Do Water Transfer Projects Promote Water Use Efficiency? Case Study of South-to-North Water Transfer Project in Yellow River Basin of China
Abstract
:1. Introduction
2. Materials and Methods
2.1. Model
2.2. Study Area and Data Source
3. Results
3.1. Spatial Pattern of Water Use Efficiency and Water Supply Infrastructure in Yellow River Basin
3.1.1. Spatial Pattern of Water Use Efficiency
3.1.2. Spatial Pattern of Water Received from DYR and SNWTP
3.2. Main Factors Influencing Water Use Efficiency
3.2.1. Cointegration Test
3.2.2. Results of Regression Models
3.2.3. Robust Test
4. Discussion
4.1. Higher Price of SNWTP Water Facilitated Water Use Structure and Efficiency
4.2. Lower Price and Large Scale of DYR Water Used to Agriculture Irrigating
4.3. Technopolitics Characteristic of IBWT Infrastructure
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Variables | Description | Unit | Min | Max | Mean | Std. Dev. |
---|---|---|---|---|---|---|
wateruseeff | water use efficiency as the water consumption per unit of GDP | m3/10,000 CNY | 7.820 | 877.910 | 99.888 | 119.975 |
urban | urbanization rate | % | 24.120 | 95.370 | 54.869 | 14.989 |
GDPP | gross domestic product per capita | 10,000 CNY | 0.841 | 18.596 | 5.145 | 3.028 |
agri | proportion of agriculture in GDP | % | 0.800 | 62.000 | 11.378 | 8.036 |
wateragri | proportion of agriculture water use in total water consumption | % | 0.167 | 1.298 | 0.619 | 0.195 |
waterpress | ratio of water consumption to local water resource | / | 0.001 | 37.905 | 2.083 | 4.307 |
cornp | corn production per Capita | tons | 2.768 | 1795.022 | 489.484 | 284.273 |
watertransfer | proportion of water received from water transfer project in total water consumption | % | 0.000 | 1.553 | 0.225 | 0.277 |
watersnwtp | proportion of water received from SNWTP in total water consumption | % | 0.000 | 1.170 | 0.021 | 0.086 |
waterdyr | proportion of water received from DYR project in total water consumption | % | 0.000 | 1.183 | 0.199 | 0.249 |
Variables | VIF | 1/VIF | VIF | 1/VIF | VIF | 1/VIF | VIF | 1/VIF |
---|---|---|---|---|---|---|---|---|
urban | 4.1 | 0.2439 | 4.1 | 0.244 | 4.12 | 0.2427 | 4.12 | 0.2425 |
GDPP | 2.55 | 0.3926 | 2.54 | 0.393 | 2.55 | 0.3922 | 2.55 | 0.3922 |
agri | 2.34 | 0.4276 | 2.24 | 0.4457 | 2.29 | 0.4359 | 2.3 | 0.434 |
wateragri | 1.72 | 0.5813 | 1.61 | 0.6225 | 1.79 | 0.5575 | 1.81 | 0.5533 |
waterpress | 1.41 | 0.7094 | 1.37 | 0.7315 | 1.43 | 0.7006 | 1.43 | 0.6996 |
cornp | 1.23 | 0.8132 | 1.24 | 0.8097 | 1.38 | 0.7231 | 1.26 | 0.7944 |
watertransfer | 1.29 | 0.7728 | ||||||
watersnwtp | 1.04 | 0.9571 | 1.05 | 0.9566 | ||||
waterdyr | 1.23 | 0.8159 | 1.38 | 0.7227 | ||||
Mean VIF | 2.09 | 2.02 | 2.11 | 1.99 |
Watertransfer with Other Variables | Watersnwtp with Other Variables | |||
---|---|---|---|---|
Statistic | p-Value | Statistic | p-Value | |
Modified Dickey–Fuller t | 6.099 | 0 | 6.6656 | 0 |
Dickey–Fuller t | 1.8689 | 0.0308 | 3.0815 | 0.001 |
Augmented Dickey–Fuller t | 2.7996 | 0.0026 | 3.9716 | 0 |
Unadjusted modified Dickey–Fuller t | −2.1671 | 0.0151 | −2.1832 | 0.0145 |
Unadjusted Dickey–Fuller t | −7.4499 | 0 | −7.4507 | 0 |
Waterdyrwith Other Variables | Watersnwtpand Waterdyr with Other Variables | |||
