简介:目前,在全球范围内有很多湿地的景观出现破碎化现象,为了探讨未来湿地景观的演化规律,湿地景观模拟模型将成为预测未来湿地景观演化的重要手段之一。分析了湿地景观变化的驱动因子,将湿地景观模拟模型归纳为基于过程的湿地景观模型和基于格局的湿地景观模型。基于过程的湿地景观模型(如PBS、SWEDI、BTELSS和WLS模型等),侧重反映湿地景观变化的生态学过程,但所需基础数据不易监测,建立模型难度大,不易推广;湿地景观格局模型(如CA-Markov、ANN、CLUE-S和GM模型等),一般是基于土地利用变化的通用模型,将湿地作为一种景观类型,侧重考虑湿地景观格局的变化,未能充分考虑其生态过程。对湿地景观模拟模型的研究予以展望,认为需要(1)加强湿地景观驱动机制的定量化研究;(2)促进湿地景观格局-过程模型耦合;(3)注重湿地景观模拟模型的尺度推绎;(4)应该提高湿地景观模拟模型的普适性,使其能够预测全球变化背景下不同区域尺度的湿地景观演化规律。
简介:崩岗主要分布在中国南方花岗岩地区,是一种主要的水土流失方式.从崩岗的定义、分类、发育过程与形成机理、综合治理方面论述了崩岗研究的现状与进展.在前人研究基础上对崩岗的学科归属进行了探讨,并从多方面综合分析了崩岗与灾害的关系,认为地貌学是崩岗过程与分布研究的理论基础,因此将崩岗划为地貌学研究范畴比较合适.由于崩岗不直接造成超出人类社会承受能力的损失,以及崩岗的自然不稳定能量释放过程与滑坡、泥石流、洪水等自然灾害的快速能量释放过程存在质的差别,因此认为崩岗不等同于灾害,但在某些特定条件下,崩岗可以转化为泥石流从而转变为灾害.所以,崩岗的整治应该引起足够的重视.
简介:[1]ChinaCommunicationsSecondHighwaySurveyDesignandResearchInstitute(CCSHSDRI),1996.HighwayDesignHandbook:Subgrade(2ndedn.).Beijing:ChinaCommunicationsPress.(inChinese)[2]GengTading,ChenChuankang,YangWuyangetal.,1978.OnthehighwaynaturalregionalizationofChina.ActaGeographicaSinica,33(1):49-62.(inChinese)[3]HighwayPlanningandDesignInstituteoftheMinistryofCommunications,1986.StandardofClimaticZoningforHighway(JTJ003-86).Beijing:ChinaCommunicationsPress.(inChinese)[4]JillOvik,BjornBirgisson,DavidENewcomb,1999.CharacterizingSeasonalVariationsinFlexiblePavementMaterialProperties.TransportationResearchRecord,1684:1-7.[5]KennedyTKetal.,1994.SuperiorPerformingAsphaltPavement(Superpave):TheProductoftheSHRPAsphaltResearchProgram.SHRP,NationalResearchCouncil,WashingtonD.C.[6]LiBin,1957.Someproblemsaboutregionalizingclimaticzoningforhighway.EngineeringConstruction,5:19-23.(inChinese)[7]LiBin,1959.Explanationsaboutrevisionofnationalclimaticzoningforhighway.Highway,15(SpecialIssue):33-36.(inChinese)[8]LiBin,1980.Chinahighwaynaturalregionalizationofpermafrost.AutomobileandHighway,1:39-55.(inChinese)[9]LiGuishun,1996.TertiaryhighwaynaturalregionalizationofShanxiprovince.ScienceandTechnologyofShanxiCommunication,5:13-18.(inChinese)[10]MaureenAKestler,GordonLHanek,MarkATruebe,2001.Evaluatingmoisturesensorsandmonitoringseasonalmoisturevariationinlow-volumeroads.TransportationResearchRecord,1755:97-107.[11]MohseniA,1996.LTTPSeasonalACPavementTemperatureModels.FHWA,U.S.DepartmentofTransportation,WashingtonD.C.[12]PeterJBosscher,HussainUBahia,SuwithoThomasetal.,1997.Relationshipbetweenpavementtemperatureandweatherdata:Wisconsinfieldstudytoverifysuperpavealgorithm.TransportationResearchRecord,1609:1-11.[13]RabinowSD,RadaGR,TayabjiSDetal.,1993.De
