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水平拓扑优化翅片在相变储热单元中的研究
Research on horizontal topology optimization fins in latent heat storage unit
| 作者 | Wanxing Pua · Shengjie Wanga · Jiapeng Liua · Yahui Wanga · Ruijun Cuib · Junhu Hua · Zhiguo Shia · Xiaoyan Zhaoa · Xiang Yua |
| 期刊 | Solar Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 300 卷 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 储能系统 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | [Design parametric](https://www.sciencedirect.com/topics/engineering/parametric-design "Learn more about Design parametric from ScienceDirect's AI-generated Topic Pages") impacts on horizontal topology-optimized fins. |
语言:
中文摘要
摘要 添加翅片结构可增强相变储热(LHTES)单元的传热性能。当前关于翅片优化的研究主要集中于单一或多个翅片参数,但翅片优化需要考虑多个参数之间的相互依赖关系。拓扑优化能够在特定条件下直接生成最优的翅片结构,简化设计过程并提升性能。本研究基于变密度法的连续拓扑优化理论,探讨了惩罚指数(1–9)、滤波半径(0.5–3 mm)、投影斜率(1–9)和投影点(0.1–0.9)对拓扑优化(TO)水平翅片的影响。结果表明,选择合适的设计参数对于实现有效的翅片优化至关重要。将环形翅片与拓扑优化的水平翅片进行对比发现,拓扑优化水平翅片可显著缩短熔化时间,最高可达65.68%。增加拓扑优化水平翅片的体积分数可在一定范围内提高熔化效率,但随着体积分数的增加,其增益逐渐减小,呈现边际效益递减现象。当翅片体积分数为12.5%时,能够在效率与储热容量之间取得最佳平衡。本文提出了两种简化方案:去除细小翅片和翅片末端(简化方案1),对传热影响极小,同时使熔化时间进一步减少2.5%;而消除次级分叉结构(简化方案2)则略微降低性能,导致熔化时间增加7.6%。
English Abstract
Abstract Adding fin structures enhances the heat transfer performance of latent thermal energy storage (LHTES) units. Current research on fin optimization focuses mainly on single or multiple fin parameters, but fin optimization requires considering the interdependencies of multiple parameters. Topology optimization can generate an optimized fin structure directly under specific conditions, simplifying the process and improving performance. This study investigates the effects of penalty index (1–9), filter radius (0.5–3 mm), projection slope (1–9), and projection point (0.1–0.9) on topology-optimized (TO) horizontal fins using variable density method-based continuous topology optimization theory. Results show that selecting appropriate design parameters is crucial for effective fin optimization. Comparing annular fins and TO horizontal fins reveals that TO horizontal fins significantly reduce melting time by up to 65.68 %. Increasing the volume fraction of TO horizontal fins improves melting efficiency to a certain limit, with diminishing returns as the fraction increases. A fin volume fraction of 12.5 % offers the best balance between efficiency and heat storage capacity. Two simplified schemes are proposed: removing thin fins and tips (Simplified Scheme 1) has minimal impact on heat transfer while reducing melting time by 2.5 %, whereas eliminating secondary bifurcation structures (Simplified Scheme 2) slightly decreases performance, increasing melting time by 7.6 %.
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SunView 深度解读
该拓扑优化翅片技术对阳光电源储能系统热管理具有重要价值。研究表明优化翅片可缩短65.68%熔化时间,12.5%体积分数达到效率与容量最佳平衡,可直接应用于PowerTitan液冷储能系统和ST系列PCS的相变储热单元设计。拓扑优化方法可简化多参数耦合设计流程,为大容量储能柜温控系统提供高效散热方案,提升功率器件工作稳定性,延长电池循环寿命,支撑iSolarCloud平台的预测性热管理策略优化。