植物生态学报 ›› 2010, Vol. 34 ›› Issue (1): 39-47.DOI: 10.3773/j.issn.1005-264x.2010.01.007
所属专题: 生态化学计量
银晓瑞1,2, 梁存柱1,*(), 王立新1, 王炜1, 刘钟龄1, 刘小平1,3
收稿日期:
2008-11-17
接受日期:
2009-04-23
出版日期:
2010-11-17
发布日期:
2010-01-01
通讯作者:
梁存柱
作者简介:
* E-mail: bilcz@imu.edu.cn
YIN Xiao-Rui1,2, LIANG Cun-Zhu1,*(), WANG Li-Xin1, WANG Wei1, LIU Zhong-Ling1, LIU Xiao-Ping1,3
Received:
2008-11-17
Accepted:
2009-04-23
Online:
2010-11-17
Published:
2010-01-01
Contact:
LIANG Cun-Zhu
摘要:
对内蒙古典型草原不同恢复演替阶段群落土壤养分动态及空间格局、植物养分及其化学计量比时空动态、植物与土壤养分相关性等进行了分析, 以揭示放牧干扰对植物的养分及其化学计量比影响。结果表明: 土壤各养分含量表现为恢复群落略高于严重退化群落, 土壤全氮(STN)/土壤全磷(STP)恢复群落高于严重退化群落, 土壤有机质(SOC)/STN恢复群落低于严重退化群落; 大多数植物叶片C含量在恢复群落最高, 严重退化群落最低, 与恢复演替时间呈正相关, 而植物的全氮(TN)和全磷(TP)含量则是严重退化群落最高, 恢复群落最低, 与退化程度呈正相关, 且TP含量的变幅明显高于TN含量; 植物叶的N:P和C:N表现为严重退化群落最低, 与退化程度呈负相关; 严重退化群落植物相对于P而言, 总体上表现为缺N; 而恢复群落相对于N而言, 更为缺P, 或同时缺N和P; 群落优势种化学计量学特征对群落演替方向有一定的指示作用。
银晓瑞, 梁存柱, 王立新, 王炜, 刘钟龄, 刘小平. 内蒙古典型草原不同恢复演替阶段植物养分化学计量学. 植物生态学报, 2010, 34(1): 39-47. DOI: 10.3773/j.issn.1005-264x.2010.01.007
YIN Xiao-Rui, LIANG Cun-Zhu, WANG Li-Xin, WANG Wei, LIU Zhong-Ling, LIU Xiao-Ping. Ecological stoichiometry of plant nutrients at different restoration succession stages in typical steppe of Inner Mongolia, China. Chinese Journal of Plant Ecology, 2010, 34(1): 39-47. DOI: 10.3773/j.issn.1005-264x.2010.01.007
物 种 Species | 科 Family | 生活型 Life form | 采样时间(月.日) Time of sampling (month.day) |
---|---|---|---|
羊草 Leymus chinensis | 禾本科 Gramineae | 多年生草本 Perennial herb | 5.15, 6.18, 7.15, 8.19, 9.27 |
大针茅 Stipa grandis | 禾本科 Gramineae | 多年生草本 Perennial herb | |
糙隐子草 Cleistogenes squarrosa | 禾本科 Gramineae | 多年生草本 Perennial herb | |
米氏冰草 Agropyron michnoi | 禾本科 Gramineae | 多年生草本 Perennial herb | |
冷蒿 Artemisia frigida | 菊科 Compositae | 半灌木 Subshrub | |
星毛委陵菜 Potentilla acaulis | 蔷薇科 Rosaceae | 多年生草本 Perennial herb | |
黄囊薹草 Carex korshinskyi | 莎草科 Cyperaceae | 多年生草本 Perennial herb | |
小叶锦鸡儿 Caragana microphylla | 豆科 Fabaceae | 灌木 Shrub | |
双齿葱 Allium bidentatum | 百合科 Liliaceae | 多年生草本 Perennial herb | |
细叶鸢尾 Iris tenuifolia | 鸢尾科 Iridaceae | 多年生草本 Perennial herb |
表1 取样物种和取样时间
Table 1 Sampling species and sampling time
物 种 Species | 科 Family | 生活型 Life form | 采样时间(月.日) Time of sampling (month.day) |
---|---|---|---|
羊草 Leymus chinensis | 禾本科 Gramineae | 多年生草本 Perennial herb | 5.15, 6.18, 7.15, 8.19, 9.27 |
大针茅 Stipa grandis | 禾本科 Gramineae | 多年生草本 Perennial herb | |
