• Journal of Natural Resources
  • Vol. 35, Issue 12, 2995 (2020)
Er-fu DAI1、2, Xiao-fan WANG3、*, Jian-jia ZHU4, and Xiao-li WANG5
Author Affiliations
  • 1Lhasa Plateau Ecosystem Research Station, Key Laboratory of Ecosystem Network Observation and Modeling, Institute of Geographic Sciences and Natural Resources Research, CAS, Beijing 100101, China
  • 2University of Chinese Academy of Sciences, Beijing 100049, China
  • 3China Land Surveying and Planning Institute, Key Laboratory of Land Use, Ministry of Natural Resources, Beijing 100035, China
  • 4College of Horticulture Science and Technology, Hebei Normal University of Science & Technology, Qinhuangdao 066004, Hebei, China
  • 5National Marine Data and Information Service Center, Tianjin 300171, China
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    DOI: 10.31497/zrzyxb.20201214 Cite this Article
    Er-fu DAI, Xiao-fan WANG, Jian-jia ZHU, Xiao-li WANG. Modeling the long-term impacts of harvest and artificial regeneration on forest area and aboveground biomass in Red Soil Hilly Region: A case study in Moshao forest farm of Huitong county[J]. Journal of Natural Resources, 2020, 35(12): 2995 Copy Citation Text show less
    References

    [1] COSTANZAR, DARGER, DEGROOTR et al. The value of the world's ecosystem services and natural capital[D]. Nature, 387, 253-260(1997).

    [2] NELSONE, MENDOZAG, REGETZJ et al. Modeling multiple ecosystem services, biodiversity conservation, commodity production, and tradeoffs at landscape scales[D]. Frontiers in Ecology and the Environment, 7, 4-11(2009).

    [3] 朱臻, 徐志刚, 沈月琴, 等. 非农就业对南方集体林区不同规模林农营林轮伐期的影响. 自然资源学报, 2019,34(2):236-249. [ ZHUZ, XUZ G, SHENY Q, et al. Effect of off-farm employment on the harvesting decision-making of households with different scales in China's collective forest area. Journal of Natural Resources, 2019,34(2):236-249.] [ZHU Z, XU Z G, SHEN Y Q, et al. Effect of off-farm employment on the harvesting decision-making of households with different scales in China's collective forest area. Journal of Natural Resources, 2019, 34(2): 236-249.]

    [4] 陈幸良, 巨茜, 林昆仑. 中国人工林发展现状、问题与对策. 世界林业研究, 2014,27(6):54-59. [ CHENX L, JUQ, LINK L. Development status, issues and countermeasures of China's plantation. World Forestry Research, 2014,27(6):54-59.] [CHEN X L, JU Q, LIN K L. Development status, issues and countermeasures of China's plantation. World Forestry Research, 2014, 27(6): 54-59.]

    [5] GUSTAFSONE J, CROWT R. Simulating spatial and temporal context of forest management using hypothetical landscapes[D]. Environmental Management, 22, 777-787(1998).

    [6] MATONISM S, WALTERSM B, MILLINGTONJ D A. Gap-, stand-, and landscape-scale factors contribute to poor sugar maple regeneration after timber harvest[D]. Forest Ecology and Management, 262, 286-298(2011).

    [7] WALSHD, STRANDGARDM. Productivity and cost of harvesting a stemwood biomass product from integrated cut-to-length harvest operations in Australian Pinus radiata plantations[D]. Biomass & Bioenergy, 66, 93-102(2014).

    [8] SCHELLERR M, HUAD, BOLSTADP V et al. The effects of forest harvest intensity in combination with wind disturbance on carbon dynamics in Lake States Mesic Forests[D]. Ecological Modelling, 222, 144-153(2011).

    [9] DAIE F, WUZ, WANGX F et al. Progress and prospect of research on forest landscape model[D]. Journal of Geographical Sciences, 25, 113-128(2015).

    [10] SCHELLERR M, DOMINGOJ B, STURTEVANTB R et al. Design, development, and application of LANDIS-II, a spatial landscape simulation model with flexible temporal and spatial resolution[D]. Ecological Modelling, 201, 409-419(2007).

