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首页> 外文期刊>Journal of Energy Storage >A combination of fins-nanoparticle for enhancing the discharging of phase-change material used for liquid desiccant air conditioning unite
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A combination of fins-nanoparticle for enhancing the discharging of phase-change material used for liquid desiccant air conditioning unite

机译:翅片-纳米颗粒的组合,用于增强用于液体干燥剂空调的相变材料的排放

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A combination of fins-nanoparticle is essential for enhancing the Thermal Energy Storage (TES) that reduces the mismatch between energy supply and energy demand and this employs for Liquid Desiccant Air Conditioning Unite. Major problem is that most Phase-Change Materials (PCMs) have low thermal conductivity (k = 0.2 W/m K), resulting in an incomplete charging and discharging processes. Triplex-Tube Heat Exchanger (TTHX) was numerically and experimentally designed, adopted and tested with Alumina nanoparticle (Al2O3) and Paraffin (RT82) that has a discharging temperature of 65 degrees C. The both-sides freezing was used as a major method and the experimental findings displayed the influence of mass flow rates on the PCM discharging basing on the change in these rates of 16.2, 29.4 and 37.5 kg/min, respectively. The solidification rate was minimized as the angle direction increased from. theta = 90 degrees to theta = 270 degrees. Other important findings were that with fins-nanoparticle, an enhancement for the cooling rate of the PCM, compared with these without nanoparticle. Furthermore, the PCM model was solved by the enthalpy-porosity and the finite-volume methods with the Software Ansys Fluent. The solidification time was reduced for TTHX with longitudinal fins and TTHX with triangular fins to 33% and 34% under the effect of 10% nanoparticle, compared with pure Paraffin, respectively. The total energy released for the PCM and nano-PCM was considered. Close agreement obtained between numerical and experimental findings.
机译:鳍片-纳米颗粒的组合对于增强热能存储(TES)至关重要,该热能存储可减少能量供应和能量需求之间的不匹配,这可用于液体干燥剂空调装置。主要问题是大多数相变材料(PCM)的热导率较低(k <= 0.2 W / m K),导致充电和放电过程不完整。通过排气温度为65摄氏度的氧化铝纳米颗粒(Al2O3)和石蜡(RT82)对三层管式热交换器(TTHX)进行了数值和实验设计,采用和测试。双面冷冻是主要的方法,实验结果表明,质量流量对PCM排放的影响分别基于16.2、29.4和37.5 kg / min的变化。随着角度方向的增加,凝固速率最小化。 θ= 90度到θ= 270度。其他重要发现是,与不带纳米颗粒的鳍片相比,带鳍纳米颗粒的PCM的冷却速率有所提高。此外,PCM模型通过焓孔隙率和有限体积方法使用Ansys Fluent软件求解。与纯石蜡相比,在10%纳米颗粒的作用下,带有纵向鳍片的TTHX和带有三角形鳍片的TTHX的凝固时间分别减少了33%和34%。考虑了PCM和nano-PCM释放的总能量。在数值和实验结果之间取得了紧密的一致性。

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