参考文献/References:
[1] GOURLEY J J, FLAMIG Z L, VERGARA H, et al. The flash project: Improving the tools for flash flood monitoring and prediction across the United States [J]. Bulletin of the American Meteorological Society, 2017, 98(2):361-372. DOI: 10.1175/BAMS-D-15-00247.1
[2] 谢平,陈广才,李德,等. 乌鲁木齐地区小流域设计山洪推理公式的参数规律[J]. 山地学报,2006,24(4):410-415. [XIE Ping, CHEN Guangcai, LI De, et al. Study on the parameter laws of rational formula for design flash flood calculation of small basins in Urumchi region [J]. Mountain Research, 2006, 24(4):410-415] DOI: 10.3969/j.issn.1008-2786.2006.04.004
[3] 刘志雨. 山洪预警预报技术研究与应用[J]. 中国防汛抗旱,2012,22(2):41-45+50. [LIU Zhiyu. Study and application of flash flood forecast and warning [J]. China Flood and Drought Management, 2012, 22(2):41-45+50]DOI: 10.16867/j.cnki.cfdm.2012.02.014
[4] 熊俊楠,龚颖,程维明,等. 西藏自治区近30年山洪灾害时空分布特征[J]. 山地学报,2018,36(4):557-570. [XIONG Junnan, GONG Ying, CHENG Weiming, et al. Temporal and spatial distribution characteristics of mountain floods in Tibet, China in recent 30 years [J]. Mountain Research, 2018, 36(4):557-570] DOI: 10.16089/j.cnki.1008-2786.000352
[5] 魏一鸣,范英,金菊良. 洪水灾害风险分析的系统理论[J]. 管理科学学报,2001,4(2):7-11+44. [WEI Yiming, FAN Ying, JIN Juliang. System theory for risk analysis of flood disaster [J]. Journal of Management Sciences in China, 2001, 4(2):7-11+44] DOI: 10.3321/j.issn:1007-9807.2001.02.002
[6] 王楠,程维明,张一驰,等. 全国山洪灾害防治县房屋损毁风险评估及原因探究[J]. 地球信息科学学报,2017,19(12):1575-1583. [WANG Nan, CHENG Weiming, ZHANG Yichi, et al. Reasons and risk assessment of housing damage in the national mountain torrent disaster prevention county [J]. Journal of Geo-information Science, 2017, 19(12):1575-1583] DOI: 10.3724/SP.J.1047.2017.01575
[7] 史培军. 四论灾害系统研究的理论与实践[J]. 自然灾害学报,2005,14(6):1-7. [SHI Peijun. Theory and practice on disaster system research in a fourth time [J]. Journal of Natural Disasters, 2005, 14(6):1-7] DOI: 10.3969/j.issn.1004-4574.2005.06.001
[8] 周瑶,王静爱. 自然灾害脆弱性曲线研究进展[J]. 地球科学进展,2012,27(4):435-442. [ZHOU Yao, WANG Jingai. A review on development of vulnerability curve of natural disaster [J]. Advances in Earth Science, 2012, 27(4):435-442]
[9] CROWLEY J M, WHITE G F. Choice of adjustment to floods. University of Chicago, Department of Geography Research Paper No. 93. Chicago, 1964. 150 pages, notes bibliographiques infrapaginales, appendice par John E. Edinger [J]. Cahiers de Géographie du Québec, 1964, 9(17):121–122. DOI: 10.7202/020547ar
[10] DE LOTTO P, TESTA G. Risk assessment: A simplified approach of flood damage evaluation with the use of GIS [G]// Proceedings of Internationales Symposion Interpraevent 2000-Villach(Austria)/Osterreich, Italy, 2000, 2:281-291.
[11] FUCHS S, HEISS K, HÜBL J. Towards an empirical vulnerability function for use in debris flow risk assessment [J]. Natural Hazards and Earth System Sciences, 2007, 7(5):495-506. DOI: 10.5194/nhess-7-495-2007
[12] AKBAS S O, BLAHUT J, STERLACCHINI S. Critical assessment of existing physical vulnerability estimation approaches for debris flows [G]//MALET J P, REMAITRE A, BOGAARD T. Proceedings of Landslide Processes: From Geomorphologic Mapping to Dynamic Modeling, CERG Editions, Strasbourg, France, 2009, 67:229-233.
