Application of Sustainability Index of Tidal River Management (SITRM) in the Lower Ganges–Brahmaputra–Meghna Delta
Abstract
:1. Introduction
- (a)
- Comprehensive approach: This study aims to address the limitations of previous studies [5,13,14] by taking a comprehensive approach to examine the sustainability of TRM in the Southwest coastal region of Bangladesh. By considering all socio-economic, environmental, and institutional factors that contribute to TRM sustainability, this study provides a more holistic view of the challenges and opportunities that exist for achieving sustainable water resource management in the region.
- (b)
- Quantitative data: This study seeks to collect quantitative data on various sustainability indicators to provide a more rigorous assessment of TRM sustainability. This approach will enable policymakers and planners to measure the effectiveness of TRM in reducing flood susceptibility, managing sedimentation, maintaining water availability, improving drainage capacity, preserving biodiversity, etc.
- (c)
- Integrated water resource management: This study considers TRM within the broader context of integrated water resource management (IWRM), which emphasizes a holistic and systems-based approach to water resource management. By examining how TRM fits into the larger IWRM framework, this study provides insights into how TRM can contribute to socially fair, economically feasible, and environmentally sensitive water resource management in the region.
- What are the quantitative results of SITRM indicators?
- How is the sustainability of TRM measured by the SITRM?
1.1. Theoretical Background
1.2. The Components and Indicators of SITRM
2. Materials and Methods
2.1. Study Area
2.1.1. Estimating the Land Elevation of the Tidal Basin
- Ge = the average land elevation of the tidal basin by TRM (m)
- SDB = the total quantity of sediment deposition on the tidal basin (m3)
- AL = the total area of land where sediment is deposited (ha).
2.1.2. Assessing the LUC in the Hari–Teka–Bhadra Catchment
2.1.3. Assessing Changes in Crop Production in the Hari–Teka–Bhadra Catchment
2.1.4. Assessing the Changes in Livestock and Trees, Employment, and Health Impact in the Hari–Teka–Bhadra Catchment
2.1.5. Assessing SITRM Indicators through the Likert Scale
2.1.6. Assessing the Sustainability of TRM Using the SITRM Framework
3. Results
3.1. Assessment of the SITRM Indicators
3.1.1. Estimation of Land Elevation of Tidal Basins
3.1.2. Assessment of the LUC in the Hari–Teka–Bhadra Catchment
3.1.3. Assessment of the Changes in Agricultural Production of the Hari–Teka–Bhadra Catchment
3.1.4. Assessment of the Changes in Terrestrial Biodiversity, Employment, Health Impact, and Migration of the Hari–Teka–Bhadra Catchment
3.1.5. Assessment of SITRM Indicators through the Likert Scale
3.1.6. Assessment of Land Reclamation, Compensation, and Alternative Livelihood Issues of Hari–Teka–Bhadra Catchment
3.2. Measurement of the Sustainability of TRM by the SITRM Framework
4. Discussion
5. Conclusions
Policy Recommendations
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
SI | Sustainability index |
TRM | Tidal River Management |
WMP | Watershed Management Plan |
SITRM | Sustainability index of tidal river management |
GBM | Ganges–Brahmaputra–Meghna |
USGS | United States Geological Survey |
WSI | Watershed Sustainability Index |
CWSI | Canadian Water Sustainability Index |
WJWSI | West Java Water Sustainability Index |
WPI | Water Poverty Index |
SES | Social–ecological system |
KII | Key informant interviews |