糙隐子草 Cleistogenes squarrosa | 禾本科 Gramineae | 多年生草本 Perennial herb | |
米氏冰草 Agropyron michnoi | 禾本科 Gramineae | 多年生草本 Perennial herb | |
冷蒿 Artemisia frigida | 菊科 Compositae | 半灌木 Subshrub | |
星毛委陵菜 Potentilla acaulis | 蔷薇科 Rosaceae | 多年生草本 Perennial herb | |
黄囊薹草 Carex korshinskyi | 莎草科 Cyperaceae | 多年生草本 Perennial herb | |
小叶锦鸡儿 Caragana microphylla | 豆科 Fabaceae | 灌木 Shrub | |
双齿葱 Allium bidentatum | 百合科 Liliaceae | 多年生草本 Perennial herb | |
细叶鸢尾 Iris tenuifolia | 鸢尾科 Iridaceae | 多年生草本 Perennial herb |
图1 生长季内不同演替阶段不同土层间的土壤养分状况。在p < 0.05水平上差异显著的用a、b、c不同字母标出。
Fig. 1 The soil nutrient condition of different soil layers in different succession stages in growing season. Different letters indicate siginificant difference at p < 0.05. SAN, soil available nitrogen; SAP, soil available phosphorus; SOC, soil organic carbon; STN, soil total nitrogen; STP, soil total phosphorus.
物种名 Species | 样地 Plot | 养分含量及其方差分析 Nutrient content and analysis of variance | |||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
总有机碳 TOC (%) | 总氮 TN (%) | 总磷 TP (%) | N:P | C:N | |||||||
羊草 Leymus chinensis | XW | 52.57±0.15b | 1.08±0.01c | 0.11±0.00b | 9.99±0.30c | 48.76±0.36a | |||||
HF | 55.69±0.61a | 1.65±0.03b | 0.11±0.00b | 14.95±0.19a | 33.78±1.05b | ||||||
WLW | 54.98±0.19a | 1.93±0.05a | 0.16±0.00a | 12.15±0.10b | 28.51±0.68c | ||||||
大针茅 Stipa grandis | XW | 54.97±0.33a | 1.51±0.21b | 0.09±0.02b | 17.18±2.79b | 37.14±6.13a | |||||
HF | 56.06±0.20b | 1.69±0.08b | 0.08±0.00b | 20.79±0.65a | 33.19±1.61a | ||||||
WLW | 54.09±0.42c | 2.56±0.32a | 0.20±0.01a | 12.97±0.91c | 21.48±2.66b | ||||||
糙隐子草 Cleistogenes squarrosa | XW | 54.52±0.83a | 1.97±0.21b | 0.13±0.02b | 15.47±1.04a | 28.08±3.47a | |||||
HF | 55.35±0.52a | 2.22±0.09b | 0.14±0.01b | 15.33±0.49a | 25.05±0.90a | ||||||
WLW | 54.26±1.34a | 2.68±0.39a | 0.28±0.02a | 10.47±1.02b | 19.63±2.09b | ||||||
冷蒿 Artemisia frigida | XW | 55.67±1.31a | 2.25±0.19a | 0.20±0.03b | 11.36±0.97a | 24.94±1.81a | |||||
HF | 57.61±1.00b | 2.56±0.28a | 0.22±0.02ab | 11.77±0.32a | 22.71±2.17ab | ||||||
WLW | 51.09±0.68c | 2.54±0.18a | 0.25±0.02a | 10.06±0.85a | 20.25±1.34b | ||||||
星毛委陵菜 Potentilla acaulis | XW | 53.07±0.42a | 1.76±0.24b | 0.13±0.02a | 13.25±1.06a | 30.74±4.53a | |||||
HF | 52.53±0.66a | 2.03±0.12ab | 0.14±0.01a | 14.55±0.74a | 25.98±1.33ab | ||||||
