Evaluating Method-Dependent Estimates of Volumetric Field Capacity in the Roldanillo–Unión–Toro Irrigation District, Colombia
Abstract
1. Introduction
2. Methodology
2.1. Study Area Description
2.2. Selection of Soil Sampling Size
2.3. Soil Sampling for θFC Estimation
2.4. Methods for θFC Estimation
2.4.1. Richards Plate Method (RPP)
2.4.2. Filter Paper Method (FP)
2.4.3. Pedotransfer Function (PTF)
2.4.4. Mariotte Bottle Method (MB)
2.5. Statistical Analysis
2.5.1. Descriptive Statistics
2.5.2. Method Agreement and Bias Analysis
2.5.3. Correlation and Agreement Assessment
2.5.4. Texture-Dependent Performance Evaluation
3. Results
3.1. Main Descriptors of SMUs
3.2. Raw θFC Values
3.3. Overall Method-to-Method Differences in θFC
3.4. Agreement and Bias Relative to Richards Pressure Plate Operational Reference
3.5. Association with Richards: Regression and Correlation Summaries
3.6. Texture Composition and Texture-Dependent Patterns
4. Discussion
4.1. Field Capacity as a Method-Dependent Soil Water State in the RUT District
4.2. Agreement Relative to RPP
4.3. Why Methods Diverged?
4.4. Implications for Irrigation Scheduling
4.5. Limitations and Future Directions
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| SMUs | Profiles | Dominant Texture | Effective Depth (cm) | Hydric Regime | Representative Taxonomy | Limitations |
|---|---|---|---|---|---|---|
| VWTP-C | 16 | Loam to clay loam | 100 | Ustic/Udic | Typic Haplustolls | No major limitations |
| VWAD-M | 11 | Clay loam to clay | 50–80 | Udic | Chromic Endoaquerts | Imperfect drainage; plasticity |
| VWTP-G | 10 | Clay loam | 100 | Udic | Typic Haplustolls | High subsurface cohesion |
| PWASP-AL | 2 | Silt loam | 80 | Ustic | Fluventic Haplustolls | Rocky material or lithologic fragments |
| VWAC-T | 1 | Clay loam | 60–80 | Udic | Vertic Endoaquepts | Mottling and a massive clay horizon |
| VWAN-A | 1 | Clay loam | 50–80 | Ustic | Typic Haplustert | Shrink–swell; possible surface sealing; risk of localized waterlogging |
| VWTP-D | 1 | Clay loam | 100 | Ustic | Typic Haplusterts | Shrink–swell; possible surface sealing; risk of localized waterlogging |
| Texture Class | n | Method | Mean (% v/v) | SD | Min | Max | CV (%) |
|---|---|---|---|---|---|---|---|
| Clay | 26 | MB | 43.80 | 4.79 | 37.02 | 55.42 | 10.93 |
| FP | 46.54 | 7.79 | 34.06 | 62.92 | 16.75 | ||
| PTF | 51.45 | 8.38 | 37.36 | 61.60 | 16.29 | ||
| RPP | 40.21 | 3.88 | 34.76 | 46.41 | 9.65 | ||
| Clay loam | 9 | MB | 41.27 | 3.64 | 37.08 | 47.86 | 8.82 |
| FP | 40.64 | 4.47 | 33.85 | 49.18 | 11.00 | ||
| PTF | 38.69 | 5.92 | 31.92 | 50.17 | 15.31 | ||
| RPP | 38.09 | 3.25 | 34.01 | 43.62 | 8.53 | ||
| Sandy clay loam | 2 | MB | 31.45 | 0.62 | 31.01 | 31.89 | 1.97 |
| FP | 35.61 | 1.82 | 34.32 | 36.90 | 5.11 | ||
| PTF | 33.40 | 1.61 | 32.26 | 34.54 | 4.83 | ||
| RPP | 32.89 | 0.73 | 32.37 | 33.41 | 2.22 | ||
| Silty clay loam | 2 | MB | 45.46 | 1.02 | 44.74 | 46.18 | 2.25 |
| FP | 45.45 | 4.95 | 41.95 | 48.95 | 10.88 | ||