    [11] SEIDLR, RAMMERW, SCHELLERR M et al. An individual-based process model to simulate landscape-scale forest ecosystem dynamics[D]. Ecological Modelling, 231, 87-100(2012).

    [12] GUSTAFSONE J, SHVIDENKOA Z, SCHELLERR M. Effectiveness of forest management strategies to mitigate effects of global change in South-central Siberia[D]. Canadian Journal of Forest Research, 41, 1405-1421(2011).

    [13] STEENBERG JW N, DUINKERP N, BUSHP G. Exploring adaptation to climate change in the forests of Central Nova Scotia, Canada[D]. Forest Ecology and Management, 262, 2316-2327(2011).

    [14] HEH S. Forest landscape models: Definitions, characterization, and classification[D]. Forest Ecology and Management, 254, 484-498(2008).

    [15] SCHELLERR M, MLADENOFFD J. An ecological classification of forest landscape simulation models: Tools and strategies for understanding broad-scale forested ecosystems[D]. Landscape Ecology, 22, 491-505(2006).

    [16] SCHELLERR M, MLADENOFFD J. A forest growth and biomass module for a landscape simulation model, LANDIS: Design, validation, and application[D]. Ecological Modelling, 180, 211-229(2004).

    [17] ABERJ D, FEDERERC A. A generalized, lumped-parameter model of photosynthesis, evapotranspiration and net primary production in temperate and boreal forest ecosystems[D]. Oecologia, 92, 463-474(1992).

    [18] HEH S, MLADENOFFD J. Spatially explicit and stochastic simulation of forest-landscape fire disturbance and succession[D]. Ecology, 80, 81-99(1999).

    [19] XUC, GERTNERG Z, SCHELLERR M. Potential effects of interaction between CO2 and temperature on forest landscape response to global warming[D]. Global Change Biology, 13, 1469-1483(2007).

    [20] KARAMS L, WEISBERGP J, SCHELLERR M et al. Development and evaluation of a nutrient cycling extension for the LANDIS-II landscape simulation model[D]. Ecological Modelling, 250, 45-57(2013).

    [21] SCHELLERR M, TUYLS, CLARKK et al. Simulation of forest change in the New Jersey Pine Barrens under current and pre-colonial conditions[D]. Forest Ecology and Management, 255, 1489-1500(2008).

    [22] YANGJ, WEISBERGP J, SHINNEMAND J et al. Fire modulates climate change response of simulated aspen distribution across topoclimatic gradients in a semi-arid montane landscape[D]. Landscape Ecology, 30, 1055-1073(2015).

    [23] ABERJ D, OLLINGERS V, FEDERERC A et al. Predicting the effects of climate change on water yield and forest production in the Northeastern United States[D]. Climate Research, 5, 207-222(1995).

    [24] 石浩, 王绍强, 黄昆, 等. PnET-CN模型对东亚森林生态系统碳通量模拟的适用性和不确定性分析. 自然资源学报, 2014,29(9):1453-1464. [ SHIH, WANGS Q, HUANGK, et al. Application of the PnET-CN Model to different forest ecosystems in East Asia. Journal of Natural Resources, 2014,29(9):1453-1464.] [SHI H, WANG S Q, HUANG K, et al. Application of the PnET-CN Model to different forest ecosystems in East Asia. Journal of Natural Resources, 2014, 29(9): 1453-1464.]

    [25] 陈存及, 何宗明, 陈东华, 等. 37种针阔树种抗火性能及其综合评价的研究. 林业科学, 1995,31(2):135-143. [ CHENC J, HEZ M, CHEND H, et al. Studies on the fire-resistance of 37 species of coniferous and broadleaf trees and it's appraisal. Scientia Silvae Sinicae, 1995,31(2):135-143.] [CHEN C J, HE Z M, CHEN D H, et al. Studies on the fire-resistance of 37 species of coniferous and broadleaf trees and it's appraisal. Scientia Silvae Sinicae, 1995, 31(2): 135-143.]

    [26] 陈晓阳, 李文刚, 潘奇敏, 等. 杉木种子园花粉空间分布和传播距离的研究. 北京林业大学学报, 1996,18(2):24-30. [ CHENX Y, LIW G, PANQ M, et al. Studies on spacial distribution and the spread distance of pollen in chinese fir seed orchards. Journal of Beijing Forestry University, 1996,18(2):24-30.] [CHEN X Y, LI W G, PAN Q M, et al. Studies on spacial distribution and the spread distance of pollen in chinese fir seed orchards. Journal of Beijing Forestry University, 1996, 18(2): 24-30.]