WLW | 49.67±1.06b | 2.26±0.32a | 0.18±0.06a | 13.28±2.28a | 22.48±3.59b | ||||||
米氏冰草 Agropyron michooi | XW | 54.06±1.48a | 1.48±0.01b | 0.11±0.00b | 13.81±0.43b | 36.49±1.04a | |||||
HF | 55.65±0.75a | 1.87±0.20b | 0.10±0.01b | 19.15±0.86a | 29.92±3.17a | ||||||
WLW | 52.70±1.19a | 2.70±0.25a | 0.21±0.02a | 12.80±1.47b | 19.76±1.56b | ||||||
黄囊薹草 Carex korshinskyi | XW | 52.55±1.04a | 1.73±0.13b | 0.10±0.01c | 17.56±0.60a | 30.63±2.84a | |||||
HF | 53.13±0.43a | 1.96±0.06a | 0.12±0.01b | 16.66±0.37a | 27.16±0.26a | ||||||
WLW | 52.41±0.34a | 1.95±0.02a | 0.15±0.00a | 13.39±0.52b | 26.92±0.34a | ||||||
小叶锦鸡儿 Caragana microphylla | XW | 61.11±1.40a | 3.15±0.47a | 0.17±0.06a | 20.42±3.97a | 19.77±2.59a | |||||
HF | 58.38±1.20b | 2.80±0.16a | 0.13±0.01a | 22.27±0.79a | 20.92±0.81a | ||||||
WLW | 59.08±1.28b | 3.01±0.39a | 0.17±0.05a | 18.43±2.46a | 19.86±1.85a | ||||||
双齿葱 Allium bidentatum | XW | 54.11±0.46a | 2.53±0.29a | 0.18±0.02b | 13.76±1.61a | 22.31±2.54a | |||||
HF | 53.67±0.64a | 2.10±0.11a | 0.17±0.01b | 12.44±1.01a | 25.81±1.47a | ||||||
WLW | 48.91±0.47b | 2.20±0.33a | 0.25±0.03a | 8.72±1.07b | 22.70±3.03a | ||||||
细叶鸢尾 Iris tenuifolia | XW | 52.24±0.54a | 1.41±0.09b | 0.08±0.01b | 16.56±0.07a | 37.21±2.39a | |||||
HF | 52.85±0.60a | 1.72±0.03a | 0.09±0.01b | 18.42±1.32a | 30.83±0.79b | ||||||
WLW | 51.82±0.46a | 1.94±0.08a | 0.21±0.01a | 9.34±0.68b | 26.79±1.37b |
表2 10种植物在不同恢复演替阶段各养分含量及其差异的显著性检验(平均值±标准偏差)
Table 2 The test of significance of every nutrient index distribution difference of 10 plants in different restoring succession stages (mean ± SD)
物种名 Species | 样地 Plot | 养分含量及其方差分析 Nutrient content and analysis of variance | |||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
总有机碳 TOC (%) | 总氮 TN (%) | 总磷 TP (%) | N:P | C:N | |||||||
羊草 Leymus chinensis | XW | 52.57±0.15b | 1.08±0.01c | 0.11±0.00b | 9.99±0.30c | 48.76±0.36a | |||||
HF | 55.69±0.61a | 1.65±0.03b | 0.11±0.00b | 14.95±0.19a | 33.78±1.05b | ||||||
WLW | 54.98±0.19a | 1.93±0.05a | 0.16±0.00a | 12.15±0.10b | 28.51±0.68c | ||||||
大针茅 Stipa grandis | XW | 54.97±0.33a | 1.51±0.21b | 0.09±0.02b | 17.18±2.79b | 37.14±6.13a | |||||
HF | 56.06±0.20b | 1.69±0.08b | 0.08±0.00b | 20.79±0.65a | 33.19±1.61a | ||||||
WLW | 54.09±0.42c | 2.56±0.32a | 0.20±0.01a | 12.97±0.91c | 21.48±2.66b | ||||||
糙隐子草 Cleistogenes squarrosa | XW | 54.52±0.83a | 1.97±0.21b | 0.13±0.02b | 15.47±1.04a | 28.08±3.47a | |||||
