← 返回
可靠性与测试
★ 4.0
利用高导热相变材料进行CO2甲烷化被动式热管理
Passive thermal management of CO2 Methanation using phase change material with high thermal conductivity
| 作者 | Hiroaki Koi · Akira Gunji · Masatoshi Sugimas · Takahiro Kawaguchi · Cholila Tamzysi · Takahiro Nomur |
| 期刊 | Applied Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 380 卷 |
| 技术分类 | 可靠性与测试 |
| 相关度评分 | ★★★★ 4.0 / 5.0 |
| 关键词 | A Zn–Zn-30 %Al MEPCM composite was fabricated to improve methanation. |
语言:
中文摘要
二氧化碳甲烷化是一种具有前景的燃料脱碳技术。由于甲烷化反应为放热反应,反应器的热管理是一个重要问题。本研究探讨了采用金属基相变材料(PCM)进行反应器热管理的效果。在本研究中,将Zn-30%Al合金(熔点:429–509 °C)基PCM复合材料与催化剂混合装填于台架规模反应器中,并进行了稳态与瞬态甲烷化实验。稳态实验结果表明,与传统的单一催化剂条件相比,峰值温度从464 °C降低至411 °C,峰值温度与基底温度之间的温差减少了38%。此外,整个反应器内的温度分布更加均匀,实现了局部热应力的分散,这归因于金属相变材料的高导热性。随后评估了相变材料在瞬态过程中的热管理性能。在包含相变材料熔点的430至450 °C升温区间内,升温时间比无相变材料条件延长了45分钟,导致放热速率被抑制了71%。这是由于金属相变材料的潜热与高导热性共同作用的结果,在催化剂发生热失控情况下提供了热缓冲能力。上述结果表明,将金属相变材料引入甲烷化反应器可实现一种新颖的热管理方式。
English Abstract
Abstract CO 2 methanation is a promising technology for fuel decarbonization. Since methanation is an exothermic reaction , thermal management of the reactor is an important issue. This study investigated the effect of applying metallic phase change material(PCM) for reactor thermal management. In this study, Zn-30 %Al alloy(melting point: 429–509 °C)-based PCM composites were mixed with catalysts in a bench scale reactor, then steady-state and transient methanation were examined. The results at steady state indicated peak temperature was reduced from 464 °C to 411 °C compared to conventional single-catalyst condition. This corresponded to 38 % reduction in the temperature difference between peak and base temperature. Furthermore, temperature distribution in the whole reactor was homogenized, achieving a dispersion of the local thermal stress. This was due to high thermal conductivity of metallic PCM. Then, transient thermal management of PCM was evaluated. Periods for temperature increase between 430 and 450 °C, including PCM melting point, was prolonged 45 min compared to the condition without PCM. This resulted 71 % suppression of exothermic speed. This was due to complex effects of latent heat and high thermal conductivity of metallic PCM, offering thermal buffer in case of catalyst thermal runaway. These results showed the introduction of metallic PCM into methanation reactor provides novel thermal management.
S
SunView 深度解读
该金属相变材料热管理技术对阳光电源储能系统具有重要应用价值。研究中Zn-Al合金PCM通过高导热性和潜热效应实现温度峰值降低53℃、温差减少38%,可借鉴应用于PowerTitan等大型储能系统的电池热管理。特别是瞬态工况下71%的放热速率抑制能力,可有效防止电池热失控。该被动式热管理方案结合ST系列PCS的主动温控策略,能提升储能系统可靠性,延长电池寿命,并为iSolarCloud平台的预测性维护提供热安全冗余设计思路。