Field-Based Analysis of Runoff Generation Processes in Humid Lowlands of the Taihu Basin, China
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.1.1. Hongqiwei Field Experiment
2.1.2. Baitaqiao Field Experiment
2.2. Data Collection
2.3. Data Assessment
2.3.1. Rainfall Event Definition
2.3.2. Water Balance Analysis for Events
2.3.3. Correlation Analysis
3. Results and Discussion
3.1. Hydroclimatic Conditions during the Study Period
3.2. Overview of Rainfall-Runoff Events
3.3. Rainfall–Runoff Relationships
3.3.1. Saturation Excess Runoff
3.3.2. Infiltration Excess Runoff
3.4. Antecedent Conditions–Runoff Relationships
3.5. Depression Storage-Runoff Relationships
4. Discussion
5. Conclusions
- The prevalence of small intensity rainfall events and soils prone to saturation promoted the predominant role of the saturation excess runoff in the runoff responses, while the infiltration excess runoff was limited in extreme storm events, indicating that multiple runoff processes existed in the area. The strong linear relationship between the total rainfall and runoff confirmed this point of view.
- A good linear positive correlation was found between the initial groundwater depth and the soil water storage capacity before the rainfall events, which reflected the strong interactions between the shallow groundwater and soil water in this area.
- The depression storage value calculated by the water balance was suggested in a rough proxy, which was meaningful for the value range of this parameter in the numerical simulation.
Author Contributions
Funding
Conflicts of Interest
References
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Parameters | Site HQW | Site BTQ | |
---|---|---|---|
Clay | (%) | 32.60 (4.60) 1 | 30.42 (3.60) |
Silt | (%) | 59.27 (3.72) | 60.20 (4.33) |
Sand | (%) | 8.13 (3.16) | 9.38 (2.04) |
Average bulk density (ρb) | (g/cm3) | 1.36 (0.14) | 1.52 (0.13) |
Saturated water content (θs) | (m3/m3) | 0.45 (0.083) | 0.47 (0.10) |
Saturated hydraulic conductivity (Ks) | (mm/hr) | 46.63 (31.33) | 30.22 (10.79) |
Organic matter (OM) | (g/kg) | 14.78 (5.61) | 18.38 (10.07) |
Pre-Event Conditions: Antecedent Soil Moisture Indices | |
H0 | The initial groundwater depth (m) |
SWSC | The soil water storage capacity (mm) |
Event conditions: Precipitation and derived variables | |
∑P | Total rainfall (mm) |
T | Rainfall duration (hr) |
Pmax | Maximum rainfall intensity (mm/hr) |
Pmean | Average rainfall intensity (mm/hr) |
Event conditions: Hydrological variables | |
R | Quickflow runoff (mm) |
ɑ | Runoff coefficient, equals to R/P |
Qmax | Peak discharge (L/s) |
D | Depression storage (mm) |
∆H | Increment of groundwater table (mm) |
I | Cumulative infiltration (mm) |
Event | Start Date | ΣP | T | Pmean | Pmax | R | ɑ | SWSC |
---|---|---|---|---|---|---|---|---|
mm | hr | mm/hr | mm/hr | mm | mm | |||
H1 | 20-05-2016 | 54.5 | 31.2 | 1.8 | 6.6 | 5.99 | 0.11 | 72.2 |
H2 | 31-05-2016 | 35.3 | 3.2 | 11.2 | 28.4 | 23.5 | 0.67 | 41.4 |
