Plan
Comptes Rendus

Surface geosciences (Hydrology–Hydrogeology)
1896–2006 Sahelian annual rainfall variability and runoff increase of Sahelian Rivers
[Variabilité des pluies annuelles au Sahel entre 1896 et 2006 et augmentation des écoulements des rivières sahéliennes]
Comptes Rendus. Géoscience, Volume 341 (2009) no. 7, pp. 538-546.

Résumés

Updated rainfall data to 2006 confirm that the Sahelian rainfall has increased since the end of the 1990s, but the annual average rainfall is still as low as during the drought of the 1970s. The decrease of rainfall is higher in the Northwest and lower in the Southeast Sahel. The increase of temperature over West Africa during the end of the 20th century induced an increase of Potential Evaporation, which might reduce the runoff. However, the joint effect of climate change and of human activities on land cover over more than three decades is responsible for an increase of the runoff coefficients of the West African Sahelian Rivers since the 1970s, despite the rainfall shortage during the same period, as revealed by the analysis of runoff from Mauritania, Burkina-Faso and Niger. The runoff coefficients have increased in regions with less than 750 mm of annual rainfall, under Sahelian and subdesertic climates, leading to increased flood peaks, occurring earlier in the season. Even if it is difficult to separate which part of this runoff coefficient increase is due to climate change alone or to human impact on land cover, the highest values are observed in the most inhabited areas, where land cover is dominated by cultivated areas. This climatic/human impact on land cover is so huge that it has changed since decades the hydrological regimes of the Sahelian Rivers, from the small watershed to the largest one, such as the Niger River at Niamey.

La mise à jour des données de pluie à 2006 confirme que les pluies ont augmenté au Sahel depuis la fin des années 1990, mais que leur moyenne annuelle reste aussi basse que durant la sécheresse des années 1970. De plus, la diminution des pluies est plus élevée dans le Nord-Ouest et plus faible dans le Sud-Est du Sahel. L’augmentation de température observée en Afrique de l’Ouest à la fin du xxe siècle est responsable d’une augmentation de l’ETP qui pourrait réduire les écoulements. Mais l’effet combiné du changement climatique et des activités humaines sur la surface du sol, depuis plus de trois décennies, est responsable d’une augmentation des coefficients d’écoulement des rivières sahéliennes d’Afrique de l’Ouest depuis le début des années 1970, malgré la baisse des pluies, comme le révèle l’étude des écoulements de rivières de Mauritanie, du Burkina-Faso et du Niger. Les coefficients d’écoulement ont augmenté dans les régions où les pluies annuelles sont inférieures à 750 mm, sous climat sahélien et subdésertique, conduisant à des pics de crue plus précoces et plus importants. Même s’il est difficile de séparer quelle part de cette augmentation de coefficient d’écoulement est due au changement climatique seul ou à l’impact de l’homme sur les états de surface, les valeurs les plus élevées sont observées dans les régions les plus habitées, où l’occupation du sol est dominée par des cultures. Cet impact climatique/humain sur les états de surface est si important qu’il a modifié depuis des décennies les régimes hydrologiques des rivières sahéliennes, depuis le petit bassin jusqu’au plus grand comme le fleuve Niger à Niamey.

Métadonnées
Reçu le :
Accepté le :
Publié le :
DOI : 10.1016/j.crte.2009.05.002
Keywords: Climatic variability, Runoff, Rainfall, Runoff coefficient, Hydrological regime, Sahel, Africa
Mots-clés : Variabilité climatique, Débit, Pluie, Coefficient d’écoulement, Régime hydrologique, Sahel, Afrique

Gil Mahé 1 ; Jean-Emmanuel Paturel 2

1 HydroSciences Montpellier, case MSE UM2, université de Montpellier 2, 300, avenue E.-Jeanbreau, 34095 Montpellier cedex 5, France
2 HSM–IRD, BP 2528, Bamako, Mali
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Gil Mahé; Jean-Emmanuel Paturel. 1896–2006 Sahelian annual rainfall variability and runoff increase of Sahelian Rivers. Comptes Rendus. Géoscience, Volume 341 (2009) no. 7, pp. 538-546. doi : 10.1016/j.crte.2009.05.002. https://comptes-rendus.academie-sciences.fr/geoscience/articles/10.1016/j.crte.2009.05.002/

Version originale du texte intégral

Le texte intégral ci-dessous peut contenir quelques erreurs de conversion par rapport à la version officielle de l'article publié.

1 Introduction

Since 1970, West Africa has experienced one of the most abrupt and long-lasting changes of climate ever in the world since the beginning of the records in 1896 [5,15,27,33,34]. This period of rainfall decrease is still ongoing [9,21,22], although less strong since the mid 1990s than during the 1980s. The average rainfall over the last 37 years has remained below the 1900–1970 average in this region with large scale consequences [16]. From a hydrological point of view, the relevant question for West Africa is: how has climate change (and especially the rainfall decrease) affected the rainfall–runoff relationships and the river regimes?

For almost all the rivers of West Africa, runoff has decreased since 1970. However, the changes in the rainfall–runoff relationships are disproportionate [26], and even show paradoxical situations. The first hydrological paradox in West Africa is that in most cases the runoff decrease rate largely exceeds that of the rainfall, which is explained mainly by the long-lasting lowering of the water table, and hence less and less contribution from the baseflow to the river regime after 1970 [4,25,26].

In regions more arid, as in the Sahel, only surface runoff drives the hydrological regime [6,7]. A few long-time runoff series for this region have been recently studied, from which has been described the second paradox: the increase of runoff coefficients of the Sahelian rivers since 1970. Pouyaud [37] and Seguis [38] had already observed such an increase but only for very small catchments. Recent studies show that these hydrological changes also modified hydrological regimes of large Sahelian river basins [1,28,29], while Favreau et al. [12] showed an increase of the groundwater level in Niger, related to the same runoff increase in a context of endoreic basins.

In this article, we present an update to 2006 of the Sahelian rainfall index of L’Hote et al. [21], to see what is the current state of the Sahel drought. We discuss the regional variability of the drought, through regional indexes, and we compare the rainfall variability to the runoff variability of several Sahelian catchments, through regional averaged runoff coefficients, to see whether the previous observations of runoff increases at local scales in Sahel is also visible at the scale of larger basins and for many different areas of Sahel.

2 Material and methods

2.1 Rainfall

After L’Hote et al. [21], we use 21 rainfall gauging stations in West and central African Sahel (Fig. 1). This figure shows the southward shift of the isohyets after 1970 (from L’Hote and Mahé [20]). Data have been updated to 2006, thanks to National Meteorological Services, and the normalized Sahelian rainfall index is now available for 111 years (Fig. 2). The number of stations is limited to 21 in order to get the greatest number of stations with the longest long time series, which can also be updated more easily.

Fig. 1

The 21 rainfall stations used for the Sahelian rainfall index. The map of West and Central Africa show the isohyets before and after 1970 (250, 500, 1000 and 1500 mm) for the period 1951–1989 (after [20]). The areas where are located the studied basins are outlined by squares.

Fig 1. Les 21 stations pluviométriques utilisées pour l’index de pluie sahélien. La carte des pluies d’Afrique de l’Ouest et centrale montre les isohyètes avant et après 1970 (250, 500, 1000 et 1500 mm), pour la période 1951–1989 (d’après [20])). Les aires contenant les bassins versants étudiés sont représentées par des carrés.

