西安交通大学热流科学与工程教育部重点实验室,西安,710049
: 2024-01-22。作者简介: 罗纪旺(1997—),男,博士生
陈黎(通信作者),男,教授,博士生导师。基金项目: 国家自然科学基金资助项目(52376074)。
网络首发:2024-10-10,
纸质出版:2024
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罗纪旺, 陈黎, 郑鑫建, 等. 面向金属泡沫散热器设计的自然对流拓扑优化[J]. 西安交通大学学报, 2024,58(10):72-82.
LUO Jiwang, CHEN Li, ZHENG Xinjian, et al. Design of Metal Foam Heat Sinks Guided by the Topology Optimization of Natural Convection[J]. 2024, 58(10): 72-82.
罗纪旺, 陈黎, 郑鑫建, 等. 面向金属泡沫散热器设计的自然对流拓扑优化[J]. 西安交通大学学报, 2024,58(10):72-82. DOI: 10.7652/xjtuxb202410007.
LUO Jiwang, CHEN Li, ZHENG Xinjian, et al. Design of Metal Foam Heat Sinks Guided by the Topology Optimization of Natural Convection[J]. 2024, 58(10): 72-82. DOI: 10.7652/xjtuxb202410007.
针对传统方块型金属泡沫散热器散热效率不高
难以满足高功率电子器件散热需求的问题
发展了基于格子Boltzmann和水平集方法的三维拓扑优化方法。首先
采用格子Boltzmann方法求解多孔介质内的流动和传热过程; 然后
采用伴随格子Boltzmann方法计算梯度; 最后
根据反应-扩散方程更新水平集函数。通过对底部放置发热元件方腔的自然对流过程开展拓扑优化
得到特征格拉晓夫数为2.4×10
2
~1.2×10
5
的4种优化散热器结构
定量评估了散热器的强化换热性能并分析相关机理。研究结果表明:随着格拉晓夫数的增大
散热主导机制由热传导转变为热对流
优化结构由伸展的树枝状向收缩的花朵状结构转变
以留出更多空间使得流动涡旋充分发展; 与传统的金属泡沫方块结构和开槽的金属泡沫块结构相比
所提优化结构表现出优异的散热性能
其分支结构和中空结构能够优化方腔内的流动
从而将散热效率提升了29.7%以上
表明了所提拓扑优化方法的有效性。研究工作可为新型金属泡沫散热器的设计提供理论指导。
To overcome the challenges of low heat dissipation efficiency in traditional block-type metal foam heat sinks and their inability to meet the cooling requirements of high-power electronic devices
a three-dimensional topology optimization method based on the lattice Boltzmann and level set methods is developed. Firstly
the lattice Boltzmann method is employed to simulate the flow and heat transfer processes within the porous medium. Then
the adjoint lattice Boltzmann method is used to calculate the gradients. Finally
the level
set function is updated based on the reaction-diffusion equation. By conducting topology optimization of the natural convection process in a square cavity with heat-generating elements at the bottom
four optimized heat sink structures with characteristic Grashof numbers ranging from 2.4×10
2
to 1.2×10
5
are obtained. The enhanced heat transfer performance of the heat sinks is quantitatively evaluated
and the underlying mechanisms are analyzed. The research findings indicate that as the Grashof number increases
the dominant heat transfer mechanism shifts from conduction to convection. The optimized structures transform from extended branching patterns to compact flower-like structures
creating additional space for the development of more flow vortices. Compared with traditional block-shaped metal foam structures and slotted metal foam block structures
the proposed optimized structures demonstrate superior heat dissipation performance. The branch structures and hollow structures optimize the flow within the cavity
resulting in an improvement in heat dissipation efficiency of over 29.7%. These results highlight the effectiveness of the proposed topology optimization method and provide theoretical guidance for the design of novel metal foam heat sinks.
ZHAO Changying. Review on thermal transport in high porosity cellular metal foams with open cells [J]. International Journal of Heat and Mass Transfer, 2012, 55(13/14): 3618-3632.
MAHDI H, LOPEZ P J R, FUENTES A, et al. Thermal performance of aluminium-foam CPU heat exchangers [J]. International Journal of Energy Research, 2006, 30(11): 851-860.
朱继宏, 周涵, 王创, 等. 面向增材制造的拓扑优化技术发展现状与未来 [J]. 航空制造技术, 2020, 63(10): 24-38.
ZHU Jihong, ZHOU Han, WANG Chuang, et al. Status and future of topology optimization for additive manufacturing [J]. Aeronautical Manufacturing Technology, 2020, 63(10): 24-38.
吴璇, 陈群. 基于不动点迭代的自然对流热沉拓扑优化 [J]. 工程热物理学报, 2020, 41(9): 2241-2246.
WU Xuan, CHEN Qun. Topology optimization of natural convection heat sink based on fixed point method [J]. Journal of Engineering Thermophysics, 2020, 41(9): 2241-2246.
吴璇, 陈群. 基于伪密度的对流换热热沉结构拓扑优化 [J]. 工程热物理学报, 2022, 43(3): 763-769.
WU Xuan, CHEN Qun. Topology optimization of convection heat sink based on pseudo-density method [J]. Journal of Engineering Thermophysics, 2022, 43(3): 763-769.
董馨, 刘小民. 微流控芯片通道结构的拓扑优化研究 [J]. 西安交通大学学报, 2018, 52(6): 143-149.
