Journal of Civil Aviation University of China ›› 2023, Vol. 41 ›› Issue (3): 31-40.
• Civil Aviation • Previous Articles Next Articles
HUANG Yanni 1 , CHEN Feng1 , Pak-wai Chan2
Received:2021-10-17
Revised:2022-01-12
Online:2023-06-27
Published:2023-10-27
CLC Number:
HUANG Yanni , CHEN Feng , Pak-wai Chan. Influence of terrain on low-level windshear at the approach-departure paths of HKIA[J]. Journal of Civil Aviation University of China, 2023, 41(3): 31-40.
Add to citation manager EndNote|Reference Manager|ProCite|BibTeX|RefWorks
| [1] | ICAO. Meteorological service for international air navigation: annex 3 to the convention on international civil aviation [M]. 16th ed. Montreal: ICAO, 2007. |
| [2] | FICHTL G H. Wind shear near the ground and aircraft operations[J]. |
| Journal of Aircraft, 1972, 9(11): 765-770. | |
| [3] | 梁爱民, 陈 露. 低空风切变与飞行安全[J]. 中国民用航空, 2009(9): 32. |
| [4] | SHUN C M, LAU S Y. Implementation of a Doppler light detection and ranging (LIDAR) system for the Hong Kong International Airport[C]//The 10th Conference on Aviation, Range and Aerospace Meteorology of the AmericanMeteorological Society(AMS), May 13-16, 2002, Portland,Oregon, USA. AMS , 2002. |
| [5] | 代冰冰, 何 敏, 杨靖新, 等. 利用激光雷达判别机场晴空风切变事 件成因[J]. 气象科技, 2021, 49(4): 589-596. |
| [6] | TSE K T, LI S W, FUNG J C H. A comparative study of typhoon wind profiles derived from field measurements, meso-scale numerical simu- lations, and wind tunnel physical modeling[J]. Journal of Wind Engi- neering & Industrial Aerodynamics, 2014, 131: 46-58. |
| [7] | 蒋立辉, 刘晓宇, 李 贞, 等. 兰州中川机场周围地形和建筑物对风 场的影响研究[J]. 计算机与数字工程, 2018, 46(3): 561-565, 626. |
| [8] | 沈宏彬, 赵润华, 张 潇, 等. 西南地区低空风切变事件分析[J]. 高原 山地气象研究, 2013, 33(3): 37-42. |
| [9] | 徐 海, 邹 捍, 李 鹏, 等. 藏东南林芝机场低层风场垂直结构与 变化特征[J]. 高原气象, 2014, 33(2): 355-360. |
| [10] | 曾志刚. 厦门机场低空风切变产生的地理成因分析[J]. 中国民航飞 行学院学报, 2012, 23(2): 26-28. |
| [11] | 蒋立辉, 王 斌, 庄子波, 等. 基于数值模式的风场时空变化特征的 统计分析[J]. 解放军理工大学学报(自然科学版), 2012, 13(4): 466472 |
| [12] 蒋立辉, 秦宇焘, 杨依莹, 等. 航空数值天气预报模式下风场及风切 变小尺度数值模拟[J]. 科学技术与工程, 2016, 16(13): 156-161. | |
| [13] 熊兴隆, 李 贞. 基于香港机场近地层典型风场数值仿真研究[J]. | |
| 计算机与数字工程, 2019, 47(5): 1223-1228. | |
| [14] SHUN C M, CHAN P W. Applications of an infrared Doppler lidar in detection of wind shear[J]. Journal of Atmospheric and Oceanic Technology, 2008, 25(5): 637-655. | |
| [15] CHAN P W. Severe wind shear at Hong Kong International Airport: cli- matology and case studies[J]. Meteorological Applications, 2017, 24(3): 397-403. | |
| [16] SHUN C M, CHENG C M, LEE O. LIDAR observations of terrain-in- duced flow and its application in airport wind shear monitoring[C]//In- ternational Conference on Alpine Meteorology (ICAM) and Mesoscale Alpine Programme (MAP) Meeting, May 19-23, 2003, Brig, Switzerland, 2003. | |
| [17] CHAN P W, SHUN C M, WU K C. Operational LIDAR based system for automatic windshear alerting at the Hong Kong International Airport [C]//The 12th Conference on Aviation, Range, & Aerospace Meteorolo- gy, January 29-February 2, 2006, Atlanta, GA, USA. AMC, 2006. | |
| [18] CHAN P W, HON K K, SHIN D K. Combined use of headwind ramps and gradients based on LIDAR data in the alerting of low-level winds- hear/turbulence[J]. Meteorologische Zeitschrift, 2011, 20(6): 661-670. | |
| [19] CHAN P W. Application of LIDAR-based F-factor in windshear alert- ing[J]. Meteorologische Zeitschrift, 2012, 21(2): 193-204. | |
