Article(id=1239152906771952103, tenantId=1146029695717560320, journalId=1238822807409311748, issueId=1239152904658022886, articleNumber=null, orderNo=null, doi=10.11686/cyxb2020015, pmid=null, cstr=null, oa=null, hot=null, price=null, onlineType=0, articleFormat=0, articleType=null, articleTypeStr=research-article, receivedDate=1579190400000, receivedDateStr=2020-01-17, revisedDate=null, revisedDateStr=null, acceptedDate=null, acceptedDateStr=null, onlineDate=1773366675322, onlineDateStr=2026-03-13, pubDate=1605801600000, pubDateStr=2020-11-20, doiRegisterDate=null, doiRegisterDateStr=null, onlineIssueDate=1773366675322, onlineIssueDateStr=2026-03-13, onlineJustAcceptDate=null, onlineJustAcceptDateStr=null, onlineFirstDate=null, onlineFirstDateStr=null, sourceXml=null, magXml=null, createTime=1773366675322, creator=13701087609, updateTime=1773366675322, updator=13701087609, issue=Issue{id=1239152904658022886, tenantId=1146029695717560320, journalId=1238822807409311748, year='2020', volume='29', issue='11', pageStart='1', pageEnd='204', issueExtLink='null', onlineDate='null', pubDate='null', beforeIssueId=null, nextIssueId=null, price=null, status=1, issueComplete=1, articleOrder=1, issueType=-1, specialIssue=null, createTime=1773366674818, creator=13701087609, updateTime=1773366910226, updator=13701087609, preIssue=null, nextIssue=null, ext={EN=IssueExt(id=1239153892072673913, tenantId=1146029695717560320, journalId=1238822807409311748, issueId=1239152904658022886, language=EN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=), CN=IssueExt(id=1239153892072673914, tenantId=1146029695717560320, journalId=1238822807409311748, issueId=1239152904658022886, language=CN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=)}, issueFiles=null}, startPage=23, endPage=32, ext={EN=ArticleExt(id=1239152909758296598, articleId=1239152906771952103, tenantId=1146029695717560320, journalId=1238822807409311748, language=EN, title=Relationship between soil moisture and vegetation cover in Qilian Mountain alpine steppe, columnId=0, journalTitle=Acta Prataculturae Sinica, columnName=, runingTitle=null, highlight=null, articleAbstract=
This study investigated the relationship between soil moisture and vegetation cover in alpine steppe meadow in the Qilian Mountains with the aim of improving the precision of remote sensing estimates of soil moisture and vegetation cover. Six sample areas with different stocking rates of Cervus elaphus kansuensis (1.00, 1.45, 2.45, 3.45, 4.85, 6.90 AUM·ha-1) in were set up, AUM means animal unit. Through comparing data from monthly field measurement of vegetation cover and soil moisture and SPOT-TM images combining Landsat5 multispectral images and SPOT2 panchromatic images, we analyzed the relationship between soil moisture, vegetation cover and normalized difference vegetation index (NDVI) and quantitatively explored the dynamics of seasonal change in vegetation cover and soil moisture in the sample areas in the Qilian Mountain alpine steppe. Except for Achnatherum inebrians, Convolvulus ammannii and Stragalus leucocephalus, the response of population cover to surface soil moisture was relatively sensitive, with the population cover of species inversely proportional to soil moisture in the range between c. 5% and c. 25%. The response of plant community cover to surface soil moisture was also relatively sensitive. In the soil moisture range from 10.0% to 1.1%, the community cover increased in the inverse proportional function. The results are highly relevant to remote sensing monitoring of the drought resistance and water use efficiency of plant species, populations and communities in arid and semi-arid steppe grassland, and provide scientific data for vegetation and soil moisture management in steppe grasslands.
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本文属于开放获取期刊。, copyrightOwner=草业学报编辑部, extLink=null, articleAbsUrl=null, sourceXml=qY5pArGgpJJVlz23WJ4Xzg==, magXml=T5jYTRoIxxKWx6GJexOusg==, pdfUrl=null, pdf=E5j5I1AA1gF23MfMvy4wvw==, pdfFileSize=1242891, pdfExtLink=null, richHtmlUrl=null, mobilePdfUrl=null, reviewReport=null, pdfFirstPage=null, abstractGraph=aBGCvwRF4ef/EGI8r1B11A==, abstractGraphContent=null, abstractVideo=null, citation=null, cebUrl=null, magXmlContent=3bgRRGVBHgVC7MPkume+0w==, mapNumber=null, authorCompany=null, fund=null, authors=null, authorsList=Feng-shuai LU, Lu-ji ADE, Yun-xiang CHENG, Fu-jiang HOU), CN=ArticleExt(id=1239152909875737116, articleId=1239152906771952103, tenantId=1146029695717560320, journalId=1238822807409311748, language=CN, title=祁连山高寒草原土壤水分与植被盖度的关系, columnId=1239152909380801356, journalTitle=草业学报, columnName=研究论文, runingTitle=null, highlight=null, articleAbstract=
