Monday, September 16, 2013

APPLICATION OF SURFER 7 IN WATER RESOURCE MANAGEMENT IN MICROWATERSHED, A CASE STUDY IN CHAGALKUTA WATERSHED OF BANKURA DISTRICT, INDIA


INTRODUCTION

                Selection of sites for irrigation wells in micro watersheds in an undulated terrain is some times difficult due to want of proper understanding of the hydrological environments of the area. In a watershed the correct location of ground water harvesting structure is the area where the main hydrological phenomenon is natural exfiltration of ground water into the surface. The delineation of the zone of infiltration and zone of exfiltration in a watershed is the fundamental activity to be considered before site selection of any groundwater structure. Naturally in a watershed, a line called the spring line, which is defined by the natural spring points, separates these two zones. But due to current land use practices in a well-managed watershed the spring points sometimes are not very apparent in the field. In such it becomes very difficult to locate the spring line as well as to demarcate the recharge and discharge zone.
                The field area has been selected in a micro watershed named Chagalkuta watershed (2309’49” to 23014’30” N and 860 51’ to 86 55’ E) in the Chhatna and Indpur Block of Bankura district. The area of the watershed is about 68  Sq.Km. and covers about    29   revenue villages.
The area is basically a monocrop area depending upon rain fed irrigation. Groundwater is exploited through small diameter (> 1 m ) open wells for domestic purpose only. The existing wells often go dry during the peak summer. Due to population growth crop production has to be increased by application of irrigation from groundwater in the lower reaches. To have efficient irrigation suitable site selection is necessary. 
In this paper firstly an attempt has been made to define the spring line as well as the recharge and discharge zone in a watershed with the help of simple G.I.S. technique of contour crossing or by overlay of different contour maps. The fundamental concept is that a spring occurs at a point where the groundwater contour intersects the surface contour.
                Secondly, for pinpointing the location of prospective water harvesting structures like irrigation dug wells Surfer Vector map of the watershed has been analysed.
And, thirdly, SWAT model is applied to estimate the impact of groundwater development for irrigation on the hydrological environment of the area. It is assumed that the watershed boundary is a hydrological entity.
 THE PHYSIOGRAPHICAL SETTING OF THE WATERSHED
               
    The altitude of the watershed is from 94 m to 172 m AMSL.  The terrain is adulatory and the general slope is from south to north. A small stream named Chagalkuta flows through it from south to north and meets Arkosa River, a tributary of Darakeswar River. The 3D model of the watershed is shown in Fig1.
 GEOLOGY

 Geologically the area is granite terrain with intrusive basic rocks and quartzite. Geomorphologically the watershed can be divided into three regions viz. ridge, toe-slope and valley. The ridge is comprised of exposed basement rock with often a thin cover of lateritic soil over the pediment. The toe-slope region has steep slope and up to 1 m pediment depth. The valley is filled with moderately thick sediment comprising of sand and silt. The pediment depth here is not above three metres. Groundwater in this region occurs in fractures and fissures in the hard rock and in the weathered mantle covering the hard rock. The total thickness of this unconfined aquifer is 10 to 12 metres.

AQUIFER
Groundwater occurs in pore spaces in the weathered mantle of the base rock and in the valley fill deposits. The thickness of this unconfined aquifer is 7 to 10 metre. Soil depth is 15 cm to 1m.

 DATA BASE-         

Two types of data have been generated in this area 
A.      Temporal data:
i)                     Pre and Post monsoon depth to water level data from 56 selected monitoring wells.
ii)                   Meteorological data
   
B.       Spatial data:

i) The reduced level data and location of each well plotted in a map.
ii) Sufficient number of surface altitude data required to generate a 1 mt. contour map of the watershed.

 DETERMINATION OF RCHARGE AND DISCHARGE ZONE

METHODOLOGY


                The data have been processed in computer with the help of software “Surfer 7”.
 At first the following surfer files are created.

1.        Surfer boundary file (.bln) containing boundary of watershed and mouja boundary.

2.        Spread sheets (.xls):
                     (a) “well.xls” containing the location of wells (x-y coordinates), depth to water level and RL of water level (Z coordinates).
                     (b) “RL.xls” containing the reduced level data of surface points.      

In the second stage the following grid files are created using Krigging method.

