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浙江大学学报(工学版)  2018, Vol. 52 Issue (1): 50-58    DOI: 10.3785/j.issn.1008-973X.2018.01.008
机械与能源工程     
糖醇及二元共晶混合物储释热特性的非等温测试
邵雪峰1, 冯飙1, 胡楠1, 黄元凯1, 朱子钦1, 蒋平2, 范利武1
1. 浙江大学 热工与动力系统研究所, 浙江 杭州 310027;
2. 北京宇航系统工程研究所, 北京 100076
Non-isothermal characterization on thermal storage/release performance of sugar alcohols and their binary eutectic mixtures
SHAO Xue-feng1, FENG Biao1, HU Nan1, HUANG Yuan-kai1, ZHU Zi-qin1, JIANG Ping2, FAN Li-wu1
1. Institute of Thermal Science and Power Systems, Zhejiang University, Hangzhou 310027, China;
2. Beijing Institute of Astronautical System Engineering, Beijing 100076, China
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摘要:

对可用于中低温相变储热的糖醇及二元共晶混合物的储释热特性进行非等温测试.选取熔点为90~200℃时的4种常见且价格低廉的糖醇(木糖醇、d-山梨糖醇、内消旋-赤藓糖醇和d-半乳糖醇)为候选对象,制备相应的6种两两组合的二元共晶糖醇.采用差示扫描量热仪,对糖醇及二元共晶混合物的相变温度和相变焓进行测试.结果表明,木糖醇、d-山梨糖醇以及含两者其中之一的5种二元共晶糖醇在熔化之后重新冷却的过程中不能结晶,形成过冷液态;唯一1种能够重新结晶的二元共晶糖醇(95mol%内消旋-赤藓糖醇/5mol% d-半乳糖醇)的结晶现象并非出现在冷却过程中,而是在再次升温过程中发生冷结晶.虽然内消旋-赤藓糖醇和d-半乳糖醇的重结晶性能较好,但存在较严重的过冷现象;当冷却速率为5℃/min时,两者的过冷度分别高达101.9和70.4℃.上述糖醇及二元共晶混合物虽然具有可观的储热密度,但在结晶过程中均存在各自的问题,须在实际应用中予以解决.

Abstract:

The non-isothermal test was conducted on thermal storage/release performance of sugar alcohols and their binary eutectic mixtures as applied to low to medium temperature thermal energy storage. Four familiar sugar alcohols (xylitol, d-sorbitol, meso-erythritol and d-dulcitol) having fusion temperatures between 90℃ and 200℃, were selected as the candidates due to their low prices in market, and six binary eutectic mixtures were prepared accordingly. The phase change temperature and phase change enthalpy of the sugar alcohols and their binary eutectic mixtures were measured by differential scanning calorimetry. Results show that xylitol, d-sorbitol and the binary eutectic mixtures containing one of them tend to form super-cooled liquids and cannot recrystallize from their melt during cool-down. The 95mol% meso-erythritol/5mol% d-dulcitol, the only binary eutectic mixture that can recrystallize, experiences cold crystallization during re-heating instead of crystallization during cool-down. In spite of the favorable recrystallization performance, meso-erythritol and d-dulcitol were observed to have severe supercooling and their supercooling degrees were determined to reach up to 101.9℃ and 70.4℃, respectively, at the cooling rate of 5℃/min. Although these sugar alcohols and their binary eutectic mixtures possess desirably high thermal energy storage density, they all suffer from specific issues associated with crystallization that must be addressed in practical applications.

收稿日期: 2017-07-04 出版日期: 2017-12-15
CLC:  TK02  
基金资助:

浙江省杰出青年科学基金资助项目(LR17E060001).

通讯作者: 范利武,男,研究员.orcid.org/0000-0001-8845-5058.     E-mail: liwufan@zju.edu.cn
作者简介: 邵雪峰(1989-),男,博士生,从事相变储热研究.orcid.org/0000-0002-2682-3385.E-mail:xuefengshao@zju.edu.cn
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引用本文:

邵雪峰, 冯飙, 胡楠, 黄元凯, 朱子钦, 蒋平, 范利武. 糖醇及二元共晶混合物储释热特性的非等温测试[J]. 浙江大学学报(工学版), 2018, 52(1): 50-58.

SHAO Xue-feng, FENG Biao, HU Nan, HUANG Yuan-kai, ZHU Zi-qin, JIANG Ping, FAN Li-wu. Non-isothermal characterization on thermal storage/release performance of sugar alcohols and their binary eutectic mixtures. JOURNAL OF ZHEJIANG UNIVERSITY (ENGINEERING SCIENCE), 2018, 52(1): 50-58.

链接本文:

http://www.zjujournals.com/eng/CN/10.3785/j.issn.1008-973X.2018.01.008        http://www.zjujournals.com/eng/CN/Y2018/V52/I1/50

