Journal of Desert Research ›› 2026, Vol. 46 ›› Issue (4): 321-332.DOI: 10.7522/j.issn.1000-694X.2026.00051
Previous Articles Next Articles
Yanqiu Yang1(
), Jing Liu3, Zhongju Meng1,2(
), Ruibing Meng1, Jiale Cai1, Yue Gao1
Received:2026-01-08
Revised:2026-04-10
Online:2026-07-20
Published:2026-08-27
Contact:
Zhongju Meng
CLC Number:
Yanqiu Yang, Jing Liu, Zhongju Meng, Ruibing Meng, Jiale Cai, Yue Gao. Impact of flexible-support photovoltaic arrays on wind-sand movement in desert regions[J]. Journal of Desert Research, 2026, 46(4): 321-332.
Add to citation manager EndNote|Ris|BibTeX
URL: http://www.desert.ac.cn/EN/10.7522/j.issn.1000-694X.2026.00051
| 刚性光伏支架 | 柔性光伏支架 | |
|---|---|---|
| 结构形式 | 钢结构支架+桩基础 | 索系结构+钢构件+桩基础+边锚 |
| 支架净空高度 | 常见≤2.0 m | ≥4.0 m |
| 单跨跨距(东西向) | 3.0~4.0 m | 10~60 m |
| 组件倾角 | 沙区常见36°(固定倾角) | 45°(可优化设计) |
| 生态利用条件 | 农业机械通行受限,以人工维护为主 | 可满足大型农业机械通行与植被恢复 |
| 适用场地特点 | 地势平坦地段、地基条件良好 | 适应复杂地形条件,场地适应性强 |
Table 1 Comparison of rigid and flexible photovoltaic mounting systems[21-23]
| 刚性光伏支架 | 柔性光伏支架 | |
|---|---|---|
| 结构形式 | 钢结构支架+桩基础 | 索系结构+钢构件+桩基础+边锚 |
| 支架净空高度 | 常见≤2.0 m | ≥4.0 m |
| 单跨跨距(东西向) | 3.0~4.0 m | 10~60 m |
| 组件倾角 | 沙区常见36°(固定倾角) | 45°(可优化设计) |
| 生态利用条件 | 农业机械通行受限,以人工维护为主 | 可满足大型农业机械通行与植被恢复 |
| 适用场地特点 | 地势平坦地段、地基条件良好 | 适应复杂地形条件,场地适应性强 |
| 指示风速 | 位置 | 风速廓线回归方程 | 粗糙度/m | 摩阻速度/(m·s-1) |
|---|---|---|---|---|
| 7.54 m·s-1 | 对照组 | u=0.66ln(z)+3.55 R2 =0.98 | 0.004 | 0.264 |
| 阵列上风向 | u=0.61ln(z)+3.17 R2 =0.98 | 0.005 | 0.243 | |
| 阵列内部 | u=0.78ln(z)+1.81 R2 =0.94 | 0.100 | 0.314 | |
| 阵列下风向 | u=0.75ln(z)+1.02 R2 =0.95 | 0.256 | 0.300 | |
| 指示风速 | 位置 | 风速廓线回归方程 | 粗糙度/m | 摩阻速度/(m·s-1) |
| 9.16 m·s-1 | 对照组 | u=0.86ln(z)+4.13 R2 =0.98 | 0.008 | 0.343 |
| 阵列上风向 | u=0.75ln(z)+3.34 R2 =0.85 | 0.011 | 0.301 | |
| 阵列内部 | u=0.76ln(z)+2.16 R2 =0.91 | 0.058 | 0.304 | |
| 阵列下风向 | u=0.79ln(z)+1.22 R2 =0.96 | 0.213 | 0.315 |
Table 2 Surface roughness and friction velocity of the flexible photovoltaic mounts array under varying indicated wind speeds and positions
| 指示风速 | 位置 | 风速廓线回归方程 | 粗糙度/m | 摩阻速度/(m·s-1) |
|---|---|---|---|---|
| 7.54 m·s-1 | 对照组 | u=0.66ln(z)+3.55 R2 =0.98 | 0.004 | 0.264 |
| 阵列上风向 | u=0.61ln(z)+3.17 R2 =0.98 | 0.005 | 0.243 | |
| 阵列内部 | u=0.78ln(z)+1.81 R2 =0.94 | 0.100 | 0.314 | |
| 阵列下风向 | u=0.75ln(z)+1.02 R2 =0.95 | 0.256 | 0.300 | |
| 指示风速 | 位置 | 风速廓线回归方程 | 粗糙度/m | 摩阻速度/(m·s-1) |