Fig. 2

Sahelian rainfall index (1896–2006) (updated from [21]), and number of stations.

Fig. 2. Index de pluies sahéliennes (1896–2006) (mis à jour de [21]) et nombre de stations.

In order to check for regional distribution of the index, we divide the Sahelian area studied into four sub-regions, following previous results either from past records [18,31] where the latitudinal limit on both sides of the isohyet 500 mm per year was pointed out, or from future scenarios from GCMs [2], where Sahelian rainfall tend to slightly increase in the East of the Greenwich meridian, but to still decrease in the West. The raingauges of the Northwest area are: Dakar, Saint Louis, Podor, Boutilmit, Nema, Mopti and Tombouctou; of the Northeast area: Gao, Zinder, Agadez, Tahoua, Nguigmi; of the Southwest area: Banjul, Tambacounda, Kayes, Bamako, Ouagadougou, Bobo-Dioulasso; and of the Southeast area: Niamey, Ndjamena and Sahr. Each index is the average in millimeters of annual rainfall at all regional stations.

2.2 Runoff

Data come from three National Hydrological Services in Burkina-Faso, Niger and Mauritania. In Burkina-Faso and Niger, the basins studied are: Gorouol (Alcongui, Koriziena and Dolbel gauging stations), Dargol (Tera and Kakassi stations), Sirba (Garbe Kourou station), Goroubi (Diongore station), Nakambe (Wayen station). In Mauritania, the basins studied are: Niorde (Harr and Tourime stations), Ghorfa (Ghorfa aval, Ouloumbome and Ouled Addet stations), Gorgol Blanc (Agueilat and Gleita Tor stations), Gorgol Noir (Foum Gleita station). These basins are displayed in the SIEREM website (http://www.hydrosciences.fr/sierem) and a quick description of the basins is given in the Table 1. Due to data availability for some stations, the interannual study is performed before and after 1970, and the monthly study before and after 1972.

Table 1

Description of the Sahelian river basins studied.

Tableau 1 Description des bassins versants sahéliens étudiés.

Station River Main stream Country Surface km2
Alcongui Gorouol Niger Niger 42,444
Koriziena Gorouol Niger Burkina-Faso 2886
Dolbel Gorouol Niger Niger 7515
Tera Dargol Niger Niger 2750
Kakassi Dargol Niger Niger 7460
Garbe-Kourou Sirba Niger Niger 38,868
Diongore Goroubi Niger Niger 15,739
Wayen Nakambe Volta Burkina-Faso 20,241
Haar Niorde Senegal Mauritania 1550
Tourime Niorde Senegal Mauritania 480
Ghorfa Aval Ghorfa Senegal Mauritania 5020
Ouloumbome Ghorfa Senegal Mauritania 2500
Ouled Addet Ghorfa Senegal Mauritania 1125
Agueilat Gorgol Blanc Senegal Mauritania 8370
Gleita Tor Gorgol Blanc Senegal Mauritania 3770
Foum Gleita Gorgol Noir Senegal Mauritania 8950

3 Sahelian rainfall variability 1896–2006

The Sahel can be defined by several characteristics. The most commonly used is the amount of annual rainfall. Between May and October, with a rainfall maximum usually in August, annual rainfalls reach between 250 and 750 mm from the north to the south. The rainfall variability over West Africa and particularly over the Sahel is naturally high. The rainfall drought during the 1980s, relative to the 1950s, is about 10–15% over tropical humid Africa, and about 15–20% over the Sahel. Since the mid 1990s, the rainfall average over the region slightly increased to reach the level of 1970s rainfall. The interannual rainfall variability indeed increased since 1994, with more years above the mean, but with occurrences of several very dry years in a row (Fig. 2). Then the rainfall average during the 1990s and the 2000s is above the 1980's mean, but similar to the 1970's mean.

On Fig. 3, the four subregional Sahelian regions are displayed. The southwest region is the more humid and the northeast the driest. The interannual variability follows similar trends in each region but the variability is greater in the south than in the north. The variability is the same in all regions since the end of the 1960s and the beginning of the drought in 1970. The indexes follow identical trends in the Northwest and the Northeast Sahel, with rainfall most often lower in the east. On the other hand, the variability in the southeast is different from that in the southwest. In the southwest, annual rainfalls were each year greater than in the southeast until the mid-1970s. Since then, annual rainfalls are quite similar, and rarely greater in the southeast than in the southwest.

Fig. 3

Four Sahelian subregional rainfall indexes (1896–2006): North and South of 500 mm annual rainfall, East and West of Greenwich meridian.

Fig. 3. Quatre index de pluies sahéliennes sous-régionales (1896–2006): Nord et Sud de 500 mm de pluies annuelles ; et Est et Ouest du méridien de Greenwich.

Rainfall changes are more obvious when studying the variability around 1970 (Table 2). The rainfall decrease is similar in the northwest and the northeast, lower in the southwest, and much lower in the southeast (Table 2). Some rupture tests [24] show slightly different results according to the period used (Table 3). Considering the 1921–2006 period (due to lack of data for some stations before 1921), there are temporal breaks detected in times series for all subregions, except for the southeast with the Hubert test (segmentation test). Breaks are negative and detected in 1969 (northwest and northeast) or 1970 (southeast). The southwest varies differently with breaks occurring sooner, in 1966, or 1962 (Hubert), and with a positive break recorded in 1950, which lasts 11 years and is known as “Petit pluvial” in this part of Sahel. Considering the 1951–2006 period, the results vary more from one sub-region to another. Negative breaks are recorded for all regions, with very different results with Hubert's test in regard to both Pettitt and Lee and Heghinian tests. Only one positive break is recorded in 1994 for the southeast, which clearly points out this area as the least affected by the Sahel drought. For all the regions Pettit and Lee & Heghinian tests show a rupture between 1966 and 1970, while the Hubert test shows various years from 1959 to 1981. Both north sub-regions show two negative ruptures according to Hubert's test, in 1959, and during the 1970s. So the addition of the recent years induced no change in the segmentation test results published in the end of the 1990s [21].

Table 2

Rainfall statistics for the four Sahelian subregions, in millimeters.

Tableau 2 Statistiques des pluies pour les quatre sous-régions sahéliennes, en millimètres.

Sahel rainfall Northwest Northeast Southwest Southeast
Before 1970 374.0 334.0 967.0 689.0
Standard deviation 83.0 85.0 133.0 163.0
After 1970 272.0 246.0 799.0 671.0
Standard deviation 58.0 59.0 102.0 107.0
Rainfall ratio after/before 1970 0.73 0.74 0.83 0.97
Standard deviation ratio after/before 1970 0.70 0.69 0.77 0.65
Table 3

Years for which three detection tests find significant ruptures in times series of the four subregional indexes.

Tableau 3 Années de ruptures significatives dans les quatre séries chronologiques sous-régionales détectées selon trois tests.

