Wavelet Analysis of Rainfall and Runoff Multidecadal Time Series on Large River Basins in Western North Africa
Abstract
:1. Introduction
- What type of fluctuations is present in gridded and gauged precipitation during the study period?
- Is it possible to relate some of these variability to the climatic index?
- Is it possible to relate precipitation and runoff fluctuations? Do these fluctuations display a constant temporal variability or not?
2. Study Area and Hydrometeorological Data
2.1. Study Area
2.2. Data
3. Methodology
4. Results: Characterization of the Spatio-Temporal Variability of Rainfall and Streamflow of the Study Area
4.1. Characterization of Rainfall Variability Patterns from SIEREM Rainfall
4.2. Characterization of the Temporal and Spatial Variability of Rainfall Gauges
- (1)
- A first discontinuity is visible around 1980 and/or 1985: we noticed a shift from a 2–3-year to a 2–4-year band for Moulouya (Figure 6); from a 4–5-year to a 4–8-year band as well as an interruption of the 4–8-year band for the Sebou basin (Figure 7). A powerful 8–12-year band characterized this discontinuity for Tensift (Figure 8). It was also accompanied by a lack of power affecting more specifically the annual band, approximately between 1980 and 1985; this characteristic was visible in all the Tensift basins, in Ain Khbach (Sebou), and in Midlet (Moulouya).
- (2)
- (3)
- A second discontinuity was visible around 1990 and seemed to affect most of the signal components. It specifically affected the annual band for both the Moulouya and the Sebou basins. Sometimes, this discontinuity could also be observed around 1995.
- (4)
- A third discontinuity was observed around 2000 (Figure 8): the annual energy band seemed to be affected by this change particularly in the Tensift basin, characterized by an interruption of the 8–12-year fluctuation and of the annual band. The duration of this discontinuity is quite important.
4.3. Characterization of the Temporal and Spatial Variability of Streamflows
- An annual band that corresponds to the hydrological cycle, where seasonal alternation is lightly expressed. High power spots were identified in general between 1965 and 1975 and between 1985 and 2000, except in Tourirt station, where the annual cycle appeared from 1975.
- A 2–4-year band with a strong power identified in Safsaf and Taourirt after 1980 and in Ansegmir around 1960.
- Bands (2–8-year and 3–8-year) slightly changing to a 4–8-year band, appearing before and after the discontinuity of 1980.
- A 6–9-year band identified between 1990 and 2000 in Ansgmir station.
4.4. Characterization of the Temporal Variability of Climate Indices
- >
- NAO: Before ~1950, 8–16-year and 10–16-year bands, after ~1950, a multidecadal band (30–60-year band), and a 2–8-year band. NAO was also characterized by powerful short-term structures.
- >
- SOI: Before ~1960, 4–8-year, 3–8-year, and 4–10-year bands; after ~1960, 8–16-year, 16–20-year, and 40–50-year bands. Here, high-frequency components (2–3 years, 2–4 years) showed a variability throughout the study period.
- >
- WMOI: Longer-term variability, namely 16–60-year and 30–60-year bands. An 8–20-year band was also clearly expressed after ∼1950. Fluctuations of inter-annual scales (2–3 years, 3–6 years, 3–8 years, 8–10 years) that represent a low variability were organized differently between 1850 and 1950. The energy bands of 3–6 years and 8–10 years can be observed in 1930.
5. Discussion: Continuous Wavelets Coherence between Climate Fluctuations and Variability of Rainfall and Streamflow
- Region I, referred to as Atlantic (ATL), covers the northern and western parts of Morocco. A winter rainfall influenced by many factors defines it: the NAO, the southward trajectory of mid latitude disturbances, local depressions, and westerly advection of moist air.
- The northern region of Morocco, near the Mediterranean coast, called MED, is the homogeneous region II. Here, rainfalls are strengthened by West Mediterranean depressions, and by the moist air advection coming from the northwest.
- Region III, called SOA, covers the southern area of the Atlas Mountains. Its winter rainfall is quite complex. It results from different climate factors: the Atlantic humidity carried via a flow towards the South of the Atlas Mountains, cyclone activity strengthened in the Canary Islands, and cyclones occurring in the southwest of the Iberian Peninsula [77].
6. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Basin | Area (km2) | Climate | Precipitation (mm) | Temperature (°C) | Evaporation (mm/an) |
---|---|---|---|---|---|
Moulouya | 55,500 | Semi-arid to arid | 600–350 | 2–29 | 1200–1900 |
Sebou | 40,000 | Mediterranean to continental | 1000–600 | 10–30 | 1600–2000 |
Tensift | 20,450 | Semi-arid to arid | 700–250 | 5–45 | 1800–2600 |
Basin | Name of Station (Rainfall) | Start | End | Period (Years) | Name of Station (Streamflow) | Start | End | Period (Years) | Source |
---|---|---|---|---|---|---|---|---|---|
Sebou | Azib Soltane | 1963 | 2006 | 43 | Azib Soltane | 1960 | 1989 | 29 | DMN and DGH |
Bab Ounder | 1958 | 2005 | 47 | Mjara | 1951 | 1988 | 33 | ||
Ain Khbach | 1970 | 2005 | 35 | Ain timdrine | 1956 | 1990 | 34 | ||
Moulouya | Berkane | 1976 | 2000 | 24 | Safsaf | 1971 | 2003 | 32 | GRDC |
Regada | 1976 | 2002 | 24 | Taourirt | 1960 | 2003 | 43 | ||
Mezguitem | 1976 | 2000 | 24 | Melg El Ouidane | 1964 | 2002 | 38 | ||
Guercif | 1976 | 2000 | 24 | Ansegmir | 1960 | 2003 | 43 | ||
Midelt | 1952 | 2005 | 53 | ||||||
Tensift | Abadla | 1970 | 2010 | 40 | Abadla | 1970 | 2009 | 39 | ABHT |
Aghbalou | 1970 | 2010 | 40 | Aghbalou | 1970 | 2009 | 39 | ||
Chichaoua | 1970 | 2010 | 40 | Chichaoua | 1972 | 2008 | 36 | ||
N’kouris | 1975 | 2010 | 35 | N’kouris | 1975 | 2009 | 34 | ||
Sidi Rhal | 1967 | 2010 | 43 | Sidi Rhal | 1963 | 2009 | 46 | ||
Tahnaout | 1972 | 2010 | 38 | Tahnaout | 1962 | 2009 | 47 |
Data | Watershed | 1 Year | 2–4 Year | 2–8 Year | 3–5 Year | 4–5 Year | 4–8 Year | 4–10 Year | 6–10 Year | 8–12/ 16 Year | 10–30 Year/ 16–30 Year |
---|---|---|---|---|---|---|---|---|---|---|---|
Gauged Rainfall | Moulouya | X | Midelt | Midelt | X | X | |||||
Sebou | X | X | Ain Khbach | X | |||||||
Tensift | X | X | X | ||||||||
SIEREM | Moulouya | X | X | X | |||||||
Sebou | X | X | |||||||||
Tensift | X | X | X | ||||||||
Streamflow | Moulouya | X | X | X | X | Ansegmir | |||||
Sebou | X | Azib Soltane | Ain Timdrine/Mjara | Ain Timdrine/Mjara | |||||||
Tensift | X | X | X | X |
Observed Scales | NAO | SOI | WMOI | Synthesis |
---|---|---|---|---|
2–3 year | × | × | × | 2–4 year |
2–4 year | × | × | ||
3–6 year | × | 3–6 year | ||
3–8 year | × | × | 3–8 year | |
4–8 year | × | |||
4–10 year | × | × | 4–16 year | |
8–10 year | × | |||
8–16 year | × | × | ||
10–16 year | × | |||
8–20 year | × | 8–20 year | ||
16–20 year | × | |||
40–50 year | × | 40–60 year | ||
16–60 year | × | 16–60 year | ||
30–60 year | × | × |
NAO% | SOI% | WMOI% | |||||||
---|---|---|---|---|---|---|---|---|---|
Moulouya | Sebou | Tensift | Moulouya | Sebou | Tensift | Moulouya | Sebou | Tensift | |
% of total coherence for annual fluctuation (rainfall) | 65 | 65 | 66 | 61 | 62 | 63 | 64 | 70 | 72 |
% of total coherence for inter-annual fluctuation (rainfall) | 71 | 63 | 69 | 65 | 64 | 66 | 69 | 61 | 74 |
% of total coherence for annual fluctuation (runoff) | 64 | 65 | 65 | 63 | 62 | 61 | 66 | 67 | 68 |
% of total coherence for inter-annual fluctuation (runoff) | 65 | 67 | 74 | 71 | 66 | 63 | 69 | 69 | 67.5 |
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Zamrane, Z.; Mahé, G.; Laftouhi, N.-E. Wavelet Analysis of Rainfall and Runoff Multidecadal Time Series on Large River Basins in Western North Africa. Water 2021, 13, 3243. https://doi.org/10.3390/w13223243
Zamrane Z, Mahé G, Laftouhi N-E. Wavelet Analysis of Rainfall and Runoff Multidecadal Time Series on Large River Basins in Western North Africa. Water. 2021; 13(22):3243. https://doi.org/10.3390/w13223243
Chicago/Turabian StyleZamrane, Zineb, Gil Mahé, and Nour-Eddine Laftouhi. 2021. "Wavelet Analysis of Rainfall and Runoff Multidecadal Time Series on Large River Basins in Western North Africa" Water 13, no. 22: 3243. https://doi.org/10.3390/w13223243
APA StyleZamrane, Z., Mahé, G., & Laftouhi, N.-E. (2021). Wavelet Analysis of Rainfall and Runoff Multidecadal Time Series on Large River Basins in Western North Africa. Water, 13(22), 3243. https://doi.org/10.3390/w13223243