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1.
在东祁连山高寒草地,对围栏7年和不同放牧强度的草地进行了物种数、地上生物量、地下生物量、土壤理化性质等研究。结果表明,围栏7年的高寒草地鲜草产量为425.8 g·m-2,显著高于夏季中牧159.3 g·m-2和夏季重牧91.0 g·m-2,但与冬季轻牧、夏季轻牧差异不显著。围栏条件下的物种数为26.3种·16 m-2,显著低于其他放牧条件下的物种数,但显著高于夏季重牧条件下的物种数23.0种·16 m-2;轻度或重度放牧都会使物种数减少,夏季中牧下的物种数最高(33.5种·16 m-2)。在0~10 cm的表层土壤中,围栏7年的草地根系生物量显著高于其他放牧强度。随着放牧强度的增加,根系生物量在0~10 cm土壤中呈下降趋势,在30~40 cm土壤中则表现为升高趋势。围栏7年的土壤容重低于其他放牧强度下的土壤容重,但差异不显著;夏季重牧的土壤容重显著高于围栏7年和其他放牧强度的土壤容重。随着放牧强度的增加,0~10 cm土壤碱解氮增加,围栏7年草地最低。围栏封育可有效改善和恢复草地植被,但不能长时间禁牧不进行放牧利用。合理的放牧能够维护高寒草甸草地生态系统功能、促进物种丰富度和土壤营养的均衡。  相似文献   

2.
围栏封育对新疆蒿类荒漠草地植被及土壤养分的影响   总被引:10,自引:0,他引:10  
以新疆封育3年的蒿类荒漠草地为对象,研究干旱区封育对草地植被及土壤养分的影响.结果表明:封育后荒漠草地群落的盖度、产量明显增加(P<0.05),分别比对照提高了11.0%,51.6 g/m~2,且盖度、产量的增加主要是由藜科草类引起;荒漠草地80%以上的地下生物量集中在0~40 cm土层中,且封育促进了0~10 cm土层内生物量的增加(P<0.05);与放牧地相比,封育后土壤有机质、全氮、全磷、全钾及速效氮、磷、钾含量均有所提高,且在0~10 cm的土层中差异显著(P<0.01),而pH值略有上升.  相似文献   

3.
吴起县退耕还林后主要植被类型土壤质量评价   总被引:1,自引:0,他引:1  
为明确吴起县退耕还林后形成的主要植被类型土壤质量状况,文中以吴起县王洼子典型退耕植被作为研究对象,对比分析不同植被类型土壤理化性质差异,并综合主成分分析法、敏感性以及相关性分析法,建立了研究区土壤质量评价指标最小数据集。结果表明:1)不同植被类型间土壤物理、化学性质差异显著(P<0.05);山桃×沙棘混交林在土壤孔隙度、持水性以及有机碳含量方面表现较优;刺槐林在土壤pH和电导率方面表现较优;沙棘林、柠条林在富集氮、磷、钾元素方面优势明显;草地土壤指标整体表现较差。2)适用于研究区不同植被类型土壤质量评价的最小数据集指标为土壤有机碳含量、毛管持水量、电导率和有效磷。3)不同植被类型均在不同程度上有效提高土壤质量,但研究区土壤质量指数整体仍较低,其中山桃×沙棘混交林对土壤质量提升效果最好,其次为灌木林(柠条、沙棘),乔木林(刺槐、杜梨、山桃)和草地。因此,研究区在今后进行低效林改造、林分结构调整与植被恢复重建等林业生态工程时,优先选择以沙棘、柠条为主的灌木林或者小乔木与灌木相结合的混交林(山桃×沙棘混交林)。  相似文献   

4.
科尔沁沙质草地封育过程中的植被变化及其机制   总被引:2,自引:0,他引:2  
对科尔沁沙地乌兰敖都地区的沙质草地封育后的植被变化及其机制进行分析研究。结果表明:① 围栏封育使植被物种丰富度、密度显著提高,群落的优势种发生明显变化;围封地的Simpson多样性指数和Shannon-Wiener多样性指数均表现为随封育时间增加而下降,而Pielou均匀度指数随围封时间增加表现出先增加后下降的趋势。② 围栏封育可以增加土壤表层(0~10 cm)的养分含量,但电导率随围封时间表现出先降低后增加的趋势,同时围栏封育使土壤水分含量下降。③ 土壤表层(0~10 cm)各因子对多样性的影响不同,全氮和pH与Pielou指数呈显著(P<0.05)负相关;全氮对于丰富度指数呈显著(P<0.05)正相关;其他土壤环境因子与多样性指数间关系均不显著,表明在沙质草地封育不利于植物多样性的维持,但有利于土壤养分的积累。  相似文献   