Region Period Rupture test
Pettit Lee & Heghinian Hubert
Northwest 1921–2006 1969 1969 1970
1951–2006 1969 1969 1959 & 1971
Southwest 1921–2006 1966 1966 1950 & 1962
1951–2006 1967 1966 1962
Northeast 1921–2006 1969 1969 1970
1951–2006 1969 1967 1959 & 1977
Southeast 1921–2006 1970 1970 None
1951–2006 1970 1969 1981 & 1994

4 Relationship between rainfall deficit and recent changes in Sahelian hydrology

4.1 The counter-intuitive Sahelian paradox

Rainfall and runoff for hundreds of river basins have been studied in West Africa [25]. For nearly all basins, we observe a runoff reduction around 1970, except for Sahelian Rivers [28]. Figs. 4 and 5 show the runoff coefficient increase relative to the rainfall variability from 1970 both in the Central Sahel (Burkina-Faso and Niger, Fig. 4) and in the western Sahel (Mauritania, Fig. 5). Increasing runoff coefficient (runoff/rainfall ratio) means that the same rainfall produces more runoff now than before. It is also surprising to report that during the same period human consumption and dam storage capacity have increased over the Nakambe basin, from 55 million m3 in 1965 to 170 million m3 in 1994 [29]. This basin is located slightly north of the intersection between the four sub-Sahelian regions outlined previously.

Fig. 4

Standard deviation variability for rainfall (white dots) and runoff coefficient (black dots) for central Sahelian river basins of Burkina-Faso and Niger over the years 1955–1998 (bars: number of basins available per year, max = 7).

Fig. 4. Variabilité de l’écart centré-réduit de la pluie (ronds blancs) et du coefficient d’écoulement (points noirs) pour les rivières sahéliennes centrales du Burkina-Faso et du Niger pour les années 1955 à 1998 (barres : nombre de bassins disponibles par an, max = 7).

Fig. 5

Standard deviation variability for rainfall (white dots) and runoff coefficients (black dots) for western Sahelian river basins of Mauritania over the years 1959–1986 (bars: number of basins per year, max = 8).

Fig. 5. Variabilité de l’écart centré-réduit de la pluie (ronds blancs) et du coefficient d’écoulement (points noirs) pour les rivières sahéliennes occidentales de Mauritanie pour les années 1959 à 1986 (barres : nombre de bassins disponibles par an, max = 8).

4.2 The aridification process and its impact on hydrological regimes

Over the past 35 years, by natural equilibrium, vegetation and soil have adapted to the new climatic conditions, leading to more “arid” conditions in the Sahel. However, it is very difficult to separate natural causes from human causes, because there is no basin being protected from human impacts, which could be used for reference hydrological studies. Nevertheless, the Dargol River basin, at the boundary between Burkina-Faso and Niger and close to the Nakambe River (slightly northeast of it), only poorly inhabited, could serve as a reference for comparison with highly anthropogenized basins like the Nakambe River. The Dargol basin is located at the same latitude as the North of the Nakambe basin, in Burkina-Faso; they receive, respectively, 450 and 600 mm annual rainfall. The increase of the runoff coefficient for the Dargol River at the Tera station is only 37% against 108% for the Nakambe at the Wayen station [28].

Human impact on the Sahelian environment is increasing the speed of the land cover change. Humans need to “deforest” to increase agricultural surface production. In Sahel, this means that grasses, bushes and rare small trees are removed and burned. This has several impacts on the soil-vegetation relationships [3] and makes the soil top layer very sensitive to rainfall. An impermeable crust appears which is responsible for an increase of the surface runoff and a reduction of the water holding capacity [6–8,11,36]. It must be noted that in this area, runoff coefficients are very low (a few %), as almost all rainfall is evaporated. According to Casenave and Valentin [6,7], in the Sahel, the hydrological processes are mainly surface ones, with a negligible contribution of groundwater to the flood.

It was thought since Pouyaud [37] that this increase of runoff coefficients concerned only very small catchments, and this was once more observed recently by Favreau et al. [23] or Seguis et al. [38], but other studies have shown that this runoff increase was also observed at the outlet of larger river basins [11,28,29], with very high increase of the runoff coefficients in the most inhabited areas.

4.3 Temperatures and potential evaporation

The global increase of temperature observed over the earth surface since the last century is also supposed to affect the African continent. Such an increase would increase the potential evaporation (PE) and might reduce the surface runoff consequently. We present some results about PE variations since the 1950s.

Ould [32] studied monthly and annual PE for big river catchments in West Africa, calculated from CRU data (University of East Anglia, UK) [30], over the years 1920 to 1995. PE is related to temperature changes, but also to cloud cover, air humidity and wind changes. This study shows a significant and systematic increase by about 1 to 1.5% of the annual PE (Penman-Monteith and Thom and Oliver formulas, [2]) over great rivers like the Niger and Volta. Discontinuities within monthly time series of catchments’ PE have been detected by statistical tests (Pettitt and Hubert tests, [24,35]); they all show an increase of PE since mainly the late 1970s or the early 1980s, and mainly for the months of January, April, August and September. This is mainly due to the increase of the mean of daily temperature, which is slight over Africa, only 0.5 °C, but significant since the late 1970s [15]. The predicted increase of temperature and PE over the 21st century is likely to affect West Africa river regimes by reducing discharge for most of the rivers in tropical and equatorial humid West Africa. But for Sahelian rivers the impact of the land degradation up to now has been far more important on runoff than that of the temperature increase.

5 Discussion and conclusion

Updated rainfall up to 2006 show that the drought is still continuing in Sahel, even if the annual rainfall since the mid 1990s is close to that of the 1970s, after a period of very dry years in the 1980s and up to 1993. The rainfall variability is different from the West to the East and from the North to the South of the Sahel: the highest rainfall decrease has been recorded in the Northwest Sahel, and the lowest in the Southeast. This coincides with the spatial distribution of future rainfall variability predicted by GCM outputs.

Following the beginning of the lasting drought in the 1970s, the hydrological monthly regime of the Sahelian Rivers has changed. For river basins northward of the 750-mm annual isohyet, the increase of runoff coefficients go with flood peaks occurring one month sooner, in August, according to runoff data recorded in Mauritania, Burkina-Faso and Niger (Fig. 6). This is correlated with land use/cover change, which leads to a reduced infiltration in the soil top layer due to soil crusts at the soil top surface, increasing Hortonian runoff [10,19] and thus to the reduction of the water holding capacity [13]. Thus the Sahel drought has induced a hydrological change: for the same amount of rainfall, less water can infiltrate and more water runs overland due mostly to the land degradation induced by the land-use. The discharges are higher since the first rains of the season in May, June and July (Fig. 6); the August discharges are also higher for both western and central Sahel. The flood peak occurs sooner, in August rather than in September. In details, the river discharges within eastern Sahel (i.e. Burkina-Faso and Niger) are lower in September to November since 1970, which means that the rivers dry more rapidly than before 1970. For the western Sahel, the river discharges are higher only in September since 1970, and are quite similar for the rest of the year.

Fig. 6

Monthly discharges up to 1972 (white dots) and after 1972 (black dots), for central Sahel countries (Burkina-Faso and Niger) (left), and for Mauritania (right).

Fig. 6. Débits mensuels jusqu’en 1972 (points blancs) et après 1972 (points noirs), pour le Sahel central (Burkina-Faso et Niger) (à gauche) et pour la Mauritanie (à droite).

This Sahelian runoff increase observed over small and medium scale watersheds has also impacted the hydrological regime of the Niger River basin at Niamey (400 000 km2). Over the period 1923–1979, the flood peak coming from the Guinean and Malian upper basin (300 000 km2) had always been the highest one. Since 1980, a higher flood peak coming from the local Sahelian tributaries (100,000 km2) has been observed several times [1,28].

