi: 10.13224/j.cnki.jasp.20240072
Citation: ZHANG Haiyang, LI Xin, YU Duokui, et al. Investigation on strain rate-dependent mechanical model for TC6 titanium alloy[J]. Journal of Aerospace Power, 2025, 40(12):20240072 doi: 10.13224/j.cnki.jasp.20240072

TC6 钛合金的率相关力学模型研究

doi: 10.13224/j.cnki.jasp.20240072
详细信息
    作者简介:

    张海洋(1988-),男,高级工程师,博士,主要从事航空发动机结构强度研究

    通讯作者:

    张超(1987-),男,教授,博士,主要从事固体力学、复合材料研究。E-mail:chaozhang@nwpu.edu.cn

  • 中图分类号: V232

Investigation on strain rate-dependent mechanical model for TC6 titanium alloy

  • 摘要:

    为研究TC6钛合金材料的力学性能,使用电子万能试验机、高速拉伸试验机、分离式Hopkinson拉杆(SHTB)和压杆(SHPB)试验装置,开展了TC6钛合金材料的准静态及动态试验,获得了TC6钛合金材料不同应变率下真实应力-应变曲线及失效应变。采用线弹性本构模型描述材料的弹性力学行为,采用塑性应力-应变曲线表征材料的塑性力学行为,采用韧性断裂和剪切失效的竞争模式来表征材料的失效力学行为。基于试验结果,通过外推预测方法和数值仿真手段,校正了颈缩点后的应力-应变曲线、韧性断裂参数以及剪切失效参数。开展了低速落锤冲击试验和高速鸟撞叶片试验,进行了基于Pam Crash软件的试验状态仿真,通过试验与仿真结果对比,落锤试验中试验件裂纹长度误差为4.2%,高速鸟撞叶片试验中应变峰值最大误差为14.9%,验证了材料力学模型及其参数的有效性。

     

  • 图 1  力学性能测试试样形状及尺寸(单位:mm)

    Figure 1.  Shape and dimension of test specimens for mechanical properties (unit:mm)

    图 2  力学性能测试试样

    Figure 2.  Test specimens for mechanical properties

    图 3  INSTRON万能拉伸试验机

    Figure 3.  INSTRON universal tensile testing machine

    图 4  TC6钛合金真实应力-真实应变曲线

    Figure 4.  True stress-true strain curves of TC6 titanium alloy

    图 5  准静态拉伸加载下的断裂拉伸试样

    Figure 5.  Fractured tensile specimen under quasi-static tensile loading

    图 6  动态试验测试设备

    Figure 6.  Dynamic mechanical testing equipment

    图 7  不同应变率下的断裂加载试样

    Figure 7.  Fracture tensile specimens at the different strain rates

    图 8  颈缩前应力-应变曲线确定过程示意图

    Figure 8.  Schematic diagram of the determination process for Pre-necking stress-strain curves

    图 9  所有加载工况的外推曲线簇

    Figure 9.  Extrapolation curves cluster for all loading conditions

    图 10  韧性断裂和剪切失效的图示

    Figure 10.  Illustration of ductile fracture and shear failure

    图 11  建立的准静态加载案例的数值模型

    Figure 11.  Established numerical model of the quasi-static loading case

    图 12  准静态加载工况的数值仿真与试验结果对比

    Figure 12.  Comparison between numerical simulation and test results under quasi-static loading conditions

    图 13  高应变率加载工况的有限元模型

    Figure 13.  Finite element model of the high strain rates loading cases

    图 14  TC6钛合金不同应变率下的塑性变形段应力-应变曲线

    Figure 14.  Stress-strain curves of TC6 titanium alloy during plastic deformation segment at different strain rates

    图 15  落锤低速冲击试验

    Figure 15.  Drop hammer low-speed impact test

    图 16  落锤低速冲击试验的冲击过程

    Figure 16.  Impact process of the drop hammer low-speed impact test

    图 17  TC6材料的落锤低速冲击试验的数值模型

    Figure 17.  Numerical model for the drop hammer low-speed impact test of TC6 material

