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1.
通过研究北部湾海域龟仙岛和背风墩红树林岛群生态系统的结构特征与碳储量,为红树林保护及生态补偿提供科学依据。本文以无人机遥感影像和样地调查为数据源,采用面向对象的多尺度分割算法提取红树林群落类型信息,借助单因素方差分析、优势种分析、多样性分析等方法来分析红树林群落的结构特征,基于红树植物的异速生长方程,得出了不同海岛红树林生态系统碳密度和碳储量。(1)龟仙岛和背风墩岛屿群落约 27.10 ha,其中,红树林面积约 11.20 ha,占岛群总面积的 41.32%,红树林群落广泛分布于岛屿周围的浅海滩涂区域;(2)主要群落类型有桐花树群落、秋茄+桐花树群落、白骨壤+桐花树群落和白骨壤群落,物种多样性指数较低;(3)在红树林的生物量中,白骨壤最高(18.52 kg 株–1),秋茄次之(7.84 kg 株–1),桐花树最小(3.85 kg 株–1);(4)红树林碳密度差异显著,秋茄的碳密度最高(148.03 t ha–1),其次是白骨壤(104.79 t ha–1),桐花树最小(9...  相似文献   

2.
Ecosystem carbon allocation can indicate ecosystem carbon cycling visually through its quantification within different carbon pools and carbon exchange. Using the ecological inventory and eddy covariance measurement applied to both a mature temperate mixed forest in Changbai Mountain (CBM) and a mature subtropical evergreen forest in Dinghu Mountain (DHM), we partitioned the ecosystem carbon pool and carbon exchange into different components, determined the allocation and analyzed relationships within those components. Generally, the total carbon stock of CBM was slightly higher than that of DHM due to a higher carbon stock in the arbor layer at CBM. It was interesting that the proportions of carbon stock in vegetation, soil and litter were similar for the two mature forests. The ratio of vegetation carbon pool to soil carbon stock was 1.5 at CBM and 1.3 at DHM. However, more carbon was allocated to the trunk and root from the vegetation carbon pool at CBM, while more carbon was allocated to foliage and branches at DHM. Moreover, 77% of soil carbon storage was limited to the surface soil layer (0-20 cm), while there was still plentiful carbon stored in the deeper soil layers at DHM. The root/shoot ratios were 0.30 and 0.25 for CBM and DHM, respectively. The rates of net ecosystem productivity (NPP) to gross ecosystem productivity (GPP) were 0.76 and 0.58, and the ratios of ecosystem respiration (Re) to GPP were 0.98 and 0.87 for CBM and DHM, respectively. The net ecosystem carbon exchange/productivity (NEP) was 0.24 t C ha-1 yr-1 for CBM and 3.38 t C ha-1 yr-1 for DHM. Due to the common seasonal and inter-annual variations of ecosystem carbon exchange resulting from the influence of environmental factors, it was necessary to use the long record dataset to evaluate the ecosystem sink capacity.  相似文献   

3.
Soil CO_2 efflux, the second largest flux in a forest carbon budget, plays an important role in global carbon cycling. Forest logging is expected to have large effects on soil CO_2 efflux and carbon sequestration in forest ecosystems. However, a comprehensive understanding of soil CO_2 efflux dynamics in response to forest logging remains elusive due to large variability in results obtained across individual studies. Here, we used a meta-analysis approach to synthesize the results of 77 individual field studies to determine the impacts of forest logging on soil CO_2 efflux. Our results reveal that forest logging significantly stimulated soil CO_2 efflux of the growing season by 5.02%. However, averaged across all studies, nonsignificant effect was detected following forest logging. The large variation among forest logging impacts was best explained by forest type, logging type, and time since logging. Soil CO_2 efflux in coniferous forests exhibited a significant increase(4.38%) due to forest logging, while mixed and hardwood forests showed no significant change. Logging type also had a significant effect on soil CO_2 efflux, with thinning increasing soil CO_2 efflux by 12.05%, while clear-cutting decreasing soil CO_2 efflux by 8.63%. The time since logging also had variable effects, with higher soil CO_2 efflux for 2 years after logging, and lower for 3-6 years after logging; when exceeded 6 years, soil CO_2 efflux increased. As significantly negative impacts of forest logging were detected on fine root biomass, the general positive effects on soil CO_2 efflux can be explained by the accelerated decomposition of organic matter as a result of elevated soil temperature and organic substrate quality. Our results demonstrate that forest logging had potentially negative effects on carbon sequestration in forest ecosystems.  相似文献   

