Evolution Pattern and Frequency Coupling Relationship of Runoff and Sediment Under Changing Environmental Conditions: A Case Study of the Kuye River Basin in the Loess Plateau

IF 3.6 2区 农林科学 Q2 ENVIRONMENTAL SCIENCES
Yaotao Xu, Peng Li, Jiajia Guo, Binhua Zhao, Jialong Liang, Jinjin Pan, Zixuan Yan, Kunxia Yu
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Abstract

Conducting a comprehensive investigation into the interplay between runoff and sediment discharge in a dynamic environment is essential to uphold aquatic ecosystems and promote sustainable regional development of high quality. Initiated since the 1950s, extensive soil and water conservation projects in the middle reaches of the Loess Plateau, China, have resulted in a substantial reduction in runoff and sediment discharge. This reduction has prompted alterations in the dynamics between runoff and sediment discharge, impacting the frequency of their interactions. Analyzing measured data from the Kuye River Basin (Kuye Basin) in the middle reaches of the Yellow River for the period 1956 to 2019, this study investigates the evolving patterns of runoff and sediment discharge. Utilizing the Copula function, we analyzed the joint probability distribution characteristics of runoff and sediment discharge, aiming to identify the factors influencing their evolution patterns. The findings revealed a substantial downward trend (p < 0.01) in both monthly and annual scales for runoff and sediment discharge in the Kuye Basin. Additionally, two abrupt changes were observed in 1979 and 1996, demonstrating multi‐timescale periodicity. Based on the mutation points, the study period was divided into three phases: P1 (1956–1978), P2 (1979–1995), and P3 (1996–2019). The optimal model for the joint distribution of runoff and sediment discharge is the Clayton Copula in both P1 and P2, while in P3, the optimal model shifts to the Gumbel Copula. Over the transition from P1 to P3, the runoff and sediment discharge in each recurrence period experienced a significant decrease, and the asynchronous probability of abundance encounters for runoff and sediment discharge at different design frequencies increased. Human activities, such as soil and water conservation measures, have influenced the variations in runoff and sediment discharge at different stages. With the passage of time, the effectiveness of current measures has approached saturation, resulting in cumulative values of nearly 28 × 109 m3 for runoff and 4.4 × 109 t for sediment discharge, respectively. These research findings lay the groundwork for a deeper comprehension of the evolving dynamics between runoff and sediment discharge in the basin and contribute to the formulation of effective policies for soil erosion control.
变化环境条件下径流泥沙演化模式及频率耦合关系——以黄土高原库野河流域为例
全面研究动态环境下径流与输沙的相互作用,对维护水生态系统、促进区域高质量可持续发展具有重要意义。20世纪50年代以来,中国在黄土高原中游地区广泛实施水土保持工程,径流量和输沙量大幅减少。这种减少促使径流和泥沙流量之间的动态变化,影响了它们相互作用的频率。通过对1956 - 2019年黄河中游库野河流域实测资料的分析,探讨了库野河流域径流和输沙的演变规律。利用Copula函数分析了径流和输沙量的联合概率分布特征,旨在找出影响径流和输沙量演变模式的因素。调查结果显示出明显的下降趋势(p <;库野流域径流输沙量在月、年尺度上均为0.01)。另外,在1979年和1996年观测到两次突变,表现出多时间尺度的周期性。根据突变点,将研究期分为P1(1956-1978)、P2(1979-1995)和P3(1996-2019)三个阶段。P1和P2的最优流沙联合分布模型均为Clayton Copula, P3的最优流沙联合分布模型为Gumbel Copula。从P1过渡到P3,各重现期的径流和输沙量均显著减少,不同设计频率的径流和输沙量丰度遭遇的非同步概率增加。水土保持措施等人类活动影响了不同阶段径流和输沙量的变化。随着时间的推移,现有措施的有效性已接近饱和,累计径流量和输沙量分别接近28 × 109 m3和4.4 × 109 t。这些研究成果为深入了解流域径流和输沙的演变动态奠定了基础,并有助于制定有效的土壤侵蚀控制政策。
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来源期刊
Land Degradation & Development
Land Degradation & Development 农林科学-环境科学
CiteScore
7.70
自引率
8.50%
发文量
379
审稿时长
5.5 months
期刊介绍: Land Degradation & Development is an international journal which seeks to promote rational study of the recognition, monitoring, control and rehabilitation of degradation in terrestrial environments. The journal focuses on: - what land degradation is; - what causes land degradation; - the impacts of land degradation - the scale of land degradation; - the history, current status or future trends of land degradation; - avoidance, mitigation and control of land degradation; - remedial actions to rehabilitate or restore degraded land; - sustainable land management.
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