
Chinese Journal of Applied Ecology ›› 2026, Vol. 37 ›› Issue (6): 2009-2019.doi: 10.13287/j.1001-9332.202606.026
• Original Articles • Previous Articles Next Articles
ZHU Yiwen1, XU Yiyu1, ZHANG Qi1*, ZHAN Ziyi1, CHEN Yujuan1, LIU Yujia1, WANG Tieyu2,3
Received:2025-12-01
Revised:2026-04-27
Online:2026-06-18
Published:2026-12-18
ZHU Yiwen, XU Yiyu, ZHANG Qi, ZHAN Ziyi, CHEN Yujuan, LIU Yujia, WANG Tieyu. Classification and occurrence characteristics of regional atmospheric heatwaves in North China and its marginal seas[J]. Chinese Journal of Applied Ecology, 2026, 37(6): 2009-2019.
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.cjae.net/EN/10.13287/j.1001-9332.202606.026
| [1] Intergovernmental Panel on Climate Change (IPCC). Climate Change 2021: The Physical Science Basis. Cambridge: Cambridge University Press, 2021 [2] 何婷婷, 马鹏宇, 陈晓敏, 等. 高温胁迫对城市园林植物的危害及应对措施展望. 生态学杂志, 2026, 45(4): 1143-1150 [3] Perkins-Kirkpatrick ES, Lewis CS. Increasing trends in regional heatwaves. Nature Communications, 2020, 11: 3357 [4] Qi X, Yang J. Extended-range prediction of a heat wave event over the Yangtze River Valley: Role of intraseasonal signals. Atmospheric and Oceanic Science Letters, 2019, 12: 451-457 [5] Sundar MK, Collins FB, Gross EJ, et al. The growing health burden of heat waves with focus on respiratory effects. American Journal of Respiratory and Critical Care Medicine, 2025, 211: 13-15 [6] Li Y, Ren GY, Wang QY, et al. More extreme marine heatwaves in the China Seas during the global warming hiatus. Environmental Research Letters, 2019, 14: 104010 [7] Barriopedro D, Fischer EM, Luterbacher J, et al. The hot summer of 2010: Redrawing the temperature record map of Europe. Science, 2011, 332: 220-224 [8] Vogel MM, Zscheischler J, Wartenburger R, et al. Concurrent 2018 hot extremes across Northern Hemisphere due to human-induced climate change. Earth’s Future, 2019, 7: 692-703 [9] Bartusek S, Kornhuber K, Ting MF. 2021 North American heatwave amplified by climate change-driven nonlinear interactions. Nature Climate Change, 2022, 12: 1143-1150 [10] Oliver ECJ, Donat MG, Burrows MT, et al. Longer and more frequent marine heatwaves over the past century. Nature Communications, 2018, 9: 1324 [11] Chen K, Gawarkiewicz GG, Lentz SJ, et al. Diagnosing the warming of the Northeastern US Coastal Ocean in 2012: A linkage between the atmospheric jet stream variability and ocean response. Journal of Geophysical Research: Ocean, 2014, 119: 218-227 [12] Li Y, Ren GY, You QL, et al. The 2016 record-breaking marine heatwave in the Yellow Sea and associated atmospheric circulation anomalies. Atmospheric Research, 2022, 268: 106011 [13] Li Y, Ren GY, Wang QY, et al. Record-breaking marine heatwave in northern Yellow Sea during summer 2018: Characteristics, drivers and ecological impact. Science of the Total Environment, 2023, 904: 166385 [14] Luo YH, Yang S, Zhang TT, et al. Distinctive local and large-scale processes associated with daytime, nighttime and compound heatwaves in China. Weather and Climate Extremes, 2025, 47: 100749 [15] Hobday JA, Alexander VL, Perkins ES, et al. A hierarchical approach to defining marine heatwaves. Progress in Oceanography, 2016, 141: 227-238 [16] Yao YL, Wang JJ, Yin JJ, et al. Marine heatwaves in China’s marginal seas and adjacent offshore waters: Past, present, and future. Journal of Geophysical Research: Oceans, 2020, 125: e2019JC015801 [17] 全国气象防灾减灾标准化技术委员会. QX/T 228—2014 区域性高温天气过程等级划分. 