1.        “Pre-monsoon.grd “containing the grid of pre monsoon water table contour data.
2.        “Post-monsoon.grd” containing the grid of post monsoon water table contour data.
3.         “RL. grd containing” the grid of surface contour.

The grid files are blanked with “watershed.bln” so that the contours remain within the watershed boundary. With the help of the grid files the following contour maps are created.

1.        Pre monsoon water table contour map with 1mt. contour interval (Figure II)
2.        Post monsoon water table contour map with 1 m contour interval 
3.        Surface contour map with one meter contour
         interval.  (Figure I)
 
Now the pre monsoon contour map is superimposed (overlayed) on the surface contour map. After superimposition, the points of intersection of same value of surface contour with the same value of the water table contour are marked. These points are the possible spring points of the watershed during the pre-monsoon period. A line joining the points will generate the spring line. Area lying at lower altitude of the spring line is the discharging zone and the area at higher attitude is the recharging zone

Using SURFER/ GRID /MATHEMATICS this line can be generated digitally.

The equation is: - Map A – Map B = Map C.

              Where     Map A = Surface Contour map      (RL.grd)
                     Map B = Water table contour map (premonsoon.grd/ postmonsoon.grd)
                     Map C = Recharge discharge zone map (Rechargedischarge.grd)

In this operation grid node of both maps having same value will assign zero value.
               
In map C a isopach is generated where there is a line with value ‘0’ (Zero) and some lines with (-Ve) and some (+V) value..

The isopach line with ‘0’ value is the spring line because along this line the altitude of land surface and the water table is the same and the area with all +Ve value isopaches indicates that the water level is above surface which means that the aquifer is saturated and the area with all “- ve” value isopaches indicates that the water level is below surface and here the aquifer is ready to accept recharging. So the –ve area is the recharging zone and the +ve area is the discharging zone. Thus the pre monsoon recharge /discharge zone map is generated (Figure IV).

Similarly a post monsoon recharge/ discharge map has also been generated  by overlay of the post monsoon water table contour map and the surface contour map. In this map the discharge zone is more extensive because the groundwater level has gone up after the monsoon (Figure V)

HYDROLOGY OF DIFFERENT ZONES

Recharge Zone

In this zone rainwater directly percolates to the ground and recharges the aquifer. The water table slope is towards the valley. The water table intersects the land surface along the spring line and water comes out as surface runoff.

Discharge Zone

Here groundwater comes out to the surface and adds to the surface flow. In this region water is lost from the system by way of surface flow, base flow and evapo-transpiration.

Intermediate Zone

This is the region between the pre and post monsoon spring line. Here surface outflow is maximum during the rainy season and minimum during the pre monsoon period.

CONCLUSION
Since the recharge / discharge map indicates the spring zone, the zone of recharge and the zone of discharge the map can be utilized for locating sites for water harvesting structures.
                 The main phenomenon of the discharging zone is surface exfiltration loss of groundwater or transmission of water back to the catchment..

                 If groundwater structures were located in the pre-monsoon discharging region the structures would yield water throughout the year.
                For further pin pointing the ground water harvesting structures, especially for dug wells, some specific criteria are to be observed. Using SURFER a surface vector map can be generated. This map shows the magnitude and direction of slope. From this map it can be observed that the surface gradient is divergent in some places and convergent in some other places. In the valley region the slope is convergent. So location of wells can be pin pointed at the points where the convergent gradient is found. In plate VII pin pointed well locations are shown on a vector map. Similarly for surface water harvesting structures like bunds and ponds should be located in the  valley region of the intermediate zone

ACKNOWLEDGEMENT

Acknowledgement is due to the School of Fundamental Research, Kolkata for giving permission to use their data in preparation of this paper.

REFERENCE

Beasley R. C. (1976). Contribution of Subsurface Flow From the Upper Slopes of Forested Watersheds to Channel Flow, Soil Sci. Soc. Am., Proc. 40: 955-957

Bonnel M., Cassells D.S. and Gilamour D. A. (1982). Vertcal and lateral Soil Water Movement in a Tropical Rainforest Catchment. First National Symposium on Forest Hydrology. 30-38 Melbourne, Australia


Dominico P. A. Concepts and Models in Groundwater Hydrology. MacGraw-Hill Inc. 1972

Wednesday, August 14, 2013

NEW JOURNAL ON GROUNDWATER PUBLISHED

Centre for Groundwater Studies, a leading professional organisation in Kolkata has recently published the first issue of their journal "INDIAN GROUNDWATER" on 31st July. The journal will be published biannual in January and July every year.