[13] TOTSCHNIG R, FUCHS S. Mountain torrents: Quantifying vulnerability and assessing uncertainties [J]. Engineering Geology, 2013, 155(2): 31-44. DOI: 10.1016/j.enggeo.2012.12.019
[14] PAPATHOMA-KÖHLE M, ZISCHG A, FUCHS S, et al. Loss estimation for landslides in mountain areas: An integrated toolbox for vulnerability assessment and damage documentation [J]. Environmental Modelling & Software, 2015, 63(1):156-169. DOI: 10.1016/j.envsoft.2014.10.003
[15] KARAGIORGOS K, THALER T, HÜBL J, et al. Multi-vulnerability analysis for flash flood risk management [J]. Natural Hazards, 2016, 82(1):1-25. DOI: 10.1007/s11069-016-2296-y
[16] 李亚娥,司应石,徐忠浩,等. 山洪作用对砌体结构倒塌破坏的分析[J]. 低温建筑技术,2013,35(9):51-54. [ LI Yae, SI Yingshi, XU Zhonghao, et al. Under the action of mountain torrents on the analysis of the masonry structural collapse destroyed [J]. Low Temperature Architecture Technology, 2013, 35(9):51-54] DOI: 10.3969/j.issn.1001-6864.2013.09.021
[17] 吴敏,吴政鹏,余日华,等. 洪涝灾害对砌体建筑承载能力的影响研究[J]. 江苏建筑,2016(S1):16-19+32. [WU Min, WU Zhengpeng, YU Rihua, et al. Study on the influence of flood disaster on the bearing capacity of masonry building [J]. Jiangsu Construction, 2016(S1):16-19+32] DOI: 10.3969/j.issn.1005-6270.2016.z1.006
[18] 李卫江,温家洪,吴燕娟. 基于PGIS 的社区洪涝灾害概率风险评估——以福建省泰宁县城区为例[J]. 地理研究,2014,33(1):31-42. [LI Weijiang, WEN Jiahong, WU Yanjuan. PGIS-based probabilistic community flood disaster risk assessment: A case of Taining County town, Fujian province [J]. Geographical Research, 2014, 33(1): 31-42] DOI: 10.11821/dlyj201401004
[19] CIUREAN R L, HUSSIN H, VAN WESTEN C J, et al. Multi-scale debris flow vulnerability assessment and direct loss estimation of buildings in the Eastern Italian Alps [J]. Natural Hazards, 2017, 85(2):929-957. DOI: 10.1007/s11069-016-2612-6
[20] UN/ISDR. Living with risk: A global review of disaster reduction initiatives 2004 version [Z]. United Nations Publication, 2004, 6.
[21] 周成虎,万庆,黄诗峰, 等. 基于GIS 的洪水灾害风险区划研究[J]. 地理学报,2000,55(1):15-24. [ZHOU Chenghu, WAN Qing, HUANG Shifeng, et al. Research on GIS-based flood disaster risk zoning [J]. Acta Geographica Sinica, 2000, 55(1):15-24]
[22] CHAMBERS R. Editorial introduction: Vulnerability, coping and policy [J]. Institute of Development Studies Bulletin, 1989, 20(2):1-7. DOI: 10.1111/j.1759-5436.1989.mp20002001.x
[23] CUTTER S L, BORUFF B J, SHIRLEY W L. Social vulnerability to environmental hazards [J]. Social Science Quarterly, 2003, 84(2): 242-261. DOI: 10.1111/1540-6237.8402002
[24] PAPATHOMA-KÖHLE M, TOTSCHINIG R, KEILER M, et al. A new vulnerability function for debris flow: The importance of physical vulnerability assessment in alpine areas [G]// Proceedings of 12th Congress Interpraevent 2012. Grenoble,2012:1033-1043.