为了揭示高寒草原土壤水分与植被盖度的关系,提高植被盖度与土壤水分快测的精度,本研究在祁连山北麓中段高寒草原—甘肃马鹿冬季牧场,设置放牧率分别为1.00、1.45、2.45、3.45、4.85、6.90 AUM·hm-2的6个样地,通过逐月测定生长季植被盖度和土壤水分,结合Landsat5多光谱影像与SPOT2全色影像融合而成的SPOT-TM影像,分析土壤水分与植被盖度、归一化植被指数(NDVI)的关系,并在此基础上,确定植被盖度随土壤水分的变化阶段。除醉马草、银灰旋花、乳白黄耆外,其他种群盖度对表层土壤水分均响应敏感,在3%~7%至17%~26%的土壤水分范围内,种群盖度随土壤水分的增加呈反比例函数递增趋势,且增幅逐渐缩小;群落盖度对表层土壤水分的响应敏感,在1.1%~10.0%的土壤水分范围内,群落盖度随土壤水分的增加亦呈反比例函数递增趋势,并逐渐趋于饱和。研究结果对探讨干旱半干旱草原植被物种、种群、群落的抗旱性、水分利用效率具有一定意义,为草原植被和土壤水分管理提供科学依据。
, correspAuthors=侯扶江, authorNote=null, correspAuthorsNote=
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2.农业部草牧业创新重点实验室,甘肃 兰州 730020
1.草地农业生态系统国家重点实验室,兰州大学草地农业科技学院,甘肃 兰州 730020
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2.农业部草牧业创新重点实验室,甘肃 兰州 730020
1.草地农业生态系统国家重点实验室,兰州大学草地农业科技学院,甘肃 兰州 730020
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3, address=3.内蒙古大学生态与环境学院,内蒙古 呼和浩特010021
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1, 2, *, address=1.草地农业生态系统国家重点实验室,兰州大学草地农业科技学院,甘肃 兰州 730020
2.农业部草牧业创新重点实验室,甘肃 兰州 730020
1.草地农业生态系统国家重点实验室,兰州大学草地农业科技学院,甘肃 兰州 730020
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Variation schematic diagram of vegetation coverage with soil moisture
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植被盖度随土壤水分的变化示意图
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RDA analysis of population, community coverage and soil moisture in each layer
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各层土壤水分与种群盖度、群落盖度的RDA分析
SP:紫花针茅S. purpurea;AI:醉马草A. inebrians;PB:二裂委陵菜P. bifurca;LS:赖草L. secalinus;PP:波伐早熟禾P. poophagorum;HA:阿尔泰狗娃花H. altaicus;OS:紫花棘豆O. subfalcata;AF:冷蒿A. frigida;AC:扁穗冰草A. cristatum;EN:垂穗披碱草E. nutans;CXA:苔草C. ateriima;CA:银灰旋花C. ammannii;PA:星毛委陵菜P. acaulis;SL:乳白黄耆S. leucocephalus;CG:灰绿藜C. glaucum;TH:蚓果芥T. humilis;XE:群落盖度Community coverage;XA、XB、XC、XD:0~10 cm、10~20 cm、20~30 cm、30~40 cm土壤含水量0-10 cm, 10-20 cm, 20-30 cm, 30-40 cm soil moisture.
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Relationship between 0-10 cm soil moisture and population coverage
The standard error of the model coefficient is indicated by subscript. The same below.
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0~10 cm土壤含水量与种群盖度的关系
下标为模型系数的标准误差。下同。
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Relationship between 0-10 cm soil moisture and community coverage and community succession
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0~10 cm土壤含水量与群落盖度的关系与群落演替
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Relationship between NDVI, 0-10 cm soil moisture and community coverage
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NDVI与0~10 cm土壤含水量和群落盖度的关系
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The parameters of population coverage with the change of soil moisture
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植物种群 Population | 种群盖度的土壤水分临界点 The critical point of soil moisture of population coverage (%) | 种群盖度的土壤水分饱和点 The saturation point of soil moisture of population coverage (%) | 种群盖度的土壤水分值域 The range of soil moisture of population coverage (%) | 饱和种群盖度 Saturation population coverage (%) |
| 紫花针茅S. purpurea | 4.7 | 21 | 16.3 | 31.5 |
| 扁穗冰草A. cristatum | 3.0 | 17 | 14.0 | 10.1 |
| 赖草L. secalinus | 4.1 | 19 | 14.9 | 14.1 |
| 波伐早熟禾P. poophagorum | 3.8 | 19 | 15.2 | 8.2 |
| 阿尔泰狗娃花H. altaicus | 4.8 | 19 | 14.2 | 6.3 |
| 紫花棘豆O. subfalcata | 3.9 | 19 | 15.1 | 2.2 |
| 冷蒿A. frigida | 3.8 | 19 | 15.2 | 5.5 |
| 垂穗披碱草E. nutans | 3.2 | 18 | 14.8 | 4.8 |
| 星毛委陵菜P. acaulis | 4.0 | 20 | 16.0 | 5.5 |
| 灰绿藜C. glaucum | 6.8 | 26 | 19.2 | 7.2 |
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种群盖度随土壤水分变化的相关参数
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植物种群 Population | 种群盖度的土壤水分临界点 The critical point of soil moisture of population coverage (%) | 种群盖度的土壤水分饱和点 The saturation point of soil moisture of population coverage (%) | 种群盖度的土壤水分值域 The range of soil moisture of population coverage (%) | 饱和种群盖度 Saturation population coverage (%) |
| 紫花针茅S. purpurea | 4.7 | 21 | 16.3 | 31.5 |
| 扁穗冰草A. cristatum | 3.0 | 17 | 14.0 | 10.1 |
| 赖草L. secalinus | 4.1 | 19 | 14.9 | 14.1 |
| 波伐早熟禾P. poophagorum | 3.8 | 19 | 15.2 | 8.2 |
| 阿尔泰狗娃花H. altaicus | 4.8 | 19 | 14.2 | 6.3 |
| 紫花棘豆O. subfalcata | 3.9 | 19 | 15.1 | 2.2 |
| 冷蒿A. frigida | 3.8 | 19 | 15.2 | 5.5 |
| 垂穗披碱草E. nutans | 3.2 | 18 | 14.8 | 4.8 |
| 星毛委陵菜P. acaulis | 4.0 | 20 | 16.0 | 5.5 |
| 灰绿藜C. glaucum | 6.8 | 26 | 19.2 | 7.2 |
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