| 9.16 m·s-1 | 对照组 | u=0.86ln(z)+4.13 R2 =0.98 | 0.008 | 0.343 |
| 阵列上风向 | u=0.75ln(z)+3.34 R2 =0.85 | 0.011 | 0.301 | |
| 阵列内部 | u=0.76ln(z)+2.16 R2 =0.91 | 0.058 | 0.304 | |
| 阵列下风向 | u=0.79ln(z)+1.22 R2 =0.96 | 0.213 | 0.315 |
| 指示风速 | 高度 | 对照组 | 阵列上风向 | 阵列内部 | 阵列下风向 |
|---|---|---|---|---|---|
| 9.16 m·s-1 | 0~10 cm | 0.685 | 0.528 | 0.384 | 0.207 |
| 2~10 cm(上层) | 0.284 | 0.210 | 0.151 | 0.053 | |
| 1~2 cm(中层) | 0.182 | 0.136 | 0.088 | 0.043 | |
| 0~1 cm(下层) | 0.219 | 0.182 | 0.145 | 0.110 | |
| 特征值λ | 2.128 | 1.901 | 1.648 | 0.873 |
Table 3 Characteristic parameters of aeolian sand flow at different positions in the flexible photovoltaic mounts array
| 指示风速 | 高度 | 对照组 | 阵列上风向 | 阵列内部 | 阵列下风向 |
|---|---|---|---|---|---|
| 9.16 m·s-1 | 0~10 cm | 0.685 | 0.528 | 0.384 | 0.207 |
| 2~10 cm(上层) | 0.284 | 0.210 | 0.151 | 0.053 | |
| 1~2 cm(中层) | 0.182 | 0.136 | 0.088 | 0.043 | |
| 0~1 cm(下层) | 0.219 | 0.182 | 0.145 | 0.110 | |
| 特征值λ | 2.128 | 1.901 | 1.648 | 0.873 |
| [1] | 邹才能,陈艳鹏,熊波,等.碳中和目标下中国新能源使命[J].中国科学院院刊,2023,38(1):48-58. |
| [2] | 欧阳志政.太阳能光伏电站助力乡村振兴发展[J].太阳能学报,2024,45(11):757. |
| [3] | 刘永杰,杨琴,苏军虎,等.光伏发电与“三北”工程建设协同发展分析[J].中国草地学报,2024,46(12):122-129. |
| [4] | 乔慧.光伏电站风沙运动特征及植被恢复对土壤的影响[D].呼和浩特:内蒙古农业大学,2023. |
| [5] | Campana P E, Macknick J, Croci M,et al.Scientific frontiers of agrivoltaic cropping systems[J].Nature Reviews Clean Technology,2025:1-21. |
| [6] | Li M, Chen T, Ma S,et al.Wind field characteristics of photovoltaic arrays based on wind tunnel tests[J].Solar Energy,2025,300:113867. |
| [7] | 刘雅婧,王丹阳,常旭,等.光伏电站建设对西北荒漠区生态环境的影响研究进展[J].中国水土保持科学,2025,23(2):9-17. |
| [8] | 周茂荣,王喜君.光伏电站工程对土壤与植被的影响:以甘肃河西走廊荒漠戈壁区为例[J].中国水土保持科学,2019,17(2):132-138. |
| [9] | 王喜君.河西走廊戈壁荒漠区光伏电站占地分析及水土流失特征研究[J].中国水土保持,2019(9):11-14. |
| [10] | Abdeen E, Orabi M, Hasaneen E S.Optimum tilt angle for photovoltaic system in desert environment[J].Solar energy,2017,155:267-280. |
| [11] | 赵飞燕.库布齐沙漠集中固定式光伏阵列扰流效应及地表蚀积调控研究[D].呼和浩特:内蒙古农业大学,2025. |
| [12] | 牛清河,苏春丽,肖建华,等.青藏高原苏干湖盆地光伏电站对戈壁风沙环境的影响[J].中国沙漠,2025,45(6):249-257. |
| [13] | 田小武,唐希明,陈淑瑾,等.沙漠区光伏阵列布局对近地表风沙流场的影响[J].水土保持通报,2026,46(1):236-248. |
| [14] | 杨世荣,凌侠,蒙仲举,等.库布齐沙漠生态光伏电站风速脉动特征[J].干旱区研究,2019,36(5):1309-1317. |
| [15] | Shi F, Huang N.Measurement and simulation of sand saltation movement under fluctuating wind in a natural field environment[J].Physica A:Statistical Mechanics and its Applications,2012,391(3):474-484. |