CBOs | Community-based organizations |
NGOs | Non-governmental organizations |
GOs | Government offices |
IWRM | Integrated Water Resource Management |
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Component | Indicator | Sub-Indicator | Threshold Values | ||||||
---|---|---|---|---|---|---|---|---|---|
Standard Values | With-TRM | Score | |||||||
Max | Min | Max | Min | Earned | Fixed | ||||
Tidal River | Tidal flow | High tide | 600 a | <550 b | 649 | 612 | 2.5 | 2.5 | |
Low tide | 250 a | <200 b | 252 | 224 | 2.5 | 2.5 | |||
Drainage capacity | Depth | 12 a | <10 b | 13 | - | 2.5 | 2.5 | ||
Width | 75 a | <70 b | 77 | - | 2.5 | 2.5 | |||
Riverbank erosion | - | 1 a | 0 b | 0.48 | - | 2.4 | 5 | ||
Sediment Management | Sedimentation | - | >5 b | 0 a | - | 0 | 5 | 5 | |
Waterlogging | Monsoon | 55 a | <50 b | 53 | - | 1.5 | 2.5 | ||
Post-monsoon | 70 a | <35 b | 72 | - | 2.5 | 2.5 | |||
Land reclamation | - | 100 a | 0 b | 40 | - | 2 | 5 | ||
Environment | Crop production | Paddy (Boro) | 3.5 a | <3 b | 3.54 | - | 1.5 | 1.5 | |
Vegetables | 4.5 a | <3.5 b | 4.6 | - | 1.5 | 1.5 | |||
Shrimp + Prawn | 0.5 a | <0.4 b | 0.45 | - | 1 | 2 | |||
Vegetation with settlement | Monsoon | 15 a | <12 b | 16 | - | 2.5 | 2.5 | ||
Post-monsoon | 30 a | <25 b | 33 | - | 2.5 | 2.5 | |||
Rising sea levels | - | 0.5 a | <0.4 b | 1.1 | 0 | 5 | 5 | ||
Employment | - | 25 a | <20 b | 23 | - | 3 | 5 | ||
Salinity | - | >2 b | <1 a | 1.2 | 0.8 | 4.5 | 5 | ||
Terrestrial biodiversity | Livestock | Birds | 10 a | 0 b | 23.6 | - | 1 | 1 | |
4-legged | 5 a | 0 b | 2.3 | - | 2 | 2 | |||
Trees | Fruit | 10 a | 0 b | 17 | - | 1 | 1 | ||
Timber | 15 a | 0 b | 25.2 | - | 1 | 1 | |||
Migration | Temporary | >30 b | 10 a | 13 | - | 2.1 | 2.5 | ||
Permanent | >1 b | 0 a | 0.5 | - | 1.3 | 2.5 | |||
Human Health | Health impact | - | >100 b | 0 a | 29 | - | 3.6 | 5 | |
Institution (Community participation) | Awareness and coordination | Awareness | 100 a | 0 b | 78 | - | 2 | 2.5 | |
Coordination | 100 a | 0 b | 48 | - | 1.2 | 2.5 | |||
Compensation | Marginal farmers | 100 a | 0 b | 13 | 0.5 | 4 | |||
Other farmers | 100 a | 0 b | 58 | - | 0.6 | 1 | |||
LUC | Paddy (Boro) | 80 a | <60 b | 77 | - | 2.1 | 2.5 | ||
Vegetables | 50 a | <40 b | 52 | - | 2.5 | 2.5 | |||
Alternative livelihoods | - | 100 a | 0 b | - | 0 | 0 | 5 | ||
Institution (Governance) | Rotation of TRM | - | 1 a | 0 b | 0.48 | - | 2.4 | 5 | |
Water Governance | - | 1 a | 0 b | 0.72 | - | 3.6 | 5 |
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Masud, M.M.A.; Azadi, H.; Azad, A.K.; Goli, I.; Pietrzykowski, M.; Dogot, T. Application of Sustainability Index of Tidal River Management (SITRM) in the Lower Ganges–Brahmaputra–Meghna Delta. Water 2023, 15, 3159. https://doi.org/10.3390/w15173159
Masud MMA, Azadi H, Azad AK, Goli I, Pietrzykowski M, Dogot T. Application of Sustainability Index of Tidal River Management (SITRM) in the Lower Ganges–Brahmaputra–Meghna Delta. Water. 2023; 15(17):3159. https://doi.org/10.3390/w15173159
Chicago/Turabian StyleMasud, Md. Mahedi Al, Hossein Azadi, Abul Kalam Azad, Imaneh Goli, Marcin Pietrzykowski, and Thomas Dogot. 2023. "Application of Sustainability Index of Tidal River Management (SITRM) in the Lower Ganges–Brahmaputra–Meghna Delta" Water 15, no. 17: 3159. https://doi.org/10.3390/w15173159
APA StyleMasud, M. M. A., Azadi, H., Azad, A. K., Goli, I., Pietrzykowski, M., & Dogot, T. (2023). Application of Sustainability Index of Tidal River Management (SITRM) in the Lower Ganges–Brahmaputra–Meghna Delta. Water, 15(17), 3159. https://doi.org/10.3390/w15173159