It is likely that the aridification of the environment – triggered by climatic change, especially rainfall shortage – is to an important extent, enhanced by human increasing agricultural activities, leading to desertification. From the very different evolution of the runoff coefficient over the two basins of Dargol and Nakambe, and the results over other basins [28], it can be hypothesized that the human impact is responsible for a higher increase of the runoff coefficient than what it could be in this Sahelian area considering the climate impact alone. Diello et al. [11] have shown that using a time varying WHC in hydrological modelling, instead of an average fixed value, increases the performances of the model. The performances of the model are even better if the land use/cover variation is linked to the demography variations, through a logistic population model.

All studies have also noted the increasing agricultural activity, correlated with deforestation and alteration of local soil properties, specifically infiltration. It is nevertheless very difficult to separate the human induced and climate induced variability in the observed hydrological changes of Sahelian basins [14,17]. There is a need to equip a set of experimental areas as control catchments (because this cannot be achieved on ‘basins’) to differentiate the impact of climate change from the impact of the land use/cover changes.

Acknowledgements

We acknowledge the National Hydrological and Meteorological Services of Mauritania, Burkina-Faso and Niger, for providing data, and thank IRD and the FRIEND-AOC program (UNESCO IHP) for funding and support, we also thank the reviewers and Dr Didier Orange for their great support for increasing the quality of the manuscript.


Bibliographie

[1] A. Amani, M. Nguetora, Evidence d’une modification du régime hydrologique du fleuve Niger à Niamey, In: H.A.J. van Laanen, S. Demuth (Eds.), FRIEND 2002 – Bridging the Gap between Research and Practice, IAHS Publ. 274, IAHS Press, Wallingford, UK, 2002, pp. 449–456.

[2] S. Ardoin-Bardin, A. Dezetter, E. Servat, G. Mahé, J.E. Paturel, C. Dieulin, L. Casenave, Évaluation des impacts du changement climatique sur les ressources en eau d’Afrique de l’Ouest et Centrale, in: S.W. Franks et al. (Eds), Regional Hydrological Impacts of Climatic Change—Hydroclimatic Variability, IAHS Publ. 296, IAHS Press, Wallingford, UK, 2005, pp. 194–202.

[3] N. Boulain; B. Cappelaere; L. Seguis; J. Gignoux; C. Peugeot Hydrologic and land use impacts on vegetation growth and NPP at the watershed scale in a semi-arid environment, Region. Environ. Change, Volume 6 (2006), pp. 147-156

[4] J.P. Bricquet; F. Bamba; G. Mahé; M. Toure; J.C. Olivry Evolution récente des ressources en eau de l’Afrique atlantique, Rev. Sci. Eau, Volume 3 (1997), pp. 321-337

[5] J.P. Carbonnel; P. Hubert; A. Chaouche Sur l’évolution séquentielle de la pluviométrie en Afrique de l’Ouest depuis le début du siècle, C. R. Acad. Sci. Paris, Ser. IIa, Volume 305 (1987), pp. 625-628

[6] A. Cazenave, C. Valentin, Les états de surface de la zone sahélienne, IRD-Orstom, Coll. Didactiques, Paris, France, 1989.

[7] A. Cazenave; C. Valentin A runoff capability classification system based on surface features criteria in semi-arid areas of West Africa, J. Hydrol., Volume 130 (1992), pp. 231-249

[8] J.M. D’Herbes; C. Valentin Land surface conditions of the Niamey region (Niger) : ecological and hydrological implications, J. Hydrol., Volume 188–189 (1997), pp. 18-42

[9] A.G. Dai; P.J. Lamb; K.E. Trenberth; M. Hulme; P. Jones; P. Xie The recent Sahel drought is real, Int. J. Climatol., Volume 24 (2004), pp. 1323-1331

[10] L. Descroix; D. Viramontes; J. Estrada; J.L.G. Barrios; J. Asseline Investigating the spatial and temporal boundaries of Hortonian and Hewlettian runoff in northern Mexico, J. Hydrol., Volume 346 (2007), pp. 144-158

[11] P. Diello; J.E. Paturel; G. Mahé; B. Barbier; H. Karambiri; E. Servat Méthodologie et application d’une démarche de modélisation hydrologique prenant en compte l’évolution des états de surface en milieu sahélien d’Afrique de l’Ouest, IAHS publ., Volume 308 (2006), pp. 691-697

[12] G. Favreau; C. Leduc; C. Marlin; A. Guero Une dépression piézométrique naturelle en hausse au Sahel (Sud-Ouest du Niger), C. R. Geoscience, Volume 334 (2002), pp. 395-401

[13] J. Fournier; G. Serpantie; J.P. Delhoume; R. Gathelier Rôle des jachères sur les écoulements de surface et l’érosion en zone soudanienne du Burkina: application à la gestion des terres cultivées, Sud Sci. Technol. (EIER-ETSHER Ed.), Volume 5 (2000), pp. 4-14

[14] M. Hulme Climatic perspectives on Sahelian desiccation: 1973–1998, Glob. Environ. Change Hum. Policy Dimens., Volume 11 (2001), pp. 19-29

[15] M. Hulme; R. Doherty; T. Ngara; M. New; D. Lister African climate change: 1900–2100, Clim. Res., Special Issue, Volume 17 (2001), pp. 145-168

[16] M. Hulme; R. Doherty; T. Ngara Global warming and African climate change: a re-assessment (P.S. Low, ed.), Climate Change and Africa, Cambridge University Press, Cambridge, UK, 2005, pp. 29-40

[17] IPCC, Intergovernmetnal Panel on Climate Change, Third assessment report, WMO, UNEP, 2003.

[18] S. Janicot Spatiotemporal variability of West African Rainfall. Part I: Regionalization and typings, J. Climate, Volume 5 (1992), pp. 489-497

[19] H. Karambiri; O. Ribolzi; J.P. Delhoume; J. Ducloux; A. Coudrain-Ribstein; A. Casenave Importance of soil surface characteristics on water erosion in a small grazed Sahelian catchment, Hydrol. Process., Volume 17 (2003) no. 8, pp. 1495-1507

[20] Y. L’Hôte, G. Mahé, Afrique de l’Ouest et centrale, Précipitations moyennes annuelles (période 1951–1989). Échelle 1/6 000 000e, Collection des cartes ORSTOM, ORSTOM Ed., 1996.

[21] Y. L’Hôte; G. Mahé; B. Some; J.P. Triboulet Analysis of a Sahelian annual rainfall index updated from 1896 to 2000; the drought still goes on, Hydrol. Sci. J., Volume 47 (2002), pp. 563-572

[22] Y. L’Hôte; G. Mahé; B. Some The 1990s rainfall in the Sahel: the third driest decade since the beginning of the century, Reply to discussion, Hydrol. Sci. J., Volume 48 (2003), pp. 493-496

[23] C. Leduc; G. Favreau; P. Schroeter Long-term rise in a Sahelian water-table: the Continental Terminal in South-West Niger, J. Hydrol., Volume 243 (2001), pp. 43-54

[24] H. Lubes-Niel; J.M. Masson; J.E. Paturel; E. Servat Variabilité climatique et statistiques. Etude par simulation de la puissance et de la robustesse de quelques tests utilisés pour vérifier l’homogénéité de chroniques, Rev. Sci. Eau, Volume 11 (1998), p. 3

[25] G. Mahé; J.C. Olivry Assessment of freshwater yields to the ocean along the intertropical Atlantic coast of Africa, C. R. Acad. Sci. Paris, Ser. IIa, Volume 328 (1999), pp. 621-626