HF | 55.35±0.52a | 2.22±0.09b | 0.14±0.01b | 15.33±0.49a | 25.05±0.90a | ||||||
WLW | 54.26±1.34a | 2.68±0.39a | 0.28±0.02a | 10.47±1.02b | 19.63±2.09b | ||||||
冷蒿 Artemisia frigida | XW | 55.67±1.31a | 2.25±0.19a | 0.20±0.03b | 11.36±0.97a | 24.94±1.81a | |||||
HF | 57.61±1.00b | 2.56±0.28a | 0.22±0.02ab | 11.77±0.32a | 22.71±2.17ab | ||||||
WLW | 51.09±0.68c | 2.54±0.18a | 0.25±0.02a | 10.06±0.85a | 20.25±1.34b | ||||||
星毛委陵菜 Potentilla acaulis | XW | 53.07±0.42a | 1.76±0.24b | 0.13±0.02a | 13.25±1.06a | 30.74±4.53a | |||||
HF | 52.53±0.66a | 2.03±0.12ab | 0.14±0.01a | 14.55±0.74a | 25.98±1.33ab | ||||||
WLW | 49.67±1.06b | 2.26±0.32a | 0.18±0.06a | 13.28±2.28a | 22.48±3.59b | ||||||
米氏冰草 Agropyron michooi | XW | 54.06±1.48a | 1.48±0.01b | 0.11±0.00b | 13.81±0.43b | 36.49±1.04a | |||||
HF | 55.65±0.75a | 1.87±0.20b | 0.10±0.01b | 19.15±0.86a | 29.92±3.17a | ||||||
WLW | 52.70±1.19a | 2.70±0.25a | 0.21±0.02a | 12.80±1.47b | 19.76±1.56b | ||||||
黄囊薹草 Carex korshinskyi | XW | 52.55±1.04a | 1.73±0.13b | 0.10±0.01c | 17.56±0.60a | 30.63±2.84a | |||||
HF | 53.13±0.43a | 1.96±0.06a | 0.12±0.01b | 16.66±0.37a | 27.16±0.26a | ||||||
WLW | 52.41±0.34a | 1.95±0.02a | 0.15±0.00a | 13.39±0.52b | 26.92±0.34a | ||||||
小叶锦鸡儿 Caragana microphylla | XW | 61.11±1.40a | 3.15±0.47a | 0.17±0.06a | 20.42±3.97a | 19.77±2.59a | |||||
HF | 58.38±1.20b | 2.80±0.16a | 0.13±0.01a | 22.27±0.79a | 20.92±0.81a | ||||||
WLW | 59.08±1.28b | 3.01±0.39a | 0.17±0.05a | 18.43±2.46a | 19.86±1.85a | ||||||
双齿葱 Allium bidentatum | XW | 54.11±0.46a | 2.53±0.29a | 0.18±0.02b | 13.76±1.61a | 22.31±2.54a | |||||
HF | 53.67±0.64a | 2.10±0.11a | 0.17±0.01b | 12.44±1.01a | 25.81±1.47a | ||||||
WLW | 48.91±0.47b | 2.20±0.33a | 0.25±0.03a | 8.72±1.07b | 22.70±3.03a | ||||||
细叶鸢尾 Iris tenuifolia | XW | 52.24±0.54a | 1.41±0.09b | 0.08±0.01b | 16.56±0.07a | 37.21±2.39a | |||||
HF | 52.85±0.60a | 1.72±0.03a | 0.09±0.01b | 18.42±1.32a | 30.83±0.79b | ||||||
WLW | 51.82±0.46a | 1.94±0.08a | 0.21±0.01a | 9.34±0.68b | 26.79±1.37b |
[1] | Agricultural Biochemistry Committee of Chinese Soil Society (中国土壤学会农业化学专业委员会) (1983). Routine Analysis Method of Soil Agricultural Chemistry (土壤农业化学常规分析方法). Science Press, Beijing. (in Chinese) |
[2] |
Drenovsky RE, Richards JH (2004). Critical N:P values: predicting nutrient deficiencies in desert shrublands. Plant and Soil, 259, 59-69.
