太阳能光伏光热/催化净化复合技术的研究进展

樊苗苗, 夏小康, 顾涛, 余本东, 季杰

太阳能学报 ›› 2023, Vol. 44 ›› Issue (7) : 96-106.

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太阳能学报 ›› 2023, Vol. 44 ›› Issue (7) : 96-106. DOI: 10.19912/j.0254-0096.tynxb.2022-0413

太阳能光伏光热/催化净化复合技术的研究进展

  • 樊苗苗1, 夏小康1, 顾涛1, 余本东, 季杰4
作者信息 +

RESEARCH PROGRESS ON SOLAR PHOTOVOLTAIC/THERMAL-CATALYTIC/PURIFICATION COMPERHENSIVE TECHNOLOGY

  • Fan Miaomiao1, Xia Xiaokang1, Gu Tao1, Yu Bendong, Ji Jie4
Author information +
文章历史 +

摘要

太阳能光伏光热综合利用系统(PV/T)可产生电能和热能,综合效率大幅提升,但仍存在功能有限、全光谱利用率不高、对回收热能利用形式单一等问题。针对当前PV/T存在的问题,提出太阳能光伏光热/催化净化复合技术的新概念、新系统和新功能。该复合技术实现发电、采暖和净化等多样化功能,并开发了多种太阳能光伏光热/净化建筑一体化系统,不仅进一步提高了系统的综合利用效率、增强了功能性,且提升了室内热环境和空气品质。该文介绍了作者近年来的研究,包括光/热催化型Trombe墙系统、光/热催化型光伏光热复合墙系统、光/热催化型光伏通风窗系统和光伏光热/热除菌杀毒系统,拓展了太阳能光伏光热建筑一体化系统的研究和应用,为实现太阳能在建筑上的高效多功能利用以及营造健康舒适的室内环境提供新方法。

Abstract

The photovoltaic/thermal (PV/T) technology can provide electricity and thermal energy at the same time, the solar comprehensive utilization efficiency has been greatly improved. However, there still exist some issues such as limited function, low full-spectrum utilization efficiency and limited utilization on the recovered thermal energy. As for the problems of the photovoltaic/thermal (PV/T) technology, we have put forward a series of novel concepts, systems and functions for the solar photovoltaic-thermal/catalytic-purification comprehensive technology. The proposed technology can realize functions of electricity generation, heating and air purification. Also, we have developed a series of solar photovoltaic-thermal/catalytic-purification building integrated systems, which not only further improve the solar comprehensive utilization efficiency and enhance the system functionality, but also improve the indoor thermal environment and air quality. This article has introduced the authors′research in recent years, which includes the research on photo/thermal-catalytic Trombe wall, photo/thermal-catalytic PV/T-Trombe wall, photo/thermal-catalytic photovoltaic ventilation window and air-purification-sterilization type PV-Trombe wall. The present works have broadened the research and application of building-integrated photovoltaic/thermal technology and provided the new methods on realizing the highly efficient and multi-functional utilization on solar energy in buildings and creating a healthy and comfortable indoor environment.

关键词

太阳能光伏光热综合利用 / 空气净化 / 建筑节能 / 光/热催化 / 室内环境

Key words

PV/T / air-purification / building energy saving / photocatalytic/thermal-catalytic / indoor environment

引用本文

导出引用
樊苗苗, 夏小康, 顾涛, 余本东, 季杰. 太阳能光伏光热/催化净化复合技术的研究进展[J]. 太阳能学报. 2023, 44(7): 96-106 https://doi.org/10.19912/j.0254-0096.tynxb.2022-0413
Fan Miaomiao, Xia Xiaokang, Gu Tao, Yu Bendong, Ji Jie. RESEARCH PROGRESS ON SOLAR PHOTOVOLTAIC/THERMAL-CATALYTIC/PURIFICATION COMPERHENSIVE TECHNOLOGY[J]. Acta Energiae Solaris Sinica. 2023, 44(7): 96-106 https://doi.org/10.19912/j.0254-0096.tynxb.2022-0413
中图分类号: TK519   