[26] G. Mahé; J.C. Olivry; R. Dessouassi; D. Orange; F. Bamba; E. Servat Relations eaux de surface – eaux souterraines d’une rivière tropicale au Mali, C. R. Acad. Sci. Paris, Ser. IIa, Volume 330 (2000), pp. 689-692

[27] G. Mahé; Y. L’Hôte; J.C. Olivry; G. Wotling Trends and discontinuities in regional rainfall of West and central Africa, 1951–1989, Hydrol. Sci. J., Volume 46 (2001), pp. 211-226

[28] G. Mahé; C. Leduc; A. Amani; J.E. Paturel; S. Girard; E. Servat; A. Dezetter Augmentation récente du ruissellement de surface en région soudano-sahélienne et impact sur les ressources en eau, IAHS Pub., Volume 278 (2003), pp. 215-222

[29] G. Mahé; J.E. Paturel; E. Servat; D. Conway; A. Dezetter Impact of land use change on soil water holding capacity and river modelling of the Nakambe River in Burkina-Faso, J. Hydrol., Volume 300 (2005), pp. 33-43

[30] M.G. New; M. Hulme; P.D. Jones Representing 20th century space–time climate variability. II: Development of 1901-1996 monthly terrestrial climate fields, J. Clim., Volume 13 (2000), pp. 2217-2238

[31] S.E. Nicholson Sub-Saharan rainfall in the years 1976-1980: evidence of continued drought, Mon. Weath. Rev., Volume 111 (1983), pp. 1646-1654

[32] M. Ould, Détermination de ruptures statistiques dans les séries chronologiques des paramètres météorologiques – application aux bassins des Voltas et du Niger, Mémoire d’ingénieur, groupe EIER-ETSHER, Ouagadougou, Burkina-Faso, 2001.

[33] J.E. Paturel; E. Servat; B. Kouame; H. Lubes; M. Ouedraogo; J.M. Masson Climatic variability in humid Africa along the Gulf of Guinea. Part two: An integrated regional approach, J. Hydrol., Volume 191 (1997), pp. 16-36

[34] J.E. Paturel; E. Servat; H. Lubes-Niel; M.O. Delattre Variabilité climatique et analyse de séries pluviométriques de longue durée en Afrique de l’Ouest et centrale non sahélienne, C.R. Acad. Sci. Paris, Ser. IIa, Volume 325 (1997), pp. 779-782

[35] J.E. Paturel; E. Servat; M.O. Delattre; H. Lubès-Niel Analyse de séries pluviométriques de longue durée en Afrique de l’Ouest et centrale non sahélienne dans un contexte de variabilité climatique, Hydrol. Sci. J., Volume 43 (1998), pp. 937-946

[36] C. Peugeot; M. Esteves; J.L. Rajot; J.P. Vandervaere; S. Galle Runoff generation processes: results and analysis of field data collected at the East central supersite of the Hapex-Sahel experiment, J. Hydrol., Volume 188–189 (1997), pp. 181-204

[37] B. Pouyaud, Variabilité spatiale et temporelle des bilans hydriques de quelques bassins versants d’Afrique de l’Ouest en liaison avec les changements climatiques, in: S.I. Solomon et al. (Eds), The Influence of Climate Change and Climate Variability on the Hydrologic Regime and Water Resources, IAHS Publ. 168. IAHS Press, Wallingford, UK, 1987, pp. 447–461.

[38] L. Séguis; B. Cappelaere; G. Milési; C. Peugeot; S. Massuel; G. Favreau Simulated impacts of climate change and land-clearing on runoff from a small Sahelian catchment, Hydrol. Process., Volume 18 (2004), pp. 3401-3413