The first issue contains the following papers:  
ASSESSMENT OF PERFORMANCE OF EXISTING RAINWATER HARVESTING STRUCTURES AND GROUND WATER RECHARGING  SYSTEM IN THE RURAL AND URBAN AREAS  OF PURULIA AND BANKURA DISTRICT, WEST BENGAL: Mrinal Kanti Sinha, S.P. Sinha Ray , Manjulika Pandit & B.C. Mehta
SUSTAINABLE WATER MANAGEMENT IN THE DROUGHT PRONE RIVERINE TRACTS OF SOUTH WEST BENGAL: Susanta Kumar Chakraborty, Ashis Kumar Paul  Jatisankar Bandyopadhyay, Debdulal Banerjee, Hirulal Pakhira, Subhasri Middya, Subrata Jana, Prasenjit Sahoo,  Kishalay Paria & Kartic Bera
SITE SUITABILITY ANALYSIS FOR CHECK DAM: A GEOMORPHIC APPROACH, A CASE STUDY OF AUSGRAM BLOCK, BURDWAN DISTRICT, WEST BENGAL, INDIA: C. Prakasam
EVALUATION OF ECOTOXICOLOGICAL RISKS RELATED TO THE DISCHARGE OF COMBINED INDUSTRIAL / SEWAGE EFFLUENT IN UNNAO INDUSTRIAL AREA, UP: Alka Tripathi, Supriya Singh, S K Srivastava & Ram Prakash
GEOCHEMISTRY OF SALINE GROUND WATERS IN COASTAL ORISSA: B. C. Mehta,  K.K. Srivastava &  J. S. Sharma
AQUIFER TRANSECT IN MARGINAL – AXIAL ALLUVIAL DEPOSITS IN THE GANGETIC PLAINS, INDIA: Dipankar Saha
MINIMIZATION OF IPC-IPU GAP IN MINOR IRRIGATION SECTOR OF WEST BENGAL, INDIA: Subrata Halder

EFFECTS OF PUMPING IN THE QUATERNARY AQUIFER BELOW AN INDUSTRIAL BELT IN HOWRAH DISTRICT, WEST BENGAL ON POLLUTANT MOVEMENT: Paulami Sahu & P. K. Sikdar

The Journal is available from 
Centre for Ground Water Studies, 54/B/2 Jadavpur Central Road, Kolkata 700047, INDIA

E mail: cgws@rediffmail.com

The price of the journal is Rs. 250/- ($25/-)

Thursday, October 4, 2012

FUNDAMENTALS OF AQUIFER MAPPING



The water Resource Ministry of Government of India has released a notification and a fact sheet on National Aquifer Mapping Programme (NAQUIM). The Central Groundwater board and the State Groundwater Departments will act as the main functionaries in this programme. It is also decided by the government that national level aquifer mapping will progress substantially through the 11th five year plan period. Considering the fact that those government departments alone cannot accomplish the job it has been decided that stake holders and NGOs would be involved in this endeavor.  This national level programme also has components like nation wise training and human resource development.
But, what is an aquifer map and what it is for?
The concept of aquifer mapping is not new. Many developed countries like Australia and USA have already completed aquifer maps in certain areas like Murray Darling Basin and Texas. They have already published some of the reports and maps. An aquifer map is not a single map, on the other hand it is a group of several maps that would describe the aquifer system and management criteria and options in an area.
In NAQIM programme of India it has been proposed that aquifer maps would include (1) Identification of Aquifer Management Units (AMU) (2) Evaluation of AMU, (3) Data preparation and generation of different categories (4) Prioritization of AMU, (5) Preparation of aquifer management plans and aqifer management and information system, (6)  Participatory groundwater management.
1.      IDENTIFICATION OF AQUIFER MANAGEMENT UNITS:
Aquifer management units are something different from a Hydrogeological unit. In a hydrogeological map generally geological units are described by its hydrogeological characteristics. But an AMU contains much more than that. It includes the 3 dimensional matrix of all information like extent of the aquifer, depth, thickness, geology, hydrology, land use on it, recharge and discharge related information and its political and social boundaries.
2.      EVALUATION OF OF AMU:
This is the most difficult task. Aquifer evaluations are conducted for various purposes including water supply development as well as groundwater contamination and remediation situations. They can range from fairly intense evaluations involving test drilling, geophysical investigations, installation of monitoring or observation wells, test pumping, physical and chemical water quality analyses, analytical and digital modeling to rapid evaluations based on existing data.
3.      DATA PREPARATION AND GENERATION OF DIFFERENT CATEGORIES:
The groundwater departments and states are generating groundwater data on regular basis. But those data are generally categorized on the basis of revenue boundaries and not on the basis of aquifer boundaries. So under NAQIM aguifer related data should be compiled and generated. A suggestive list of required data is given below.