北京: 气象出版社, 2014 [18] Wu SJ, Luo M, Wang XY, et al. Season-dependent heatwave mechanisms: A study of southern China. Weather Climate Extremes, 2023, 42: 100603 [19] Choi W, Bang ML Joh Y, et al. Characteristics and mechanisms of marine heatwaves in the East Asian marginal seas: Regional and seasonal differences. Remote Sensing, 2022, 14: 3522 [20] 蔡榕硕, 谭红建. 中国近海变暖和海洋热浪演变特征及气候成因研究进展. 大气科学, 2024, 48(1): 121-146 [21] 张顾炜. 华北热浪的时空特征及其相关机理和未来高温风险预估. 博士论文. 南京: 南京信息工程大学, 2021 [22] Stefanon M, D’Andrea F, Drobinski P. Heatwave classification over Europe and the Mediterranean region. Environmental Research Letters, 2012, 7: 014023-014029 [23] 彭晓萌, 于溢, 马文涛, 等. 南海海洋热浪面积特征及其影响因素研究. 海洋学研究, 2024, 42(4): 21-33 [24] Luo M, Wu SJ, Liu Z, et al. Contrasting circulation patterns of dry and humid heatwaves over southern China. Geophysical Research Letters, 2022, 49: e2022GL099243 [25] Yang XY, Zeng G, Zhang SY, et al. Relationship between two types of heat waves in northern East Asia and temperature anomalies in Eastern Europe. Environmental Research Letters, 2021, 16: 24048 [26] Park TW, Ho CH, Deng Y. A synoptic and dynamical characterization of wave-train and blocking cold surge over East Asia. Climate Dynamics, 2014, 43: 753-770 [27] Liu YT, Zhang L, Fan Y, et al. Classification of extensive extreme cold-precipitation compound events in Southern China and their synoptic circulation patterns. Atmospheric Research, 2026, 329: 108525 [28] 黄少锋, 朱军, 张琪, 等. 基于遥感的华北区域性农业干旱事件识别及特征分析. 中国农业资源与区划, 2025, 46(1): 211-220 [29] Dai SY, Zhang Q, Huang SF. Identification and characteristics of regional rainstorm events in China based on a dual-threshold method. Atmospheric Research, 2025, 320: 108081 [30] Wang F, Li XG, Tang XH, et al. The seas around China in a warming climate. Nature Reviews Earth & Environment, 2023, 4: 535-551 [31] 蔡榕硕, 谭红建, 郭海峡. 中国沿海地区对全球变化的响应及风险研究. 应用海洋学学报, 2019, 38(4): 514-527 [32] 孟宪贵, 郭俊建, 韩永清. ERA5再分析数据适用性初步评估. 海洋气象学报, 2018, 38(1): 91-99 [33] Kim Y, Min SK, Kim YH, et al. Spatiotemporal extension of extreme heat stress over East Asia under shared socioeconomic pathways. Weather and Climate Extremes, 2023, 42: 100618 [34] Pérez-Alarcón A, Vázquez M, Ramos AM, et al. Quantifying moisture and sensible heat flux anomalies for compound drought and heat wave events in the Iberian Peninsula. Weather and Climate Extremes, 2025, 47: 100756 [35] Luo M, Lau NC, Liu Z, et al. An observational investigation of spatiotemporally contiguous heatwaves in China from a 3D perspective. Geophysical Research Letters, 2022, 49: 64-81 [36] 乔锦荣, 原新鹏, 梁旭东, 等. 凝聚层次聚类方法在降水预报评估中的应用. 干旱气象, 2022, 40(4): 690-699 [37] 郭芳, 刘信勇, 张鋆, 等. 基于层次聚类和水质指数法的南水北调中线总干渠典型年份水质变化特征分析. 环境工程学报, 2024, 18(3): 644-652 [38] 全国气候与气候变化标准化技术委员会. QX/T 304—2015 西北太平洋副热带高压监测指标. 北京: 气象出版社, 2016 [39] 曾刚, 张顾炜, 武英娇, 等. 海表温度异常对南亚高压年代际变化影响的数值模拟. 气象科学, 2016, 36(4): 436-447 [40] 侯亚红, 杨修群, 李刚, 等. 西伯利亚高压特征指数及其变率分析. 南京气象学院学报, 2008, 31(3): 326-330 [41] Cheung HHN, Zhou W. Implications of ural blocking for East Asian winter climate in CMIP5 GCMs. Part I: Biases in the Historical Scenario. Journal of Climate, 2015, 28: 2203-2216 [42] Overland JE, Adams JM, Bond NA. Decadal variability of the Aleutian Low and its relation to high-latitude circulation. Journal of Climate, 1999, 12: 1542-1548 [43] 曹友华, 朱乾坤. 基于Aqua/MODIS数据研究黄海暖流的强度及其时空变化. 