| [16] | 唐国栋.沙区光伏阵列地表形变规律及其动力学机制[D].呼和浩特:内蒙古农业大学,2021. |
| [17] | 贾瑞庭,蒙仲举,党晓宏,等.库布齐沙漠200MWp光伏阵列的截流阻沙效应研究[J].中国农业科技导报,2021,23(4):137-144 |
| [18] | 王浩,李生宇,王海峰,等.沙漠光伏电站地表蚀积发生机制实验研究[J].干旱区研究,2025,42(2):349-359. |
| [19] | 赵明智,张丹,宫博,等.沙漠环境对光伏组件的影响研究[J].太阳能学报,2020,41(5):365-370. |
| [20] | 李晓诚,张营营,周祎,徐俊豪.柔性光伏支架结构研究综述[J].土木工程,2023,12(3):290-297. |
| [21] | 罗叠峰,李文露,翟朗.柔性光伏支架结构的抗风设计及风振研究综述[J].自然灾害学报,2025,34(4):1-15. |
| [22] | Lou Y, Zhang J, Pan Y.Static and dynamic response analysis of flexible photovoltaic mounts[J].Buildings,2024,14(7):2037. |
| [23] | 郭涛,杨渊茗,孙震,等.光伏组件柔性拖曳结构与传统刚性结构风振响应对比[J].太阳能学报,2024,45(10):317-325 |
| [24] | 张春伟,柯世堂,余玮,等.基于风洞试验大跨柔性光伏阵列上下表面脉动风压联合概率分布模型[J].太阳能学报,2025,46(7):701-709. |
| [25] | Zhou R, Xu Z, Wang H.Parametric study on flutter performance of three-cable-supported flexible photovoltaic support structure[J].Thin-Walled Structures,2025,210:112975. |
| [26] | Cai Q, Ke S, Wang L,et al.Evolution of wind-induced vibration form of large-span flexible PV aeroelastic arrays[J].Solar Energy,2024,277:112684. |
| [27] | 亿恒智慧(北京)能源技术有限公司,亿利资源集团有限公司.一种光伏发电支架系统及其安装方法:202311266679.4[P].2023-12-22. |
| [28] | Wiggs G F S.Desert dune dynamics and the evaluation of shear velocity:an integrated approach[J].Geological Society,London,Special Publications,1993,72(1):37-46. |
| [29] | Wiggs G F S, Livingstone I, Thomas D S G,et al.Airflow and roughness characteristics over partially vegetated linear dunes in the southwest Kalahari Desert[J].Earth Surface Processes and Landforms,1996,21(1):19-34. |
| [30] | Sharratt B, Feng Guanglong.Friction velocity and aerodynamic roughness of conventional and undercutter tillage within the Columbia Plateau,USA[J].Soil and Tillage Research,2009,105(2):236-241 |
| [31] | 张呈春,张维福,展秀丽,等.腾格里沙漠光伏阵列对气流场和风沙流的扰动作用[J].水土保持通报,2024,44(4):55-65+76. |
| [32] | 郭树江,杨自辉,王强强 等.青土湖干涸湖底风沙流结构及输沙粒径特征[J].生态学杂志,2021,40(4):1166-1176. |
| [33] | 唐国栋,蒙仲举,高永,等.基于风洞试验的风沙区光伏阵列近地表形态变化规律研究[J].水土保持通报,2022,42(4):1-8. |
| [34] | 杨若婷,牛清河,屈建军,等.青海共和盆地固定支架式光伏阵列对阵内风场的影响[J].中国沙漠,2022,42(5):114-121. |
| [35] | 袁方,张振师,卜崇峰,等.毛乌素沙地光伏电站项目区风速流场及风蚀防治措施[J].中国沙漠,2016,36(2):287-294. |
| [36] | 梁志,师宇,张哲,等.大气稳定度对边界层垂直风切变的影响[J].中国科学院大学学报(中英文),2024,41(3):365-374. |
| [37] | 赵鹏宇.光伏电板对地表土壤颗粒及小气候的影响[D].呼和浩特:内蒙古农业大学,2016. |
| [38] | Zhang F, Wen Y, Jiang M,et al.Wind speed profile model of the desert photovoltaic arrays[J].Journal of Wind Engineering and Industrial Aerodynamics,2025,267:106239. |