参考文献

[1] 中国建筑节能协会. 中国建筑能耗研究报告2020[J]. 建筑节能(中英文), 2021, 49(2): 1-6.
China Association of Building Energy Efficiency. China building energy consumption annual report 2020[J]. Building energy efficiency, 2021, 49(2): 1-6.
[2] 佟伟钢, 王维宽, 胡赟. 室内空气净化技术及其发展趋势[J]. 科技创新导报, 2013(17): 125-126.
TONG W G, WANG W K, HU Y.Tehnology and development of indoor air purification[J]. Science and technology innovation herald, 2013(17): 125-126.
[3] 江浩芝, 赵婉君. 室内甲醛的危害及其污染现状[J]. 广东化工, 2016, 43(11): 189-201.
JIANG H Z, ZHAO W J.The harm of indoor formaldehyde and its pollution[J]. Guangdong chemical industry, 2016, 43(11): 189-201.
[4] PLAISANCE H, BLONDEL A, DESAUZIERS V, et al.Characteristics of formaldehyde emissions from indoor materials assessed by a method using passive flux sampler measurements[J]. Building and environment, 2014, 73: 249-255.
[5] 陈茜, 周雨薇, 吕阳. 中国严寒地区住宅建筑室内细菌气溶胶污染特征及传播规律[J]. 中国环境科学, 2021, 41(7): 3115-3121.
CHEN Q, ZHOU Y W, LYU Y.Pollution characteristics and transmission of indoor bacteria aerosol in residences in China’s severe cold regions[J]. China environmental science, 2021, 41(7): 3115-3121.
[6] 薛峰, 王清勤, 宋晔皓,等. 碳中和目标下的绿色建筑[J]. 当代建筑, 2021(9): 6-15.
XUE F, WANG Q Q, SONG Y H, et al.Green architecture with goal of carbon neutrality[J]. Contemporary architecture, 2021, (9): 6-15.
[7] 任洪国, 李海红. 严寒地区太阳能光热-光电集成系统设计研究[J]. 建筑节能, 2018, 46(11): 76-79.
REN H G, LI H H.Design and research of solar photothermal-photoelectric integrated system in cold region[J]. Building energy efficiency, 2018, 46(11): 76-79.
[8] 新疆新能源股份有限公司. 太阳能光电、光热技术在住宅建设中的应用[J]. 住宅科技, 2004, (10): 36-38.
Xinjiang New Energy Sources Stock Co.,Ltd. Application of solar photoelectric and light-heat technology in housing construction[J]. Housing science, 2004, (10): 36-38.
[9] 李莉莉, 白羽, 邓立生, 等. 太阳能光热与光电/光热系统在中国不同建筑气候带下的性能研究[J]. 可再生能源, 2021, 39(4): 464-471.
LI L L, BAI Y, DENG L S, et al.Performance study of solar photothermal and photovoltaic/thermal systems in different architectural climate zones in China[J]. Renewable energy resources, 2021, 39(4): 464-471.
[10] YU B D, ZHONG D, LIU J X, et al.A novel solar PV/T driven air purification system based on heterogeneous photocatalytic reaction principles: a short review and preliminary investigation[J]. Energy conversion and management, 2020, 210: 112697.
[11] YU B D, HE W S, LI N S, et al.Experiments and kinetics of solar PCO for indoor air purification in PCO/TW system[J]. Building and environment, 2017, 115: 130-146.
[12] 郭超, 季杰, 孙炜, 等. 多功能太阳能PV/T集热器的光电/光热性能研究[J]. 太阳能学报, 2017, 38(2): 372-377.
GUO C, JI J, SUN W, et al.Performance syudy of multi-function solar PV/T collector[J]. Acta energiae solaris sinica, 2017, 38(2): 372-377.
[13] 魏葳, 骆仲泱, 赵佳飞, 等. 太阳能光电-光热综合利用系统[J]. 上海节能, 2010(5): 12-16.
WEI W, LUO Z Y, ZHAO J F, et al.Solar energy optic-electro and optic-thermal composite utilization system[J]. Shanghai energy saving, 2010(5): 12-16.
[14] 龙文志. 光电光热建筑一体化(BIPVT)刍议[J]. 中国建筑防水, 2015(11): 18-23.
LONG W Z.Humble opinion on photovoltaic-thermal building integration (BIPVT)[J]. China building waterproofing, 2015(11): 18-23.
[15] 肖瑶, 钮文泽, 魏高升, 等. 太阳能光伏/光热技术研究现状与发展趋势综述[J]. 发电技术, 2022, 43(3): 392-404.
XIAO Y, NIU W Z, WEI G S, et al.Review on research status and developing tendency of solar photovoltaic/thermal technology[J]. Power generation technology, 2022, 43(3): 392-404.
[16] 周玲. 基于南方(桂南)地区的太阳能光伏光热建筑一体化研究[D]. 南宁: 广西大学, 2018.