海洋预报, 2021, 38(6): 93-102 [44] Wang Q, Liao Z, Zhai PM, et al. Record-breaking heatwave in North China during the midsummer of 2023. International Journal of Climatology, 2024, 44: 4206-4218 [45] Peng Y, Wang Q, Zhai PM. Differentiated influences of anomalous subtropical high on extreme persistent precipitation and heatwave events in the Yangtze River Valley. Quarterly Journal of the Royal Meteorological Society, 2024, 150: 4856-4869 [46] Tao P, Zhang Y. Large-scale circulation features associated with the heat wave over Northeast China in summer 2018. Atmospheric and Oceanic Science Letters, 2019, 12: 254-260 [47] 胡思乐, 李艳, 方从羲, 等. 乌拉尔山阻塞高压和西伯利亚高压协同作用与东亚冬季风之间的联系. 兰州大学学报:自然科学版, 2018, 54(4): 440-452 [48] 桑小卓, 陈圣劼, 刘端阳, 等. 中国东部地区秋末冬初大雾多发的异常环流特征及成因. 气象学报, 2025, 83(2): 240-256 [49] 靳鑫桐, 周波涛, 谢文欣, 等. 影响华北重度和轻度高温热浪的大气背景场差异分析. 大气科学学报, 2024, 47(1): 124-135 [50] Schumacher DL, Keune J, Heerwaarden CCV, et al. Amplification of mega-heatwaves through heat torrents fuelled by upwind drought. Nature Geoscience, 2019, 12: 712-717 [51] 齐继峰, 尹宝树, 杨德周, 等. 东海黑潮流量的年际和年代际变化. 海洋与湖沼, 2014, 45(6): 1141-1147 [52] 蔡榕硕, 刘克修, 谭红建. 气候变化对中国海洋和海岸带的影响、风险与适应对策. 中国人口·资源与环境, 2020, 30(9): 1-8 [53] 朱万林, 李清泉, 王遵娅, 等. 近60年中国冷空气过程的气候变率分析. 气象, 2022, 48(1): 1-13 [54] 程潇, 裘锦华. 2019年副高对珠海金湾机场秋冬季天气的影响. 科技与创新, 2020(6): 69-71 [55] Li XF, Zhao L, Wang S, et al. Unstable permafrost regions experience more severe heatwaves in a warming climate. Npj Climate and Atmospheric Science, 2025, 8: 147 [56] Lee S, Park MS, Kwon M, et al. Rapidly changing East Asian marine heatwaves under a warming climate. Journal of Geophysical Research: Oceans, 2023, 128: e2023JC019761 [57] 洪梅, 刘科峰, 张栋, 等. 基于交叉小波分析方法的西太平洋副热带高压年际变率与热带海温及大气环流异常的相关性研究. 热带气象学报, 2020, 36(2): 166-179 [58] 柴博语, 徐峰, 徐建军, 等. 近160年西北太平洋副高的年代际变化及其对台风年际变化的影响. 热带气象学报, 2023, 39(2): 276-288 [59] Matsumura S, Horinouchi T. Pacific Ocean decadal forcing of long-term changes in the western Pacific subtropical high. Scientific Reports, 2016, 6: 37765 [60] 李丽光, 赵梓淇, 李晓岚, 等. 沈阳城市热岛和污染岛特征及其与向下长波辐射的关系. 应用生态学报, 2025, 36(12): 3810-3818 [61] Qian C. On trend estimation and significance testing for non-Gaussian and serially dependent data: Quantifying the urbanization effect on trends in hot extremes in the megacity of Shanghai. Climate Dynamics, 2016, 47: 329-344 [62] Wang CZ, Zheng JY, Lin W, et al. Unprecedented heatwave in western North America during late June of 2021: Roles of atmospheric circulation and global warming. Advances in Atmospheric Sciences, 2023, 40: 14-28 [63] Yoon A, Kim J, Lee J, et al. Factor analysis of recent major heatwaves in East Asia. Geoscience Frontiers, 2024, 15: 101730 |
| [1] | ZOU Yafeng, LI Meng, SHEN Yue, ZHAO Enhui, LUO Feng, WU Pinqi. Trade-offs and synergies of ecosystem services and the spatial governance pathways in the Minjiang River Basin [J]. Chinese Journal of Applied Ecology, 2026, 37(4): 1202-1216. |
| [2] | XU Longfei, ZHANG Yanchao, SUN Guoqing, WANG Zhilin, SI Liwei, LI Qingxia, GAO Dongkui, TIAN Tao, WU Zhongxin. Vertical distribution structure of sessile organisms on the monopiles of Zhuanghe offshore wind farm, North Yellow Sea, China [J]. Chinese Journal of Applied Ecology, 2025, 36(9): 2615-2624. |
| [3] | HUANG Yang, WANG Duocong, OUYANG Hanli, HAN Jianxun, ZHUANG Chunyi. Identification of driving factors for water supply service in Sichuan Province, Southwest China from a machine learning perspective [J]. Chinese Journal of Applied Ecology, 2025, 36(7): 2171-2182. |
