Energy Storage Science and Technology ›› 2022, Vol. 11 ›› Issue (6): 1957-1967.doi: 10.19799/j.cnki.2095-4239.2022.0031
Previous Articles Next Articles
JIANG Chengyi(), ZHONG Zunrui, WU Zide, PENG Hao()
Received:
2022-01-17
Revised:
2022-02-02
Online:
2022-06-05
Published:
2022-06-13
Contact:
PENG Hao
E-mail:201961207107@njtech.edu.cn;phsight1@hotmail.com
CLC Number:
JIANG Chengyi, ZHONG Zunrui, WU Zide, PENG Hao. Thermodynamic properties of C8H18-C11H24 mixed alkane system phase change materials[J]. Energy Storage Science and Technology, 2022, 11(6): 1957-1967.
Table 2
Average relative deviations of Ideal, UNIFAC, UNIQUAC, Eutectic and Regular solution models for the four binary systems for average relative deviation ARD"
混合体系 | 平均相对偏差/% | ||||
---|---|---|---|---|---|
熔化温度 | 熔化焓 | ||||
Ideal | UNIQUAC | UNIFAC | Eutectic | Regular solution | |
C8-C9 | 1.45 | 0.91 | 1.34 | 14.26 | 8.68 |
C9-C10 | 1.96 | 1.79 | 1.95 | 15.42 | 8.54 |
C9-C11 | 1.18 | 1.20 | 1.14 | 12.64 | 6.70 |
C10-C11 | 0.82 | 1.31 | 0.80 | 17.88 | 9.66 |
1 | 何媚质, 杨鲁伟, 张振涛. 有机-无机复合相变材料的研究进展[J]. 化工进展, 2018, 37(12): 4709-4718. |
HE M Z, YANG L W, ZHANG Z T. Research progress of organic-inorganic composite phase change materials[J]. Chemical Industry and Engineering Progress, 2018, 37(12): 4709-4718. | |
2 | 李贝, 刘道平, 杨亮. 复合相变蓄热材料研究进展[J]. 制冷学报, 2017, 38(4): 36-43. |
LI B, LIU D P, YANG L. Research progress on thermal storage materials with composite phase change[J]. Journal of Refrigeration, 2017, 38(4): 36-43. | |
3 | PENG H, ZHANG D, LING X, et al. N-alkanes phase change materials and their microencapsulation for thermal energy storage: A critical review[J]. Energy & Fuels, 2018, 32(7): 7262-7293. |
4 | 张建雨, 刘丽娇, 胡景娜, 等. 石蜡热性能的研究[J]. 上海化工, 2008, 33(1): 10-13. |
ZHANG J Y, LIU L J, HU J N, et al. Study on the thermal performance of paraffin wax[J]. Shanghai Chemical Industry, 2008, 33(1): 10-13. | |
5 | 周孙希, 章学来, 刘升. 十四烷-正辛酸有机复合相变材料的制备和性能[J]. 储能科学与技术, 2018, 7(4): 692-697. |
ZHOU S X, ZHANG X L, LIU S. Preparation and thermal property of a tetradecane-octanoic acid eutectic phase change material[J]. Energy Storage Science and Technology, 2018, 7(4): 692-697. | |
6 | PEI H R, YAN X, LAN X Z. Unusual phase behavior of decane-dodecane mixtures confined in SBA-15: Size effect on binary phase diagram[J]. Chinese Chemical Letters, 2012, 23(10): 1173-1176. |
7 | SHEN T T, JIANG C Y, PENG H. Experimental study and thermodynamic modeling of solid-liquid equilibrium of binary and ternary mixtures formed by C11H24, C12H26 and C14H30 for cryogenic thermal energy storage[J]. International Journal of Refrigeration, 2020, 120: 378-387. |
8 | MONDIEIG D, RAJABALEE F, METIVAUD V, et al. N-alkane binary molecular alloys[J]. Chemistry of Materials, 2004, 16(5): 786-798. |
9 | ROBUSTILLO M D, BESSA L C B A, DE ALMEIDA MEIRELLES A J, et al. Experimental data and thermodynamic modeling of solid-liquid equilibrium of binary systems containing representative compounds of biodiesel and fossil fuels: Ethyl esters and n-hexadecane[J]. Fuel, 2018, 220: 303-317. |
10 | HAMMAMI A, MEHROTRA A K. Liquid-solid-solid thermal behaviour of n-C44H90 + n-C50H102 and n-C25H52 + n-C28H58 paraffinic binary mixtures[J]. Fluid Phase Equilibria, 1995, 111(2): 253-272. |
