[1] 梁艳艳, 周年兴, 谢慧玮, 等. 庐山森林景观格局变化的长期动态模拟. 生态学报, 2013, 33(24): 7807-7818 [2] 郭晋平, 阳含熙, 张芸香. 关帝山林区景观要素空间分布及其动态研究. 生态学报, 1999, 19(4): 468-473 [3] 梁艳艳. 庐山森林景观格局变化的长期动态模拟. 硕士论文. 南京: 南京师范大学, 2013 [4] Bugmann H. A review of forest gap models. Climatic Change, 2001, 51: 259-305 [5] Aber J, Neilson RP, Mcnulty S, et al. Forest processes and global environmental change: Predicting the effects of individual and multiple stressors. BioScience, 2001, 51: 735-751 [6] Starfield AM, Chapin III FS. Model of transient changes in arctic and boreal vegetation in response to climate and land use change. Ecological Applications, 1996, 6: 842-864 [7] Dai EF, Wu Z, Wang XF, et al. Progress and prospect of research on forest landscape model. Journal of Geographical Sciences, 2015, 25: 113-128 [8] 奚为民, 戴尔阜, 贺红士. 森林景观模型研究新进展及其应用. 地理科学进展, 2016, 35(1): 35-46 [9] Mladenoff DJ, Host GE, Boeder J, et al. LANDIS: A spatial model of forest landscape disturbance, succession and management// Goodchild MF, Steyaert LT, Parks BO, eds. GIS and Environmental Modeling. Fort Collins, CO, USA: GIS World Books, 1996: 175-179 [10] Yang J, He HS, Shifley SR, et al. An innovative computer design for modeling forest landscape change in very large spatial extents with fine resolutions. Ecological Modelling, 2011, 222: 2623-2630 [11] 何东进, 游巍斌, 洪伟, 等. 近10年景观生态学模型研究进展. 西南林业大学学报, 2012, 32(1): 96-104 [12] Wang WJ, He HS, Spetich MA, et al. A large-scale forest landscape model incorporating multi-scale processes and utilizing forest inventory data. Ecosphere, 2013, 4: 106 [13] Keane RE, Loehman RA, Holsinger LM. The FireBGCv2 Landscape Fire and Succession Model: A Research Simulation Platform for Exploring Fire and Vegetation Dynamics. Washington DC, USA: USA Forest Service-General Technical Report RMRS-GTR, 2011 [14] 牛香, 陈波, 郭珂, 等. 中国森林生态系统质量状况. 陆地生态系统与保护学报, 2022, 2(5): 32-40 [15] 王亚男, 王洪庆, 何永明. 2010—2020年我国森林火灾时空分布及影响因素分析. 山东林业科技, 2022, 52(5): 26-32 [16] Chao F, Fang HJ, Yu GR. Carbon emissions from forest vegetation caused by three major disturbances in China. Journal of Resources and Ecology, 2011, 2: 202-209 [17] Brown JK. Weight and Density of Crowns of Rocky Mountain Conifers. Washington DC, USA: U.S. Department of Agriculture, 1978 [18] Botkin DB, Janak JF, Wallis JR. Some ecological consequences of a computer model of forest growth. Journal of Ecology, 1972, 60: 849-872 [19] Keane RE, Stephen FA, Brown JK. FIRESUM: An Ecological Process Model for Fire Succession in Western Conifer Forests. Washington DC, USA: U.S. Department of Agriculture, 1989 [20] Hamilton DA. Extending the range of applicability of an individual tree mortality model. Canadian Journal of Forest Research, 1990, 20: 1212-1218 [21] Pedersen BS. Modeling tree mortality in response to short- and long-term environmental stresses. Ecological Modelling 1998, 105: 347-351 [22] Ryan KC, Reinhardt ED. Predicting postfire mortality of seven western conifers. Canadian Journal of Forest Research, 1988, 18: 1291-1297 [23] Alexander RR. Major Habitat Types, Community Types, and Plant Communities in the Rocky Mountains. Washington DC, USA: U.S. Department of Agriculture, 1985 [24] Urban DL. A Versatile Model to Simulate Forest Pattern: A Users Guide to ZELIG Version 1.0. Charlottesville, VA: Environmental Sciences Department, University of Virginia, 1990 [25] Boyce RB. Conifer Germination and Seedling Establishment on Burned and Unburned Seedbeds. PhD Thesis. Moscow, ID, USA: University of Idaho, 1985 [26] Brown JK. Bulk densities of nonuniform surface fuels and their application to fire modeling. Forest Science, 1981, 27: 667-683 [27] Bossel H. Modeling forest dynamics: Moving from description to explanation. Forest Ecology and Management, 1991, 42: 129-142 [28] Keane RE, Arno SF, Brown JK, et al. Modeling Disturbances and Conifer Succession in Whitebark Pine Forests. Washington DC, USA: U.S. Department of Agriculture, 1990 [29] Thornton PE, Law BE, Gholz HL, et al. Modeling and measuring the effects of disturbance history and climate on carbon and water budgets in evergreen needleleaf forests. Agricultural and Forest Meteorology, 2002, 113: 185-222 [30] Kelliher FM, Black TA, Price DT. Estimating the effects of understory removal from a Douglas-fir forest using a two-layer canopy evapotranspiration model. Water Resources Research, 1986, 22: 1891-1899 [31] Fosberg MA. Drying rates of heartwood below fiber saturation. Forest Science, 1970, 16: 57-63 [32] Keane RE, Miller C, Smithwick E, et al. Representing Climate, Disturbance, and Vegetation Interactions in Landscape Simulation Models. Washington DC, USA: U.S. Department of Agriculture, 2010 [33] Friend AD, Schugart HH, Running SW. A physiology-based gap model of forest dynamics. Ecology, 1993, 74: 792-797 [34] Bevins