CIESC Journal ›› 2023, Vol. 74 ›› Issue (S1): 302-310.DOI: 10.11949/0438-1157.20221544
• Energy and environmental engineering • Previous Articles Next Articles
Jingwei CHAO(), Jiaxing XU, Tingxian LI()
Received:
2022-11-30
Revised:
2022-12-05
Online:
2023-09-27
Published:
2023-06-05
Contact:
Tingxian LI
通讯作者:
李廷贤
作者简介:
晁京伟(1994—),男,博士,sjtu_anqiao@sjtu.edu.cn
基金资助:
CLC Number:
Jingwei CHAO, Jiaxing XU, Tingxian LI. Investigation on the heating performance of the tube-free-evaporation based sorption thermal battery[J]. CIESC Journal, 2023, 74(S1): 302-310.
晁京伟, 许嘉兴, 李廷贤. 基于无管束蒸发换热强化策略的吸附热池的供热性能研究[J]. 化工学报, 2023, 74(S1): 302-310.
Add to citation manager EndNote|Ris|BibTeX
参数 | 数值 |
---|---|
环境温度/℃ | 35 |
环境湿度/% | 25 |
制冷剂充注量/kg | 150 |
吸附剂质量/kg | 340 |
循环供热水质量/kg | 1500 |
冷剂水流量/(kg/s) | 2.7 |
空冷器风量/(m3/h) | 55000 |
吸附剂初始含水量/(g/g) | 0.065(Tdes=170℃) |
Table 1 The initial condition in this calculation
参数 | 数值 |
---|---|
环境温度/℃ | 35 |
环境湿度/% | 25 |
制冷剂充注量/kg | 150 |
吸附剂质量/kg | 340 |
循环供热水质量/kg | 1500 |
冷剂水流量/(kg/s) | 2.7 |
空冷器风量/(m3/h) | 55000 |
吸附剂初始含水量/(g/g) | 0.065(Tdes=170℃) |
参数 | 有管束蒸发器 | 无管束蒸发器 |
---|---|---|
外形尺寸 | 0.8 m×1.5 m×0.158 m | 0.8 m×1.5 m×0.158 m |
内管数量 | 36 | 0 |
管外径/mm | 15.88 | — |
管内径/mm | 14.45 | — |
管长/mm | 700 | — |
水充注量/kg | 150 | 150 |
Table 2 The parameter of the evaporator with/without tubes
参数 | 有管束蒸发器 | 无管束蒸发器 |
---|---|---|
外形尺寸 | 0.8 m×1.5 m×0.158 m | 0.8 m×1.5 m×0.158 m |
内管数量 | 36 | 0 |
管外径/mm | 15.88 | — |
管内径/mm | 14.45 | — |
管长/mm | 700 | — |
水充注量/kg | 150 | 150 |
1 | Yu N, Wang R Z, Wang L W. Sorption thermal storage for solar energy [J]. Progress in Energy and Combustion Science, 2013, 39(5): 489-514. |
2 | Xu J X, Chao J W, Li T X, et al. Near-zero-energy smart battery thermal management enabled by sorption energy harvesting from air[J]. ACS Central Science, 2020, 6(9): 1542-1554. |
3 | Poshtiri A H, Bahar S, Jafari A. Daily cooling of one-story buildings using domed roof and solar adsorption cooling system[J]. Applied Energy, 2016, 182: 299-319. |
4 | Vasta S, Palomba V, La Rosa D, et al. Adsorption cold storage for mobile applications[J]. Applied Sciences, 2020, 10(6): 2044. |
5 | Bao H S, Wang R Z, Oliveira R G, et al. Resorption system for cold storage and long-distance refrigeration[J]. Applied Energy, 2012, 93: 479-487. |
6 | Frazzica A, Brancato V, Caprì A, et al. Development of “salt in porous matrix” composites based on LiCl for sorption thermal energy storage[J]. Energy, 2020, 208: 118338. |
7 | Courbon E, D'Ans P, Permyakova A, et al. A new composite sorbent based on SrBr2 and silica gel for solar energy storage application with high energy storage density and stability[J]. Applied Energy, 2017, 190: 1184-1194. |
8 | Zhang Y N, Wang R Z, Li T X. Thermochemical characterizations of high-stable activated alumina/LiCl composites with multistage sorption process for thermal storage[J]. Energy, 2018, 156: 240-249. |
9 | Cammarata A, Verda V, Sciacovelli A, et al. Hybrid strontium bromide-natural graphite composites for low to medium temperature thermochemical energy storage: formulation, fabrication and performance investigation[J]. Energy Conversion and Management, 2018, 166: 233-240. |
