首页> 外文会议>ASME International Design Engineering Technical Conferences >DESIGN FOR ADDITIVE MANUFACTURING OF CONFORMAL COOLING CHANNELS USING THERMAL-FLUID TOPOLOGY OPTIMIZATION AND APPLICATION IN INJECTION MOLDS
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DESIGN FOR ADDITIVE MANUFACTURING OF CONFORMAL COOLING CHANNELS USING THERMAL-FLUID TOPOLOGY OPTIMIZATION AND APPLICATION IN INJECTION MOLDS

机译:使用热流体拓扑优化和注塑模具应用的保形冷却通道的添加剂制造设计

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Additive manufacturing allows the fabrication parts and tools of high complexity. This capability challenges traditional guidelines in the design of conformal cooling systems in heat exchangers, injection molds, and other parts and tools. Innovative design methods, such as network-based approaches, lattice structures, and structural topology optimization have been used to generate complex and highly efficient cooling systems; however, methods that incorporate coupled thermal and fluid analysis remain scarce. This paper introduces a coupled thermalfluid topology optimization algorithm for the design of conformal cooling channels. With this method, the channel position problem is replaced to a material distribution problem. The material distribution directly depends on the effect of flow resistance, heat conduction, as well as forced and natural convection. The problem is formulated based on a coupling of Navier-Stokes equations and convection-diffusion equation. The problem is solved by gradient-based optimization after analytical sensitivity derived using the adjoint method. The algorithm leads a two -dimensional conceptual design having optimal heat transfer and balanced flow. The conceptual design is converted to threedimensional channels and mapped to a morphological surface conformal to the injected part. The method is applied to design an optimal conformal cooling for a real three dimensional injection mold. The feasibility of the final designs is verified through simulations. The final designs can be exported as both three-dimensional graphic and surface mesh CAD format, bringing the manufacture department the convenience to run the tool path for final fitting.
机译:添加剂制造允许制造部件和高复杂的工具。这种能力在热交换器,注塑和其他部件和工具中挑战了传统指导方针。创新的设计方法,如网络的方法,晶格结构和结构拓扑优化,用于产生复杂和高效的冷却系统;然而,包含耦合热和流体分析的方法仍然是稀缺的。本文介绍了一种耦合的热流拓扑优化优化算法,用于设计的保形冷却通道。通过这种方法,频道位置问题被替换为材料分布问题。材料分布直接取决于流动阻力,热传导以及强制和自然对流的影响。基于Navier-Stokes方程和对流扩散方程的耦合来制定问题。使用伴随方法导出的分析灵敏度后基于梯度的优化解决了问题。该算法引导了具有最佳传热和平衡流的两倍长度概念设计。概念设计转换为三维通道,并映射到对注射部分的形态表面。应用该方法以设计真实三维注射模具的最佳保形冷却。通过模拟验证了最终设计的可行性。最终设计可以作为三维图形和表面网格CAD格式导出,使制造部门提供便利运行最终配件的刀具路径。

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