CD. FireLib: User Manual and Technical Reference. Missoula, MT, USA: Systems for Environmental Management, 1996 [35] Reinhardt E, Keane RE, Brown JK. First Order Fire Effects Model: FOFEM 4.0 user's guide. Washington DC, USA: U.S. Department of Agriculture, 1997 [36] Sherriff RL, Veblen TT. Variability in fire-climate relationships in ponderosa pine forests in the Colorado Front Range. International Journal of Wildland Fire, 2008, 17: 50-59 [37] Running SW, Nemani RR, Hungerford RD. Extrapolation of synoptic meteorological data in mountainous terrain and its use for simulating forest evapotranspiration and photosynthesis. Canadian Journal of Forest Research, 1987, 17: 472-483 [38] White MA, Thornton PE, Running SW. A continental phenology model for monitoring vegetation responses to interannual climatic variability. Global Biogeochemical Cycles, 1997, 11: 217-234 [39] South A. Dispersal in spatially explicit population models. Conservation Biology, 1999, 13: 1039-1046 [40] McCaughey WW, Schmidt WC, Shearer RC. Seed Dispersal Characteristics of Conifers in the Inland Mountain West. Washington DC, USA: U.S. Department of Agriculture, 1986 [41] Reed WJ. Estimating the historic probability of stand-replacement fire using age-class distribution of undisturbed forest. Forest Science, 1994, 40: 104-119 [42] Zeleke TB, Si BC. Scaling relationships between saturated hydraulic conductivity and soil physical properties. Soil Science Society of America Journal, 2005, 69: 1691-1702 [43] Karau EC, Keane RE. Determining landscape extent for succession and disturbance simulation modeling. Landscape Ecology, 2007, 22: 993-1006 [44] Keane RE, Parsons R, Hessburg P. Estimating historical range and variation of landscape patch dynamics: Limitations of the simulation approach. Ecological Modelling, 2002, 151: 29-49 [45] He HS, Gustafson EJ, Lischke H. Modeling forest landscapes in a changing climate: Theory and application. Landscape Ecology, 2017, 32: 1-7 [46] Keane RE, Cary JG, Flannigan DM, et al. Exploring the role of fire, succession, climate, and weather on landscape dynamics using comparative modeling. Eco-logical Modelling, 2013, 266: 172-186 [47] Loehman R, Flatley W, Holsinger L, et al. Can land management buffer impacts of climate changes and altered fire regimes on ecosystems of the southwestern united states. Forests, 2018, 9: 192 [48] Loehman RA, Keane RE, Holsinger LM, et al. Interactions of landscape disturbances and climate change dictate ecological pattern and process: Spatial modeling of wildfire, insect, and disease dynamics under future climates. Landscape Ecology, 2017, 32: 1447-1459 [49] Clark JA, Loehman RA, Keane RE. Climate changes and wildfire alter vegetation of Yellowstone National Park, but forest cover persists. Ecosphere, 2017, 8: e01636 [50] Keane RE, Barbara B, Holsinger LM, et al. Modeled interactions of mountain pine beetle and wildland fire under future climate and management scenarios for three western US landscapes. Fire Ecology, 2022, DOI: 10.1186/s42408-022-00137-4 [51] 贾钰宸, 常禹, 平晓莹, 等. 不同烈度林火干扰下呼中国家级自然保护区森林各碳库储量的动态变化. 应用生态学报, 2021, 32(7): 2325-2334 [52] Keane RE, Gray K, Davis B, et al. Evaluating ecological resilience across wildfire suppression levels under climate and fuel treatment scenarios using landscape simulation modelling. International Journal of Wildland Fire, 2019, 28: 533-549 [53] Riggs AR, Keane RE, Cimon N, et al. Biomass and fire dynamics in a temperate forest-grassland mosaic: Integrating multi-species herbivory, climate, and fire with the FireBGCv2/GrazeBGC system. Ecological Modelling, 2015, 296: 57-78 [54] Wang WJ, He HS, Spetich MA, et al. A framework for evaluating forest landscape model predictions using empirical data and knowledge. Environmental Modelling and Software, 2014, 62: 230-239 [55] Cary GJ, Keane RE, Gardner RH, et al. Comparison of the sensitivity of landscape-fire-succession models to variation in terrain, fuel pattern and climate. Landscape Ecology, 2006, 21: 121-137 [56] Hessl AE, Milesi C, White MA, et al. Ecophysiological Parameters for Pacific Northwest Trees. Washington DC, USA: US Department of Agriculture, 2004 [57] Lutes DC, Keane RE, Caratti JF, et al. FIREMON: Fire Effects Monitoring and Inventory System. Washington DC, USA: US Department of Agriculture, 2006 [58] Rollins MG, Swetnam TW, Morgan P. Evaluating a century of fire patterns in two Rocky Mountain wilderness areas using digital fire atlases. Canadian Journal of Forest Research, 2001, 31: 2107-2133 [59] Lebrun JJ, Schneiderman JE, Thompson FR, et al. Bird response to future climate and forest management focused on mitigating climate change. Landscape Ecology, 2017, 32: 1433-1446 [60] 贾钰宸. 林火干扰与气候变化下呼中自然保护区森林碳库的动态变化. 硕士论文. 北京: 中国科学院大学, 2021 |