| [20] LEE Y F, CHAN P W. LIDAR-based F-factor for wind shear alerting: different smoothing algorithms and application to departing flights[J]. | |
| Meteorological Applications, 2014, 21(1): 86-93. | |
| [21] 陈 星, 李 贞, 庄子波, 等. 测风激光雷达修正 F 因子的小尺度风 切变检测算法[J]. 光学精密工程, 2018, 26(4): 927-935. | |
| [22] CHEN F, PENG H, CHAN P W, et al Wind tunnel testing of the effect of terrain on the wind characteristics of airport glide paths[J]. Journal of Wind Engineering and Industrial Aerodynamics, 2020, 203: 104253. | |
| [23] 张嘉荣, 程雪玲. 基于 CFD 降尺度的复杂地形风场数值模拟研究 [J]. 高原气象, 2020, 39(1): 172-184. | |
| [24] LIU C H, LEUNG D Y C, MAN A C S, et al Computational fluid dy- namics simulation of the wind flow over an airport terminal building[J]. | |
| Journal of Zhejiang University-SCIENCE A(Applied Physics & Engineering), 2010, 11(6): 389-401. | |
| [25] CHAN P W, LO W Y, LEUNG D Y C. Low level wind effects of the hangers at the Hong Kong International Airport[C]//The 5th International Symposium on Computational Wind Engineering(CWE2010), May 2327, 2010, Chapel Hill, NC, USA, 2010. | |
| [26] LEUNG D Y C, LO W Y, CHOW W Y, et al Effect of terrain and build- ing structures on the airflow in an airport[J]. Journal of Zhejiang Uni- versity-SCIENCE A(Applied Physics & Engineering), 2012, 13(6): 461-468. | |
| [27] 蒋立辉, 郭 炜, 庄子波, 等. 基于流体力学的复杂地形下机场风场 数值模拟[J]. 中国民航飞行学院学报, 2015, 26(5): 20-22, 27. | |
| [28] TSE L K S, GUAN Y, LI L K B, RANS simulations of terrain-disrupted turbulent airflow at Hong Kong International Airport[J]. Computers & Mathematics with Applications, 2021, 81: 737-758. | |
| [29] 沈 炼, 韩 艳, 蔡春声, 等. 山区峡谷桥址处风场实测与数值模拟 研究[J]. 湖南大学学报(自然科学版), 2016, 43(7): 16-24. | |
| [30] 周 桐, 杨庆山, 闫渤文, 等. 大气边界层大涡模拟入口湍流生成方 法综述[J]. 工程力学, 2020, 37(5): 15-25. | |
| [31] 沈 炼, 华旭刚, 韩 艳, 等. 高精度入口边界的峡谷桥址风场数值 模拟[J]. 中国公路学报, 2020, 33(7): 114-123. | |
| [32] 刘 漫. 建筑结构的风致、风驱雨及流固耦合效应的数值模拟研究 [D]. 长沙: 湖南大学, 2019. | |
| [33] CHAUDHARI A, HELLSTEN A, H魧M魧L魧INEN J. Full-scale experi- mental validation of large-eddy simulation of wind flows over complex terrain: the bolund hill[J].AdvancesinMeteorology, 2016, 2016: 1-14. | |
| [34] 胡伟成, 杨庆山, 张 建. 湍流边界层中三维山丘地形风场大涡模 拟[J]. 工程力学, 2019, 36(4): 72-79. | |
| [35] CHAN P W. Terrain-disrupted airflow over the Hong Kong Interna- tional Airport (HKIA) in the southwest monsoon[C]//The 29th Interna- tional Conference on Alpine Meteorology, June 4-8, 2007, Chambéry, France, 2007. | |
| [36] 中华人民共和国住房和城乡建设部. 建筑工程风洞试验方法标准: JGJ/T 338—2014[S]. 北京: 中国建筑工业出版社, 2014. | |
| [37] LI L, CHAN P W, ZHANG L J, et al Numerical simulation of a lee wave case over three -dimensional mountainous terrain under strong wind condition[J]. Advances in Meteorology, 2013, 2013: 1-13. | |
| [38] LI L, CHAN P W, ZHANG L J, et al Numerical simulation of terraininduced vortex/wave shedding at the Hong Kong International Airport [J]. Meteorologische Zeitschrift, 2013, 22(3): 317-327. | |
| [39] 中华人民共和国交通运输部. 公路桥梁抗风设计规范: JTG/T 336001—2018[S]. 北京: 人民交通出版社, 2019. | |
| [40] LIU Z Q ISHIHARA T, HE X H, et al LES study on the turbulent flow fields over complex terrain covered by vegetation canopy[J]. Journal of Wind Engineering and Industrial Aerodynamics, 2016, 155: 60-73. | |
| [41] CHAN P W, KRUS H. Validation of a crosswind change criterion for building induced airflow disturbances using a flight simulator: case studies at the Hong Kong International Airport[J]. Meteorological Appli- cations, 2016, 23 (4) : 742-748. | |
| [42] 冯 林. 基于峡谷地形的风场数值模拟研究[D]. 杭州: 浙江理工大 学, 2017. | |