10 | Ammann J, Michel B, Ruch P W. Characterization of transport limitations in SAPO-34 adsorbent coatings for adsorption heat pumps[J]. International Journal of Heat and Mass Transfer, 2019, 129: 18-27. |
11 | Ammann J, Michel B, Studart A R, et al. Sorption rate enhancement in SAPO-34 zeolite by directed mass transfer channels[J]. International Journal of Heat and Mass Transfer, 2019, 130: 25-32. |
12 | Calabrese L, Bonaccorsi L, Bruzzaniti P, et al. SAPO-34 based zeolite coatings for adsorption heat pumps[J]. Energy, 2019, 187: 115981. |
13 | Calabrese L, Paolo B, Davide P, et al. New SAPO-34-SPEEK composite coatings for adsorption heat pumps: adsorption performance and thermodynamic analysis [J]. Energy, 2020, 203: 117814. |
14 | Chan K C, Tso C Y, Wu C L, et al. Enhancing the performance of a zeolite 13X/CaCl2-water adsorption cooling system by improving adsorber design and operation sequence[J]. Energy and Buildings, 2018, 158: 1368-1378. |
15 | Kalawa W, Grabowska K, Sztekler K, et al. Progress in design of adsorption refrigeration systems. Evaporators[J]. EPJ Web of Conferences, 2019, 213: 02035. |
16 | Thimmaiah P C, Sharafian A, Rouhani M, et al. Evaluation of low-pressure flooded evaporator performance for adsorption chillers[J]. Energy, 2017, 122: 144-158. |
17 | Wang R Z, Xia Z Z, Wang L W, et al. Heat transfer design in adsorption refrigeration systems for efficient use of low-grade thermal energy[J]. Energy, 2011, 36(9): 5425-5439. |
18 | Yang L P, Liu Y, Yang Y, et al. Microscopic mechanisms of heat transfer in horizontal-tube falling film evaporation[J]. Desalination, 2016, 394: 64-71. |
19 | Li W, Wu X Y, Luo Z, et al. Heat transfer characteristics of falling film evaporation on horizontal tube arrays[J]. International Journal of Heat and Mass Transfer, 2011, 54(9/10): 1986-1993. |
20 | Xia Z Z, Yang G Z, Wang R Z. Experimental investigation of capillary-assisted evaporation on the outside surface of horizontal tubes[J]. International Journal of Heat and Mass Transfer, 2008, 51(15/16): 4047-4054. |
21 | 赵凯璇, 赵建福, 陈淑玲, 等. 液滴真空闪蒸/冻结过程的热动力学研究[J]. 空间科学学报, 2011, 31(1): 57-62. |
Zhao K X, Zhao J F, Chen S L, et al. Thermodynamics of flashing/freezing process of a droplet in vacuum[J]. Chinese Journal of Space Science, 2011, 31(1): 57-62. | |
22 | Elsayed, Eman, AL-Dadah R, et al. Adsorption cooling system employing novel MIL-101(Cr)/CaCl2 composites: numerical study[J]. International Journal of Refrigeration, 2019, 107: 246-261. |
23 | Tso C Y, Chao C Y H, Fu S C. Performance analysis of a waste heat driven activated carbon based composite adsorbent - water adsorption chiller using simulation model[J]. International Journal of Heat and Mass Transfer, 2012, 55(25/26): 7596-7610. |
24 | Li W, Wu X Y, Luo Z, et al. Falling water film evaporation on newly-designed enhanced tube bundles[J]. International Journal of Heat and Mass Transfer, 2011, 54(13/14): 2990-2997. |
25 | Wang Y, Yu L W, Zhang Y S, et al. Experimental study on circulatory flash speed of aqueous NaCl solution circulatory flash evaporation[J]. Desalination, 2016, 392: 74-84. |
26 | Yang Q Z, Zhao B C, Zhang D, et al. Experimental study on heat transfer characteristics in static flash evaporation of aqueous NaCl solution[J]. International Journal of Heat and Mass Transfer, 2016, 102: 1093-1099. |