5.
宁南山区不同放牧强度对天然草地土壤水分的影响   总被引:4,自引:1,他引:4  
本文对位于宁夏南部黄土高原半干旱区过渡放牧区、中度放牧区和持续禁牧三种条件下的天然草地 0 - 9.9m土壤深度的水分含量进行了测定。三者土壤水分含量的主要差别在 0 - 4m以上土层。 0 - 4m土层的土壤湿度 ,核心保护区显著 ( p =0 .0 2 2 838)高于中度放牧区 ,极显著 ( p <0 .0 0 1 )高于过渡放牧区 ,中度放牧区也显著高于过渡放牧区 (p =0 .0 2 80 2 3)。平均土壤湿度 ,核心保护区分别是中度和过渡放牧区的 1 .2 5和 1 .5 6倍 ,中度放牧区是过渡放牧区的 1 .2 5倍。 4- 9.9m土壤湿度 ,核心保护区、中度放牧区和过渡放牧区没有显著差异 ,平均土壤湿度分别为 1 2 .3%、1 2 .7%、1 2 .7%。  相似文献   

6.
不同强度放牧后沙质草场土壤微生物的分布特征   总被引:6,自引:1,他引:5  
本文通过对科尔沁沙质草场不同强度放牧后围栏封育过程中表层(0-5cm)和亚表层(5-15cm)土壤微生物及土壤因子的研究表明:不同放牧强度围栏内,土壤微生物总数表现出:轻牧区>中牧区>对照区>重牧区>自由放牧区,11年的围栏封育不能使不同放牧强度下的沙质草场恢复到相同水平;亚表层土壤的细菌、真菌和放线菌数量、pH、电导率和含水量均大于表层土壤。轻牧和中牧有利于微生物各类群的生长繁殖,过度放牧会抑制微生物的活动,一直自由放牧则会严重破坏沙质草场表层土壤,使其微生物数量和土壤含水量减少,土壤碱性增强。  相似文献   

7.
以干旱、半干旱地区荒漠草原土壤为研究对象,研究N、P养分添加对荒漠草原0~30 cm土层土壤颗粒有机碳和轻组有机碳含量、分配比例、敏感指数的影响,探讨荒漠草原土壤非保护性有机碳分配比例及其向保护性有机碳的转化速率对N、P添加的响应。研究结果表明:短期N、P添加能促进荒漠草原表层土壤(0~10 cm)土壤颗粒有机碳和轻组有机碳的积累,分别使其增加了50%~70%、15%~31%。短期N、P添加显著增加土壤非保护性有机碳分配比例(25%~52%),而降低了土壤非保护性有机碳向保护性有机碳转化速率常数(24%~42%)。荒漠草原土壤有机碳主要以非保护性有机碳形式储存,短期N、P添加通过影响土壤非保护性有机碳分配比例,使土壤肥力提高,土壤有机碳的活性组分增加,不利于土壤有机碳的稳定。  相似文献   

8.
不同强度放牧对贝加尔针茅草原群落和土壤理化性质的影响   总被引:11,自引:2,他引:11  
在一个生长季内,比较分析了贝加尔针茅草甸草原不同放牧强度地段(非牧段,轻牧段,中牧段和重牧段,以放牛为主)植物群落的总地上现存量、总投影盖度、平均高度和土壤理化性质的变异。结果表明,不同强度放牧条件下各项指标均呈规律性变化,表现为植被的生长状况和土壤状况随着放牧强度的增加而劣化,且群落总地上现存量、总投影盖度、群落高度之间具有显著的相关性。土壤的pH值和电导率与地面凋落物的量之间存在显著负相关。考虑各项指标对放牧反应的敏感性、变化的稳定性和测定的方便性,可以把群落盖度、土壤化学性质的变化作为草地健康评价的关键指标。  相似文献   