H3 | 19-10-2016 | 97.3 | 65.5 | 12.6 | 1.5 | 71.3 | 0.73 | 43.5 |
B1 | 08-07-2018 | 23.5 | 3.83 | 6.13 | 22 | 14.64 | 0.62 | 21.4 |
B2 | 06-11-2018 | 32.5 | 39.83 | 0.82 | 4.9 | 9.12 | 0.28 | 75 |
B3 | 19-06-2019 | 24.5 | 39.5 | 0.62 | 9.6 | 7.43 | 0.30 | 44.4 |
(a) | ΣP | T | Pmax | Pmean | R | α | Qmax | D | ∆H | I | H0 | SWSC |
---|---|---|---|---|---|---|---|---|---|---|---|---|
ΣP | 1 | 0.748 | 0.599 | 0.248 | 0.975 | 0.720 | 0.252 | 0.469 | 0.248 | 0.042 | −0.081 | −0.131 |
T | 1 | 0.254 | −0.171 | 0.655 | 0.465 | 0.141 | 0.652 | 0.445 | 0.302 | 0.184 | 0.073 | |
Pmax | 1 | 0.683 | 0.634 | 0.741 | 0.287 | 0.115 | −0.063 | −0.142 | −0.162 | −0.159 | ||
Pmean | 1 | 0.288 | 0.478 | 0.161 | −0.127 | −0.060 | −0.105 | −0.180 | −0.177 | |||
R | 1 | 0.797 | 0.196 | 0.343 | 0.051 | −0.167 | −0.255 | −0.276 | ||||
α | 1 | 0.214 | 0.098 | −0.101 | −0.361 | −0.496 | −0.568 | |||||
Qmax | 1 | 0.016 | 0.518 | 0.347 | 0.259 | 0.204 | ||||||
D | 1 | 0.435 | 0.270 | 0.122 | 0.057 | |||||||
∆H | 1 | 0.861 | 0.630 | 0.447 | ||||||||
I | 1 | 0.878 | 0.764 | |||||||||
H0 | 1 | 0.922 | ||||||||||
SWSC | 1 | |||||||||||
(b) | ΣP | T | Pmax | Pmean | R | α | Qmax | D | ∆H | I | H0 | SWSC |
ΣP | 1 | 0.321 | 0.225 | −0.119 | 0.496 | 0.332 | 0.365 | −0.281 | 0.535 | 0.593 | 0.129 | 0.342 |
T | 1 | −0.624 | −0.638 | −0.037 | 0.031 | 0.006 | 0.184 | 0.465 | 0.178 | 0.046 | 0.177 | |
Pmax | 1 | 0.526 | 0.693 | 0.641 | 0.641 | −0.554 | −0.150 | −0.234 | −0.247 | −0.238 | ||
Pmean | 1 | −0.041 | −0.074 | 0.020 | 0.188 | −0.002 | −0.103 | 0.189 | 0.233 | |||
R | 1 | 0.957 | 0.936 | −0.604 | −0.069 | −0.322 | −0.530 | −0.454 | ||||
α | 1 | 0.934 | −0.591 | −0.173 | −0.469 | −0.625 | −0.525 | |||||
Qmax | 1 | −0.551 | 0.026 | −0.405 | −0.462 | −0.414 | ||||||
D | 1 | −0.008 | −0.071 | 0.060 | 0.114 | |||||||
∆H | 1 | 0.629 | 0.675 | 0.703 | ||||||||
I | 1 | 0.705 | 0.784 | |||||||||
H0 | 1 | 0.918 | ||||||||||
SWSC | 1 |
Parameter | HQW | BTQ |
---|---|---|
Maximum (mm) | 18.86 | 12.13 |
Minimum (mm) | 0.29 | 0.19 |
Mean (mm) | 6.20 | 6.63 |
SD (mm) | 4.75 | 3.91 |
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Zhai, Y.; Wang, C.; Chen, G.; Wang, C.; Li, X.; Liu, Y. Field-Based Analysis of Runoff Generation Processes in Humid Lowlands of the Taihu Basin, China. Water 2020, 12, 1216. https://doi.org/10.3390/w12041216
Zhai Y, Wang C, Chen G, Wang C, Li X, Liu Y. Field-Based Analysis of Runoff Generation Processes in Humid Lowlands of the Taihu Basin, China. Water. 2020; 12(4):1216. https://doi.org/10.3390/w12041216
Chicago/Turabian StyleZhai, Yue, Chuanhai Wang, Gang Chen, Chun Wang, Xiaoning Li, and Yating Liu. 2020. "Field-Based Analysis of Runoff Generation Processes in Humid Lowlands of the Taihu Basin, China" Water 12, no. 4: 1216. https://doi.org/10.3390/w12041216
APA StyleZhai, Y., Wang, C., Chen, G., Wang, C., Li, X., & Liu, Y. (2020). Field-Based Analysis of Runoff Generation Processes in Humid Lowlands of the Taihu Basin, China. Water, 12(4), 1216. https://doi.org/10.3390/w12041216