DOI URL |
[3] | Elser JJ, Dobberfuhl D, Mackay NA, Schampel JH (1996). Organism size, life history, and N:P cycle. Biogeochemistry, 37, 237-252. |
[4] | Elser JJ, Sterner RW, Gorokhova E, Fagan WF, Markow TA, Cotner JB, Harrison JF, Hobbie SE, Odell GM, Weider LW (2000). Biological stoichiometry from genes to ecosystems. Ecology Letters, 3, 540-550. |
[5] | Elser JJ, Acharya K, Kyle M, Cotner J, Makino W, Markow T, Watts T, Hobbie S, Fagan W, Schade J, Hood J, Sterner RW (2003). Growth rate—stoichiometry couplings in diverse biota. Ecology Letters, 6, 936-943. |
[6] | Gao SP (高三平), Li JX (李俊祥), Xu MC (徐明策), Chen X (陈熙), Dai J (戴洁) (2007). Leaf N and P stoichiometry of common species in successional stages of the evergreen broad-leaved forest in Tiantong National Forest Park, Zhejiang Province, China. Acta Ecologica Sinica (生态学报), 27, 947-952. (in Chinese with English abstract) |
[7] | Gao Y, Wang DL, Ba L, Bai YG, Liu B (2008). Interactions between herbivory and resource availability on grazing tolerance of Leymus chinensis. Environmental and Experimental Botany, 63, 113-122. |
[8] | Güsewell S, Koerselman W, Verhoeven JTA (2003). Biomass N:P ratios as indicators of nutrient limitation for plant populations in wetlands. Ecological Monographs, 13, 372-384. |
[9] | Güsewell S (2004). N:P ratios in terrestrial plants: variation and functional significance. New Phytologist, 164, 243-266. |
[10] | Güsewell S (2005). High nitrogen: phosphorus ratios reduce nutrient retention and second-year growth of wetland sedges. New Phytologist, 166, 537-550. |
[11] | Güsewell S, Bailey KM, Roem WJ, Bedford BL (2005). Nutrient limitation and botanical diversity in wetlands: can fertilization raise species richness? Oikos, 109, 71-80. |
[12] | Han WX, Fang JY, Guo DL, Zhang Y (2005). Leaf nitrogen and phosphorus stoichiometry across 753 terrestrial plant species in China. New Phytologist, 168, 377-385. |
[13] |
He JS, Fang JY, Wang ZH, Guo DL, Flynn DFB, Geng Z (2006). Stoichiometry and large-scale patterns of leaf carbon and nitrogen in the grassland biomes of China. Oecologia, 149, 115-122.
DOI URL PMID |
[14] |
He JS, Wang L, Flynn DFB, Wang XP, Ma WH, Fang JY (2008). Leaf nitrogen:phosphorus stoichiometry across Chinese grassland biomes. Oecologia, 155, 301-310.
DOI URL PMID |
[15] |
Hessen DO (1997). Stoichiometry in food webs—Latka revistted. Oikos, 79, 195-200.
DOI URL |
[16] |
Koerselman W, Meuleman AFM (1996). The vegetation N:P ratio: a new tool to detect the nature of nutrient limitation. Journal of Applied Ecology, 33, 1441-1450.