9.
短花针茅荒漠草原土壤种子库对不同放牧强度的响应   总被引:1,自引:0,他引:1  
在内蒙古短花针茅荒漠草原,采用野外随机定点取样与室内萌发相结合的方法,对不同放牧强度下围封草地土壤种子库的密度、垂直结构、多样性、丰富度、均匀度、以及种子库与地上植被的相似性进行了研究。结果表明,在各试验区土壤种子库主要分布在0~20cm土层,占种子库总密度的87%~96%;随着放牧强度的增加,土壤种子库总密度减少,同时地上植被与土壤种子库的相似物种数减少,种子库组成的相异性增加;轻度放牧对土壤种子库中一二年生草本所占比例影响较小,而中度和重度放牧使土壤种子库中一二年生草本所占比例增加;土壤种子库的物种丰富度、多样性、均匀度均随放牧强度的增加而减小。  相似文献   

10.
以科尔沁沙地小叶锦鸡儿群落为研究对象,对比分析了放牧干扰和不同封育年限下土壤种子库特征。结果表明:①放牧和封育样地土壤种子库均以一年生植物为主,物种丰富度没有明显差异;②放牧样地土壤种子库密度为(3 475±519)粒/m2,封育6年和封育12年样地土壤种子库密度分别为(20 241±1 714)粒/m2和(28 777±3 946)粒/m2,显著高于放牧样地;③Shannon-W iener多样性指数、S impson多样性指数和P ielou均匀度指数在放牧样地分别为1.36,0.68和0.56,并随着封育年限的增加而降低;④放牧和封育样地土壤种子库主要分布于0~2 cm的土壤表层,封育样地各层的种子库密度均显著高于放牧样地;⑤放牧和封育样地土壤种子库均为聚集分布,但放牧样地种子库的空间异质性高于封育样地。  相似文献   

11.
Grazing exclusion is one of the most efficient approaches to restore degraded grassland but may negatively affects the recovery of species diversity. Changes in plant species diversity should be a consequence of the ecological assembly process. Local community assembly is influenced by environmental filtering, biotic interactions, and dispersal. However, how these factors potentially contribute to changes to species diversity is poorly understood, especially in harsh environments. In this study, two management sites within a Stipa breviflora desert steppe community(typical natural steppe) were selected in northern China. In one of the two management sites, grazing has been excluded since 2010 and in the other with open grazing by sheep. In August 2016, three plots were established and 100 sampling units were created within each plot in a 5 m×5 m area at the two management sites. To assess the effects of grazing exclusion on S. breviflora steppe, we analyzed the vegetation biomass, species diversity,soil organic carbon, and soil particle size distribution using paired T-tests. In addition, variation partitioning was applied to determine the relative importance of environmental filtering and dispersal limitation. Null mode analysis was used to quantify the influence of biotic interactions in conjunction with Eco Sim niche overlap and co-occurrence values. Our results demonstrated that(1) species diversity significantly decreased and the main improvements in soil quality occurred in the topsoil 0–10 cm after the grazing exclusion;(2) environmental filtering was important for community assembly between grazed and fenced grassland and this appears particularly true for soil particle size distribution, which may be well correlated with soil hydrological processes; and(3) however, competitive exclusion may play a significant role within the exclusion. The multiple pathways of assembly may collectively determine negative effects on the restoration of species diversity. Therefore, designers should be aware of the risk of reducing grazing exclusion-induced species diversity and account for manipulating processes. This in turn will reduce dominant species and promote environmental heterogeneity to maximize species diversity in semi-arid regions.  相似文献   