    图 18  裂纹长度对比

    Figure 18.  Comparison of crack lengths

    图 19  鸟体高速撞击叶片试验的测试装置

    Figure 19.  Test equipment for high-speed bird impact on blades

    图 20  试验所用叶片实物及明胶鸟体实物

    Figure 20.  Blade and bird bullet used in test

    图 21  试验中鸟体撞击叶片过程

    Figure 21.  Process of bird impact on blades during testing

    图 22  叶片的损伤形貌

    Figure 22.  Damage morphology of the blade

    图 23  鸟体撞击叶片的数值模型

    Figure 23.  Numerical model of bird impact on blades

    图 24  数值仿真中鸟体撞击叶片过程

    Figure 24.  Process of bird impact on blades in numerical simulation

    表  1  TC6材料的材料参数

    Table  1.   Material parameters of TC6 material

    密度/(g/cm3 弹性模量/GPa 泊松比 剪切参数ks
    4.51 109.8 0.3 0.139
    下载: 导出CSV

    表  2  TC6材料的失效参数汇总

    Table  2.   Summary of failure parameters for TC6 material

    试验工况 拉伸失效参数gd 剪切失效参数gs
    准静态 0.35 0.25
    10 s−1 0.55 0.5
    100 s−1 0.5 0.5
    500 s−1 0.22 0.22
    1000 s−1 0.7 0.7
    2000 s−1 0.58 0.58
    5000 s−1 0.62 0.62
    10000 s−1 0.6 0.6
    下载: 导出CSV

    表  3  TC6材料的落锤低速冲击试验的数值模型中的接触设置

    Table  3.   Contact settings used in the numerical model for the drop hammer low-speed impact test of TC6 material

    序号接触类型主接触面从接触面
    144号接触支撑板夹具
    244号接触夹具试样
    344号接触夹具盖板试样
    444号接触螺栓夹具
    544号接触螺栓试样
    633号接触摆锤试样
    744号接触导杆摆锤
    下载: 导出CSV

    表  4  测量点位置

    Table  4.   Location of measurement point

    编号 名称 位置
    1 冲击中心 叶片顶端靠近前缘
    2 应变片1、2 距顶部240 mm,距前缘25 mm,
    1纵向排布,2横向排布
    3 应变片3、4 距叶根80 mm,距前缘25 mm,
    3纵向排布,4横向排布
    4 应变片5、6 距叶根95 mm,距后缘25 mm,
    5纵向排布,6横向排布
    5 应变片7、8 距叶根20 mm,距前缘100 mm,
    7纵向排布,8横向排布
    下载: 导出CSV

    表  5  鸟撞试验测试结果

    Table  5.   Results of bird impact test

    试验件 弹体质量/g 冲击速度/(m/s) 峰值应变/με
    毛坯叶片 1522.9 208 1:45651
    2:11525
    3:12421
    4:9344
    5:10372
    6:14850
    7:17128
    8:18183
    下载: 导出CSV

    表  6  鸟体材料参数

    Table  6.   Material parameter of the bird

    密度/(g/cm3 体积系数 γ
    9.5 0.128 7.98
    下载: 导出CSV

    表  7  试验与数值仿真结果对比

    Table  7.   Comparison between test and numerical simulation

    项目 试验应变片峰值 模拟单元应变峰值 误差/%
    应变片1 45651 39261 −13.9
    应变片2 11525 10488 −8.9
    应变片3 12421 10966 −11.7
    应变片4 9344 10364 10.9
    应变片5 10372 9108 −12.2
    应变片6 14850 13959 −6.4
    应变片7 17128 19763 14.9
    应变片8 18183 17984 −1.1
    下载: 导出CSV
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  • 收稿日期:  2024-02-01
  • 网络出版日期:  2025-09-24

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