ZHOU L.Research on integration of solar photovoltaic and photo thermal building in southern Guangxi[D]. Nanning: Guangxi University, 2018.
[17] 房建军. 光伏建筑一体化融合理念和光伏系统设计要点[J]. 科技和产业, 2021, 21(5): 251-254.
FANG J J.Integration concept of building integrated photovoltaic and design points of photovoltaic system[J]. Science technology and industry, 2021, 21(5): 251-254.
[18] WANG C Y, JI J, YU B D, et al.Investigation on the operation strategy of a hybrid BIPV/T façade in plateau areas: an adaptive regulation method based on artificial neural network[J]. Energy, 2022, 239: 122055.
[19] BAI B Y, QIAO Q, LI J H, et al.Progress in research on catalysts for catalytic oxidation of formaldehyde[J]. Chinese journal of catalysis, 2016, 37(1): 102-122.
[20] ZHANG C B, HE H.A comparative study of TiO2 supported noble metal catalysts for the oxidation of formaldehyde at room temperature[J]. Catalysis today, 2007, 126(3): 345-350.
[21] NIE L H, YU J G, LI X Y, et al.Enhanced performance of NaOH-modified Pt/TiO2 toward room temperature selective oxidation of formaldehyde[J]. Environmental science & technology, 2013, 47(6): 2777-2783.
[22] TANG X F, CHEN J L, HUANG X M, et al.Pt/MnOx-CeO2 catalysts for the complete oxidation of formaldehyde at ambient temperature[J]. Applied catalysis B: environmental, 2008, 81(1): 115-121.
[23] TANG X F, LI Y G, HUANG X M, et al.MnOx-CeO2 mixed oxide catalysts for complete oxidation of formaldehyde: effect of preparation method and calcination temperature[J]. Applied catalysis B: environmental, 2006, 62(3): 265-273.
[24] XIE X W, LI Y, LIU Z Q, et al.Low-temperature oxidation of CO catalysed by Co3O4 nanorods[J]. Nature, 2009, 458(7239): 746-749.
[25] PEI J J, HAN X, LU Y.Performance and kinetics of catalytic oxidation of formaldehyde over copper manganese oxide catalyst[J]. Building and environment, 2015, 84: 134-141.
[26] ZHONG L, HAGHIGHAT F.Photocatalytic air cleaners and materials technologies-abilities and limitations[J]. Building and environment, 2015, 91: 191-203.
[27] VIVAR M, SKRYABIN I, EVERETT V, et al.A concept for a hybrid solar water purification and photovoltaic system[J]. Solar energy materials and solar cells, 2010, 94(10): 1772-1782.
[28] MASOTTI F, CATTANEO S, STUKNYTĖ M, et al.Airborne contamination in the food industry: an update on monitoring and disinfection techniques of air[J]. Trends in food science & technology, 2019, 90: 147-156.
[29] MOON H S, LEE J H, KWON K, et al.Review of recent progress in micro-systems for the detection and analysis of airborne microorganisms[J]. Analytical letters, 2012, 45(2-3): 113-129.
[30] MCGUIGAN K G, JOYCE T M, CONROY R M, et al.Solar disinfection of drinking water contained in transparent plastic bottles: characterizing the bacterial inactivation process[J]. Journal of applied microbiology, 1998, 84(6): 1138-1148.
[31] JIN Y V, WANG Y P, HUANG Q W, et al.The performance and applicability study of a fixed photovoltaic-solar water disinfection system[J]. Energy conversion and management, 2016, 123: 549-558.
[32] 鲍作义, 刘永健, 刘思扬, 等. SARS 病毒对温度耐受性的实验研究[J]. 中国消毒学杂志, 2003(3): 7-8.
BAO Z Y, LIU Y J, LIU S Y, et al.Endurance of SARS virus different temperatures[J]. Chinese journal of disinfection, 2003(3): 7-8.
[33] 胡克. 新型冠状病毒肺炎: 问题与困惑[J]. 中国临床药理学与治疗学, 2020, 25(2): 141-143.
HU K.New coronavirus pneumonia: question and confusion[J]. Chinese journal of clinical pharmacology and therapeutics, 2020, 25(2): 141-143.