[25] BIRKMANN J, CARDONA O D, CARREÑO M L, et al. Framing vulnerability, risk and societal responses: The MOVE framework [J]. Natural Hazards, 2013,67(2): 193-211. DOI: 10.1007/s11069-013-0558-5
[26] TOTSCHNIG R, SEDLACEK W, FUCHS S. A quantitative vulnerability function for fluvial sediment transport [J]. Natural Hazards, 2011, 58(2):681-703. DOI: 10.1007/s11069-010-9623-5
[27] 吉中会,吴先华. 山洪灾害风险评估的研究进展[J]. 灾害学,2018,33(1):162-167+174. [JI Zhonghui, WU Xianhua. A review about the risk assessment of torrential flood disaster [J]. Journal of Catastrophology, 2018, 33(1):162-167+174] DOI: 10.3969/j.issn.1000-811X.2018.01.029
[28] SHI Peijun, KASPERSON R, WANG Jing'ai, et al. World atlas of natural disaster risk [M]. Berlin Heidelberg: Springer, 2015:309-323. DOI: 10.1007/978-3-662-45430-5_17
[29] SMITH D I. Flood damage estimation: A review of urban stage-damage curves and loss functions [J]. Water South Africa, 1994, 20(3): 231-238. DOI: 10.1029/94WR00710
[30] TSAO T C, HSU W K, CHENG C T, et al. A preliminary study of debris flow risk estimation and management in Taiwan [G] //Proceedings of International Symposium Interpraevent in the Pacific Rim-Taipei. 2010:930-939.
[31] QUAN LUNA B, BLAHUT J, VAN WESTEN C J, et al. The application of numerical debris flow modeling for the generation of physical vulnerability curves [J]. Natural Hazards and Earth System Sciences, 2011, 11(7):2047-2060. DOI: 10.5194/nhess-11-2047-2011
[32] LO W C, TSAO T C, HSU C H. Building vulnerability to debris flows in Taiwan: A preliminary study [J]. Natural Hazards, 2012, 64(3): 2107-2128. DOI: 10.1007/s11069-012-0124-6
[33] 董姝娜,姜鎏鹏,张继权,等. 基于“3S”技术的村镇住宅洪灾脆弱性曲线研究[J]. 灾害学,2012,27(2):34-38+42. [DONG Shuna, JIANG Liupeng, ZHANG Jiquan, et al. Research on flood vulnerability curves of rural dwellings based on” 3S” technology [J]. Journal of Catastrophology, 2012, 27(2):34-38+42]
[34] GODFREY A, CIUREAN R L, VAN WEATEN C J, et al. Assessing vulnerability of buildings to hydro-meteorological hazards using an expert based approach: An application in Nehoiu Valley, Romania [J]. International Journal of Disaster Risk Reduction, 2015, 13:229-241. DOI: 10.1016/j.ijdrr.2015.06.001
[35] KANG H, KIM Y. The physical vulnerability of different types of building structure to debris flow events [J]. Natural Hazards, 2016, 80(3): 1475-1493. DOI: 10.1007/s11069-015-2032-z
[36] ZHANG J, GUO Z X, WANG D, et al. The quantitative estimation of the vulnerability of brick and concrete wall impacted by an experimental boulder [J]. Natural Hazards and Earth System Sciences, 2016, 16(2):299-309. DOI: 10.5194/nhess-16-299-2016
[37] UNDRO. Natural disasters and vulnerability analysis [R]. Department of Humanitarian Affairs/United Nations Disaster Relief Office, Geneva, 1979:53.
[38] 史培军. 三论灾害研究的理论与实践[J]. 自然灾害学报,2002,11(3):1-9. [SHI Peijun. Theory on disaster science and disaster dynamics [J]. Journal of Natural Disasters, 2002, 11(3):1-9] DOI: 10.13577/j.jnd.2002.0301
[39] DEGAGNÉ M P J, MACMILLAN D B. Red river basin stage-damage curves update and preparation of flood damage maps [G] // American Society of Civil Engineers, KGS Group. Proceedings of Joint Conference on Water Resources Engineering and Planning & Management, Canada: International Joint Commission Mixte Internationale, 2000:1-15.