4.
2005-2013年中国新增造林植被生物量碳库固碳潜力分析   总被引:2,自引:2,他引:0  
廖亮林  周蕾  王绍强  汪小钦 《地理学报》2016,71(11):1939-1947
本文利用2005-2013年林业统计年鉴中每个省市新造林面积和遥感分类提取得到的2010年土地覆被类型,结合公开发表的各类森林生长方程和各个时期的森林存活率,估算了中国新造林在2005-2100年生物量碳库变化及其固碳潜力。结果表明:2005-2013年中国新造林面积达到4394×104 hm2,在自然生长状况下,到2020年新造林蓄积量增加16.8亿m3,生物量增加1.6 Pg,生物量碳库0.76 Pg C;新造林生物量碳库在2005-2100年中将增加2.11 Pg C,相当于目前现有森林生物量碳库的25%,约是过去20年森林总碳汇的1.5倍;新造林生物量碳密度逐年增加,最高达到48.1 Mg/hm2。整合林业统计年鉴以及遥感解译的森林类型对新造林生物量固碳潜力分析,研究表明新造林具有较大的碳汇潜力,对中国现有森林碳汇平衡有重要贡献。  相似文献   

5.
Forest ecosystem, as a predominant component of terrestrial ecosystems in view of carbon sinks, has a high potential for carbon sequestration. Accurately estimating the carbon sequestration rate in forest ecosystems at provincial level, is a prerequisite and basis for scientifically formulating the technical approaches of carbon neutrality and the associated regulatory policies in China. However, few researches on future carbon sequestration rates(CSRs) for Chinese forest ecosystems for provinci...  相似文献   

6.
In Malaysia, the main land change process is the establishment of oil palm plantations on logged‐over forests and areas used for shifting cultivation, which is the traditional farming system. While standing carbon stocks of old‐growth forest have been the focus of many studies, this is less the case for Malaysian fallow systems and oil palm plantations. Here, we collate and analyse Malaysian datasets on total carbon stocks for both above‐ and below‐ground biomass. We review the current knowledge on standing carbon stocks of 1) different forest ecosystems, 2) areas subject to shifting cultivation (fallow forests) and 3) oil palm plantations. The forest ecosystems are classified by successional stage and edaphic conditions and represent samples along a forest succession continuum spanning pioneer species in shifting cultivation fallows to climax vegetation in old‐growth forests. Total carbon stocks in tropical forests range from 4 to 384 Mg C/ha, significantly wider than the range of total carbon stocks of oil palm plantations, 2 to 60 Mg C/ha. Conversion of old‐growth forest areas to oil palm plantations leads to substantial reduction in carbon storage, while conversion of forest fallows to oil palm plantations may sustain or even increase the standing carbon stock.  相似文献   

7.
This article presents a carbon stock assessment to illustrate the organic carbon distribution and storage within mangrove ecosystems in Sri Lanka. The living tree biomass and soil carbon pools were investigated in three sites with varying degree of human disturbance in Batticaloa Lagoon. Soil carbon content was derived by the Walkley Black method from soil samples and mangrove trees were measured for calculations in general allometric equations. The mangroves that were extremely converted into a shrimp farm in Kokkaddicholai recorded a carbon (C) stock of 100.9 kg m‐2. Dominated by the poisonous Excoecaria agallocha stands, the regenerating mangroves in Manmunai Bridge Island hosted the largest C stock measuring 786.4 kg C m‐2. The Kannankudah site—dominated by Avicennia marina, Lumnitzera racemosa and Excoecaria agallocha stands, recorded a C stock of 593.1 kg C m‐2. Cuts and stumps indicated wood harvesting for local livelihoods. The soil C content pool contributed most significantly to the total C stock, with the top 30 cm containing the largest C concentration in all soil profiles. The soil carbon content was highest (5.1 per cent) in Kannankudah, second highest (3.6 per cent) in the disturbed but regenerating forest at Manmunai Bridge Island, and the lowest (0.3 per cent) at the converted site of Kokkaddicholai.  相似文献   

