Chemical Industry and Engineering Progress ›› 2023, Vol. 42 ›› Issue (9): 4791-4798.DOI: 10.16085/j.issn.1000-6613.2022-1974
• Materials science and technology • Previous Articles Next Articles
ZHANG Dailing(), DING Yumei, ZUO Xiahua, LI Haowei, YANG Weimin, YAN Hua, AN Ying()
Received:
2022-10-24
Revised:
2022-12-15
Online:
2023-09-28
Published:
2023-09-15
Contact:
AN Ying
张岱凌(), 丁玉梅, 左夏华, 黎昊为, 杨卫民, 阎华, 安瑛()
通讯作者:
安瑛
作者简介:
张岱凌(1998-),男,硕士研究生,研究方向为纳米流体光热转换。E-mail:2020200595@buct.edu.cn。
基金资助:
CLC Number:
ZHANG Dailing, DING Yumei, ZUO Xiahua, LI Haowei, YANG Weimin, YAN Hua, AN Ying. Photothermal characteristics of waste toner nanofluids[J]. Chemical Industry and Engineering Progress, 2023, 42(9): 4791-4798.
张岱凌, 丁玉梅, 左夏华, 黎昊为, 杨卫民, 阎华, 安瑛. 废弃墨粉纳米流体的光热特性[J]. 化工进展, 2023, 42(9): 4791-4798.
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URL: https://hgjz.cip.com.cn/EN/10.16085/j.issn.1000-6613.2022-1974
研究者 | 分散物 | 基液 | 实验最佳浓度/% | 光热转换效率/% | 光热转换效率比基液提高/% |
---|---|---|---|---|---|
Hazra等[ | BN/炭黑 | 乙二醇 | 0.0015 | 82.50 | 35 |
李富恒[ | 石墨烯 | 乙二醇 | 0.0007 | 76.36 | 49.65 |
Guo等[ | 碳纳米管 | 水 | 0.01 | 65 | 51.16 |
Li等[ | β-环糊精碳纳米管 | 乙二醇 | 0.1 | 81.30 | 64.24 |
Tong等[ | 碳纳米管/Fe3O4 | 水 | 0.05 | 46 | 76.92 |
本研究 | 废弃墨粉 | 乙二醇苯醚 | 0.04 | 54.95 | 90.41 |
研究者 | 分散物 | 基液 | 实验最佳浓度/% | 光热转换效率/% | 光热转换效率比基液提高/% |
---|---|---|---|---|---|
Hazra等[ | BN/炭黑 | 乙二醇 | 0.0015 | 82.50 | 35 |
李富恒[ | 石墨烯 | 乙二醇 | 0.0007 | 76.36 | 49.65 |
Guo等[ | 碳纳米管 | 水 | 0.01 | 65 | 51.16 |
Li等[ | β-环糊精碳纳米管 | 乙二醇 | 0.1 | 81.30 | 64.24 |
Tong等[ | 碳纳米管/Fe3O4 | 水 | 0.05 | 46 | 76.92 |
本研究 | 废弃墨粉 | 乙二醇苯醚 | 0.04 | 54.95 | 90.41 |
1 | 宋庆彬, 李金惠, 董庆银, 等. 我国废旧硒鼓墨盒回收与处理现状研究[J]. 环境工程, 2015, 33(7): 113-117. |
SONG Qingbin, LI Jinhui, DONG Qingyin, et al. Studies on recycling and treatment status of waste toner and ink cartridges in china[J]. Environmental Engineering, 2015, 33(7): 113-117, 108. | |
2 | 茆吉庆, 黎阳, 蒋诗, 等. 废弃墨粉的回收及其电化学储能应用研究[J]. 环境工程, 2016, 34(S1): 715-718. |
MAO Jiqing, LI Yang, JIANG Shi, et al. Recycling of waste toner and its application in electrochemical energy storage[J]. Environmental Engineering, 2016, 34(S1): 715-718. | |
3 | 章雨勤, 程知萱, 张源, 等. 利用废弃硒鼓墨粉制备γ-Fe2O3气敏材料[J]. 郑州大学学报(工学版), 2016, 37(4): 44-48. |
ZHANG Yuqin, CHENG Zhixuan, ZHANG Yuan, et al. Use of waste toner cartridges for preparing γ-Fe2O3 sensitive material[J]. Journal of Zhengzhou University (Engineering Science), 2016, 37(4): 44-48. | |
4 | KHEDAYWI T S. Study on utilising waste toner in asphalt cement[J]. Road Materials and Pavement Design, 2014, 15(2): 446-454. |
5 | 李诗琦, 李闯民, 李元元. 回收碳粉改性沥青制备参数及性能研究[J]. 石油沥青, 2016, 30(6): 25-30. |
LI Shiqi, LI Chuangmin, LI Yuanyuan. Preparation parameters and performance study of recycled carbon powder modified asphalt[J]. Petroleum Asphalt, 2016, 30(6): 25-30. | |
6 | 宗美林, 叶晓江, 常怀钟, 等. 水基碳纳米管纳米流体在室外自然条件下的光热性能研究[J]. 太阳能学报, 2020, 41(5): 48-53. |
ZONG Meilin, YE Xiaojiang, CHANG Huaizhong, et al. Study on photo-thermal conversion characteristics of water-based carbon nanotubes in outdoor natural condition[J]. Acta Energiae Solaris Sinica, 2020, 41(5): 48-53. | |
7 | 屈健, 张若梅, 田敏. 氧化铜-碳纳米管/水混合纳米流体的光热性能[J]. 化工进展, 2018, 37(6): 2125-2131. |
QU Jian, ZHANG Ruomei, TIAN Min. Photo-thermal properties of hybrid CuO-MWCNT/H2O nanofluids[J]. Chemical Industry and Engineering Progress, 2018, 37(6): 2125-2131. | |