DOI URL |
[17] | Liu ZL (刘钟龄), Wang W (王炜), Liang CZ (梁存柱), Hao DY (郝敦元) (1998). The regressive succession pattern and its diagnostic of Inner Mongolia steppe in sustained and superstrong grazing. Acta Agrestia Sinica (草地学报), 6, 244-251. (in Chinese with English abstract) |
[18] | Liu ZL (刘钟龄), Wang W (王炜), Hao DY (郝敦元), Liang CZ (梁存柱) (2002). Probes on the degeneration and recovery succession mechanisms of Inner Mongolia steppe. Journal of Arid Land Resources and Environment (干旱区资源与环境), 26, 84-91. (in Chinese with English abstract) |
[19] | Makino W, Cotner JB, Sterner RW, Else JJ (2003). Are bacteria more like animals than plants? Growth rate and resource dependence of bacterial C:N:P stoichiometry. Functional Ecology, 17, 121-130. |
[20] | Piao HC (朴河春), Liu CQ (刘丛强), Zhu SF (朱书法), Zhu JM (朱建明) (2005). Variations of C4 and C3 plant N:P ratios influenced by nutrient stoichiometry in limestone and sandstone arears of Guizhou. Quaternary Science (第四纪研究), 25, 552-560. (in Chinese with English abstract) |
[21] | Reich PB, Oleksyn J (2004). Global patterns of plant leaf N and P in relation to temperature and latitude. Proceedings of the National Academy of Sciences, 101, 11001-11006. |
[22] | Tessier JT, Raynal DJ (2003). Use of nitrogen to phosphorus ratios in plant tissue as an indicator of nutrient limitation and nitrogen saturation. Journal of Applied Ecology, 40, 523-534. |
[23] | Vanni MJ, Flecker AS, Hood JM, Headworth JL (2002). Stoichiometry of nutrient recycling by vertebrates in a tropical stream: linking biodiversity and ecosystem function. Ecology Letters, 5, 285-293. |
[24] | Verhoeven JTA, Koerselman W, Meuleman AFM (1996). Nitrogen or phosphorus-limited growth in herbaceous, wet vegetation: relations with atmospheric inputs and management regimes. Trees, 11, 494-497. |
[25] | Wang W (王炜), Liang CZ (梁存柱), Liu ZL (刘钟龄), Hao DY (郝敦元) (2000). Mechanism of degradation succession in Leymus chinensis + Stipa grandis steppe community. Acta Phytoecoiogica Sinica (植物生态学报), 24, 468-472. (in Chinese with English abstract) |
[26] | Yan ER (阎恩荣), Wang XH (王希华), Zhou W (周武) (2008). N:P stoichiometry in secondary succession in evergreen broad-leaved forest, Tiantong, East China. Journal of Plant Ecology (Chinese Version) (植物生态学报), 32, 13-22. (in Chinese with English abstract) |
