数字农科院2.0

Impacts of land use and salinization on soil inorganic and organic carbon in the middle-lower Yellow River Delta

文献类型: 外文期刊

作者: Yang GUO;Xiujun WANG;Xianglan LI;Minggang XU;Yuan LI;Haonan ZHENG;Yongming LUO;Pete SMITH

作者机构:

关键词: C densities;C stocks;land use type;salt-affected soil;soil salinization

期刊名称: Pedosphere

ISSN: 1002-0160

年卷期: 2021 年 31.0 卷 6.0 期

页码:

收录情况: JCR(2021版) ; CSCD(2020-2021年度) ; 农林核心(2020版) ; 科技核心(2020版)

摘要: Soil inorganic carbon (SIC) is an important reservoir of carbon (C) in arid, semi-arid, and semi-humid regions. However, knowledge is incomplete on the dynamics of SIC and its relationship with soil organic C (SOC) under different land use types in the semi-humid region, particularly in coastal zones impacted by soil salinization. We collected 170 soil samples from 34 profiles across various land use types (maize-wheat, cotton, paddy, and reed) in the middle-lower Yellow River Delta (YRD), China. We measured soil pH, electrical conductivity (EC), water-soluble salts, and SOC and SIC contents. Our results showed significant differences in both SOC and SIC among land use types. The dry cropland (maize-wheat and cotton) soils had significantly higher SOC and SIC densities (4.71 and 15.46 kg C m–2, respectively) than the paddy soils (3.28 and 14.09 kg C m–2, respectively) in the 0–100 cm layer. Compared with paddy soils, reed soils contained significantly higher SOC (4.68 kg C m–2) and similar SIC (15.02 kg C m–2) densities. There was a significant positive correlation between SOC and SIC densities over a 0–100 cm soil depth in dry cropland soils, but a negative relationship in the paddy soils. On average, SOC and SIC densities under maize-wheat cropping were 15% and 4% lower, respectively, in the salt-affected soils in the middle-lower YRD than the upper YRD. This study indicated that land use types had great influences on both SOC and SIC and their relationship, and salinization had adverse effect on soil C storage in the YRD.

分类号:

  • 相关文献

[1]Assessment of tillage practices in ameliorating salt-affected arable lands: A meta-analysis. Jianyu Tao,Xiaoyuan Liu,Zhongbin Zhang,Xinhua Peng. 2025

[2]Changes in soil carbon stocks and related soil properties along a 50-year grassland-to-cropland conversion chronosequence in an agro-pastoral ecotone of Inner Mongolia, China. Jiao, Yan,Zhao, JiaoHong,Yang, WenZhu,Jiao, Yan,Xu, Zhu. 2012

[3]Elevation and Land Use Types Have Significant Impacts on Spatial Variability of Soil Organic Matter Content in Hani Terraced Field of Yuanyang County, China. LI Feng-bo , LU Guang-de , ZHOU Xi-yue , NI Hui-xiang , XU Chun-chun , YUE Chao , YANG Xiu-mei , FENG Jin-fei , FANG Fu-ping *. 2015

[4]Distribution Characteristics Of Iron, Carbon, N.itrogen And Phosphorus In T he Surface Soils Of Different Land Use Types Near Xingkai Lake. Wang, LY, Yu, XF, Xue, ZS, Huo, LL, Jiang, M, Lu, XG, Zou, YC. 2019

[5]Residue retention improved the spreading risk of soil metal resistance genes in upland and paddy field. Liu, Meixia,Fan, Yi,Guan, Yupeng,Wu, Yi,Meng, Tingwei,Hu, Zonghao,Pang, Shuang,Bello, Ayodeji,Zhang, Ximei,Yang, Wei. 2025

[6]The salinization process and its response to the combined processes of climate change–human activity in the Yellow River Delta between 1984 and 2022. Bing Guo,Yifeng Liu,Junfu Fan,Miao Lu,Wenqian Zang,Chuan Liu,Baoyu Wang,Xiangzhi Huang,Jibao Lai,Hongwei Wu. 2023

[7]Rare Taxa Drive the Response of Soil Fungal Guilds to Soil Salinization in the Taklamakan Desert. Lin, Litao,Jing, Xin,Lucas-Borja, Manuel Esteban,Shen, Congcong,Wang, Yugang,Feng, Wenting. 2022

[8]Reinforced soil salinization with distance along the river: A case study of the Yellow River Basin. Wang X.,Zhang H.,Zhang Z.,Zhang C.,Zhang K.,Pang H.,Bell S.M.,Li Y.,Chen J.. 2023

[9]Bacillus amyloliquefaciens strain Q1 inoculation enhances salt tolerance of barley seedlings by maintaining the photosynthetic capacity and intracellular Na+/K+ homeostasis. Liu, Hongjiang,Amoanimaa-Dede, Hanna,Zhang, Yanli,Wu, Xiaojian,Deng, Fenglin,Qin, Yuan,Qiu, Haiping,Ouyang, Younan,Wang, Yanli,Zeng, Fanrong. 2024

[10]Subsurface application of organic ameliorant in saline soils increases microbial necromass accumulation in mineral-associated organic matter. Jiashen Song,Hongyuan Zhang,Anna Gunina,Kevin Z. Mganga,Fangdi Chang,Ru Yu,Jie Zhou,Aiping Chen,Yuyi Li. 2025

[11]Interpretable salinization estimation model for Dongying City based on integrated multi-dimensional spectral indices with XGBoost-driven transformations. Jicun Yang,Bing Guo,Miao Lu,Baomin Han,Rui Zhang. 2025

[12]Monitoring of Soil Salinization and Analysis of Driving Factors in the Oasis Zone of South Xinjiang. Zhao, Jiahao,Fan, Yanmin,Xuan, Junwei,Shi, Mingjie,Wang, Dejun,Wu, Hongqi,Bi, Yanan,Li, Yunhao. 2025

[13]Comprehensive screening of salt-tolerant rice germplasm using a fuzzy membership and PCA-based evaluation model. Dingsha Jin,Asif Iqbal,Mengshu Huang,Yuqing Liu,Yage Zhang,Youzhen Lin,Liqiong Tang,Xinhua Wang,Junjie Wang,Guangping Cao,Yanchao Xu,Peng Xu,Xiaoning Wang. 2025

[14]The Responses of Extracellular Enzyme Activities to Saline Conditions: A Data Synthesis. Tao, Jianyu,Liu, Xiaoyuan,Chen, Shi. 2025

[15]The CAZyme family regulates soil organic carbon accumulation under amendments application in saline-alkali soil. Bai, Xiaolong,Wu, Jinmin,Zhang, Bangyan,Li, Yuyi,Tian, Feng,Zhao, Hui,Wang, Bin. 2025

作者其他论文 更多>>