8 | 周玲, 尹淼, 陈钰琦, 等. 油基CuO和HgS纳米流体的光热转换特性研究[J]. 太阳能学报, 2017, 38(6): 1620-1625. |
ZHOU Ling, YIN Miao, CHEN Yuqi, et al. Photothermal conversion properties of oil-based CuO and HgS nanofluids[J]. Acta Energiae Solaris Sinica, 2017, 38(6): 1620-1625. | |
9 | HAZRA S K, GHOSH S, NANDI T K. Photo-thermal conversion characteristics of carbon black-ethylene glycol nanofluids for applications in direct absorption solar collectors[J]. Applied Thermal Engineering, 2019, 163: 114402. |
10 | 刘闪威. 槽式太阳能熔盐集热传热的试验研究[D]. 北京: 北京工业大学, 2013. |
LIU Shanwei. Experimental study on heat transfer with molten salt in trough solar collector system[D]. Beijing: Beijing University of Technology, 2013. | |
11 | SAIDUR R, MENG T C, SAID Z, et al. Evaluation of the effect of nanofluid-based absorbers on direct solar collector[J]. International Journal of Heat and Mass Transfer, 2012, 55(21/22): 5899-5907. |
12 | 凌智勇, 黄跃涛, 张忠强, 等. 表面活性剂对Cu-H2O和ZrO2-H2O纳米流体稳定性的影响[J]. 功能材料, 2015, 46(10):10100-10103. |
LING Zhiyong, HUANG Yuetao, ZHANG Zhongqiang, et al. Effect of surfactants on the stability of Cu-H2O and ZrO2-H2O nanofluids[J]. Journal of Functional Materials, 2015, 46(10):10100-10103. | |
13 | 王良虎, 向军, 李菊香. 纳米流体的稳定性研究[J]. 材料导报, 2011, 25(S1): 17-20. |
WANG Lianghu, XIANG Jun, LI Juxiang. Study on stability of nanofluid[J]. Materals Review, 2011, 25(S1): 17-20. | |
14 | MEHRALI M, GHATKESAR M K, PECNIK R. Full-spectrum volumetric solar thermal conversion via graphene/silver hybrid plasmonic nanofluids[J]. Applied Energy, 2018, 224: 103-115. |
15 | WANG Han, YANG Weimin, CHENG Lisheng, et al. Chinese ink: High performance nanofluids for solar energy[J]. Solar Energy Materials and Solar Cells, 2018, 176: 374-380. |
16 | ZEINY A, JIN H C, BAI L Z, et al. A comparative study of direct absorption nanofluids for solar thermal applications[J]. Solar Energy, 2018, 161: 74-82. |
17 | MENG Zhaoguo, HAN Dongxiao, WU Daxiong, et al. Thermal conductivities, rheological behaviors and photothermal properties of ethylene glycol-based nanofluids containing carbon black nanoparticles[J]. Procedia Engineering, 2012, 36: 521-527. |
18 | KHOSROJERDI S, LAVASANI A, VAKILI M. Experimental study of photothermal specifications and stability of graphene oxide nanoplatelets nanofluid as working fluid for low-temperature direct absorption solar collectors (DASCs)[J]. Solar Energy Materials and Solar Cells, 2017, 164: 32-39. |
19 | GUO Chenglong, LIU Can, JIAO Shaokai, et al. Introducing optical fiber as internal light source into direct absorption solar collector for enhancing photo-thermal conversion performance of MWCNT-H2O nanofluids[J]. Applied Thermal Engineering, 2020, 173: 115207. |
20 | LI Xiaoke, CHEN Wenjing, ZOU Changjun. An experimental study on β-cyclodextrin modified carbon nanotubes nanofluids for the direct absorption solar collector (DASC): Specific heat capacity and photo-thermal conversion performance[J]. Solar Energy Materials and Solar Cells, 2020, 204: 110240. |
21 | JEONG M G, KIM J B, QIN C Y, et al. Synthesis of therminol-graphite nanofluids and photo-thermal conversion properties[J]. International Journal of Energy Research, 2021, 45(7): 11320-11328. |