8.
The National Forest Inventory (NFI) is an important resource for estimating the national carbon balance (These data were unpublished data, and we could only obtain the data before 2008 through data search by now). Based on the data from sample plots, the literature, and NFI, as well as the relationships between volume, biomass, annual litterfall and soil respiration of different forest types, the net ecosystem production (NEP), changes in forest biomass carbon storage (△Cbiomass) and non-respiratory losses (NR) of China’s forests during 1999-2008 were estimated, and the forest soil carbon sequestration (△Csoil) was assessed according to the carbon balance principle of the forest ecosystem (△Csoil = NEP - NR - Cbiomass). The results showed that the total NEP, Cbiomass, NR and △Csoil values for China’s forests were 157.530, 48.704, 31.033 and 77.793 Tg C yr-1 respectively, and average NEP, △Cbiomass, NR, and △Csoil values were 101.247, 31.303, 19.945 and 49.999 g C m-2 yr-1 respectively. There were large spatial differences in forest soil carbon sequestration in different parts of China. The forest soil in Jiangxi, Hunan, Zhejiang, Fujian, Anhui, Shanxi, Shaanxi, Guangxi and Liaoning served as carbon sources and the carbon released was about 25.507 Tg C yr-1. The other 22 provinces served as carbon sinks and the average carbon sequestration by forest soil came to 103.300 Tg C yr-1. This research established a method for evaluating soil carbon sequestration by China’s forests based on the NFI, which is a useful supplement to current statistical data-based studies on the forest ecosystem carbon cycle, and can promote comparable studies on forest soil carbon sequestration with consistent research methods at the regional scale.  相似文献   

9.
Data on the consequences of pyrogenic digression of pine and larch forests are presented: progressive thinning and decline of the economic value of tree stands, local deforestation, and disturbance of the ecological functions.  相似文献   

10.
于钊  李奇铮  王培源  蒋齐 《中国沙漠》2022,42(2):215-222
荒漠草地是陆地生态系统的重要组成部分,研究退化和恢复荒漠草地生态系统碳密度的变化特征,是精确评估荒漠草地在全球气候变化中作用的关键,也能为中国碳达峰和碳中和提供数据支撑和理论依据.通过野外调查取样和室内分析,研究了腾格里沙漠南缘天然荒漠草地、重度退化荒漠草地和通过植被建设恢复良好的人工-天然荒漠草地的生态系统碳密度,主...  相似文献   

11.
森林净初级生产力(NPP)反映了森林植被固定和转换光合产物的能力,表示了森林碳汇功能强度,也是评价森林植被的演替状况以及陆地生态系统承载力的主要指标。基于遥感、清查资料等方法估算NPP已经取得了一些进展,但传统的研究方法受限于观测(调查)年份,难以有效获取长时间尺度的区域森林种群或群落年际NPP。树轮资料较为有效地反映了历史时期森林植被的逐年生长状况,从而在估算高精度且长时间尺度区域森林种群及群落NPP中具有较大的优势。本文对利用树轮资料重建区域森林NPP的两种主要方法进行了总结,第一种方法主要是依据树轮资料提供的立木逐年生长量进行生物量以及NPP的估算;第二种方法则是利用树轮指数与其他植被指数的相关性间接反演过去时间段区域森林群落NPP的变化。上述两种估算NPP的方法均存在较多的限制性,未来利用树轮资料估算NPP的时空精度仍有待提高。  相似文献   

12.
近20年海南岛森林生态系统碳储量变化   总被引:49,自引:2,他引:49  
曹军  张镱锂  刘燕华 《地理研究》2002,21(5):551-560
热带森林在碳循环研究中有重要作用。根据目前森林碳储量的计算方法和海南森林资源二类调查数据 ,估算了不同时段的碳储量 ,并分析其动态变化特点。结果表明 :海南森林碳储量从 1979年的 30 4 5TgC增加到 1998年的 37 74TgC ,年均增加 0 36 4 5TgC ,增长率为1 19% ,是全国平均增长率的 2 5倍 ;海南森林在碳循环中起不断增强的碳汇作用 ;森林碳密度呈加速减少趋势 ,储碳潜力将很大 ;随着海南全面禁止采伐和封育等林业措施的实施 ,森林面积扩大 ,林龄结构改善 ,储碳能力将进一步提高 ,海南森林在全国或全球碳循环中的作用和社会价值与意义将日渐突出。通过对碳储量计算不确定性的分析和讨论 ,提出应加强对森林群落各层次生物量的实测与实地监测研究 ,统一计算方法 ,以提高碳储量计算的精度  相似文献   

