基于拓扑优化的管壳式相变储能单元传热特性研究

Study on the Heat Transfer Characteristics of Shell-and-Tube Phase Change Energy Storage Units Based on Topology Optimization

  • 摘要: 应用数值模拟方法,对拓扑优化模型的相变传热性能进行了分析研究。以自然对流为传热机制的拓扑优化模型,探讨了不同网格尺寸对拓扑优化结果及其相变传热特性的影响。将拓扑优化模型进行后处理,并与基础模型进行对比,分析其熔化性能差异。研究结果表明,优化模型相比基础模型显著缩短了相变材料的完全熔化时间。在自然对流条件下,优化模型肋片结构主要集中于单元上下两部分,随着网格尺寸减小,左右两侧肋片分支逐渐增多,自然对流模型最大熔化时间相差16.9%。此外,肋片结构形态及分布方式对自然对流发展存在显著影响。当网格尺寸为0.2 mm时,自然对流优化模型肋片分布更广、分支更多,但对自然对流环流发展产生一定抑制作用,反而使完全熔化时间大于网格尺寸为0.6 mm的模型。因此,综合考虑肋片结构形态、布置方式及其对自然对流的耦合作用,对于提升相变传热性能具有重要意义。

     

    Abstract: The phase change heat transfer performance of the topology optimization model was analyzed and studied using numerical simulation methods. Focusing on models where natural convection serves as the primary heat transfer mechanism, the effects of different mesh sizes on the topology optimization results and their phase change heat transfer characteristics were examined. The topology-optimized models were post-processed and compared with a baseline model to analyze differences in melting performance. The results indicate that, compared with the baseline model, the optimized models significantly reduced the complete melting time of the phase change material. Under natural convection conditions, the optimized fin structures were primarily concentrated in the upper and lower regions of the unit. As the mesh size decreased, the number of fin branches on the left and right sides gradually increased, with a maximum difference in melting time of 16.9% observed among the natural convection models. Additionally, the morphology and distribution of fin structures had a pronounced influence on the development of natural convection. When the mesh size was 0.2 mm, the optimized fin structures exhibited a broader distribution and more branches, however, which suppressed the development of natural convection circulation, leading to a bigger complete melting time than that of the model with a 0.6 mm mesh size. Therefore, comprehensively considering the morphology, arrangement, and coupling effects of fin structures on natural convection is of great significance for enhancing phase change heat transfer performance.

     

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