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  • Shereif H. Mahmoud; Thian Y. Gan Impact of anthropogenic climate change and human activities on environment and ecosystem services in arid regions, Science of The Total Environment, Volume 633 (2018), p. 1329 | DOI:10.1016/j.scitotenv.2018.03.290
  • Bahari Ibrahim Mahamadou; Ibrahim Bouzou Moussa; Oumarou Faran Maiga Évolution des caractéristiques pluviométriques et recrudescence des inondations dans les localités riveraines du fleuve Niger, VertigO (2018) | DOI:10.4000/vertigo.19891
  • Luc Descroix; Françoise Guichard; Manuela Grippa; Laurent A. Lambert; Gérémy Panthou; Gil Mahé; Laetitia Gal; Cécile Dardel; Guillaume Quantin; Laurent Kergoat; Yasmin Bouaïta; Pierre Hiernaux; Théo Vischel; Thierry Pellarin; Bakary Faty; Catherine Wilcox; Moussa Malam Abdou; Ibrahim Mamadou; Jean-Pierre Vandervaere; Aïda Diongue-Niang; Ousmane Ndiaye; Youssouph Sané; Honoré Dacosta; Marielle Gosset; Claire Cassé; Benjamin Sultan; Aliou Barry; Okechukwu Amogu; Bernadette Nka Nnomo; Alseny Barry; Jean-Emmanuel Paturel Evolution of Surface Hydrology in the Sahelo-Sudanian Strip: An Updated Review, Water, Volume 10 (2018) no. 6, p. 748 | DOI:10.3390/w10060748
  • Kwadwo Owusu Rainfall changes in the savannah zone of northern Ghana 1961–2010, Weather, Volume 73 (2018) no. 2, p. 46 | DOI:10.1002/wea.2999
  • Roger N. Jones; James H. Ricketts Reconciling the signal and noise of atmospheric warming on decadal timescales, Earth System Dynamics, Volume 8 (2017) no. 1, p. 177 | DOI:10.5194/esd-8-177-2017
  • Issa Sakho; Jean-Paul Dupont; Mohamed Talla Cisse; Sanae El Janyani; Soda Loum Hydrological responses to rainfall variability and dam construction: a case study of the upper Senegal River basin, Environmental Earth Sciences, Volume 76 (2017) no. 6 | DOI:10.1007/s12665-017-6570-4
  • Jafet C.M. Andersson; Berit Arheimer; Farid Traoré; David Gustafsson; Abdou Ali Process refinements improve a hydrological model concept applied to the Niger River basin, Hydrological Processes, Volume 31 (2017) no. 25, p. 4540 | DOI:10.1002/hyp.11376
  • Jean Emmanuel Paturel; Gil Mahé; Pierre Diello; Bruno Barbier; Alain Dezetter; Claudine Dieulin; Harouna Karambiri; Hamma Yacouba; Amadou Maiga Using land cover changes and demographic data to improve hydrological modeling in the Sahel, Hydrological Processes, Volume 31 (2017) no. 4, p. 811 | DOI:10.1002/hyp.11057
  • Aïda Zaré; Gil Mahé; Jean-Emmanuel Paturel; Bruno Barbier Influence du Bani sur la variabilité saisonnière et interannuelle de la crue du fleuve Niger dans le delta intérieur au Mali, Hydrological Sciences Journal, Volume 62 (2017) no. 16, p. 2737 | DOI:10.1080/02626667.2016.1148816
  • Ezéchiel Obada; Eric Alamou; Josué Zandagba; Amédée Chabi; Abel Afouda Change in Future Rainfall Characteristics in the Mekrou Catchment (Benin), from an Ensemble of 3 RCMs (MPI-REMO, DMI-HIRHAM5 and SMHI-RCA4), Hydrology, Volume 4 (2017) no. 1, p. 14 | DOI:10.3390/hydrology4010014
  • Salomon Obahoundje; Eric Ofosu; Komlavi Akpoti; Amos Kabo-bah Land Use and Land Cover Changes under Climate Uncertainty: Modelling the Impacts on Hydropower Production in Western Africa, Hydrology, Volume 4 (2017) no. 1, p. 2 | DOI:10.3390/hydrology4010002
  • Laetitia Gal; Manuela Grippa; Pierre Hiernaux; Léa Pons; Laurent Kergoat The paradoxical evolution of runoff in the pastoral Sahel: analysis of the hydrological changes over the Agoufou watershed (Mali) using the KINEROS-2 model, Hydrology and Earth System Sciences, Volume 21 (2017) no. 9, p. 4591 | DOI:10.5194/hess-21-4591-2017
  • E. Nkiaka; N. R. Nawaz; J. C. Lovett Analysis of rainfall variability in the Logone catchment, Lake Chad basin, International Journal of Climatology, Volume 37 (2017) no. 9, p. 3553 | DOI:10.1002/joc.4936
  • S. A. Andam‐Akorful; V. G. Ferreira; C. E. Ndehedehe; J. A. Quaye‐Ballard An investigation into the freshwater variability in West Africa during 1979‐2010, International Journal of Climatology, Volume 37 (2017) no. S1, p. 333 | DOI:10.1002/joc.5006
  • Hèou Maléki Badjana; Benjamin Renard; Jörg Helmschrot; Kodjovi Sidéra Edjamé; Abel Afouda; Kpérkouma Wala Bayesian trend analysis in annual rainfall total, duration and maximum in the Kara River basin (West Africa), Journal of Hydrology: Regional Studies, Volume 13 (2017), p. 255 | DOI:10.1016/j.ejrh.2017.08.009
  • Jafet C.M. Andersson; Abdou Ali; Berit Arheimer; David Gustafsson; Bernard Minoungou Providing peak river flow statistics and forecasting in the Niger River basin, Physics and Chemistry of the Earth, Parts A/B/C, Volume 100 (2017), p. 3 | DOI:10.1016/j.pce.2017.02.010
  • Luc Descroix; Gil Mahé; Jean-claude Olivry; Jean Albergel; Bachir Tanimoun; Ilia Amadou; Brehima Coulibaly; Ibrahim Bouzou Moussa; Oumarou Faran Maiga; Moussa Malam Abdou; Kadidiatou Souley Yéro; Ibrahim Mamadou; Jean-pierre Vandervaere; Emmanuèle Gautier; Aida Diongue-Niang; Honoré Dacosta; Arona Diedhiou Chapter 7. Anthropic and environmental factors involved in the increase in flooding in the Sahel, Rural societies in the face of climatic and environmental changes in West Africa (2017), p. 145 | DOI:10.4000/books.irdeditions.12343
  • Théo Vischel; Thierry Lebel; Gérémy Panthou; Guillaume Quantin; Aurélien Rossi; Maxime Martinet Chapter 2. The return of a wet period in the Sahel?, Rural societies in the face of climatic and environmental changes in West Africa (2017), p. 43 | DOI:10.4000/books.irdeditions.12322
  • S. Taibi; M. Meddi; G. Mahé; A. Assani Relationships between atmospheric circulation indices and rainfall in Northern Algeria and comparison of observed and RCM-generated rainfall, Theoretical and Applied Climatology, Volume 127 (2017) no. 1-2, p. 241 | DOI:10.1007/s00704-015-1626-4
  • Mouhamadou Bamba Sylla; Pinghouinde Michel Nikiema; Peter Gibba; Ibourahima Kebe; Nana Ama Browne Klutse Climate Change over West Africa: Recent Trends and Future Projections, Adaptation to Climate Change and Variability in Rural West Africa (2016), p. 25 | DOI:10.1007/978-3-319-31499-0_3
  • Zineb Zamrane; Imen Turki; Benoit Laignel; Gil Mahé; Nour-Eddine Laftouhi Characterization of the Interannual Variability of Precipitation and Streamflow in Tensift and Ksob Basins (Morocco) and Links with the NAO, Atmosphere, Volume 7 (2016) no. 6, p. 84 | DOI:10.3390/atmos7060084
  • F.D. Ngom; S. Tweed; J.-C. Bader; J.-L. Saos; R. Malou; C. Leduc; M. Leblanc Rapid evolution of water resources in the Senegal delta, Global and Planetary Change, Volume 144 (2016), p. 34 | DOI:10.1016/j.gloplacha.2016.07.002
  • Moussa Malam-Abdou; Jean-Pierre Vandervaere; Ibrahim Bouzou-Moussa; Luc Descroix; Ibrahim Mamadou; Oumarou Faran-Maiga Genèse des écoulements sur deux petits bassins versants cristallins de l’Ouest du Niger : approche multi-échelles du fonctionnement hydrodynamique, Géomorphologie : relief, processus, environnement, Volume 22 (2016) no. 4, p. 363 | DOI:10.4000/geomorphologie.11537