[40] HOHL R, SCHIESSER H, ALLER D. Hailfall: The relationship between radar-derived hail kinetic energy and hail damage to buildings [J]. Atmospheric Research, 2002, 63(3-4):177-207. DOI: 10.1016/S0169-8095(02)00059-5
[41] HOHL R, SCHIESSER H, KNEPPER I. The use of weather radars to estimate hail damage to automobiles: An exploratory study in Switzerland [J]. Atmospheric Research, 2002, 61(3):215-238. DOI: 10.1016/S0169-8095(01)00134-X
[42] DUTTA D, HERATH S, MUSIAKE K. A mathematical model for flood loss estimation [J]. Journal of Hydrology, 2003, 277(1-2):24-49. DOI: 10.1016/S0022-1694(03)00084-2
[43] MERZ B, KREIBICH H, THIKKEN A, et al. Estimation uncertainty of direct monetary flood damage to buildings [J]. Natural Hazards and Earth System Sciences, 2004, 4:153-163. DOI: 10.5194/nhess-4-153-2004
[44] DE MOEL H, AERTS J C J H. Effect of uncertainty in land use, damage models and inundation depth on flood damage estimates [J]. Natural Hazards, 2011, 58(1):407-425. DOI: 10.1007/s11069-010-9675-6
[45] PENNING-ROWSELL E C, CHATTERTON J B. The benefits of flood alleviation: A manual of assessment techniques [J]. The Geographical Journal, 1979, 145(3):472-473. DOI: 10.2307/633221
[46] ARRIGHI C, MAZZANTI B, PISTONE F, et al. Empirical flash flood vulnerability functions for residential buildings [J]. SN Applied Sciences, 2020, 2(5):904. DOI: 10.1007/s42452-020-2696-1
[47] HARTFORD D, FELL R. Landslide risk assessment [G]//CRUDEN D and FELL R. Proceedings of the International Workshop on Landslide Risk Assessment, New York: Taylor and Francis Group, 1997:51-110. DOI: 10.1201/9780203749524
[48] PRIETO J A, JOURNEAY M, ACEVEDO A B, et al. Development of structural debris flow fragility curves(debris flow buildings resistance)using momentum flux rate as a hazard parameter [J]. Engineering Geology, 2018, 239(1):144-157. DOI: 10.1016/j.enggeo.2018.03.014
[49] APEL H, ARONICA G T, KREIBICH H, et al. Flood risk analyses—how detailed do we need to be? [J]. Natural Hazards, 2009, 49(1):79-98. DOI:10.1007/s11069-008-9277-8
[50] SARRIS A, LOUPASAKIS C, SOUPIOS P, et al. Earthquake vulnerability and seismic risk assessment of urban areas in high seismic regions: Application to Chania City, Crete Island, Greece [J]. Natural Hazards, 2010, 54(2):395-412. DOI: 10.1007/s11069-009-9475-z
[51] ZHANG S, ZHANG L, LI X, et al. Physical vulnerability models for assessing building damage by debris flows [J]. Engineering Geology, 2018, 247:145-158. DOI: 10.1016/j.enggeo.2018.10.017
[52] ZHOU J, LI S, NIE G, et al. Research on seismic vulnerability of buildings and seismic disaster risk: A case study in Yancheng, China [J]. International Journal of Disaster Risk Reduction, 2020, 45(3):101477. DOI: 10.1016/j.ijdrr.2020.101477
[53] LUO H Y, FAN R L, WANG H J, et al. Physics of building vulnerability to debris flows, floods and earth flows [J]. Engineering Geology, 2020, 271(12):105611. DOI: 10.1016/j.enggeo.2020.105611
[54] JALAYER F, ARONICA G T, RECUPERO A, et al. Debris flow damage incurred to buildings: An in situ back analysis [J]. Journal of Flood Risk Management, 2016, 11(2): 646-662. DOI: 10.1111/jfr3.12238