简介:北极涛动和南极涛动是调节全球中高纬度年际气候变率的主要因子。目前已有大量研究分别针对其变率、机理及其对区域气候的影响,然而对北极涛动和南极涛动之间的协同变化特征和机理仍然认识不清,限制了对南北半球气候变化相互作用的理解。研究北极涛动和南极涛动指数之间的差值与它们的和来讨论二者之间的反相与同相变化。结果表明,北极涛动与南极涛动之间的反相变化主要受到北极涛动异常的影响,南北半球之间气候带的移动及其伴随着北极涛动异常可能是导致二者出现反相变化的主要原因。北极涛动和南极涛动之间的同相变化对应于两个半球中纬度高压区的同相变化,这可能是两个半球哈德莱环流增强导致两个涛动出现同相变化。基于树轮重建的北极涛动和南极涛动能较好地恢复低频变化(如年代际变率),但对重建其高频变率(如年际变率)方面的效力不足。
简介:[1]BiSP,GanN,LuXCetal.,2003.EvaluationofaluminumspeciationinsurfacewatersinChinaanditsenvironmentalriskassessment.Environ.Geol.,45:65-71.[2]ChenJS,1958.LandscapeGeochemistry(ChemicalGeography),Teachingmaterial,DepartmentofGeologyandGeography,PekingUniversity,Beijing.[3]ChenJS,WangFY,LiXDetal.,2000.GeographicalvariationsoftraceelementsinsedimentsofthemajorriversineasternChina.Environ.Geol.,39:1334-1340.[4]ChenJS,WangFY,XiaXHetal.,2002.MajorelementchemistryoftheChangjiang(YangtzeRiver).Chem.Geol.,187(3-4):231-255.[5]ChenJS,HeDW,ZhangNetal.,2004.CharacteristicsofhumaninfluencesonnitrogencontaminationinYellowRiversystem,China.Environ.Mon.Assess.,93(1-3):125-138.[6]ChenJY,TangCY,SakuraYetal.,2002.GroundwaterflowandgeochemistryinthelowerreachesoftheYellowRiver:acasestudyinShandongProvince,China.HydrogeologyJ.,10(5):587-599.[7]ChenZ,HuangGH,ChanCWetal.,2003.Developmentofanexpertsystemfortheremediationofpetroleum-contaminatedsites.Environ.Model.Assess.,8(4):323-334.[8]ChuW,KwanCY,2003.Remediationofcontaminatedsoilbyasolvent/surfactantsystem.Chemosphere,53(1):[9]-159.DongYS,ZhangS,QiYCetal.,2000.FluxesofCO2,N2OandCH4fromatypicaltemperategrasslandinInnerMongoliaanditsdailyvariation.Chin.Sci.Bull.,45(17):1590-1594.[10]FengG,ZhangFS,Li,XLetal.,2002.Uptakeofnitrogenfromindigenoussoilpoolbycottonplantinoculatedwitharbuscularmycorrhizalfungi.Comm.SoilSci.PlantAnal.,33(19-20):3825-3836.[11]FuJM,MaiBX,ShengGYetal.,2003.PersistentorganicpollutantsinenvironmentofthePearlRiverDelta,China:anoverview.Chemosphere,52:1411-1422.[12]GuXY,WangXR,GuZM,2001.Effectsofhumicacidonspeciationandbioavailabilitytowheatofrareearthelementsinsoil.Chem.Spec.Bioavail.,13:83-88.[13]HeMC,WangZJ,TangHX,1998.Theche
简介:深层土壤有机碳占土壤剖面总有机碳的一半以上.最近发现表层和深层土壤有机碳动态及其调控因素并不相同,这对准确评估土壤固碳潜力具有重要影响.深层土壤有机碳主要来源午根系、根系分泌物、可溶性有机碳、土壤微生物及生物扰动作用,这些来源的相对重要性可能取决于气候、土壤、植被类型和土地利用方式;与表层土壤相比,深层土壤有机碳一般具有较高的稳定性同位素C/N、平均驻留时间长、矿化速率低和高稳定性.深层土壤有机碳的生物化学稳定性、化学稳定性和物理保护三种稳定性机制的相对贡献并不清楚.未来应加强环境变化和人类干扰对深层土壤有机碳动态及稳定性影响的研究.