  • A. Bodian; O. Ndiaye; H. Dacosta Evolution des caractéristiques des pluies journalières dans le bassin versant du fleuve Sénégal: Aavant et après rupture, Hydrological Sciences Journal (2016), p. 1 | DOI:10.1080/02626667.2014.950584
  • Ansoumana Bodian; Alain Dezetter; Abdoulaye Deme; Lamine Diop Hydrological Evaluation of TRMM Rainfall over the Upper Senegal River Basin, Hydrology, Volume 3 (2016) no. 2, p. 15 | DOI:10.3390/hydrology3020015
  • Mohammed Achite; Sylvain Ouillon Recent changes in climate, hydrology and sediment load in the Wadi Abd, Algeria (1970–2010), Hydrology and Earth System Sciences, Volume 20 (2016) no. 4, p. 1355 | DOI:10.5194/hess-20-1355-2016
  • Claire Casse; Marielle Gosset; Théo Vischel; Guillaume Quantin; Bachir Alkali Tanimoun Model-based study of the role of rainfall and land use–land cover in the changes in the occurrence and intensity of Niger red floods in Niamey between 1953 and 2012, Hydrology and Earth System Sciences, Volume 20 (2016) no. 7, p. 2841 | DOI:10.5194/hess-20-2841-2016
  • L. Gal; M. Grippa; P. Hiernaux; C. Peugeot; E. Mougin; L. Kergoat Changes in lakes water volume and runoff over ungauged Sahelian watersheds, Journal of Hydrology, Volume 540 (2016), p. 1176 | DOI:10.1016/j.jhydrol.2016.07.035
  • S. Louvet; J. E. Paturel; G. Mahé; N. Rouché; M. Koité Comparison of the spatiotemporal variability of rainfall from four different interpolation methods and impact on the result of GR2M hydrological modeling—case of Bani River in Mali, West Africa, Theoretical and Applied Climatology, Volume 123 (2016) no. 1-2, p. 303 | DOI:10.1007/s00704-014-1357-y
  • Valentin Aich; Bakary Koné; Fred Hattermann; Eva Paton Time Series Analysis of Floods across the Niger River Basin, Water, Volume 8 (2016) no. 4, p. 165 | DOI:10.3390/w8040165
  • C. Casse; M. Gosset; C. Peugeot; V. Pedinotti; A. Boone; B.A. Tanimoun; B. Decharme Potential of satellite rainfall products to predict Niger River flood events in Niamey, Atmospheric Research, Volume 163 (2015), p. 162 | DOI:10.1016/j.atmosres.2015.01.010
  • Ibrahim Mamadou; Emmanuèle Gautier; Luc Descroix; Ibrahim Noma; Ibrahim Bouzou Moussa; Oumarou Faran Maiga; Pierre Genthon; Okechukwu Amogu; Moussa Malam Abdou; Jean-Pierre Vandervaere Exorheism growth as an explanation of increasing flooding in the Sahel, CATENA, Volume 131 (2015), p. 130 | DOI:10.1016/j.catena.2015.03.017
  • Boubacar Ibrahim; Harouna Karambiri; Jan Polcher Hydrological Impacts of the Changes in Simulated Rainfall Fields on Nakanbe Basin in Burkina Faso, Climate, Volume 3 (2015) no. 3, p. 442 | DOI:10.3390/cli3030442
  • P. Genthon; B. Hector; A. Luxereau; M. Descloitres; H. Abdou; J. Hinderer; M. Bakalowicz Groundwater recharge by Sahelian rivers—consequences for agricultural development: example from the lower Komadugu Yobe River (Eastern Niger, Lake Chad Basin), Environmental Earth Sciences, Volume 74 (2015) no. 2, p. 1291 | DOI:10.1007/s12665-015-4119-y
  • Ibidun Adelekan Integrated Global Change Research in West Africa: Flood Vulnerability Studies, Global Sustainability (2015), p. 163 | DOI:10.1007/978-3-319-16477-9_9
  • O. Amogu; M. Esteves; J-P. Vandervaere; M. Malam Abdou; G. Panthou; J-L. Rajot; K. Souley Yéro; S. Boubkraoui; J.-M. Lapetite; N. Dessay; I. Zin; A. Bachir; I. Bouzou Moussa; O. Faran Maïga; E. Gautier; I. Mamadou; L. Descroix Runoff evolution due to land-use change in a small Sahelian catchment, Hydrological Sciences Journal, Volume 60 (2015) no. 1, p. 78 | DOI:10.1080/02626667.2014.885654
  • B. N. Nka; L. Oudin; H. Karambiri; J. E. Paturel; P. Ribstein Trends in floods in West Africa: analysis based on 11 catchments in the region, Hydrology and Earth System Sciences, Volume 19 (2015) no. 11, p. 4707 | DOI:10.5194/hess-19-4707-2015
  • Luc Descroix; Gil Mahé; Jean-claude Olivry; Jean Albergel; Bachir Tanimoun; Ilia Amadou; Brehima Coulibaly; Ibrahim Bouzou Moussa; Oumarou Faran Maiga; Moussa Malam Abdou; Kadidiatou Souley Yéro; Ibrahim Mamadou; Jean-pierre Vandervaere; Emmanuèle Gautier; Aida Diongue-Niang; Honoré Dacosta; Arona Diedhiou Chapitre 7. Facteurs anthropiques et environnementaux de la recrudescence des inondations au Sahel, Les sociétés rurales face aux changements climatiques et environnementaux en Afrique de l’Ouest (2015), p. 153 | DOI:10.4000/books.irdeditions.9080
  • Théo Vischel; Thierry Lebel; Gérémy Panthou; Guillaume Quantin; Aurélien Rossi; Maxime Martinet Chapitre 2. Le retour d’une période humide au Sahel ?, Les sociétés rurales face aux changements climatiques et environnementaux en Afrique de l’Ouest (2015), p. 43 | DOI:10.4000/books.irdeditions.8937
  • C. Casse; M. Gosset Analysis of hydrological changes and flood increase in Niamey based on the PERSIANN-CDR satellite rainfall estimate and hydrological simulations over the 1983–2013 period, Proceedings of the International Association of Hydrological Sciences, Volume 370 (2015), p. 117 | DOI:10.5194/piahs-370-117-2015
  • Jasmien C.J. Wildemeersch; Maman Garba; Mahamane Sabiou; Dougbedji Fatondji; Wim M. Cornelis Agricultural drought trends and mitigation in Tillaberí, Niger, Soil Science and Plant Nutrition, Volume 61 (2015) no. 3, p. 414 | DOI:10.1080/00380768.2014.999642
  • Basile Hector; Luc Séguis; Jacques Hinderer; Jean‐Martial Cohard; Maxime Wubda; Marc Descloitres; Nathalie Benarrosh; Jean‐Paul Boy Water storage changes as a marker for base flow generation processes in a tropical humid basement catchment (Benin): Insights from hybrid gravimetry, Water Resources Research, Volume 51 (2015) no. 10, p. 8331 | DOI:10.1002/2014wr015773
  • Theophile Mande; Natalie C. Ceperley; Gabriel G. Katul; Scott W. Tyler; Hamma Yacouba; Marc B. Parlange Suppressed convective rainfall by agricultural expansion in southeastern Burkina Faso, Water Resources Research, Volume 51 (2015) no. 7, p. 5521 | DOI:10.1002/2015wr017144
  • Boubacar Ibrahim; Harouna Karambiri; Jan Polcher; Hamma Yacouba; Pierre Ribstein Changes in rainfall regime over Burkina Faso under the climate change conditions simulated by 5 regional climate models, Climate Dynamics, Volume 42 (2014) no. 5-6, p. 1363 | DOI:10.1007/s00382-013-1837-2
  • John F. Hermance Introduction, Historical Variability of Rainfall in the African East Sahel of Sudan (2014), p. 1 | DOI:10.1007/978-3-319-00575-1_1
  • Cécile Dardel; Laurent Kergoat; Pierre Hiernaux; Manuela Grippa; Eric Mougin; Philippe Ciais; Cam-Chi Nguyen Rain-Use-Efficiency: What it Tells us about the Conflicting Sahel Greening and Sahelian Paradox, Remote Sensing, Volume 6 (2014) no. 4, p. 3446 | DOI:10.3390/rs6043446