DONG Xin, LIU Xiaomin. Topology optimization of the channel structure in microfluidic chips [J]. Journal of Xi'an Jiaotong University, 2018, 52(6): 143-149.
董馨, 刘小民. 流体拓扑优化的参数选择与分析 [J]. 西安交通大学学报, 2018, 52(8): 132-138.
DONG Xin, LIU Xiaomin. Selection and analysis of parameters for fluid topology optimization [J]. Journal of Xi'an Jiaotong University, 2018, 52(8): 132-138.
BORRVALL T, PETERSSON J. Topology optimization of fluids in stokes flow [J]. International Journal for Numerical Methods in Fluids, 2003, 41(1): 77-107.
YOON G H. Topological design of heat dissipating structure with forced convective heat transfer [J]. Journal of Mechanical Science and Technology, 2010, 24(6): 1225-1233.
DEDE E M. Optimization and design of a multipass branching microchannel heat sink for electronics cooling [J]. Journal of Electronic Packaging, 2012, 134(4): 041001.
ALEXANDERSEN J, AAGE N, ANDREASEN C S, et al. Topology optimisation for natural convection problems [J]. International Journal for Numerical Methods in Fluids, 2014, 76(10): 699-721.
ALEXANDERSEN J, SIGMUND O, AAGE N. Large scale three-dimensional topology optimisation of heat sinks cooled by natural convection [J]. International Journal of Heat and Mass Transfer, 2016, 100: 876-891.
COFFIN P, MAUTE K. A level-set method for steady-state and transient natural convection problems [J]. Structural and Multidisciplinary Optimization, 2016, 53(5): 1047-1067.
LI Hao, KONDOH T, JOLIVET P, et al. Optimum design and thermal modeling for 2D and 3D natural convection problems incorporating level set-based topology optimization with body-fitted mesh [J]. International Journal for Numerical Methods in Engineering, 2022, 123(9): 1954-1990.
CHEN Li, HE An, ZHAO Jianlin, et al. Pore-scale modeling of complex transport phenomena in porous media [J]. Progress in Energy and Combustion Science, 2022, 88: 100968.
PINGEN G, EVGRAFOV A, MAUTE K. Topology optimization of flow domains using the lattice Boltzmann method [J]. Structural and Multidisciplinary Optimization, 2007, 34(6): 507-524.
KRAUSE M J, THÄTER G, HEUVELINE V. Adjoint-based fluid flow control and optimisation with lattice Boltzmann methods [J]. Computers Mathematics with Applications, 2013, 65(6): 945-960.
YAJI K, YAMADA T, YOSHINO M, et al. Topology optimization using the lattice Boltzmann method incorporating level set boundary expressions [J]. Journal of Computational Physics, 2014, 274: 158-181.
YAJI K, YAMADA T, YOSHINO M, et al. Topology optimization in thermal-fluid flow using the lattice Boltzmann method [J]. Journal of Computational Physics, 2016, 307: 355-377.
DUGAST F, FAVENNEC Y, JOSSET C. Reactive fluid flow topology optimization with the multi-relaxation time lattice Boltzmann method and a level-set function [J]. Journal of Computational Physics, 2020, 409: 109252.
LUO Jiwang, CHEN Li, HE An, et al. Topology optimization of convective heat transfer by the lattice Boltzmann method [J]. International Journal for Numerical Methods in Fluids, 2023, 95(3): 421-452.
LUO Jiwang, CHEN Li, KE Hanbing, et al. Three-dimensional topology optimization of natural convection using double multiple-relaxation-time lattice Boltzmann method [J]. Applied Thermal Engineering, 2024, 236: 121732.
TANABE Y, YAJI K, USHIJIMA K. Topology optimization using the lattice Boltzmann method for unsteady natural convection problems [J]. Structural and Multidisciplinary Optimization, 2023, 66(5): 103.
LUO Jiwang, CHEN Li, XIA Yang, et al. Topology optimization of natural convection using porous metal foam based on the adjoint lattice Boltzmann method and level set method [J]. Computers Fluids, 2023, 265: 106007.
GUO Zhaoli, ZHAO Tianshou. Lattice Boltzmann model for incompressible flows through porous media [J]. Physical Review E, 2002, 66(3): 036304.
CHEN Sheng, YANG Bo, ZHENG Chuguang. Simulation of double diffusive convection in fluid-saturated porous media by lattice Boltzmann method [J]. International Journal of Heat and Mass Transfer, 2017, 108: 1501-1510.
曲东越, 张海兵, 徐建安, 等. 基于改进水平集结构拓扑优化方法的理论研究 [J]. 应用力学学报, 2019, 36(4): 895-900.
QU Dongyue, ZHANG Haibing, XU Jianan, et al. Theoretical research of structure topology optimization based on the level set method [J]. Chinese Journal of Applied Mechanics, 2019, 36(4): 895-900.
ALEXANDERSEN J, SIGMUND O, MEYER K E, et al. Design of passive coolers for light-emitting diode lamps using topology optimisation [J]. International Journal of Heat and Mass Transfer, 2018, 122: 138-149.
BHATTACHARYA A, MAHAJAN R L. Metal foam and finned metal foam heat sinks for electronics cooling in buoyancy-induced convection [J]. Journal of Electronic Packaging, 2006, 128(3): 259-266.
LUO Jiwang, CHEN Li, XIA Yang, et al. Three-dimensional multi-scale topology optimization of porous heat sink with predetermined unit cells for natural convection heat transfer [J]. International Journal of Heat and Mass Transfer, 2024, 225: 125398.
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