13.
中国森林生态系统的植物碳贮量及其影响因子分析   总被引:101,自引:2,他引:99  
赵敏  周广胜 《地理科学》2004,24(1):50-54
利用中国第四次(1989~1993年)森林资源清查资料,指出中国森林植被的总碳贮量和碳密度分别为 3 778.1Tg(1Tg = 1012 g)和41.321 Mg/hm2(1 Mg= 106 g),其分布很不均衡,东北和西南各省的碳贮量和碳密度较大。中国森林碳贮量约占世界的1.1%,森林碳密度低于世界平均水平,但中国森林以中、幼龄林为主,占80%以上,表明中国森林植被具有巨大的固碳潜力,对全球碳循环具有重要作用。同时,采用多元线性回归模型、标准系数法定量分析了气候因子对森林植被碳贮量的影响程度,指出气温对森林植被碳贮量的贡献大于降水。  相似文献   

14.
东莞主要森林群落凋落物碳储量及其空间分布   总被引:7,自引:0,他引:7  
基于2 km×2 km的UTM网格对东莞市不同的森林群落类型进行了详细调查,以研究森林凋落物的碳储量及其空间分布.研究结果表明,天然林凋落物碳储量显著高于人工林;不同森林类型的凋落物碳储量之间差异极显著,其碳密度大小依次为:湿地松-阔叶混交林>相思林>马尾松-杉木林>荷木林>桉树林>杉木-阔叶混交林>马尾松-阔叶混交林>荔枝-龙眼林>青皮竹林.针叶林的单位凋落物碳含量最大,占59%,大于阔叶林;相思林和荷木林单位凋落物碳含量仅次于马尾松-杉木针叶林.不同的经营措施对森林凋落物碳储量有显著的影响,经封山育林的林分凋落物碳储量最大.坡位对凋落物碳储量也有显著的影响,随着坡位的降低,森林凋落物现存量和碳密度随之降低.东莞市森林凋落物碳密度为4.25±0.15 t/hm2,凋落物碳储量总量为0.23±0.008 Mt.凋落物的碳储量动态直接关系到土壤碳储库,采取合适的经营措施,减少人为干扰造成的凋落物的流失,最终对于提高本地区森林生态系统碳库会有积极作用.  相似文献   

15.
中亚干旱荒漠区植被碳储量估算   总被引:2,自引:0,他引:2       下载免费PDF全文
陶冶  张元明 《干旱区地理》2013,36(4):615-622
荒漠是陆地生态系统的重要组成部分,荒漠植被碳储量研究是陆地生态系统碳循环研究的重要内容之一。中亚五国及中国准噶尔荒漠是中亚干旱区的主体部分,目前关于该地区荒漠植被碳储量的研究尚属空白。在对准噶尔荒漠不同植被类型活生物量碳大规模调查的基础上,结合中亚干旱荒漠区植被图,利用平均生物量法初步估算了中亚区域荒漠植被碳储量。结果表明:中亚区域荒漠面积共310.37×104 km2,总生物量碳储量为57.03×107 t,地上、地下生物量碳分别为28.87×107 t和28.16×107 t,各占50.63%和49.37%。各植被型中,温带半灌木、矮半灌木荒漠的生物量碳储量最大,达到14.17×107 t (占24.84%)。中亚荒漠平均生物量碳密度为1.837 t/hm2,其中温带矮半乔木荒漠碳密度最大(2.367 t/hm2)。可以推测,在未来中亚地区降水持续增加的条件下下,中亚荒漠植被将会有更大的碳汇潜力。  相似文献   

16.
汪晓帆  戴尔阜  郑度  吴卓 《地理学报》2021,76(1):223-234
在优化森林结构的同时保障其木材生产功能和生态功能,实现森林可持续经营,如何采取科学、合理的森林管理措施越来越受到人们的关注.本文选取采伐年龄、采伐斑块大小、采伐频率、采伐面积比例作为变量,以江西省泰和县为研究区,设定多种强度和方式的森林管理方案,耦合生态过程模型(PnET-Ⅱ)和景观模型(LANDIS-Ⅱ)模拟初始年(...  相似文献   