11 | COUTINHO J A P. Predictive local composition models: NRTL and UNIQUAC and their application to model solid-liquid equilibrium of n-alkanes[J]. Fluid Phase Equilibria, 1999, 158/159/160: 447-457. |
12 | SHEN T T, PENG H, LING X. Experimental measurements and thermodynamic modeling of melting temperature of the binary systems n-C11H24-n-C14H30, n-C12H26-n-C13H28, n-C12H26-n-C14H30, and n-C13H28-n-C15H32 for cryogenic thermal energy storage[J]. Industrial & Engineering Chemistry Research, 2019, 58(32): 15026-15035. |
13 | BOUDOUH I, HAFSAOUI S L, MAHMOUD R, et al. Measurement and prediction of solid-liquid phase equilibria for systems containing biphenyl in binary solution with long-chain n-alkanes[J]. Journal of Thermal Analysis and Calorimetry, 2016, 125(2): 793-801. |
14 | 姜竹, 邹博杨, 丛琳, 等. 储热技术研究进展与展望[J/OL].储能科学与技术:1-26[2022-05-11].doi:10.19799/j.cnki.2095-4239.2021.0538. |
JIANG Z, ZOU B Y, CONG L, et al. Research progress and prospect of heat storage technology[J/OL]. Energy Storage Science and Technology, 1-26[2022-05-11].doi:10.19799/j.cnki.2095-4239.2021.0538. | |
15 | COSTA M C, BOROS L A D, BATISTA M L S, et al. Phase diagrams of mixtures of ethyl palmitate with fatty acid ethyl esters[J]. Fuel, 2012, 91(1): 177-181. |
16 | DAUVERGNE J L, SERRANO Á, PALOMO DEL BARRIO E. Fast estimation of the enthalpy-temperature function of Phase Change Materials[J]. Experimental Thermal and Fluid Science, 2021, 122: doi:10.1016/j.expthermflusci.2020.110317. |
17 | CHELOUCHE S, TRACHE D, PINHO S P, et al. Experimental and modeling studies of binary organic eutectic systems to be used as stabilizers for nitrate esters-based energetic materials[J]. Fluid Phase Equilibria, 2019, 498: 104-115. |
18 | PARSA S, JAVANMARDI J, AFTAB S, et al. Experimental measurements and thermodynamic modeling ofwax disappearance temperature for the binary systems n-C14H30 + n-C16H34, n-C16H34 + n-C18H38 and n-C11H24 + n-C18H38[J]. Fluid Phase Equilibria, 2015, 388: 93-99. |
19 | COUTINHO J A P. Predictive UNIQUAC: A new model for the description of multiphase solid-liquid equilibria in complex hydrocarbon mixtures[J]. Industrial & Engineering Chemistry Research, 1998, 37(12): 4870-4875. |
20 | COUTINHO J A P. Predictive local composition models: NRTL and UNIQUAC and their application to model solid-liquid equilibrium of n-alkanes[J]. Fluid Phase Equilibria, 1999, 158/159/160: 447-457. |
21 | 何聪, 鹿院卫, 宋文兵, 等. 新型相同钠离子混合熔盐相图预测及物性测量[J]. 储能科学与技术, 2021, 10(5): 1729-1734. |
HE C, LU Y W, SONG W B, et al. The phase diagram prediction and experimental study of ternary same cation systems[J]. Energy Storage Science and Technology, 2021, 10(5): 1729-1734. | |
22 | LARSEN B L, RASMUSSEN P, FREDENSLUND A. A modified UNIFAC group-contribution model for prediction of phase equilibria and heats of mixing[J]. Industrial & Engineering Chemistry Research, 1987, 26(11): 2274-2286. |
23 | BADENHORST H, BÖHMER T. Enthalpy of fusion prediction for the economic optimisation of salt based latent heat thermal energy stores[J]. Journal of Energy Storage, 2018, 20: 459-472. |
[1] | Xinyu ZHOU, Daocheng LUAN, Zhihua HU, Junhua LING, Kelin WEN, Lang LIU, Zhiming YIN, Shuheng MI, Zhengyun WANG. Thermal storage performance of carbon-containing binary phase change heat storage materials [J]. Energy Storage Science and Technology, 2022, 11(4): 1175-1183. |