12.
Land use change significantly influences soil properties.There is little information available on the long-term effects of post-reclamation from grassland to cropland on soil properties.We compared soil carbon(C) and nitrogen(N) storage and related soil properties in a 50-year cultivation chronosequence of grassland in the agro-pastoral ecotone of Inner Mongolia.Field surveys on land use changes during the period of 1955-2002 were conducted to build a chronosequence of cropland of different ages since the conversion from grassland.The results showed that soil C and N storage,soil texture,and soil nutrient contents varied with land use types and cropland ages(P<0.01).In the 0-30 cm soil layer,the soil organic carbon(SOC) density was significantly lower in the croplands(3.28 kg C/m2 for C50 soil) than in the grasslands(6.32 kg C/m2).After 5,10,15,20,35,and 50 years of crop planting(years since the onset of cultivation),the SOC losses were 17%,12%,19%,47%,46%,and 48%,respectively,compared with the grasslands.The soil total nitrogen(TN) density of the grasslands was 65 g N/m2,and TN density of the cropland soil was 35 g N/m2 after 50 years of crop planting.Both the SOC and TN densities could be quantitatively determined by a negative exponential function of cropland age(P<0.0001,R2=0.8528;P<0.0001,R2=0.9637).The dissolved organic carbon(DOC) content,soil available potassium(AK) content,clay content,and pH value were decreased;and the soil bulk density and sand content were increased since the conversion of grassland into cropland during the 50-year period.Our results show soil nutrients were higher in grassland than in cropland.The conversion of grasslands to croplands induced a loss of soil C storage and changes of related soil properties.The reclamation time of cultivated soil(cropland age) had significant effects on soil properties in the study area.  相似文献   

13.
The study was conducted in Taftan rangeland in Sistan and Baluchestan, Iran, to study the effects of grazing exclusion on reclamation of vegetation cover and soil properties. After a comprehensive assessment of the vegetation types, plant sampling was carried out in sampling stands (50?×?50?m). In each stand, vegetation properties were measured using simple transect lines (50?m) method within quadrats (5?×?5?m), with a systematically randomized method. Soil sampling (75 samples) was performed along transects from the surface layer (0–30?cm). Results showed that livestock exclusion significantly affected community characteristics. The species richness (14.32), diversity (2.97), and plant cover (65.14%) showed their maximum level in the 15-year exclusion. The soil nutrient content increased during exclusion. Organic carbon (4.20%), total nitrogen (1.12%), available potassium (393.33?mg?kg?1), and available phosphorus content (17.13?mg?kg?1) attained significantly greater values under the long-term exclusion. The soil pH level (8.93) was significantly higher in the overgrazed site compared to the grazing exclusion sites. The soil electrical conductivity was statistically similar under the three treatments. The amounts of silt (63.40%) and clay (14%) were greater in the long-term exclusion compared with overgrazed rangeland. The long-term exclusion showed the lowest amount of sand (22.50%). These results imply that livestock exclusion plays an important role in vegetation restoration and soil conservation of degraded ecosystems in arid regions. We suggest that more studies are required to investigate the effect of livestock exclusion on ecosystem process in the arid rangeland regeneration.  相似文献   

14.
在青海省祁连山冰沟流域的高山草甸土上,选择放牧与禁牧2个样品采集区,研究了禁牧对祁连山冰沟流域高山草甸土有机碳及理化性质和酶活性的影响。结果表明:高山草甸土遭到放牧牲畜连续3年的啃食和践踏后,植被覆盖度明显降低,归还到土壤中的生物量和枯落物积累量减少,0~20 cm土层有机质含量、有机碳密度、总孔隙度、团聚体、田间持水量、氮磷钾和酶活性降低,容重、CaCO_3和可溶性盐增加,但20 cm以下土层这些性质变化不大。放牧与禁牧比较,0~20 cm土层土壤容重、可溶性盐和CaCO_3分别增加14.15%、6.35%和1.27%;有机碳含量、有机碳密度、总孔隙度、团聚体和田间持水量分别降低29.76%、22.82%、9.45%、6.49%和7.69%;全氮、全磷、全钾、脲酶、蔗糖酶、磷酸酶和过氧化氢酶分别降低25.97%、15.56%、12.17%、33.77%、26.11%、42.00%、29.31%。放牧对有机碳、容重、孔隙度、田间持水量、可溶性盐、氮磷钾和酶活性影响深度为20 cm,对团聚体影响深度为40 cm。  相似文献   