17.
As the major component of terrestrial ecosystems, forests play an irreplaceable role in providing ecosystem services and products (e.g. biodiversity, carbon sequestration, water yield and timber). Spatially quantifying ecosystem services and interactions will shed light on sustainable forest management. Main forest ecosystem services including carbon storage, water yield, soil retention and wood volume in the Ganjiang River Basin (GRB) were evaluated and mapped through the integrated use of InVEST3.1.0, CASA modeling and ArcGIS10.2, and relationships between forest ecosystem services and natural or social-economic factors were quantified and discussed based on ArcGIS10.2 and SPSS19.0. Results showed that the spatial pattern of the four ecosystem services is heterogeneous. Forests dominated by broad-leaved forest and bamboo forest in mountainous regions around the GRB provided the largest carbon storage and wood volume services, while forests dominated by Masson pine plantations or Chinese fir plantations in the northeast provided the largest water yield service. The spatial pattern of the soil retention service is more discrete than others, and forests in the southwestern regions showed larger soil erosion modulus than in the northeastern regions. Ecosystem services are closely related to the environmental process and human activities. With altitude or slope increases, the carbon storage and wood volume of forests increased and water yield depth and soil retention decreased. When the regional total population decreased or GDP per capita increased, carbon storage and wood volume increased. Further research into the interactions between environmental factors and ecosystem services is needed in order to understand environmental constraints when dealing with ecological problems.  相似文献   

18.
土壤有机碳对区域碳平衡起着关键性的作用,量化其空间格局及动态变化是准确评估生态系统碳汇潜力的基础。然而,不同土壤有机碳估算方法和不同样本得出的结果存在非常大的差异和不确定性,尤其是地形复杂、对气候变化敏感的青藏高原地区。为定量评估不同方法估算的土壤有机碳密度空间分布格局在青藏高原地区的差异,论文以青海省为研究区,收集整理了青海省806个土壤有机碳密度采样点数据,基于气候、植被、地形和土壤等多种解释变量,采用逐步回归、反距离权重插值、普通克里格插值和随机森林模型4种不同的方法,对青海省表层(0~30 cm)土壤有机碳密度空间分布及其影响因素进行了探究。结果表明,归一化植被指数、光合有效辐射、总氮、年均温、海拔、年降水量和净初级生产力是土壤有机碳密度估算的重要变量;尽管4种方法所估算的青海省土壤有机碳密度的均值较为接近,处于5.14~5.62 kg C·m-2之间,但其变化范围存在较大差异,分别为0.17~23.25、0.34~46.61、0.56~35.08和0.62~24.85 kg C·m-2;4种方法模拟结果的均方根误差分别为3.93、3...  相似文献   

19.
The study of waters ecosystem and their population carrying capacity demonstrates the role of these ecosystems in economic and social development and provides a theoretical basis for the management and allocation of aquatic ecosystems. In this study, the concept of waters ecosystem population carrying capacity was defined and developmental trends in the population carrying capacity of waters ecosystem in China were evaluated. Results show that waters ecosystem population carrying capacity in China increased from 0.176×109 person year-1 in 2000 to 0.255 ×109 person year-1 in 2010; the population carrying capacity of the standard sea remained at 0.2-0.3 person ha-1; and the standard inland waters population carrying capacity increased from 1.8 to 3.2 person ha-1. This analysis indicates notable regional difference in waters population carrying capacity. In southeastern coastal China and Yangtze River drainage areas where inland waters are widely distributed and aquaculture is developed, the population carrying capacity is higher; however, in northwest China where water resource are deficient and the distribution is relatively small, the waters population carrying capacity is low. The waters ecosystem population carrying capacity of China in 2030 was predicted and results indicate strong potential for increasing waters population carrying capacity.  相似文献   

20.
以最近建成的中国1:100万土壤空间数据库以及《中国土种志》和省级土种志的土壤属性为基础,共收集东北三省736个土壤剖面理化分析数据,估算出该地区土壤有机碳总储量,并分析讨论了土壤有机碳密度在空间上的分布特征。结果表明,东北三省土壤有机碳密度平均为16.13 kg/m2,在空间分布上的总趋势为东北部高,西南部低,密度较高的有机碳主要分布在原始森林、湿地及部分农业耕作区中。土壤有机碳密度最高的土类为泥炭土和沼泽土等土类,最低的为石质土、风沙土等土类。  相似文献   

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