A Meta-Analysis of Soil Organic Carbon Response to Livestock Grazing in Grassland of the Tibetan Plateau
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. Data Compilation
- (a)
- study must be conducted in natural grassland rather than cultivated grassland;
- (b)
- an ungrazed treatment should be included in the experiments as a control, adjacent to the grazed treatment;
- (c)
- at least one of the following grazing strategies was stated: grazing intensity, livestock type, or grazing season;
- (d)
- grazing experiment lasted for at least one growing season;
- (e)
- SOC stock was given or could be calculated based on BD, SOC content and sampling depth for both grazed and ungrazed treatment;
- (f)
- the mean and sample size of the selected variable must be reported for both grazed and ungrazed treatment.
2.3. Calculation of SOC Stock
2.4. Meta-Analysis
3. Results
3.1. Changes in BD after Livestock Grazing
3.2. Changes in SOC Content and Stock after Livestock Grazing
3.3. Changes in Plant Biomass after Livestock Grazing
4. Discussion
4.1. Impact of Livestock Grazing on BD: Implication for Soil Compaction
4.2. Losses of SOC Pool after Livestock Grazing: Rate and Potential Mechanism
4.3. Livestock Grazing-Induced SOC Decline in Different Classified Groups: Suggestion for Soil C Management in Alpine Grassland of the Tibetan Plateau
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Study | Decline Rate (%) | Soil Layer (cm) | Study Area | |
---|---|---|---|---|
SOC Content | SOC Stock | |||
Zhou et al. [3] | −10.3 | — 1 | 0–100 | Globe |
Byrnes et al. [34] | −7.7 | — | — | Globe |
Lai and Kumar [35] | −10.8 | — | 0–10 | Globe |
−22.5 | — | 10–30 | Globe | |
Hao and He [36] | −8.0 | — | — | China |
Zhan et al. [37] | −7.0 | — | — | China |
Yan et al. [38] | −20.0 | — | 0–30 | Tibetan Plateau |
Liu et al. [39] | −13.7 | — | 0–30 | Tibetan Plateau |
Dlamini et al. [12] | — | −9.0 | 0–30 | Globe |
Eze et al. [4] | — | −6.6 | 0–19 | Globe |
— | −11.9 | 0–40 | Globe | |
— | −24.0 | 0–100 | Globe | |
Abdalla et al. [10] | — | −19.0 | 0–30 | Moist cool regions |
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Ma, Z.; Qin, W.; Wang, Z.; Han, C.; Liu, X.; Huang, X. A Meta-Analysis of Soil Organic Carbon Response to Livestock Grazing in Grassland of the Tibetan Plateau. Sustainability 2022, 14, 14065. https://doi.org/10.3390/su142114065
Ma Z, Qin W, Wang Z, Han C, Liu X, Huang X. A Meta-Analysis of Soil Organic Carbon Response to Livestock Grazing in Grassland of the Tibetan Plateau. Sustainability. 2022; 14(21):14065. https://doi.org/10.3390/su142114065
Chicago/Turabian StyleMa, Zhiwen, Wenping Qin, Zhaoqi Wang, Chenglong Han, Xiang Liu, and Xiaotao Huang. 2022. "A Meta-Analysis of Soil Organic Carbon Response to Livestock Grazing in Grassland of the Tibetan Plateau" Sustainability 14, no. 21: 14065. https://doi.org/10.3390/su142114065
APA StyleMa, Z., Qin, W., Wang, Z., Han, C., Liu, X., & Huang, X. (2022). A Meta-Analysis of Soil Organic Carbon Response to Livestock Grazing in Grassland of the Tibetan Plateau. Sustainability, 14(21), 14065. https://doi.org/10.3390/su142114065