[1] SHARMA R K, GANESAN P, TYAGI V V, et al. Developments in organic solid-liquid phase change materials and their applications in thermal energy storage[J]. Energy Conversion and Management, 2015, 95:193-228.
[2] 刘闵婕,朱子钦,许粲羚,等. 球形容器内复合相变材料的约束熔化传热过程[J]. 浙江大学学报:工学版, 2016, 50(3):477-484. LIU Min-jie, ZHU Zi-qin, XU Can-ling, et al. Constrained melting heat transfer of composite phase change materials inside spherical container[J]. Journal of Zhejiang University:Engineering Science, 2016, 50(3):477-484.
[3] 胡芃, 卢大杰, 赵盼盼, 等. 组合式相变材料最佳相变温度的热力学分析[J]. 化工学报, 2013, 64(7):2322-2327. HU Peng, LU Da-jie, ZHAO Pan-pan, et al. Thermodynamic analysis on optimum phase change temperature for multiple phase change materials[J]. CIESC Journal, 2013, 64(7):2322-2327.
[4] MA Q, LUO L, WANG R Z, et al. A review on transportation of heat energy over long distance:exploratory development[J].Renewable and Sustainable Energy Reviews, 2009, 13(6):1532-1540.
[5] 肖玉麒,甘曦梓,曾轶,等. 碳纳米管填料对相变储能式热沉性能的影响[J]. 浙江大学学报:工学版, 2014, 48(10):1732-1738. XIAO Yu-qi, GAN Xi-zi, ZENG Yi, et al. Effects of carbon nanotube fillers on performance of energy storage-based heat sinks[J]. Journal of Zhejiang University:Engineering Science, 2014, 48(10):1732-1738.
[6] XU B, LI P, CHAN C. Application of phase change materials for thermal energy storage in concentrated solar thermal power plants:a review to recent developments[J].Applied Energy, 2015, 160:286-307.
[7] DEL BARRIO E P, CADORET R, DARANLOT J, et al.New sugar alcohols mixtures for long-term thermal energy storage applications at temperatures between 70℃ and 100℃[J]. Solar Energy Materials and Solar Cells, 2016, 155:454-468.
[8] DIARCE G, GANDARIAS I, CAMPOS-CELADOR A, et al. Eutectic mixtures of sugar alcohols for thermal energy storage in the 50-90℃ temperature range[J]. Solar Energy Materials and Solar Cells, 2015, 134:215-226.
[9] PAUL A, SHI L, BILAWSKI C W. A eutectic mixture of galactitol and mannitol as a phase change material for latent heat storage[J].Energy Conversion and Management, 2015, 103:139-146.
[10] DACUNHA J P, EAMES P. Thermal energy storage for low and medium temperature applications using phase change materials-a review[J]. Applied Energy, 2016, 177:227-238.
[11] PIELICHOWSKA K, PIELICHOWSKI K. Phase change materials for thermal energy storage[J]. Progress in Materials Science, 2014, 65:67-123.
[12] SHARMA A, TYAGI V V, CHEN C R, et al. Review on thermal energy storage with phase change materials and applications[J]. Renewable and Sustainable Energy Reviews, 2009, 13(2):318-345.
[13] TALJA R A, ROOS Y H. Phase and state transition effects on dielectric, mechanical, and thermal properties of polyols[J].Thermochimica Acta, 2001, 380(2):109-121.
[14] GOMBÁS Á, SZABÍ-RÉVÉSZ P, REGDON G, et al. Study of thermal behavior of sugar alcohols[J]. Journal of Thermal Analysis and Calorimetry, 2003, 73(2):615-621.
[15] CARPENTIER L, DESPREZ S, DESCAMPS M. Crystallization and glass properties of pentitols[J]. Journal of Thermal Analysis and Calorimetry, 2003, 73(2):577-586.
[16] 高才, 杨锁, 刘向农, 等. 木糖醇玻璃焓松弛的量热分析[J]. 物理化学学报, 2010, 26(1):7-12. GAO Cai, YANG Suo, LIU Xiang-nong, et al. Calorimetric analysis on enthalpy relaxation in xylitol glass[J]. Acta Physico-Chimica Sinica, 2010, 26(1):7-12.
[17] KENISARIN M M. Thermophysical properties of some organic phase change materials for latent heat storage.a review[J]. Solar Energy, 2014, 107:553-575.
[18] 王艺斐. 串联式多相变储热实验与数值模拟研究[D]. 北京:中国科学院大学, 2016. WANG Yi-fei. Experimental and numerical study on cascaded latent heat storage[D]. Beijing:The University of Chinese Academy of Sciences, 2016.
[19] NOMURA T, ZHU C, SAGARA A, et al. Estimation of thermal endurance of multicomponent sugar alcohols as phase change materials[J].Applied Thermal Engineering, 2015, 75:481-486.
[20] SARI A, BIÇER A, LAFÇI Ö, et al. Galactitol hexa stearate and galactitol hexa palmitate as novel solid-liquid phase change materials for thermal energy storage[J].Solar Energy, 2011, 85(9):2061-2071.
[21] JOHN G, KÖNIG-HAAGEN A, KING'ONDU C K, et al. Galactitol as phase change material for latent heat storage of solar cookers:Investigating thermal behavior in bulk cycling[J]. Solar Energy, 2015, 119:415-421.
[22] JESUS A J L, NUNES S C C, SILVA M R, et al. Erythritol:crystal growth from the melt[J].International Journal of Pharmaceutics, 2010, 388(1):129-135.
[23] SHAO X F, MO S P, CHEN Y, et al. Solidification behavior of hybrid TiO2 nanofluids containing nanotubes and nanoplatelets for cold thermal energy storage[J]. Applied Thermal Engineering, 2017, 117:427-436.
[24] 章学来, 丁锦宏, 罗孝学, 等. 纳米二氧化钛-赤藻糖醇储能体系实验研究[J]. 制冷学报, 2016, 37(1):70-76. ZHANG Xue-lai, DING Jin-hong, LUO Xiao-xue, et al. Experimental research on nanotitanium-erythritol energy storage system[J]. Journal of Refrigeration, 2016, 37(1):70-76.
[25] DIOGO H P, PINTO S S, RAMOS J J M. Slow molecular mobility in the crystalline and amorphous solid states of pentitols:a study by thermally stimulated depolarisation currents and by differential scanning calorimetry[J]. Carbohydrate Research, 2007, 342(7):961-969.
[26] DEL BARRIO E P, GODIN A, DUQUESNE M, et al. Characterization of different sugar alcohols as phase change materials for thermal energy storage applications[J].Solar Energy Materials and Solar Cells, 2017, 159:560-569.

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