| [39] | 谢贇.榆林毛乌素沙地光伏+治沙生态恢复效应与功能评价[D].陕西杨凌:西北农林科技大学,2025. |
| [40] | 李锦荣,韩兆恩,唐国栋,等.冻结对沙丘土壤抗风蚀能力的影响[J].水土保持学报,2025,39(1):38-45. |
| [41] | 郭彩贇,韩致文,李爱敏,等.库布齐沙漠110MW光伏基地次生风沙危害的动力学机制[J].中国沙漠,2018,38(2):225-232. |
| [42] | Zhang J, Lou Y.Study of wind load influencing factors of flexibly supported photovoltaic panels[J].Buildings,2024,14(6): 1677. |
| [43] | 李寿英,杨丹,刘佳琪,等.复杂工况下柔性光伏支架阵列风荷载特性及其遮挡效应[J].东南大学学报(自然科学版),2025,55(5):1228-1235. |
| [44] | 黄斌,周之杰,李正农,等.风沙流对沙漠光伏组件及其发电效率的影响研究进展[J].空气动力学学报,2025,43(04):64-79. |
| [45] | Wang X, Zhang C, Huang X,et al.Wind tunnel tests of the dynamic processes that control wind erosion of a sand bed[J].Earth Surface Processes and Landforms,2019,44(2):614-623. |
| [46] | 陈曦,高永,翟波,等.沙区光伏电场的风沙流输移特征[J].干旱区研究,2019,36(3):684-690. |
| [47] | 张正偲,董治宝.腾格里沙漠东南部野外风沙流观测[J].中国沙漠,2013,33(4):973-980. |
| [48] | 张春伟,柯世堂,王伯洋,等.基于物理约束深度学习的大跨柔性光伏阵列绕流场重构[J].空气动力学学报,2025,43(4):91-102. |
| [49] | Wang Z, Chen H, Li Q,et al. Photovoltaic alters microhabitats and soil-vegetation feedbacks in a fragile semi‐arid ecosystem[J].Land Degradation & Development,2025. |
| [50] | 左强,杨昊天,杨奕颖,等.沙漠光伏建设模式通过土壤水分影响固沙草本植物生长特征[J].中国沙漠,2025,45(3):291-301. |
| [1] | Yongwu Xu, Gaoling Han. Vegetation comparison between the Kubuqi Desert and the Ulan Buh Desert [J]. Journal of Desert Research, 2026, 46(4): 48-58. |
| [2] | Shiqi Wei, Yinzhu Liu, Qijie Yu, Jieqiong Su, Yahu Hu. Effects of agrivoltaic systems coupled with drip irrigation on desert soil environment [J]. Journal of Desert Research, 2026, 46(2): 104-112. |
| [3] | Zhiwei Jiang, Zhibo Yang, Qing Yang, Jie Hu, Qianya Liu, Lingling Yu, Honghong Zhang, Zhaojing Dan, Lei Tian. Temporal and spatial variation of vegetation cover in Kubuqi Desert from 2000 to 2022 and its driving factors [J]. Journal of Desert Research, 2025, 45(5): 124-133. |
| [4] | Jinrong Li, Zhaoen Han, Wei Cui, Xiaolin Jin, Chunhua Dou. Wind tunnel simulation of wind-sand transport characteristics over frozen dune surfaces [J]. Journal of Desert Research, 2025, 45(1): 229-241. |
| [5] | Ji'an Yu, Sitong Liu, Xiaorong Shi, Yunyun Qi. The theoretical logic, business model and experience enlightenment of enterprise participation in desertification control under the multi-governance model [J]. Journal of Desert Research, 2024, 44(4): 244-252. |