22 | TANG Zhenglai, SONG Dongxing, MA Weigang, et al. Two-level synergistic scatterings from porosity and particle aggregation in Cu nanofluids for the enhancement of solar thermal conversion[J]. Journal of Molecular Liquids, 2021, 342: 116940. |
23 | KIMPTON H, ZHANG X L, STULZ E. The temperature stability and development of a broadband silver nanofluid for solar thermal applications[J]. Energy Reports, 2021, 7: 87-96. |
24 | CHEN Meijie, HE Yurong, HUANG Jian, et al. Investigation into Au nanofluids for solar photothermal conversion[J]. International Journal of Heat and Mass Transfer, 2017, 108: 1894-1900. |
25 | TONG Y J, BOLDOO T, HAM J, et al. Improvement of photo-thermal energy conversion performance of MWCNT/Fe3O4 hybrid nanofluid compared to Fe3O4 nanofluid[J]. Energy, 2020, 196:117086. |
26 | KARAMI M, AKHAVAN-BEHABADI M A, RAISEE DEHKORDI M, et al. Thermo-optical properties of copper oxide nanofluids for direct absorption of solar radiation[J]. Solar Energy Materials and Solar Cells, 2016, 144: 136-142. |
27 | ESMAEILI M, KARAMI M, DELFANI S. Performance enhancement of a direct absorption solar collector using copper oxide porous foam and nanofluid[J]. International Journal of Energy Research, 2020, 44(7): 5527-5544. |
28 | HATAMI M, JING D W. Evaluation of wavy direct absorption solar collector (DASC) performance using different nanofluids[J]. Journal of Molecular Liquids, 2017, 229: 203-211. |
29 | CHEN Wenjing, ZOU Changjun, LI Xiaoke. An investigation into the thermophysical and optical properties of SiC/ionic liquid nanofluid for direct absorption solar collector[J]. Solar Energy Materials and Solar Cells, 2017, 163: 157-163. |
30 | MENG Zhaoguo, LI Yang, CHEN Nan, et al. Broad-band absorption and photo-thermal conversion properties of zirconium carbide aqueous nanofluids[J]. Journal of the Taiwan Institute of Chemical Engineers, 2017, 80: 286-292. |
31 | HAZRA S K, MICHAEL M, NANDI T K. Investigations on optical and photo-thermal conversion characteristics of BN-EG and BN/CB-EG hybrid nanofluids for applications in direct absorption solar collectors[J]. Solar Energy Materials and Solar Cells, 2021, 230: 111245. |
32 | WANG Kongxiang, HE Yan, LIU Pengyu, et al. Highly-efficient nanofluid-based direct absorption solar collector enhanced by reverse-irradiation for medium temperature applications[J]. Renewable Energy, 2020, 159: 652-662. |
33 | 王威, 王宝群, 刘京玲, 等. 墨粉的制备及发展概况[J]. 中国材料进展, 2012, 31(1): 1-7. |
WANG Wei, WANG Baoqun, LIU Jingling, et al. Situation for toner production and development[J]. Materials China, 2012, 31(1): 1-7. | |
34 | 何钦波. 外加磁场强化磁性纳米流体的光热特性及机理研究[D]. 广州: 华南理工大学, 2015. |
HE Qinbo. Experimental investigation on photothermal properties of magnetic nanofluids under magnetic field[D]. Guangzhou: South China University of Technology, 2015. | |
35 | PAK B C, CHO Y I. Hydrodynamic and heat transfer study of dispersed fluids with submicron metallic oxide particles[J]. Experimental Heat Transfer, 1998, 11(2): 151-170. |
36 | 李富恒. 石墨烯纳米片-乙二醇纳米流体光热转化特性研究[J]. 化工学报, 2020, 71(S1): 479-485. |
LI Fuheng. Investigation on photothermal conversion characteristics of graphene nanosheets-glycol nanofluids[J]. CIESC Journal, 2020, 71(S1): 479-485. |
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