| PTF | 40.05 | 4.31 | 36.99 | 43.11 | 10.76 | ||
| RPP | 41.18 | 0.12 | 41.10 | 41.26 | 0.29 | ||
| Loam | 1 | MB | 34.00 | – | 34.00 | 34.00 | – |
| FP | 30.00 | – | 30.00 | 30.00 | – | ||
| PTF | 28.50 | – | 28.50 | 28.50 | – | ||
| RPP | 35.00 | – | 35.00 | 35.00 | – | ||
| Sandy clay | 1 | MB | 38.00 | – | 38.00 | 38.00 | – |
| FP | 42.00 | – | 42.00 | 42.00 | – | ||
| PTF | 41.50 | – | 41.50 | 41.50 | – | ||
| RPP | 36.00 | – | 36.00 | 36.00 | – | ||
| Silty clay | 1 | MB | 55.20 | – | 55.20 | 55.20 | – |
| FP | 48.30 | – | 48.30 | 48.30 | – | ||
| PTF | 45.00 | – | 45.00 | 45.00 | – | ||
| RPP | 45.50 | – | 45.50 | 45.50 | – |
| Texture Class | n-Texture | Method vs. RPP | ME (% v/v) | RMSE (% v/v) | MAE (% v/v) | PBIAS (%) |
|---|---|---|---|---|---|---|
| Clay | 26 | MB | 3.59 | 5.37 | 4.38 | 8.92 |
| FP | 6.33 | 9.53 | 7.26 | 15.75 | ||
| PTF | 11.24 | 13.26 | 11.24 | 27.96 | ||
| Clay loam | 9 | MB | 3.18 | 5.22 | 4.21 | 8.35 |
| FP | 2.55 | 5.38 | 4.69 | 6.70 | ||
| PTF | 0.60 | 4.72 | 3.77 | 1.58 | ||
| Sandy clay loam | 2 | MB | −1.44 | 1.62 | 1.44 | −4.38 |
| FP | 2.72 | 3.08 | 2.72 | 8.27 | ||
| PTF | 0.51 | 0.58 | 0.51 | 1.55 | ||
| Silty clay loam | 2 | MB | 4.28 | 4.41 | 4.28 | 10.40 |
| FP | 4.27 | 6.17 | 4.27 | 10.37 | ||
| PTF | −1.13 | 4.32 | 4.06 | −2.75 | ||
| Loam | 1 | MB | −1.00 | 1.00 | 1.00 | −2.86 |
| FP | −5.00 | 5.00 | 5.00 | −14.29 | ||
| PTF | −6.50 | 6.50 | 6.50 | −18.57 | ||
| Sandy clay | 1 | MB | 2.00 | 2.00 | 2.00 | 5.56 |
| FP | 6.00 | 6.00 | 6.00 | 16.67 | ||
| PTF | 5.50 | 5.50 | 5.50 | 15.28 | ||
| Silty clay | 1 | MB | 9.70 | 9.70 | 9.70 | 21.32 |
| FP | 2.80 | 2.80 | 2.80 | 6.15 | ||
| PTF | −0.50 | 0.50 | 0.50 | −1.10 |
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Tafur-Hermann, H.; Osorio-Ocampo, E.; Echeverri-Sánchez, A.F.; Erazo-Mesa, E.; Benavides-Bolaños, J.A. Evaluating Method-Dependent Estimates of Volumetric Field Capacity in the Roldanillo–Unión–Toro Irrigation District, Colombia. Water 2026, 18, 1195. https://doi.org/10.3390/w18101195
Tafur-Hermann H, Osorio-Ocampo E, Echeverri-Sánchez AF, Erazo-Mesa E, Benavides-Bolaños JA. Evaluating Method-Dependent Estimates of Volumetric Field Capacity in the Roldanillo–Unión–Toro Irrigation District, Colombia. Water. 2026; 18(10):1195. https://doi.org/10.3390/w18101195
Chicago/Turabian StyleTafur-Hermann, Harold, Estefania Osorio-Ocampo, Andrés Fernando Echeverri-Sánchez, Edwin Erazo-Mesa, and Jhony Armando Benavides-Bolaños. 2026. "Evaluating Method-Dependent Estimates of Volumetric Field Capacity in the Roldanillo–Unión–Toro Irrigation District, Colombia" Water 18, no. 10: 1195. https://doi.org/10.3390/w18101195
APA StyleTafur-Hermann, H., Osorio-Ocampo, E., Echeverri-Sánchez, A. F., Erazo-Mesa, E., & Benavides-Bolaños, J. A. (2026). Evaluating Method-Dependent Estimates of Volumetric Field Capacity in the Roldanillo–Unión–Toro Irrigation District, Colombia. Water, 18(10), 1195. https://doi.org/10.3390/w18101195

