[1] |
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.
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[2] |
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.
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[3] |
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.
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[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.
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[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.
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[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.
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[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.
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[8] |
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.
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[9] |
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.
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[10] |
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.
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[11] |
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.
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[12] |
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-.
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[13] |
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-.
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[14] |
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.
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[15] |
LI Chuan1, LI Qi2, JIANG Zhu1, CAO Hui1, QIAO Geng3, LI Yongliang1, LEI Xianzhang3, DING Yulong1.
Charging and discharging behavior of carbonate-based salt composite phase change material modules
[J]. Energy Storage Science and Technology, 2017, 6(4): 655-661.
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