Effects of Nonlinearity on Velocity, Acceleration and Pressure Gradient in Free-Stream Zone of Solitary Wave over Horizontal Bed—An Experimental Study
Abstract
:1. Introduction
2. Experimental Set-Up and Instrumentation
2.1. Wave Flume and Coordinate System
2.2. Wave Gauge, HSPIV, and Flow Observation
2.3. Experimental Conditions
3. Validation Tests
4. Results and Discussion
4.1. Elucidation of FSZs from Velocity Profiles
4.2. Nonlinear Effect on Free Surface Elevation and Free-Stream Velocity
4.3. Nonlinear Effect on Local and Convective Accelerations in FSZ
4.4. Nonlinear Effect on Pressure Gradient in FSZ
= −[Alo(t) + Aco(t)].
= Po(t)
5. Conclusions
- For all the cases exclusive of Case E, the FSZs are positioned between y/h0 = (0.035–0.055) and (0.335–0.366), nearly identical to those between y/h0 = 0.05 and 0.350 in Case E.
- If H0/h0 increases, the dimensionless free surface elevation, η(T)/H0, and the dimensionless free stream velocity, uo(T)/C0, become more concentrated around T = 0 with a narrower symmetric bell-shape, exhibiting shorter time taken to generate a complete wave motion. This trend indicates that the change of ascending or descending free surface elevation per unit (dimensionless) time becomes greater in magnitude.
- For −6.00 ≤ T < 0 and 0 < T ≤ 6.00, the dimensionless free-stream velocity, [uo(T)/C0], increases from near zero to a maximum and decreases from the maximum to about zero, highlighting the temporal acceleration and deceleration in the FSZ.
- The relationship between [uo/C0]max and H0/h0 is uniquely expressed in Equation (3), stating that the former gets large with an increasing H0/h0. For H0/h0 = 0.179, 0.363 and 0.550, the values of [uo/C0]max are about 3.10, 5.32, and 6.20 times that (= 0.0473) for H0/h0 = 0.050. This trend demonstrates the nonlinear effect on [uo/C0]max.
- The dimensionless local acceleration, Alo/g, is positive for −6.00 ≤ T < 0 and negative for 0 < T ≤ 6.00. At T = 0 with wave crest intersecting the SMS, Alo/g is equal to zero and the free-stream velocity reaches its maximum.
- The magnitudes of positive and negative maxima in the dimensionless local acceleration, Alo+/g and Alo−/g (≈ −Alo+/g), increase linearly, and the counterparts of the dimensionless characteristic time TAlo+ (< 0)and TAlo− (> 0) decrease with an increase in H0/h0. For H0/h0 = 0.179, 0.363 and 0.550, the values of Alo+/g are about 6.11, 15.14 and 21.45 times that (= 0.0071) for H0/h0 = 0.050, indicating the nonlinear effect on Alo+/g and Alo−/g.
- The magnitudes of negative and positive maxima in the dimensionless convective acceleration, Aco−/g, and Aco+/g, increase when H0/h0 increases. However, their magnitudes are about 1/22.0–1/4.3 times those of Alo+/g and Alo−/g. With the magnitude of Aco(T)/g being much smaller than that of Alo(T)/g, the contribution to the dimensionless pressure gradient, Po(T)/g (= −[Alo(T) + Aco(T)]/g), is thus governed mainly by Alo(T)/g.
- Po(T)/g decreases from near zero to Po_/g (< 0) for −6.00 ≤ T ≤ TPo− or from Po+/g (≈ −Po_/g > 0) to about zero for TPo+ ≤ T ≤ 6.00, exhibiting an increase in the favorable pressure gradient or decrease in the adverse pressure gradient in the FSZ. Moreover, it increases from Po_/g, via 0, to Po+/g for TPo− ≤ T < 0, T = 0, and 0 < T ≤ TPo+, indicating the change from favorable, via zero, to an adverse pressure gradient.
- With an increase in H0/h0, Po+/g increases but TPo+ decreases. For H0/h0 = 0.179, 0.363 and 0.550, the values of Po+/g are about 5.74, 14.54 and 19.84 times that (= 0.0061) for H0/h0 = 0.050, showing the strong nonlinear effect on Po(T)/g and Po+/g.
- For each case, the incipient flow reversal occurs immediately after the maximum adverse pressure gradient. Namely, TPo+ is slightly less than Tifr. Further, Tifr decreases if H0/h0 increases, which accentuates the nonlinear effect on the incipient flow reversal right above the bed.
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Case | H0 (cm) | H0/h0 * | C (cm/s) | C0 (cm/s) | C0/C | Framing Rate of HSPIV (Hz) | Framing Rate of FV (Hz) | Size (cm × cm) (Length × Width) |
---|---|---|---|---|---|---|---|---|
A | 0.40 | 0.050 | 88.59 | 90.78 | 1.025 | 1600 | 30 | 2.05 × 1.15 |
B | 0.90 | 0.112 | 88.59 | 93.44 | 1.055 | 2500 | 50 | 2.05 × 1.15 |
C | 1.43 | 0.179 | 88.59 | 96.18 | 1.086 | 2500 | 50 | 2.05 × 1.15 |
D | 2.28 | 0.285 | 88.59 | 100.42 | 1.134 | 2500 | 100 | 2.05 × 1.15 |
E | 2.90 | 0.363 | 88.59 | 103.41 | 1.167 | 500 | - | 16.80 × 16.80 (HSPIV) |
1000 | - | 2.00 × 1.00 (HSPIV) | ||||||
- | 100 | 2.05 × 1.15 (FV) | ||||||
F | 3.08 | 0.385 | 88.59 | 104.26 | 1.177 | 2500 | 100 | 2.05 × 1.15 |
G | 3.52 | 0.440 | 88.59 | 106.31 | 1.200 | 2500 | 100 | 2.11 × 1.18 |
H | 4.00 | 0.500 | 88.59 | 108.50 | 1.225 | 2000 | - | 2.11 × 1.18 |
I | 4.40 | 0.550 | 88.59 | 110.29 | 1.245 | 2500 | 100 | 2.11 × 1.18 |
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Lin, C.; Kao, M.-J.; Yang, J.; Yuan, J.-M.; Hsieh, S.-C. Effects of Nonlinearity on Velocity, Acceleration and Pressure Gradient in Free-Stream Zone of Solitary Wave over Horizontal Bed—An Experimental Study. Water 2022, 14, 3609. https://doi.org/10.3390/w14223609
Lin C, Kao M-J, Yang J, Yuan J-M, Hsieh S-C. Effects of Nonlinearity on Velocity, Acceleration and Pressure Gradient in Free-Stream Zone of Solitary Wave over Horizontal Bed—An Experimental Study. Water. 2022; 14(22):3609. https://doi.org/10.3390/w14223609
Chicago/Turabian StyleLin, Chang, Ming-Jer Kao, James Yang, Juan-Ming Yuan, and Shih-Chun Hsieh. 2022. "Effects of Nonlinearity on Velocity, Acceleration and Pressure Gradient in Free-Stream Zone of Solitary Wave over Horizontal Bed—An Experimental Study" Water 14, no. 22: 3609. https://doi.org/10.3390/w14223609
APA StyleLin, C., Kao, M. -J., Yang, J., Yuan, J. -M., & Hsieh, S. -C. (2022). Effects of Nonlinearity on Velocity, Acceleration and Pressure Gradient in Free-Stream Zone of Solitary Wave over Horizontal Bed—An Experimental Study. Water, 14(22), 3609. https://doi.org/10.3390/w14223609