| [6] | Yu Yan, Hejun Zuo, Min Yan, Cheng Xi, Jiaqi Dong, Limei Niu. Lake number and area in Kubuqi Desert from 1986 to 2020 [J]. Journal of Desert Research, 2024, 44(2): 151-161. |
| [7] | Lingling Kong, Zhibao Dong, Ziyi Bai, Fengjun Xiao, Huirong Ma, Ruicong Xu. Effects of vegetation cover and configuration on soil wind erosion based on wind tunnel experiments [J]. Journal of Desert Research, 2024, 44(1): 235-243. |
| [8] | Guanglu Hu, Haizhi Chen, Jin Ma, Hu Tao, Chengqian Zhou, Peng Liu. Windbreak and sand-fixation effects of typical shrub plants in the desert-oasis transitional zone in the middle reaches of the Heihe River [J]. Journal of Desert Research, 2023, 43(5): 31-40. |
| [9] | Qingshuang Meng, Hejun Zuo, Min Yan, Haibing Wang, Cheng Xi. Relationship between constant elements and granularity of the surface sediment in the Kubuqi Desert [J]. Journal of Desert Research, 2023, 43(4): 107-117. |
| [10] | Longzhen Lin, Jia Zheng, Zhen Lin. Study on willingness to pay and influencing factors of Kubuqi desertification control based on CVM Data [J]. Journal of Desert Research, 2020, 40(6): 190-200. |
| [11] | Xie Fei, Wei Hui, Zhang Kai, Chen Yanzhao, Chen Nianlai. Effects of Intercropping Time and Planting Density on Solar Energy Utilization Efficiency of Melon/Sunflower Intercropping System [J]. JOURNAL OF DESERT RESEARCH, 2015, 35(3): 652-657. |
| [12] | Yuan Limin, Gao Yong, Huang Haiguang, Yan Denren, Hu Xiaolong, Hu Zhijian. Effect of Bio-module Sand Barrier on Distribution Characteristics of Soil Microbial in Mobile Dunes [J]. JOURNAL OF DESERT RESEARCH, 2015, 35(1): 189-194. |
| [13] | Hu Mengchun. Solar Energy Facility Used in Vegetables Culture in Gobi-desert Area:Morphological, Microstructural and Physiological Performance of the Plants [J]. JOURNAL OF DESERT RESEARCH, 2014, 34(1): 56-59. |
| [14] | SUN Yin-chuan1, BAI Yong-qing2, ZUO He-jiang1. Correction of Solar Radiation Forecast and Photovoltaic Power Prediction in Ningxia by Localization WRF Model [J]. JOURNAL OF DESERT RESEARCH, 2012, 32(6): 1738-1742. |
| [15] | QU Jian-jun, ZHANG Ke-cun, ZHANG Wei-min, LIAO Kong-tai, NIU Qing-he, HAN Qing-jie. Characteristics of Sand-blown Flow over Simulated Gobi Surfaces [J]. JOURNAL OF DESERT RESEARCH, 2012, 32(2): 285-290. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||
©2018Journal of Desert Research
Tel:0931-8267545
Email:caiedit@lzb.ac.cn;desert@lzb.ac.cn
Support:Magtech