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首页> 外文期刊>Journal of Energy Storage >Experimental Investigation on Enhanced Energy Storage Characteristics of Spherically Encapsulated 1-Decanol/Expanded Graphite Composite for Cold Storage System
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Experimental Investigation on Enhanced Energy Storage Characteristics of Spherically Encapsulated 1-Decanol/Expanded Graphite Composite for Cold Storage System

机译:用于冷藏系统的球形封装1-癸醇/膨胀石墨复合材料增强储能特性的实验研究

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The low solidification temperature (0 degrees C), sporadic nucleation behaviour and supercooling phenomenon of ice are the major factors affecting the energy storage efficiency of an ice-based cold thermal energy storage system (CTESS). Due to the non-supercooling nature and high solidification temperature (similar to 4.1 degrees C), 1-Decanol-Expanded graphite composite (CPCM) is proposed as a prospective replacement for ice in CTESS. The CPCM was macro encapsulated inside the various diameter (42, 51 and 64 mm) spherical enclosures (S.Es), and its energy storage performance was studied at different wall temperatures (T-w) for charging (0,-3 and-6 degrees C) and discharging (10, 13 and 16 degrees C). It is found that the latent heat can be stored in CPCM even at a higher wall temperature (-3 degrees C), which is not possible in the case of ice. To freeze the same mass of 1-Decanol at T-w =-6 degrees C, the CPCM filled 51 mm S.E requires 85.37% lower time than that of PCM filled S.E. Based on experimental results,-3 and 13 degrees C is found as an optimum wall temperature for charging and discharging, respectively. The charging and discharging rates increase with diameter. Besides, in a 51 mm S.E, the time required to store (T-w =-3 degrees C) and recover (T-w = 16 degrees C) a stated amount of energy in CPCM is 81.27%, and 76.45% lower than that of PCM, respectively. CPCM has superior phase change and energy storage characteristics. Therefore, the use of CPCM in CTESS ensures effective storage and recovery of cold energy.
机译:凝固温度(0℃),散核成核行为和冰过冷现象是影响基于冰冷热储能系统(CTESS)的储能效率的主要因素。由于非过冷性和高凝固温度(类似于4.1℃),提出了1-癸醇膨胀的石墨复合材料(CPCM)作为CTESS中冰的前瞻性替代品。 CPCM是封装在各种直径(42,51和64mm)球形外壳(S.ES)内部的宏,并且在不同的壁温度(TW)下进行了能量存储性能以充电(0,-3和-6度c)和放电(10,13和16℃)。发现即使在冰的情况下,也可以在较高的壁温度(-3℃)中储存潜热。为了在T-W = -6℃下冻结相同的1-癸醇,CPCM填充的51mm S.E需要比PCM填充的时间较低85.37%。基于实验结果,发现-3和13摄氏度分别作为充电和放电的最佳壁温度。充电和放电率随着直径而增加。此外,在51 mm SE中,储存(tw = -3℃)所需的时间(tw = -3℃)并恢复(tw = 16℃),CPCM中规定的能量量为81.27%,低于PCM的76.45%,分别。 CPCM具有卓越的相变和储能特性。因此,在CTES中使用CPCM确保有效地存储和恢复冷能。

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