| [43] 郭文星. 复杂山地地形风场 CFD 多尺度数值模拟[D]. 哈尔滨: 哈尔 滨工业大学, 2010. | |
| [44] BOWLES R L. Reducing wind-shear risk through airborne systems technology[C]//The 17th Congress of the ICAS, Stockholm, Sweden, 1990: 1603-1630 |
| [1] | ZHOU Xiaomeng , REN Liheng , PENG Zhimin, , WANG Gang, , CHEN Wensheng, , LIU Jian , YAN Hao. Effects of acid treatment on the catalytic synthesis of clean and efficient fire extinguishing agent CF3I by KF/AC#br# [J]. Journal of Civil Aviation University of China, 2024, 42(1): 24-29. |
| [2] | WANG Peng , WANG Ruixuan, ZHANG Fan , XIAO Guosong . Structured functional requirement capture method of civil aircraft system based on operation scenario#br# [J]. Journal of Civil Aviation University of China, 2023, 41(6): 16-23. |
| [3] | DING Xinwei , QIN Qian, KAN Ben , LIU Qichang, JIA Chi . Prediction of spatiotemporal distribution of passenger flow in terminal building based on graph convolutional neural network#br# [J]. Journal of Civil Aviation University of China, 2023, 41(6): 31-36. |
| [4] | ZHI Yanfei, WANG Hui, LIU Jianying. Simulation of electrothermal effect of CFRC pavement slab [J]. Journal of Civil Aviation University of China, 2023, 41(5): 42-48. |
| [5] | FENG Xing, ZHANG Jian, LI Runing. Multi-objective optimization of airport runway construction schedule based on BIM and GA [J]. Journal of Civil Aviation University of China, 2023, 41(5): 49-56. |
| [6] | YANG Lei, LEI Mengyao. Parameter estimation for radar non-uniform moving target based on time-frequency analysis [J]. Journal of Civil Aviation University of China, 2023, 41(4): 29-36. |
| [7] | JIN Huibin , FENG Chaohui , ZHANG Zhaoyue , WANG Zhisen. Research on ADS-B trajectory interpolation based on improved KNN detection [J]. Journal of Civil Aviation University of China, 2023, 41(4): 23-28. |
| [8] | WU Yue, YA Junb , SUN Xianling , ZHOU Jingxiana , LYU Zongpinga. Cybersecurity threat intelligence sharing scheme of civil aviation based on blockchain [J]. Journal of Civil Aviation University of China, 2023, 41(4): 16-22. |
| [9] | SHI Yongsheng, DU Kun, LI Sha. Optimization of strength of safety box buckle based on response surface model [J]. Journal of Civil Aviation University of China, 2023, 41(3): 59-64. |
| [10] | GAO Jianshu , WANG Qingqiang. Numerical simulation of the effect of water mist nozzle spray angle on fire suppression in semi-enclosed aircraft cabin [J]. Journal of Civil Aviation University of China, 2023, 41(3): 53-58. |
| [11] | WANG Yafeng, LIU Jijun. Selection of the most critical conditions for dynamic impact test of aviation seat [J]. Journal of Civil Aviation University of China, 2023, 41(3): 47-52. |
| [12] | WANG Yonggang, CHE Zhuojun. Research on the internal influencing factors of pilots′ unsafe behaviors [J]. Journal of Civil Aviation University of China, 2023, 41(3): 41-46. |
| [13] | YUE Rentian, ZHANG Zhibo. Vulnerability assessment of ATC operation system based on cloud model [J]. Journal of Civil Aviation University of China, 2023, 41(3): 25-30. |
| [14] | LYU Zipeng, ZHANG Jianjun, LYU Lin, HAN Ming, DENG Qi. A weak signal acquisition method for BeiDou GEO satellite [J]. Journal of Civil Aviation University of China, 2023, 41(3): 19-24. |
| [15] | XIE Chunsheng, ZHANG Xu. Rerouting in severe weather based on improved artificial potential field method [J]. Journal of Civil Aviation University of China, 2023, 41(3): 13-18. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||