1. 广西大学机械工程学院,南宁,530004
2. 广西大学省部共建特色金属材料与组合结构全寿命安全国家重点实验室,南宁,530004
3. 广西玉柴机器股份有限公司,玉林,537000
4. 吉利汽车研究院(宁波)有限公司,宁波,315336
5. 东莞理工科技创新研究院,东莞,523808
纸质出版:2025
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周柱坤,覃家塔,祝佳豪,冯诗和,薛晨昊,梁嘉华,李光先. 基于Voronoi的可调控刚度点阵结构优化设计及其力热性能分析[J]. 航空制造技术, 2025, 68(8): 74-84.
周柱坤, 覃家塔, 祝佳豪, et al. Optimized Design and Thermo-Mechanical Performance Analysis of Voronoi-Based Tunable Stiffness Lattice Structures[J]. Aeronautical Manufacturing Technology, 2025, 68(8): 74-84.
周柱坤,覃家塔,祝佳豪,冯诗和,薛晨昊,梁嘉华,李光先. 基于Voronoi的可调控刚度点阵结构优化设计及其力热性能分析[J]. 航空制造技术, 2025, 68(8): 74-84. DOI: 10.16080/j.issn1671-833x.2025.08.074.
周柱坤, 覃家塔, 祝佳豪, et al. Optimized Design and Thermo-Mechanical Performance Analysis of Voronoi-Based Tunable Stiffness Lattice Structures[J]. Aeronautical Manufacturing Technology, 2025, 68(8): 74-84. DOI: 10.16080/j.issn1671-833x.2025.08.074.
Gyroid三周期极小表面结构(TPMS)在刚度、吸能、散热和传热等方面表现优异,在缓冲与减振结构等工程领域有较大的应用潜力。然而,在对TPMS结构的刚度进行调整时往往会影响结构的吸能性能和稳定性。本文提出一种衍生式优化设计方法,通过Voronoi多孔结构设计和Gyroid参数化方法,可以实现点阵结构刚度调控并保持能量吸收和散热优势。利用选择性激光烧结(SLS)技术制备基于Delaunay 单元和Voronoi单元的点阵结构,并通过压缩试验分析点阵结构随种子点变化的外观形貌和力学特性。此外,对等值面支柱点阵结构(ISLS
V
)和片状ISLS
V
(Sheet-ISLS
V
)两种基于Voronoi优化的点阵结构的散热性能和结构稳定性进行了分析。结果表明,点阵结构的刚度可通过种子点数目和分布进行调控。得益于Voronoi单元点阵结构的表面光滑特性,Sheet-ISLS
V
在1400种子点下的强度和吸能能力优于Gyroid 结构,能量吸收率较Gyroid结构增加6.3%。本研究Sheet-ISLS
V
结构的优化设计可为点阵结构优化及其工程应用提供参考。
Gyroid type triply periodic minimal surface (TPMS) structures exhibit outstanding performance in stiffness
energy absorption
heat dissipation
and thermal conductivity
making them highly promising for engineering applications such as cushioning and damping systems. However
adjusting the stiffness of TPMS structures often negatively impacts their energy absorption capacity and structural stability. This study proposes a derivative optimization design method that combines Voronoi-based porous structure design with a para
meterized Gyroid approach
enabling tunable stiffness control of lattice structures while maintaining advantages in energy absorption and heat dissipation. Lattice structures based on Delaunay and Voronoi cells were fabricated using selective laser sintering (SLS)
the effects of seed point distribution changes on the structural morphology and mechanical properties were also analyzed by compression experiments. Additionally
the heat dissipation performance and structural stability of two Voronoi-optimized lattice structures— isosurface columnar lattice structures (ISLS
V
) and sheet-like ISLS
V
(Sheet-ISLS
V
) were investigated. The results demonstrate that the stiffness of the lattice structures can be adjusted by modifying the number and distribution of seed points. Benefiting from the smooth surface characteristics of Voronoi-cell lattices
the Sheet-ISLS
V
structure at 1400 seed points exhibited superior strength and energy absorption capacity compared to the Gyroid structure
with a 6.3% increase in energy absorption rate. The optimized design of the Sheet-ISLS
V
structure provides valuable insights for TPMS structural optimization and its engineering applications.
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