27 | Alva G, Liu L K, Huang X, et al. Thermal energy storage materials and systems for solar energy applications[J]. Renewable and Sustainable Energy Reviews, 2017, 68: 693-706. |
[1] | Yang HE, Senhu GAO, Qingyun WU, Mingli ZHANG, Tao LONG, Pei NIU, Jinghui GAO, Yingqi MENG. Numerical study on heat and mass transfer characteristics of straight slotted fins under wet conditions [J]. CIESC Journal, 2023, 74(3): 1073-1081. |
[2] | Bingbing WANG, Chao WANG, Zhiming XU. Characteristics of CaCO3 fouling deposition on heat exchange surface under the action of cylinder electrode [J]. CIESC Journal, 2022, 73(2): 634-642. |
[3] | Shulei ZHANG, Bingjie LI, Jian JIANG, Xinyu DONG, Lu LIU. Study on evaporation characteristics of sessile droplet on a convex substrate at constant temperature [J]. CIESC Journal, 2022, 73(12): 5537-5546. |
[4] | Fang WANG, Xi ZENG, Tingting WANG, Xiaorong WANG, Rongcheng WU, Guangwen XU. Fundamentals and pilot demonstration of coal directional pyrolysis to high quality tar and gas products based on process intensification and reaction regulation [J]. CIESC Journal, 2021, 72(12): 6131-6143. |
[5] | ZHANG Yi,ZHANG Guanmin,LENG Xueli,QU Xiaohang,TIAN Maocheng. Research progress on frost-free air source heat pump technology [J]. CIESC Journal, 2020, 71(12): 5400-5419. |
[6] | Jian CONG,Penghui GAO,Donghai ZHANG,Jinpeng ZHOU,Zhenghan ZHANG. Effect of ultrasonic on freezing state and heat transfer of droplet [J]. CIESC Journal, 2020, 71(11): 5117-5128. |
[7] | Yubing LI, Mo YANG, Tingkang LU, Zhenghua DAI. Study on heat and mass transfer and nonlinear characteristics with heat and mass source in cavity [J]. CIESC Journal, 2019, 70(S2): 130-137. |
[8] | Jiangyuan QU, Nana QI, Yanjun GUAN, Yang TENG, Wenqing XU, Tingyu ZHU, Kai ZHANG. CFD simulation of transfer and chemical reaction process in wet flue gas desulfurization tower [J]. CIESC Journal, 2019, 70(6): 2117-2128. |
[9] | Yang HE, Limin WANG, Chunli TANG, Defu CHE. Numerical simulation of convection condensation heat transfer of H-fixed tubes with wet flue gas [J]. CIESC Journal, 2019, 70(12): 4556-4564. |
[10] | HU Linbin, LI Jun, ZHANG Liang, YE Dingding, ZHU Xun. Water transfer between anode and cathode of dual chamber microbial fuel cell [J]. CIESC Journal, 2017, 68(S1): 150-154. |
[11] | ZHAO Yuanyuan, HE Kui, LI Sitao, ZHANG Lizhi. Heat and mass transfer in hollow fiber module for dehumification [J]. CIESC Journal, 2017, 68(S1): 96-104. |
[12] | NIU Lijiao, WANG Wei, PAN Siqi, ZHANG Dawei, CHEN Guohua. Multiphase transport model for freeze-drying of porous media with prefabricated porosity [J]. CIESC Journal, 2017, 68(5): 1833-1844. |
[13] | ZHANG Bin, ZHOU Jiemin, LI Mao. Analysis of heat and mass transfer in two-layer sintering process [J]. CIESC Journal, 2017, 68(5): 1811-1822. |
[14] | LI Meijun, LU Yuan, ZHANG Shijie, XIAO Yunhan. Numerical study of local heat and mass transfer characteristics of falling films over horizontal tubes [J]. CIESC Journal, 2017, 68(4): 1364-1372. |
[15] | DING Weijun, LIU Peng, LIU Weifeng, CHEN Jie, ZHU Hang, HUANG Haobin, CHENG Shao'an. Effect of cyclic voltammetry process on start-up and electricity performance of microbial fuel cells [J]. CIESC Journal, 2017, 68(3): 1205-1210. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||