生态环境学报 ›› 2026, Vol. 35 ›› Issue (7): 1125-1135.DOI: 10.16258/j.cnki.1674-5906.2026.07.012
罗茜云1(
), 陈安强2, 付斌2, 胡万里2, 闫辉2, 倪明2, 王炽2,*(
), 张丹1,*(
)
收稿日期:2025-10-25
修回日期:2026-01-19
接受日期:2026-02-13
出版日期:2026-07-18
发布日期:2026-07-17
通讯作者:
*王炽,yidan33@163.com;张丹,saiyuwang@163.com
作者简介:罗茜云(2002年生),女,硕士研究生,主要研究方向为农业面源污染监测与防控。E-mail: 1632329440@qq.com
基金资助:
Luo Xiyun1(
), Chen Anqiang2, Fu Bin2, Hu Wanli2, Yan Hui2, Ni Ming2, Wang Chi2,*(
), Zhang Dan1,*(
)
Received:2025-10-25
Revised:2026-01-19
Accepted:2026-02-13
Online:2026-07-18
Published:2026-07-17
摘要:
土地利用决定了高原湖泊流域污染物“源”的分布格局,而季节变化调控着污染物“汇”的关键驱动,二者通过源-汇过程主导着入湖河流的水质变化。以星云湖流域为研究对象,选取8条主要入湖河流上中下游共23个断面,结合30 m DEM、遥感影像解译与SWAT模型对8个子流域进行划分,系统分析了2018年雨、旱季8条河流水质浓度的时空变化特征及其与季节变化和土地利用的关系。结果表明,8条河流中COD、TN、NH4+-N、TP浓度以大街河和小街河最高,其次为旧州河、东大河、西大河、渔村河,而学河和螺蛳铺河最低。降雨和水温是影响河流水质季节变化的关键因子,降雨稀释和水温升高使河水中COD、TN、NH4+-N、TP浓度较旱季下降了39.4%、21.7%、47.7%、33.8%。河流中游段COD、TN、NH4+-N、TP浓度较上游和下游分别增加了30.3%和32.4%、38.1%和42.4%、72.4%和89.2%、37.5%和15.8%,是污染物主要源区。COD、氮磷浓度与流域内建设用地和耕地面积占比呈正相关,与林草地呈负相关。水质优劣与土地利用密切相关,以建设用地和耕地混合主导型的大街河和小街河水质最差,其次是耕地主导型的渔村河,而林草地主导型的螺蛳铺河和学河水质较好。高原湖泊流域面源污染治理需依据不同流域土地利用特点提出差异化治理对策。
中图分类号:
罗茜云, 陈安强, 付斌, 胡万里, 闫辉, 倪明, 王炽, 张丹. 星云湖流域主要入湖河流水质对土地利用和季节变化的响应[J]. 生态环境学报, 2026, 35(7): 1125-1135.
Luo Xiyun, Chen Anqiang, Fu Bin, Hu Wanli, Yan Hui, Ni Ming, Wang Chi, Zhang Dan. Response of Water Quality in Major Rivers Flowing into Lake to Land Use and Seasonal Variation in the Xingyun Lake Basin[J]. Ecology and Environmental Sciences, 2026, 35(7): 1125-1135.
图2 星云湖流域土地利用和8条主要入湖河流子流域边界以及采样点
Figure 2 Land use in the Xingyun Lake basin and boundaries of the sub-basins of 8 major rivers flowing into lake, as well as sampling points
| 子流域 名称 | 子流域总面积/ km2 | 草地面积占比/ % | 耕地面积占比/ % | 水域面积占比/ % | 林地面积占比/ % | 建设用地面积占比/ % |
|---|---|---|---|---|---|---|
| 学河 | 17.2 | 34.0 | 30.7 | 9.93 | 19.6 | 5.73 |
| 渔村河 | 32.0 | 5.49 | 62.4 | 6.51 | 22.4 | 3.23 |
| 小街河 | 15.5 | 15.7 | 54.9 | 1.71 | 10.4 | 17.4 |
| 大街河 | 13.9 | 5.01 | 57.7 | 4.16 | 6.41 | 26.7 |
| 旧州河 | 16.8 | 13.0 | 33.6 | 0.09 | 44.6 | 8.81 |
| 螺蛳铺河 | 14.0 | 64.6 | 21.6 | 0.84 | 8.61 | 4.33 |
| 东西大河 | 106 | 16.8 | 37.8 | 1.99 | 36.5 | 6.84 |
| 星云湖流域 | 455 | 15.2 | 24.7 | 9.87 | 32.8 | 4.18 |
表1 星云湖流域和8条主要入湖河流子流域的土地利用类型面积和占比
Table1 Area and proportion of different land-use types in the Xingyun Lake basin and sub-basins of 8 major rivers flowing into lake
| 子流域 名称 | 子流域总面积/ km2 | 草地面积占比/ % | 耕地面积占比/ % | 水域面积占比/ % | 林地面积占比/ % | 建设用地面积占比/ % |
|---|---|---|---|---|---|---|
| 学河 | 17.2 | 34.0 | 30.7 | 9.93 | 19.6 | 5.73 |
| 渔村河 | 32.0 | 5.49 | 62.4 | 6.51 | 22.4 | 3.23 |
| 小街河 | 15.5 | 15.7 | 54.9 | 1.71 | 10.4 | 17.4 |
| 大街河 | 13.9 | 5.01 | 57.7 | 4.16 | 6.41 | 26.7 |
| 旧州河 | 16.8 | 13.0 | 33.6 | 0.09 | 44.6 | 8.81 |
| 螺蛳铺河 | 14.0 | 64.6 | 21.6 | 0.84 | 8.61 | 4.33 |
| 东西大河 | 106 | 16.8 | 37.8 | 1.99 | 36.5 | 6.84 |
| 星云湖流域 | 455 | 15.2 | 24.7 | 9.87 | 32.8 | 4.18 |
图5 星云湖主要入湖河流上、中、下游水质指标浓度变化
Figure 5 Concentration variations of water quality indicators in the upper, middle, and lower reaches of the major rivers flowing into Xingyun Lake
图6 水温、降雨量、pH与河流水质指标的冗余分析和相关性热图 1 -12为1-12月水质;RF为降雨量;t为水温;*和**分别表示在0.05和0.01水平上显著差异;红线为水质指标;黑线为环境因子
Figure 6 Redundancy analysis (RDA) and correlation heatmap of water temperature, rainfall, pH, and river water-quality indicators
图7 星云湖流域和四类典型子流域土地利用类型面积比与主要入湖河流水质指标的关系 C、G、S、L、J分别为草地、耕地、水域、林地、建设用地;*为在0.05水平差异显著,**为在0.01水平差异极显著
Figure 7 The relationship between the area ratio of land use types in the Xingyun Lake basin and four typical sub-basins, and the water quality indicators of the major rivers flowing into the lake
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