   - Evaluation of existing data
   - Test drilling
   - Installation of monitoring or observations wells
   - Geoprobing and/or hydro probing
   - Geophysical investigations
   - Geophysical borehole logging
   - Groundwater gauging
   - Groundwater sampling and analyses
   - Test pumping
   - Slug testing
   - Analytical and digital groundwater modeling
   - Solute transport modeling
   - Groundwater monitoring
4.      PRIORITISATION OF AMU:
AMUs are basically aquifers subdivided into management units. These units are prioritized according to the demand and usage depending on the evaluated parameters of the aquifer. Before prioritization a management framework is required. The framework may include:
• Establish the baseline groundwater conditions and range of natural variability in the aquifer to facilitate enhanced knowledge and detection of change.
• Provide a consistent approach to understanding potential effects from all development activities on the surrounding environment.
• Facilitate projections of change based on future scenarios, such as expanding development or climate variability and change.
• Support and supplement the current pollution prevention and risk management principles as part of groundwater quality and quantity management.
 Prioritisation index:
Depending on the hydrogeology, quality of water and development status a prioritization index is to be developed by the groundwater authorities.
AMUs are initially ranked according to an index (equation 1) based on normalised current groundwater extraction, the fraction of groundwater allocation currently extracted , the fraction of sustainable yield currently extracted , a potential growth index and an index of the predicted future impact of groundwater extraction on surface water flow.
Apriority evaluation index has been attempted in Murray-Darling Basin Sustainable Yields Project (http://www.clw.csiro.au/publications/waterforahealthycountry/mdbsy/technical/Q-GMU-Prioritisation.pdfSeveral other algorithms can be developed to prioritise aquifers in our country. In a GIS platform both raster and vector based analysis may lead to an efficient decision support system.
5.      MANAGEMENT PLAN
This initiative will seek to protect the long term water supply capacity of the aquifer by controlling average annual aquifer use and balancing it with average annual recharge.
                                i.            Aquifer Protection Plan: This initiative will seek to assess the quality of the water in the aquifer and then to protect it by encouraging activities that enhance water quality and by discouraging activities that degrade it.  The key components are
                              ii.            Maintain Status Quo where water level is alarmingly depleted.
                            iii.            Reduce withdrawal of water: Water withdrawal may be reduced by introducing innovative farming, recycling of water and reducing consumption. The management plan will address aquifer specific recommendation.
                            iv.            Enhance Natural Recharge: To enhance natural recharge proper steps should be taken. This may include afforestation, gully plugging, construction of sub surface dykes etc. This initiative will seek to maximize aquifer recharge with good quality water by encouraging beneficial land and water management practices and by investigating the potential to use stream flow.
                              v.            Monitoring plan: This initiative will seek to maintain a current and comprehensive scientific database on the aquifer by collecting, compiling and evaluating data. The current aquifer monitoring activities could be reviewed to coordinate and redesign them, focusing on the comprehensive protection of the Aquifer.
                            vi.            Manage Pollution Risks: Activities carried out in pits and dumping areas within the primary recharge area present a variety of risks to aquifer water quality. The risks associated with these activities could be assessed and, where required, action taken to manage them as part of an aquifer protection plan. Other risks like geogenic contamination like As and Fl should be properly addressed in the management plan to reduce public health hazards.
                                      vii. Reduce Incoming Salt Water: The regional salt water flow to the aquifer could possibly be intercepted by installing a set of management structures or through innovative engineering activities.

6.      AQUIFER EDUCATION PLAN
The potential long term success of this management plan depends on the understanding and cooperation of a diverse group of people.  It is believed that a better informed group makes better decisions.  Only common understanding will engender the cooperation needed to formulate,  implement and maintain a successful long term stewardship plan for the Aquifer. Additional study is required to achieve a better understanding.  Extension education is required to make knowledge gained available to all area residents.