15.
Knowledge about the effects of vegetation types on soil properties and on water dynamics in the soil profile is critical for revegetation strategies in water-scarce regions, especially the choice of vegetation type and human management measures. We focused on the analysis of the effects of vegetation type on soil hydrological properties and soil moisture variation in the 0–400 cm soil layer based on a long-term(2004―2016) experimental data in the northern Loess Plateau region, China. Soil bulk density(BD), saturated soil hydraulic conductivity(Ks), field capacity(FC) and soil organic carbon(SOC) in 2016, as well as the volumetric soil moisture content during 2004–2016, were measured in four vegetation types, i.e., shrubland(korshinsk peashrub), artificial grassland(alfalfa), fallow land and cropland(millet or potato). Compared with cropland, revegetation with peashrub and alfalfa significantly decreased BD and increased Ks, FC, and SOC in the 0–40 cm soil layer, and fallow land significantly increased FC and SOC in the 0–10 cm soil layer. Soil water storage(SWS) significantly declined in shrubland and grassland in the 40–400 cm soil layer, causing severe soil drought in the deep soil layers. The study suggested that converting cropland to grassland(alfalfa) and shrubland(peashrub) improved soil-hydrological properties, but worsened water conditions in the deep soil profile. However, natural restoration did not intensify deep-soil drying. The results imply that natural restoration could be better than revegetation with peashrub and alfalfa in terms of good soil hydrological processes in the semi-arid Loess Plateau region.  相似文献   

16.
Man CHENG 《干旱区科学》2015,7(2):216-223
 Revegetation is a traditional practice widely used for soil protection. We evaluated the effect of natural revegetation succession on soil chemical properties and carbon fractions (particulate organic carbon (POC), humus carbon (HS-C), humic acid carbon (HA-C) and fulvic acid carbon (FA-C)) on the Loess Plateau of China. The vegetation types, in order from the shortest to the longest enclosure duration, were: (a) abandoned overgrazed grassland (AbG3; 3 years); (b) Hierochloe odorata Beauv. (HiO7; 7 years); (c) Thymus mongolicus Ronnm (ThM15; 15 years); (d) Artemisia sacrorum Ledeb (AtS25; 25 years); (e) Stipa bungeana Trin Ledeb (StB36; 36 years) and (f) Stipa grandis P. Smirn (StG56; 56 years). The results showed that the concentrations of soil organic carbon, total nitrogen and available phosphorus increased with the increase of restoration time except for ThM15. The concentration of NH4-N increased in the medium stage of vegetation restoration (for ThM15 and AtS25) and decreased in the later stage (for StB36 and StG56). However, NO3-N concentration significantly increased in the later stage (for StB36 and StG56). Carbon fractions had a similar increasing trend during natural vegetation restoration. The concentrations of POC, HS-C, FA-C and HA-C accounted for 24.5%–49.1%, 10.6%–15.2%, 5.8%–9.1% and 4.6%–6.1% of total carbon, respectively. For AbG3, the relative changes of POC, HS-C and FA-C were significantly higher than that of total carbon during the process of revegetation restoration. The higher relative increases in POC, HS-C and FA-C confirmed that soil carbon induced by vegetation restoration was sequestrated by higher physical and chemical protection. The increases of soil C fractions could also result in higher ecology function in semiarid grassland ecosystems.  相似文献   

17.
Soil erosion on the Loess Plateau of China is effectively controlled due to the implementation of several ecological restoration projects that improve soil properties and reduce soil erodibility. However, few studies have examined the effects of vegetation restoration on soil properties and erodibility of gully head in the gully regions of the Loess Plateau. The objectives of this study were to quantify the effects of vegetation restoration on soil properties and erodibility in this region. Specifically, a control site in a slope cropland and 9 sites in 3 restored land-use types(5 sites in grassland, 3 in woodland and 1 in shrubland) in the Nanxiaohegou watershed of a typical gully region on the Loess Plateau were selected, and soil and root samples were collected to assess soil properties and root characteristics. Soil erodibility factor was calculated by the Erosion Productivity Impact Calculator method. Our results revealed that vegetation restoration increased soil sand content, soil saturated hydraulic conductivity, organic matter content and mean weight diameter of water-stable aggregate but decreased soil silt and clay contents and soil disintegration rate. A significant difference in soil erodibility was observed among different vegetation restoration patterns or land-use types. Compared with cropland, soil erodibility decreased in the restored lands by 3.99% to 21.43%. The restoration patterns of Cleistogenes caespitosa K. and Artemisia sacrorum L. in the grassland showed the lowest soil erodibility and can be considered as the optimal vegetation restoration pattern for improving soil anti-erodibility of the gully heads. Additionally, the negative linear change in soil erodibility for grassland with restoration time was faster than those of woodland and shrubland. Soil erodibility was significantly correlated with soil particle size distribution, soil disintegration rate, soil saturated hydraulic conductivity, water-stable aggregate stability, organic matter content and root characteristics(including root average diameter, root length density, root surface density and root biomass density), but it showed no association with soil bulk density and soil total porosity. These findings indicate that although vegetation destruction is a short-term process, returning the soil erodibility of cropland to the level of grassland, woodland and shrubland is a long-term process(8–50 years).  相似文献   

