Finite Element Analysis of Breaking Force Test of Glass Ampoule on ANSYS Software

DONG Yunfan, ZHANG Bo, WANG Dongwei, XIONG Wei, ZHANG Zhengda

Packaging Engineering ›› 2025, Vol. 46 ›› Issue (19) : 283-290.

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Packaging Engineering ›› 2025, Vol. 46 ›› Issue (19) : 283-290. DOI: 10.19554/j.cnki.1001-3563.2025.19.030
Automatic and Intelligent Technology

Finite Element Analysis of Breaking Force Test of Glass Ampoule on ANSYS Software

  • DONG Yunfan1, ZHANG Bo1, WANG Dongwei1, XIONG Wei1, ZHANG Zhengda2*
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Abstract

The breaking force test of ampoule is an important way to evaluate the quality of glass ampoule. The work aims to apply ANSYS software to investigate the effect of ampoule indentation on the breaking force. Firstly, the key parameters of simulation calculation were determined by comparing the results of the real glass ampoule breaking force test with those of the simulation calculation. Then, ampoule models with different scratch morphologies and positions were simulated and calculated. It was found that when the depth of ampoule notch increased, the breaking force decreased. The greater the sharpness of the top of the ampoule notch, the smaller the breaking force. When the notch position was closer to the perpendicular to the intersection of the upper pressure head and ampoule, the breaking force was smaller. Whereas the notch position was closer to the battle mouth or bottom, the breaking force was greater. In conclusion, glass ampoule manufacturers can utilize finite element analysis to rationally control and design the shape and size of the score, refine production process parameters, and thereby enhance the breakage resistance and overall quality of glass ampoule.

Key words

glass ampoule / ampoule breaking force / ANSYS software / finite element analysis

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DONG Yunfan, ZHANG Bo, WANG Dongwei, XIONG Wei, ZHANG Zhengda. Finite Element Analysis of Breaking Force Test of Glass Ampoule on ANSYS Software[J]. Packaging Engineering. 2025, 46(19): 283-290 https://doi.org/10.19554/j.cnki.1001-3563.2025.19.030

References

[1] 田英良. 医药玻璃[M]. 北京: 化学工业出版社, 2015: 220.
TIAN Y L.Pharmaceutical Glass[M]. Beijing: Chemical Industry Press, 2015: 220.
[2] 于晓慧, 王冬伟, 张博, 等. 点刻痕玻璃安瓿折断力测试标准比较分析[J]. 中国药品标准, 2022, 23(4): 370-375.
YU X H, WANG D W, ZHANG B, et al.Comparison and Analysis of the Breaking Force Test Standards of One-Point-Cut Ampoules[J]. Drug Standards of China, 2022, 23(4): 370-375.
[3] 柳志梅. 易折安瓿为何不易折[J]. 中国医药报, 2009(5): 1-2.
LIU Z M, Why Ampoules not Easy to Break off[J]. China Medical Journal, 2009(5): 1-2.
[4] DAYALEN P, SHAHUL HAMEED E A, VIJAYA THANGARASAN S, et al. Investigation on the Influence of Fiber Loading on the Tensile Behavior of Glass/Jute Hybrid Composites Using ANSYS 17.1[J]. Materials Today: Proceedings, 2022, 68: 1968-1974.
[5] MOHAMMAD SHOHEL S, HOSSAIN RIYAD S, ALL NOMAN A.Study to Analyze the Mechanical Strength of Composite Glass Fiber Laminated with Resin Epoxy, Resin Polyester, and PVC Foam under Tensile Loading Conditions by Numerically Using Finite Element Analysis via Ansys[J]. Materials Today: Proceedings, 2023, 05: 062.
[6] 钱小辉, 冯益, 陈海霞, 等. 大型有机玻璃碗结构多工况有限元分析[J]. 建筑结构, 2022, 52(8): 42-47.
QIAN X H, FENG Y, CHEN H X, et al.Finite Element Analysis of Large Polymethyl Methacrylate Bowl-Shaped Structure under Multi-Load Condition[J]. Building Structure, 2022, 52(8): 42-47.
[7] BOUKAR A, CORN S, SLANGEN P R L, et al. Finite Element Modelling of Low Velocity Impact Test Applied to Biaxial Glass Fiber Reinforced Laminate Composites[J]. International Journal of Impact Engineering, 2022, 165: 104218.
[8] 曹敏娜, 杨国超, 张求慧. 纸木蜂窝板面外静态压缩有限元仿真分析[J]. 包装工程, 2023, 44(9): 199-205.
CAO M N, YANG G C, ZHANG Q H.Finite Element Simulation Analysis on out of Plane Static Compression of Paper-Wood Honeycomb Board[J]. Packaging Engineering, 2023, 44(9): 199-205.
[9] TAN H, ZHANG Y X, LIU Y X, et al.ANSYS Workbench Simulation of Glass Welding by Femtosecond Laser Pulses[J]. Infrared Physics & Technology, 2019, 98: 334-340.
[10] 唐进元, 刘艳平. 直齿面齿轮加载啮合有限元仿真分析[J]. 机械工程学报, 2012, 48(5): 124-131.
TANG J Y, LIU Y P.Loaded Meshing Simulation of Face-Gear Drive with Spur Involute Pinion Based on Finite Element Analysis[J]. Journal of Mechanical Engineering, 2012, 48(5): 124-131.
[11] 李宏, 李璟玮, 陈鹏, 等. 基于有限元分析的真空玻璃传热性能数值模拟研究[J]. 硅酸盐通报, 2022, 41(4): 1148-1156.
LI H, LI J W, CHEN P, et al.Numerical Simulation of Heat Transfer Performance of Vacuum Glazing Based on Finite Element Analysis[J]. Bulletin of the Chinese Ceramic Society, 2022, 41(4): 1148-1156.
[12] 彭子腾, 郝天照, 王瑞, 等. 基于ANSYS瓦楞纸板等效力学性能研究[J]. 包装工程, 2024, 45(21): 192-199.
PENG Z T, HAO T Z, WANG R, et al.Finite Element Analysis of Corrugated Cardboard and Its Simplified Model Based on ANSYS[J]. Packaging Engineering, 2024, 45(21): 192-199.
[13] ZHANG X H, HAO H, MA G W.Laboratory Test and Numerical Simulation of Laminated Glass Window Vulnerability to Debris Impact[J]. International Journal of Impact Engineering, 2013, 55: 49-62.
[14] TEOTIA M, SONI R K.Applications of Finite Element Modelling in Failure Analysis of Laminated Glass Composites: A Review[J]. Engineering Failure Analysis, 2018, 94: 412-437.
[15] LIU G Y, LI F, LI X Y, et al.Flow Field Analysis and Structure Optimization of High-Dose Multi-Hole Needle-Free Jet Injector[J]. Journal of Drug Delivery Science and Technology, 2022, 72: 103422.
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