    [27] 舒立福, 田晓瑞, 李红, 等. 我国亚热带若干树种的抗火性研究. 火灾科学, 2000,9(2):1-7. [ SHUL F, TIANX R, LIH, et al. Studies on fire resistance forest species. Fire Safety Science, 2000,9(2):1-7.] [SHU L F, TIAN X R, LI H, et al. Studies on fire resistance forest species. Fire Safety Science, 2000, 9(2): 1-7.]

    [28] 肖金香, 黄亚哲, 李冬, 等. 江西常见树种抗火性研究. 江西农业大学学报, 2011,33(1):76-83. [ XIAOJ X, HUANGY Z, LID, et al. A study on fire-resistance of mountain tree species in Jiangxi. Acta Agriculturae Universitatis Jiangxiensis, 2011,33(1):76-83.] [XIAO J X, HUANG Y Z, LI D, et al. A study on fire-resistance of mountain tree species in Jiangxi. Acta Agriculturae Universitatis Jiangxiensis, 2011, 33(1): 76-83.]

    [29] 朱建佳, 戴尔阜, 郑度, 等. 会同森林生态实验站磨哨林场森林碳密度及分配特征. 自然资源学报, 2016,31(11):1871-1880. [ ZHUJ J, DAIE F, ZHENGD, et al. Carbon density and allocation of forest ecosystems of moshao forest farm at Huitong National Research Station of forest ecosystem. Journal of Natural Resources, 2016,31(11):1871-1880.] [ZHU J J, DAI E F, ZHENG D, et al. Carbon density and allocation of forest ecosystems of moshao forest farm at Huitong National Research Station of forest ecosystem. Journal of Natural Resources, 2016, 31(11): 1871-1880.]

    [30] GARDNERR H, URBAND L.Model Validation and Testing: Past Lessons, Ppresent Concerns, Future Prospects. Models in Ecosystem Science, Princeton, NJ: Princeton University Press, 2003: 184-203.

    [31] VIHERVAARAP, KUMPULAT, TANSKANENA et al. Ecosystem services: A tool for sustainable management of human-environment systems: Case study Finnish Forest Lapland[D]. Ecological Complexity, 7, 410-420(2010).

    [32] 徐伟义, 金晓斌, 杨绪红, 等. 中国森林植被生物量空间网格化估计. 自然资源学报, 2018,33(10):1725-1741. [ XUW Y, JINX B, YANGX H, et al. The estimation of forest vegetation biomass in China in spatial grid. Journal of Natural Resources, 2018,33(10):1725-1741.] [XU W Y, JIN X B, YANG X H, et al. The estimation of forest vegetation biomass in China in spatial grid. Journal of Natural Resources, 2018, 33(10): 1725-1741.]

    [33] SHIJ, LIUJ, GAOZ et al. Research advances of the infulence of afforestation on terrestrial carbon sink[D]. Progress in Geography, 23, 58-67(2004).

    [34] LACLAUP. Biomass and carbon sequestration of ponderosa pine plantations and native cypress forests in Northwest Patagonia[D]. Forest Ecology and Management, 180, 317-333(2003).

    [35] LIMAEIS M, KOUHIM S, SHARAJIT R. Goal programming approach for sustainable forest management: Case study in Iranian Caspian forests[D]. Journal of Forestry Research, 25, 429-435(2014).

    [36] DUVENECKM J, SCHELLERR M, WHITEM A[D]. Effects of alternative forest management on biomass and species diversity in the face of climate change in the northern Great Lakes region (USA). Canadian Journal of Forest Research-Revue Canadienne De Recherche Forestiere, 44, 700-710(2014).

    Er-fu DAI, Xiao-fan WANG, Jian-jia ZHU, Xiao-li WANG. Modeling the long-term impacts of harvest and artificial regeneration on forest area and aboveground biomass in Red Soil Hilly Region: A case study in Moshao forest farm of Huitong county[J]. Journal of Natural Resources, 2020, 35(12): 2995
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