18.
China's Horqin Sandy Land,a formerly lush grassland,has experienced extensive desertification that caused considerable carbon(C) losses from the plant-soil system.Natural restoration through grazing exclusion is a widely suggested option to sequester C and to restore degraded land.In a desertified grassland,we investigated the C accumulation in the total and light fractions of the soil organic matter from 2005 to 2013 during natural restoration.To a depth of 20 cm,the light fraction organic carbon(LFOC) storage increased by 221 g C/m2(84%) and the total soil organic carbon(SOC) storage increased by 435 g C/m2(55%).The light fraction dry matter content represented a small proportion of the total soil mass(ranging from 0.74% in 2005 to 1.39% in 2013),but the proportion of total SOC storage accounted for by LFOC was remarkable(ranging from 33% to 40%).The C sequestration averaged 28 g C/(m2·a) for LFOC and 54 g C/(m2·a) for total SOC.The total SOC was strongly and significantly positively linearly related to the light fraction dry matter content and the proportions of fine sand and silt+clay.The light fraction organic matter played a major role in total SOC sequestration.Our results suggest that grazing exclusion can restore desertified grassland and has a high potential for sequestering SOC in the semiarid Horqin Sandy Land.  相似文献   

19.
放牧对典型草原土壤中几种生态因子影响的研究   总被引:5,自引:0,他引:5  
研究了放牧强度对典型草原土壤中的微生物量氮、碳,微生物数量,五种酶活性和土壤理化性状的影响。结果表明:放牧对草原土壤中微生物量以及微生物数量的影响很显著,围栏和轻度放牧有利于保持或提高土壤中各类微生物数量,过度放牧则使土壤中的微生物量和微生物数量显著降低,同时,随放牧强度的增加,土壤的呼吸强度显著降低;轻度放牧使三类水解酶活性增加或极显著增加,中度和重度放牧导致此三类酶活性显著降低,不同程度的放牧均导致土壤中两类氧化酶活性增加;适度放牧有利于速磷的增加,而过度放牧则导致全磷、全氮和速效氮的显著降低。  相似文献   

20.
Revegetation is a traditional practice widely used for soil protection. We evaluated the effect of natural revegetation succession on soil chemical properties and carbon fractions(particulate organic carbon(POC), humus carbon(HS-C), humic acid carbon(HA-C) and fulvic acid carbon(FA-C)) on the Loess Plateau of China. The vegetation types, in order from the shortest to the longest enclosure duration, were:(a) abandoned overgrazed grassland(Ab G3; 3 years);(b) Hierochloe odorata Beauv.(Hi O7; 7 years);(c) Thymus mongolicus Ronnm(Th M15; 15 years);(d) Artemisia sacrorum Ledeb(At S25; 25 years);(e) Stipa bungeana Trin Ledeb(St B36; 36 years) and(f) Stipa grandis P. Smirn(St G56; 56 years). The results showed that the concentrations of soil organic carbon, total nitrogen and available phosphorus increased with the increase of restoration time except for Th M15. The concentration of NH4-N increased in the medium stage(for Th M15 and At S25) and decreased in the later stage(for St B36 and St G56) of vegetation restoration. However, NO3-N concentration significantly increased in the later stage(for St B36 and St G56). Carbon fractions had a similar increasing trend during natural vegetation restoration. The concentrations of POC, HS-C, FA-C and HA-C accounted for 24.5%–49.1%, 10.6%–15.2%, 5.8%–9.1% and 4.6%–6.1% of total carbon, respectively. For Ab G3, the relative changes of POC, HS-C and FA-C were significantly higher than that of total carbon during the process of revegetation restoration. The higher relative increases in POC, HS-C and FA-C confirmed that soil carbon induced by vegetation restoration was sequestrated by higher physical and chemical protection. The increases of soil C fractions could also result in higher ecological function in semiarid grassland ecosystems.  相似文献   

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