简介:[1]AAMillward,JEMersey,2001.Conservationstrategiesforeffectivelandmanagementofprotectedareasusinganerosionpredictioninformationsystem(EPIS).JournalofEnvironmentalManagement,61:329-343.[2]BrianWood,2000.Roomfornature?ConservationmanagementoftheIsleofRumUKandprospectsforlargeprotectedareasinEurope.BiologicalConservation,94:93-105.[3]CesarCantu,RGeraldWright,JMichaelScottetal.,2004.AssessmentofcurrentandproposednaturereservesofMexicobasedontheircapacitytoprotectedgeophysicalfeaturesandbiodiversity.BiologicalConservation,115:411-417.[4]ChenShanghua,2003.AnimalresourceanditsfaunalcharacteristicsofCaiyangheNatureReserve.ForestInventoryandPlanning,28(1):32-36.(inChinese)[5]ChenYong,ZhuXingyu,ZhangZhiguang,2003.Thereviewofthesustainabledevelopmentfornaturereserves.JournalofNanjingForestryUniversity,27(2):79-83.(inChinese)[6]ChuiGuofa,WangXianpu,2000.Developingstatusandthetaskofnaturereservesintheworld.JournalofBeijingForestryUniversity,22(4):123-125.(inChinese)[7]DaiYumei,HanShijie,TangXiaomengetal.,2003.GeneticdiversityofFrankiainNoduleofAlnusinChangbaishanbyIGSPCR-RFLP.JournalofNortheastForestryUniversity,31(6):6-8.(inChinese)[8]DingDongsun,ZengZhijie,ChenChuanfa,2002.FaunaanalysisofinsectfromJiangxiJiulianshanNatureReserve.EntomologicalJournalofEastChina,11(2):10-18.(inChinese)[9]FangYunting,MoJiangming,SandraBrownetal.,2004.StorageanddistributionofsoilorganiccarboninDinghushanBiosphereReserve.ActaEcologicaSinica,24(1):135-142.(inChinese)[10]GeorgeVNPowell,JamesBarborak,MarioRodriguezS,2000.AssessingrepresentativenessofprotectednatureareasinCostaRicaforconservingbiodiversity:apreliminarygapanalysis.BiologicalConservation,93:35-41.[11]HanHairong,MaQinyan,NakayamaNorikazuetal.,2000.StudyonthegeneconservedstandofPinusTabu
简介:湿地是鸟类的聚居地,一方面湿地为鸟类提供了不可替代的生境,另一方面鸟类的分布、数量、繁殖、生理等特征对湿地所承受的种种干扰有所响应.因而鸟类可以作为湿地生态系统监测与评价的指标.从湿地植被、湿地水环境、湿地生物多样性、湿地污染、湿地生态系统监测与评价几方面论述了鸟类作为指示生物的作用.鸟类是湿地中主要的顶级消费者,其生存与低营养级生物乃至无机环境密切相关,而且所处营养级与人类更接近,所以鸟类作为指示生物不仅适于快速的生态系统水平的评价,也对人类所面临的环境风险有参考价值.在未来的湿地生态系统监测与评价中,繁殖分布范围大的鸟类、顶级肉食性鸟类应当受到足够的重视.