Hydrodynamic Characteristics of the Formation Processes for Non-Homogeneous Debris-Flow
Abstract
:1. Introduction
2. Materials and Methods
2.1. Experimental Apparatus and Procedure
2.2. Experiments
- (i)
- movement of the sediments due to water movement infiltration with corresponding mixing of particles with different size and formation of debris flow;
- (ii)
- acceleration of debris flow to a maximum propagation velocity in the movement area;
- (iii)
- a rapid decrease of velocity when the debris flow reached the flat downstream area and finally accumulation and deposition in the downstream area.
3. Results
3.1. Experimental Properties of the Debris Flow Formation
3.2. Influence of Different Vertical Grading, Flow Rates and Flume Slopes on the Formation, the Propagation and the Intensity of Debris Flows
3.2.1. Initiation Time
3.2.2. Propagation
3.2.3. Flow Intensity
4. Conclusions
- (1)
- The pore water pressure is the critical driving force to trigger the debris flow initiation. During the formation process of the debris flow, pore water pressure first gradually increase, reaches a peak and then declines rapidly. The critical initiated pore water pressure under the condition of small-scale flow released was lower than that the one recorded when released the higher flow rate. The initial growth rate of the pore water pressure was higher for the configuration where the fine particles were positioned above the coarse particles and the flume had the steepest slope. Focusing on the regression analysis of the factors influencing the formation process, the ranking list, from the most to the less influencing, of the three experimental parameters considered is given as: flow rate Q > flume slope S > vertical grading coefficient Ψ. Variables Q and S showed negative correlation with the formation time, which meant that the greater is the flow rate and the steeper is the slope, the shorter is the formation time.
- (2)
- When the pore water pressure begins to decrease rapidly, the debris flow enters the next phase—the movement process. The corresponding propagation velocity then reaches its maximum value. The ranked list based on the influences that the three variables have on the velocity magnitude can be rates as follows: flow rate Q > flume slope S > vertical grading coefficient Ψ. Flow rate and flume slope showed positive correlation with the velocity, while there is a negative correlation between the vertical grading coefficient and the velocity. The steeper the slope and the larger the original amount of water is, the higher is the movement of the debris flow. Additionally, the velocity of the debris flows is inversely proportional to the vertical grading coefficient.
- (3)
- Analysing the Froude number for the processes of formation and movement, it steadily rises and reaches its maximum value just at the end of the steep area, before reaching the accumulation zone. Fr values below 1 were obtained only in the formation zone and the end flat zone where the propagation of the debris flow was initiating and where the debris flow was reducing its speed, respectively. The Froude Number was larger than 1 in other areas, indicating the formation of supercritical flows associated with debris flow transport behaviour. The ranked list based on the influences that the three variables have on the Froude number can be rates as follows: flow rate Q > flume slope S > vertical grading coefficient Ψ. The higher the flow rate is and the steeper the flume is, the higher are Froude number values, while the higher vertical grading coefficient is, the lower are Froude number values.
Supplementary Materials
Acknowledgments
Author Contributions
Conflicts of Interest
Notation
Ψ | vertical gradient coefficient (-) |
d50up | median particle size upper layer (mm) |
d50down | median particle size lower layer (mm) |
H | initial height debris (m) |
J | hydraulic gradient (-) |
γ | volumetric weight of water (Nm−3) |
γS | solid bulk density of sediment particles (Nm−3) |
sediment Reynolds number (-) | |
h | water depth (m) |
d | particle size (m) |
drag force (N/m2) | |
starting shear stress (N/m2) | |
Q | flowrate (m3/h) |
S | slope (°) |
T | initiation time (s) |
Fr | Froude number (-) |
g | gravitational acceleration (m/s2) |
h | debris flow depth (m) |
v | velocity debris flow (m/s) |
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Group | Test ID | Flow Rate Q (m3/h) | Vertical Grading Coefficient Ψ | Flume Slope S (°) |
---|---|---|---|---|
1 | 1 | 19.5 | 1.00 | 20° |
2 | 6.5 | 1.00 | 20° | |
3 | 19.5 | 8.43 | 20° | |
4 | 6.5 | 8.43 | 20° | |
5 | 19.5 | 0.11 | 20° | |
6 | 6.5 | 0.11 | 20° | |
2 | 7 | 19.5 | 1.00 | 25° |
8 | 6.5 | 1.00 | 25° | |
9 | 19.5 | 8.43 | 25° | |
10 | 6.5 | 8.43 | 25° | |
11 | 19.5 | 0.11 | 25° | |
12 | 6.5 | 0.11 | 25° |
Rank | Influence Factor | Standard Coefficient | Contribution Rate | Accumulative Contribution Rate |
---|---|---|---|---|
1 | Flow rate | −0.864 | 0.887 | 0.887 |
2 | Flume Slope | −0.069 | 0.070 | 0.957 |
3 | Vertical grading coefficient | −0.041 | 0.042 | 1.000 |
Rank | Influence Factor | Standard Coefficient | Contribution Rate | Accumulative Contribution Rate |
---|---|---|---|---|
1 | Flow rate | 0.817 | 0.989 | 0.989 |
2 | Flume Slope | 0.121 | 0.147 | 1.135 |
3 | Vertical grading coefficient | −0.112 | -0.135 | 1.000 |
Rank | Influenced Parameters | Standard Coefficient | Contribution Rate | Accumulative Contribution Rate |
---|---|---|---|---|
1 | Flow rate | 0.626 | 0.844 | 0.844 |
2 | Flume Slope | 0.265 | 0.357 | 1.200 |
3 | Vertical grading coefficient | −0.149 | −0.200 | 1.000 |
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Shu, A.P.; Tian, L.; Wang, S.; Rubinato, M.; Zhu, F.; Wang, M.; Sun, J. Hydrodynamic Characteristics of the Formation Processes for Non-Homogeneous Debris-Flow. Water 2018, 10, 452. https://doi.org/10.3390/w10040452
Shu AP, Tian L, Wang S, Rubinato M, Zhu F, Wang M, Sun J. Hydrodynamic Characteristics of the Formation Processes for Non-Homogeneous Debris-Flow. Water. 2018; 10(4):452. https://doi.org/10.3390/w10040452
Chicago/Turabian StyleShu, An Ping, Lu Tian, Shu Wang, Matteo Rubinato, Fuyang Zhu, Mengyao Wang, and Jiangtao Sun. 2018. "Hydrodynamic Characteristics of the Formation Processes for Non-Homogeneous Debris-Flow" Water 10, no. 4: 452. https://doi.org/10.3390/w10040452
APA StyleShu, A. P., Tian, L., Wang, S., Rubinato, M., Zhu, F., Wang, M., & Sun, J. (2018). Hydrodynamic Characteristics of the Formation Processes for Non-Homogeneous Debris-Flow. Water, 10(4), 452. https://doi.org/10.3390/w10040452