  • Mohamed Talla Cisse; Soussou Sambou; Yaya Dieme; Clément Diatta; Mamadou Bop Analyse des écoulements dans le bassin du fleuve Sénégal de 1960 à 2008, Revue des sciences de l’eau, Volume 27 (2014) no. 2, p. 167 | DOI:10.7202/1025566ar
  • Coura Kane; Alioune Kane; Joël Humbert Management of a Tropical River: Impacts on the Resilience of the Senegal River Estuary, The Land/Ocean Interactions in the Coastal Zone of West and Central Africa (2014), p. 41 | DOI:10.1007/978-3-319-06388-1_4
  • Erhui Li; Xingmin Mu; Guangju Zhao; Peng Gao; Hongbo Shao Variation of Runoff and Precipitation in the Hekou-Longmen Region of the Yellow River Based on Elasticity Analysis, The Scientific World Journal, Volume 2014 (2014), p. 1 | DOI:10.1155/2014/929858
  • Luc Descroix; Aïda Diongue Niang; Honoré Dacosta; Gérémy Panthou; Guillaume Quantin; Arona Diedhiou Évolution des pluies de cumul élevé et recrudescence des crues depuis 1951 dans le bassin du Niger moyen (Sahel), Climatologie, Volume 10 (2013), p. 37 | DOI:10.4267/climatologie.78
  • Gabriel Ménard Environmental non-governmental organizations: key players in development in a changing climate—a case study of Mali, Environment, Development and Sustainability, Volume 15 (2013) no. 1, p. 117 | DOI:10.1007/s10668-012-9378-0
  • G. Mahe; G. Lienou; L. Descroix; F. Bamba; J. E. Paturel; A. Laraque; M. Meddi; H. Habaieb; O. Adeaga; C. Dieulin; F. Chahnez Kotti; K. Khomsi The rivers of Africa: witness of climate change and human impact on the environment, Hydrological Processes, Volume 27 (2013) no. 15, p. 2105 | DOI:10.1002/hyp.9813
  • Sharon E. Nicholson The West African Sahel: A Review of Recent Studies on the Rainfall Regime and Its Interannual Variability, ISRN Meteorology, Volume 2013 (2013), p. 1 | DOI:10.1155/2013/453521
  • Coura Kane; Joël Humbert; Alioune Kane Responding to climate variability: the opening of an artificial mouth on the Senegal River, Regional Environmental Change, Volume 13 (2013) no. 1, p. 125 | DOI:10.1007/s10113-012-0321-6
  • Xiuli Sang; Jianxin Xu; Kun Zhang; Hua Wang Analysis and Modeling of Time-Correlated Characteristics of Rainfall-Runoff Similarity in the Upstream Red River Basin, Advances in Meteorology, Volume 2012 (2012), p. 1 | DOI:10.1155/2012/579764
  • Natasha Grist; Chinwe Ifejika Speranza Climate Change and African Development, Africa Toward 2030 (2012), p. 105 | DOI:10.1057/9780230362154_5
  • Xingmin Mu; Ying Li; Peng Gao; Hongbo Shao; Fei Wang The Runoff Declining Process and Water Quality in Songhuajiang River Catchment, China under Global Climatic Change, CLEAN – Soil, Air, Water, Volume 40 (2012) no. 4, p. 394 | DOI:10.1002/clen.201100212
  • B. Ibrahim; J. Polcher; H. Karambiri; B. Rockel Characterization of the rainy season in Burkina Faso and it’s representation by regional climate models, Climate Dynamics, Volume 39 (2012) no. 6, p. 1287 | DOI:10.1007/s00382-011-1276-x
  • Luc Descroix; Pierre Genthon; Okechukwu Amogu; Jean-Louis Rajot; Daniel Sighomnou; Michel Vauclin Change in Sahelian Rivers hydrograph: The case of recent red floods of the Niger River in the Niamey region, Global and Planetary Change, Volume 98-99 (2012), p. 18 | DOI:10.1016/j.gloplacha.2012.07.009
  • Luc Ferry; Michel Mietton; Nadine Muther; Didier Martin; N’Tjie Coulibaly; Myriam Laval; François-Xavier Basselot; Youma Cissé Coulibaly; Mathilde Collerie; Kevin de la Croix; Jean-Claude Olivry Extraction de sables et tendance à l'incision du Niger supérieur (Mali), Géomorphologie : relief, processus, environnement, Volume 18 (2012) no. 3, p. 351 | DOI:10.4000/geomorphologie.9966
  • Anne Luxereau; Pierre Genthon; Jean-Marie Ambouta Karimou Fluctuations in the size of Lake Chad: consequences on the livelihoods of the riverain peoples in eastern Niger, Regional Environmental Change, Volume 12 (2012) no. 3, p. 507 | DOI:10.1007/s10113-011-0267-0
  • H. Karambiri; S. G. García Galiano; J. D. Giraldo; H. Yacouba; B. Ibrahim; B. Barbier; J. Polcher Assessing the impact of climate variability and climate change on runoff in West Africa: the case of Senegal and Nakambe River basins, Atmospheric Science Letters, Volume 12 (2011) no. 1, p. 109 | DOI:10.1002/asl.317
  • L. Séguis; N. Boulain; B. Cappelaere; J.M. Cohard; G. Favreau; S. Galle; A. Guyot; P. Hiernaux; É. Mougin; C. Peugeot; D. Ramier; J. Seghieri; F. Timouk; V. Demarez; J. Demarty; L. Descroix; M. Descloitres; M. Grippa; F. Guichard; B. Kamagaté; L. Kergoat; T. Lebel; V. Le Dantec; M. Le Lay; S. Massuel; V. Trichon Contrasted land‐surface processes along the West African rainfall gradient, Atmospheric Science Letters, Volume 12 (2011) no. 1, p. 31 | DOI:10.1002/asl.327
  • Chris M. Henry; Diana M. Allen; Jianliang Huang Groundwater storage variability and annual recharge using well-hydrograph and GRACE satellite data, Hydrogeology Journal, Volume 19 (2011) no. 4, p. 741 | DOI:10.1007/s10040-011-0724-3
  • Jun-hui Liu; Ji-xi Gao; Shi-Hai Lv; Yong-wei Han; Yi-huang Nie Shifting farming–pastoral ecotone in China under climate and land use changes, Journal of Arid Environments, Volume 75 (2011) no. 3, p. 298 | DOI:10.1016/j.jaridenv.2010.10.010
  • L. Séguis; B. Kamagaté; G. Favreau; M. Descloitres; J.-L. Seidel; S. Galle; C. Peugeot; M. Gosset; L. Le Barbé; F. Malinur; S. Van Exter; M. Arjounin; S. Boubkraoui; M. Wubda Origins of streamflow in a crystalline basement catchment in a sub-humid Sudanian zone: The Donga basin (Benin, West Africa), Journal of Hydrology, Volume 402 (2011) no. 1-2, p. 1 | DOI:10.1016/j.jhydrol.2011.01.054
  • Mark Mulligan; L.L. Saenz Cruz; J. Pena-Arancibia; B. Pandey; Gil Mahé; Myles Fisher Water availability and use across the Challenge Program on Water and Food (CPWF) basins, Water International, Volume 36 (2011) no. 1, p. 17 | DOI:10.1080/02508060.2011.543801
  • Mark Mulligan; Myles Fisher; Bharat Sharma; Z.X. Xu; Claudia Ringler; Gil Mahé; Andy Jarvis; Julian Ramírez; Jean-Charles Clanet; Andrew Ogilvie; Mobin-ud-Din Ahmad The nature and impact of climate change in the Challenge Program on Water and Food (CPWF) basins, Water International, Volume 36 (2011) no. 1, p. 96 | DOI:10.1080/02508060.2011.543408
  • Okechukwu Amogu; Luc Descroix; Kadidiatou Souley Yéro; Eric Le Breton; Ibrahim Mamadou; Abdou Ali; Théo Vischel; Jean-Claude Bader; Ibrahim Bouzou Moussa; Emmanuèle Gautier; Stéphane Boubkraoui; Philippe Belleudy Increasing River Flows in the Sahel?, Water, Volume 2 (2010) no. 2, p. 170 | DOI:10.3390/w2020170
  • Andrew Ogilvie; Gil Mahé; John Ward; Georges Serpantié; Jacques Lemoalle; Pierre Morand; Bruno Barbier; Amadou Tamsir Diop; Armelle Caron; Regassa Namarra; David Kaczan; Anna Lukasiewicz; Jean-Emmanuel Paturel; Gaston Liénou; Jean Charles Clanet Water, agriculture and poverty in the Niger River basin, Water International, Volume 35 (2010) no. 5, p. 594 | DOI:10.1080/02508060.2010.515545

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