| [4] | CHI Yao, YE Pengcheng, ZHANG Yingying, LING Yichao. Geographical division of terrestrial mammals in China based on species composition characteristics [J]. Chinese Journal of Applied Ecology, 2024, 35(4): 1123-1130. |
| [5] | ZHANG Heye, ZHANG Yanchao, AN Wencong, DONG Shiqi, SUN Guoqing, LI Lei, GAO Dongkui, TIAN Tao, WU Zhongxin. Ecological stoichiometric characteristics of two dominant macrozoobenthos taxa in Dalian Island, northern Yellow Sea, China. [J]. Chinese Journal of Applied Ecology, 2024, 35(11): 3157-3164. |
| [6] | WENG Yijing, YANG Yue, WEN Yanbing. Dynamic evolution and driving factors of the coupling relationship of green transformation system in 26 mountainous counties in Zhejiang Province, China. [J]. Chinese Journal of Applied Ecology, 2024, 35(11): 3119-3130. |
| [7] | LI Huiyu, JIN Yan, LING Jianzhong, LIU Zunlei, CHENG Jiahua. Shrimp community structure and influence of environmental variables in the East China Sea and Yellow Sea in spring [J]. Chinese Journal of Applied Ecology, 2023, 34(6): 1659-1668. |
| [8] | LIU Jie, JI Yu-he, ZHOU Guang-sheng, ZHOU Li, LYU Xiao-min, ZHOU Meng-zi. Temporal and spatial variations of net primary productivity (NPP) and its climate driving effect in the Qinghai-Tibet Plateau, China from 2000 to 2020 [J]. Chinese Journal of Applied Ecology, 2022, 33(6): 1533-1538. |
| [9] | YE Hong, YAN Han, ZHANG Rui-ming, ZHAO Zhuo-qun, LIN Tao, ZHANG Guo-qin. Mechanisms underlying operational energy consumption of buildings for low carbon city construction: A review [J]. Chinese Journal of Applied Ecology, 2021, 32(7): 2644-2652. |
| [10] | TAN Kang-da, WANG Shi-qin, ZHENG Wen-bo. Spatial and temporal variations of hydrogen and oxygen isotopes and sources of water vapour indicated from satellite precipitation products along the transection of 38°north latitude in North China [J]. Chinese Journal of Applied Ecology, 2021, 32(6): 1951-1962. |
| [11] | WAN Rong, ZHANG Tong-zheng, LI Zeng-guang, REN Yi-ping, SONG Peng-bo. Spatial distribution and inter-annual variability of spawning grounds of Cynoglossus joyneri in the Yellow Sea coastal waters in summer [J]. Chinese Journal of Applied Ecology, 2020, 31(3): 1023-1032. |
| [12] | ZHOU Jun-jun, FAN Xin-gang, YANG Mei-ling, XIAO Cheng-quan, JIA Hong-li. Comparison on driving mechanism of county ecological efficiency: With three counties in the mountainous area of southern Ningxia, China as an example [J]. Chinese Journal of Applied Ecology, 2020, 31(1): 239-248. |
| [13] | WAN Rong, SONG Peng-bo, LI Zeng-guang, LONG Xiang-yu. Distribution and environmental characteristics of the spawning grounds of Scomberomorus niphonius in the coastal waters of Yellow Sea, China [J]. Chinese Journal of Applied Ecology, 2020, 31(1): 275-281. |
| [14] | TUO Bin, TIAN Wen-bin, GUO Chao, XU Ming-shan, ZHENG Li-ting, SU Tian, LIU Xiang-yu, YAN En-rong. Latitudinal variation in soil carbon, nitrogen and phosphorus pools across island forests and shrublands in eastern China [J]. Chinese Journal of Applied Ecology, 2019, 30(8): 2631-2638. |
| [15] | WANG Kai, GAN Chang, OU Yan, LIU Hao-long. Low-carbon behavioral performance of scenic spots and the driving mechanism: A case study of Zhangjiajie World Heritage Site. [J]. Chinese Journal of Applied Ecology, 2019, 30(1): 266-276. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||