[2] | Yuying LI, Wenzhen WEI, Qi LI, Yuting WU. Preparation and investigation of quaternary nitrates/halloysites/graphite shape-stable composite phase change material with low melting temperature for thermal energy storage [J]. Energy Storage Science and Technology, 2022, 11(3): 1044-1051. |
[3] | Caimei YU, Xuelai ZHANG, Weisan HUA. Research progress of sodium sulfate decahydrate phase changematerial [J]. Energy Storage Science and Technology, 2021, 10(3): 1016-1024. |
[4] | Zhong XU, Jing HOU, Jun LI, Enhui WU, Ping HUANG, Yalan TANG. Properties of different particle-sized activated carbon/myristic acid composite phase change material [J]. Energy Storage Science and Technology, 2021, 10(1): 177-189. |
[5] | Jianjun WANG, Yuxia SHEN, Yu ZHANG, Tuodi ZHANG, Yong LI, Yi WANG. T-history method and its application in the determination of thermophysical properties of phase change materials [J]. Energy Storage Science and Technology, 2021, 10(1): 280-286. |
[6] | Sai WANG, Zhigao SUN, Juan LI, Cuimin LI. Preparation and properties of lauric acid/tetradecanol/SiO2 shape-stabilized phase change materials [J]. Energy Storage Science and Technology, 2020, 9(6): 1768-1774. |
[7] | LIU Lihui, MO Yajing, SUN Xiaoqin, LI Jie, LI Chuanchang, XIE Baoshan. Thermal behavior of the nanoenhanced phase change materials [J]. Energy Storage Science and Technology, 2020, 9(4): 1105-1112. |
[8] | LOU Ping, XU Guohua, YUE Lingping, LI Shouding, CHENG Qi, CAO Yuancheng, DENG Heming. Degraded Li x Ni0.5Co0.2Mn0.3O2 (0 < x < 1) via eutectic solutions for direct regeneration of spent lithium ion battery cathodes [J]. Energy Storage Science and Technology, 2020, 9(3): 848-855. |
[9] | JIN Guang, ZHAO Wenxiu, ZHAO Jun, GUO Shaopeng. Development and research status on the technology of direct contact thermal energy storage [J]. Energy Storage Science and Technology, 2019, 8(3): 477-487. |
[10] | MEHVISH Tariq, CHENG Xiaomin, LI yuanyuan, HUANG Yi, LI Ge, WANG Xiuli, ZHU Shilei, WAQAR Khan. Influence of carbon nanotubes and nano-alumina on the thermal performance of nitrate phase change materials for thermal storage [J]. Energy Storage Science and Technology, 2018, 7(S1): 47-53. |
[11] | WANG Hanqing, ZHAO Yue. Application of energy storage enclosure with phase change materials in building energy saving [J]. Energy Storage Science and Technology, 2018, 7(S1): 75-83. |
[12] | LI Dan, CHENG Xiaomin, LI Yuanyuan. Thermal properties of a modified MOF-stearic acid composite phase change materials [J]. Energy Storage Science and Technology, 2018, 7(4): 654-660. |
[13] | ZHANG Yelong1, SONG Pengfei1, ZHOU Wei1, WANG Gang1, XU Yong1, WENG Likui1, LENG Guanghui2, DING Yulong2. Electrical heating systems with heat storage using composite phase change materials [J]. Energy Storage Science and Technology, 2017, 6(6): 1250-. |
[14] | SHI Wenhua1, ZHU Xingyuan1, ZHU Jiaoqun1, LIU Fengli1,2, LI Ruguang1, ZHANG Hongguang1. Preparation and characterization of gypsum composites containing cupric- palmitic acid based phase change material in diatomite [J]. Energy Storage Science and Technology, 2017, 6(6): 1306-. |
[15] | MENG Lingran1,2, GUO Lijiang1, LI Xiaoyu1, WANG Hui1, CHEN Shengli2, ZHOU Yuan3, LI Jianqiang1. Salt hydrate based phase change materials for thermal energy storage—A review#br# [J]. Energy Storage Science and Technology, 2017, 6(4): 623-632. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||