[34] JUNG J H, LEE J E, KIM S S.Thermal effects on bacterial bioaerosols in continuous air flow[J]. Science of the total environment, 2009, 407(16): 4723-4730.
[35] ZHANG X X, ZHAO X D, SHEN J C, et al.Design, fabrication and experimental study of a solar photovoltaic/loop-heat-pipe based heat pump system[J]. Solar energy, 2013, 97: 551-568.
[36] DAMIT B, WU C Y, YAO M S.Ultra-high temperature infrared disinfection of bioaerosols and relevant mechanisms[J]. Journal of aerosol science, 2013, 65: 88-100.
[37] IBRAHIM A, OTHMAN M Y, RUSLAN M H, et al.Recent advances in flat plate photovoltaic/thermal (PV/T) solar collectors[J]. Renewable and sustainable energy reviews, 2011, 15(1): 352-365.
[38] 李浦光. 太阳能光伏光热综合利用采暖通风系统性能研究[D]. 西安: 西安科技大学, 2021.
LI P G.Performance research of solar PV/T comprehensive utilization heating and ventilation system[D]. Xi’an: Xi’an University of Science and Technology, 2021.
[39] ZHANG T T, TAN Y F, YANG H X, et al.The application of air layers in building envelopes: a review[J]. Applied energy, 2016, 165: 707-734.
[40] OMRANY H, GHAFFARIANHOSEINI A, GHAFFARIANHOSEINI A, et al.Application of passive wall systems for improving the energy efficiency in buildings: a comprehensive review[J]. Renewable and sustainable energy reviews, 2016, 62: 1252-1269.
[41] YU B D, HE W, LI N S, et al.Experimental and numerical performance analysis of a TC-Trombe wall[J]. Applied energy, 2017, 206: 70-82.
[42] YU B D, HOU J X, HE W, et al.Study on a high-performance photocatalytic-Trombe wall system for space heating and air purification[J]. Applied energy, 2018, 226: 365-380.
[43] YU B D, YANG J C, HE W, et al.The performance analysis of a novel hybrid solar gradient utilization photocatalytic-thermal-catalytic-Trombe wall system[J]. Energy, 2019, 174: 420-435.
[44] YU B D, LI N S, JI J V.Performance analysis of a purified Trombe wall with ventilation blinds based on photo-thermal driven purification[J]. Applied energy, 2019, 255: 113846.
[45] WANG C Y, LI N S, GU T, et al.Design and performance investigation of a novel double-skin ventilated window integrated with air-purifying blind[J]. Energy, 2022, 254: 124476.
[46] YU B D, LIU X Y, LI N S, et al.The performance analysis of a purified PV/T-Trombe wall based on thermal catalytic oxidation process in winter[J]. Energy conversion and management, 2020, 203: 112262.
[47] WANG C Y, UDDIN M M, JI J, et al.The performance analysis of a double-skin ventilated window integrated with CdTe cells in typical climate regions[J]. Energy and buildings, 2021, 241: 110922.
[48] YU B D, LI N S, JI J, et al.Thermal, electrical and purification performance of a novel thermal-catalytic CdTe double-layer breathing window in winter[J]. Renewable energy, 2021, 167: 313-332.
[49] WANG C Y, LI N S, YU B D, et al.A novel solar spectrum-splitting utilization photocatalytic CdTe double-skin façade: concept, design and performance investigation[J]. Building and environment, 2021, 195: 107776.
[50] XIE H, YU B D, WANG J, et al.A novel disinfected Trombe wall for space heating and virus inactivation: concept and performance investigation[J]. Applied energy, 2021, 291: 116789.
[51] YU B D, LI N S, YAN C C, et al.The comprehensive performance analysis on a novel high-performance air-purification-sterilization type PV-Trombe wall[J]. Renewable energy, 2022, 182: 1201-1218.

基金

国家自然科学基金(51908527); 广东省新能源和可再生能源研究开发与应用重点实验室开放基金(E239kf1001); 建筑节能安徽省工程技术中心开放课题(AHJZJN-2021-03)

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