[27] | Zhang LX, Bai YF, Han XG (2003). Application of N:P stoichiometry to ecology studies. Acta Botanica Sinica, 45, 1009-1018. |
[28] | Zhang LX, Bai YF, Han XG (2004). Differential responses of N:P stoichiometry of Leymus chinensis and Carex korshinskyi to N additions in a steppe ecosystem in Nei Mongol. Acta Botanica Sinica, 46, 259-270. |
[1] | 张文瑾 佘维维 秦树高 乔艳桂 张宇清. 氮和水分添加对黑沙蒿群落优势植物叶片氮磷化学计量特征的影响[J]. 植物生态学报, 2024, 48(5): 590-600. |
[2] | 茹雅倩, 薛建国, 葛萍, 李钰霖, 李东旭, 韩鹏, 杨天润, 储伟, 陈章, 张晓琳, 李昂, 黄建辉. 高频轮牧对典型草原生产生态效果的影响[J]. 植物生态学报, 2024, 48(2): 171-179. |
[3] | 韩路, 冯宇, 李沅楷, 王雨晴, 王海珍. 地下水埋深对灰胡杨叶片与土壤养分生态化学计量特征及其内稳态的影响[J]. 植物生态学报, 2024, 48(1): 92-102. |
[4] | 李兆光, 文高, 和桂青, 徐天才, 和琼姬, 侯志江, 李燕, 薛润光. 滇西北藜麦氮磷钾生态化学计量特征的物候期动态[J]. 植物生态学报, 2023, 47(5): 724-732. |
[5] | 刘婧, 缑倩倩, 王国华, 赵峰侠. 晋西北丘陵风沙区柠条锦鸡儿叶片与土壤生态化学计量特征[J]. 植物生态学报, 2023, 47(4): 546-558. |
[6] | 林少颖, 曾瑜, 杨文文, 陈斌, 阮敏敏, 尹晓雷, 阳祥, 王维奇. 添加秸秆及其生物炭对茉莉植株与土壤碳氮磷生态化学计量特征的影响[J]. 植物生态学报, 2023, 47(4): 530-545. |
[7] | 王德利, 梁存柱. 退化草原的恢复状态: 气候顶极或干扰顶极?[J]. 植物生态学报, 2023, 47(10): 1464-1470. |
[8] | 郑宁, 李素英, 王鑫厅, 吕世海, 赵鹏程, 臧琛, 许玉珑, 何静, 秦文昊, 高恒睿. 基于环境因子对叶绿素影响的典型草原植物生活型优势研究[J]. 植物生态学报, 2022, 46(8): 951-960. |
[9] | 吴赞, 彭云峰, 杨贵彪, 李秦鲁, 刘洋, 马黎华, 杨元合, 蒋先军. 青藏高原高寒草地退化对土壤及微生物化学计量特征的影响[J]. 植物生态学报, 2022, 46(4): 461-472. |
[10] | 黄侩侩, 胡刚, 庞庆玲, 张贝, 何业涌, 胡聪, 徐超昊, 张忠华. 放牧对中国亚热带喀斯特山地灌草丛物种组成与群落结构的影响[J]. 植物生态学报, 2022, 46(11): 1350-1363. |
[11] | 张景慧, 王铮, 黄永梅, 陈慧颖, 李智勇, 梁存柱. 草地利用方式对温性典型草原优势种植物功能性状的影响[J]. 植物生态学报, 2021, 45(8): 818-833. |
[12] | 尹晓雷, 刘旭阳, 金强, 李先德, 林少颖, 阳祥, 王维奇, 张永勋. 不同管理模式对茶树碳氮磷含量及其生态化学计量比的影响[J]. 植物生态学报, 2021, 45(7): 749-759. |
[13] | 苏华, 许宏, 苏本营, 李永庚. 养分添加对退化草地豆科植物草木犀功能性状的影响[J]. 植物生态学报, 2020, 44(9): 926-938. |
[14] | 刘珊杉, 周文君, 况露辉, 刘占锋, 宋清海, 刘运通, 张一平, 鲁志云, 沙丽清. 亚热带常绿阔叶林土壤胞外酶活性对碳输入变化及增温的响应[J]. 植物生态学报, 2020, 44(12): 1262-1272. |
[15] | 熊星烁, 蔡宏宇, 李耀琪, 马文红, 牛克昌, 陈迪马, 刘娜娜, 苏香燕, 景鹤影, 冯晓娟, 曾辉, 王志恒. 内蒙古典型草原植物叶片碳氮磷化学计量特征的季节动态[J]. 植物生态学报, 2020, 44(11): 1138-1153. |
阅读次数 | ||||||
全文 |
|
|||||
摘要 |
|
|||||
Copyright © 2022 版权所有 《植物生态学报》编辑部
地址: 北京香山南辛村20号, 邮编: 100093
Tel.: 010-62836134, 62836138; Fax: 010-82599431; E-mail: apes@ibcas.ac.cn, cjpe@ibcas.ac.cn
备案号: 京ICP备16067583号-19