Barrier dam outburst risk grading and early warning method based on different outburst modes
A dangerous and model technology, applied in the field of basic research on disaster prevention and mitigation, and risk control theory, it can solve problems such as single, difficult to accurately reflect the disaster process, and different failure modes to study the dam failure process.
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Embodiment 1
[0058] refer to Figure 1 to Figure 5 , based on different failure modes of barrier dam failure risk classification and early warning method, including the following steps:
[0059] S101: Obtain parameters: obtain the initial breach top width, bottom width, height, breach slope angle, initial water surface elevation, initial breach bottom elevation, initial storage capacity, median particle size, and channel or channel slope parameters of the barrier dam;
[0060] S102: Discrimination of the failure mode of the barrier dam: use the discriminant formula of the failure mode of the barrier dam to determine the failure mode of the barrier dam;
[0061] S103: Establish a mathematical model for the failure of the barrier dam: based on the different failure modes, reacquire the basic parameters of the barrier dam, and establish a mathematical model for the failure of the barrier dam under different failure modes;
[0062] S104: Calculating the failure parameters: based on the mathem...
Embodiment 2
[0102] refer to Figure 1 to Figure 5 , the risk classification and early warning method of barrier dam failure, such as figure 1 shown, including the following steps:
[0103] S101: Determine the initial dam body height H, dam body length B, dam crest width Wt, upstream slope angle α, backwater slope slope β, critical water level Dcr, diameter d 50 , porosity n, and channel or channel slope θ, etc.
[0104] S102: Discrimination of the failure mode of the barrier dam.
[0105] Dimensionless water level Dcr / H of barrier dam according to formula 1-3:
[0106]
[0107] where k 1 =0.4007,k 2 =-1.7442,k 3 =-2.6785,k 4 =-2.9792×10 -9 , k 5= 3.55589,k 6 =0.1029,k 7 =-0.0663,k 8 =80.8072,k 9 =-211.7417. Formula 1;
[0108]
[0109] where l 1 =0.2456, l 2 =-0.8568, l 3 =7.7789, l 4 =0.0013,l 5 =2.0493, l 6 =0.5359, l 7 =0.0741, l 8 =-0.0447, l 9 = 1.3995. Formula 2;
[0110]
[0111] where m 1 =-3.4944, m 2 =5.0656, m 3 =0.0009, m 4 =772454.1004,...
Embodiment 3
[0145] Analysis of Tangjiashan barrier dam failure risk grade:
[0146] After the Wenchuan earthquake, a large number of landslides and collapses occurred in the earthquake area, which led to the appearance of a large number of barrier lakes, among which the Tangjiashan barrier lake is the most dangerous. Before the earthquake, the slopes on both sides of Tangjiashan were about 40°. From the structural point of view, they belonged to the slopes with medium and steep dip angles. The earthquake caused the slope on one side to become unstable, forming a high-speed landslide. Block the Tongkou River, forming a volume of 20.37 million m 3 The barrier dam is very likely to collapse and cause disasters downstream. The barrier dam is located in the alpine valley area, the terrain is high in the northwest and low in the southeast, with an altitude of 1500-2389m and a relative height difference of 400-1000m. There are differences in the slopes on both sides of the river. The bedrock o...
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