Statistic | p-Value | Statistic | p-Value | |
Modified Dickey–Fuller t | 5.8503 | 0 | 5.6826 | 0 |
Dickey–Fuller t | 1.4041 | 0.0801 | 0.942 | 0.1731 |
Augmented Dickey–Fuller t | 2.3853 | 0.0085 | 1.773 | 0.0381 |
Unadjusted modified Dickey–Fuller t | −2.1866 | 0.0144 | −2.674 | 0.0037 |
Unadjusted Dickey–Fuller t | −7.4355 | 0 | −8.0237 | 0 |
(1) All Cities | (2) Cities without IBWT | (3) ER-SNWTP | (4) MR-SNWTP | (5) DYR | |
---|---|---|---|---|---|
watertransfer | −0.077 *** | −2.343 *** | 0.006 | −0.085 *** | −0.082 ** |
(−3.24) | (−14.23) | (0.53) | (−3.28) | (−2.57) | |
waterpress | 0.080 *** | 0.053 | 0.047 | 0.009 | 0.121 ** |
(3.23) | (0.79) | (1.19) | (0.20) | (2.67) | |
agri | 0.108 * | 0.060 *** | 0.180 ** | 0.210 *** | 0.174 |
(1.88) | (5.96) | (3.19) | (5.73) | (1.00) | |
wateragri | 0.070 * | 0.094 * | 0.052 ** | 0.023 | 0.129 |
(1.83) | (1.85) | (2.52) | (0.94) | (1.40) | |
Constant | 0.062 *** | 0.077 *** | −0.017 * | 0.024 ** | 0.060 |
(3.60) | (3.19) | (−2.16) | (2.53) | (1.14) | |
Observations | 623 | 231 | 63 | 126 | 203 |
Number of Cities | 89 | 33 | 9 | 18 | 29 |
Company FE | 0.061 | 0.600 | YES | YES | YES |
Year FE | YES | YES | YES | YES | YES |
Wateragri | Wateruseeff | |
---|---|---|
watertransfer | −0.1456 *** (−4.72) | −0.0867 *** (−4.10) |
wateragri | 0.07 * (1.83) | |
Bootstrap indirect effect | −0.0101 * (−1.93) | |
Bootstrap95% confidence interval (indirect effect) | [−0.0236, −0.0033] | |
Fixed effect | YES | YES |
N | 623 | 623 |
Variables | Coefficient |
---|---|
watersnwtp | −0.018 |
(−1.01) | |
waterdyr | 0.022 *** |
(3.32) | |
urban | −0.106 *** |
(−6.29) | |
waterpress | −0.011 |
(−0.40) | |
cornp | −0.084 *** |
(−3.23) | |
wateragri | 0.015 |
(0.95) | |
Constant | 0.111 *** |
(9.12) | |
Observations | 189 |
Number of CITY | 27 |
Company FE | 0.615 |
Year FE | YES |
(1) | (2) | (3) | (4) | |
---|---|---|---|---|
Variables | y | Lagged by Two Periods | All Variables Lagged by One Period | Data Winsorized |
watertransfer | −0.077 *** | −0.073 *** | −0.040 * | −0.075 *** |
(−3.24) | (−3.14) | (−1.97) | (−2.86) | |
waterstress | 0.080 *** | 0.099 *** | −0.085 ** | 0.105 *** |
(3.23) | (4.62) | (−2.48) | (2.88) | |
agri | 0.108 * | 0.087 | 0.148 ** | 0.112 |
(1.88) | (1.65) | (2.08) | (1.49) | |
wateragri | 0.070 * | 0.084 ** | 0.137 ** | 0.091 ** |
(1.83) | (1.99) | (2.11) | (2.23) |
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Ma, L.; Wang, Q. Do Water Transfer Projects Promote Water Use Efficiency? Case Study of South-to-North Water Transfer Project in Yellow River Basin of China. Water 2024, 16, 1367. https://doi.org/10.3390/w16101367
Ma L, Wang Q. Do Water Transfer Projects Promote Water Use Efficiency? Case Study of South-to-North Water Transfer Project in Yellow River Basin of China. Water. 2024; 16(10):1367. https://doi.org/10.3390/w16101367
Chicago/Turabian StyleMa, Li, and Qi Wang. 2024. "Do Water Transfer Projects Promote Water Use Efficiency? Case Study of South-to-North Water Transfer Project in Yellow River Basin of China" Water 16, no. 10: 1367. https://doi.org/10.3390/w16101367
APA StyleMa, L., & Wang, Q. (2024). Do Water Transfer Projects Promote Water Use Efficiency? Case Study of South-to-North Water Transfer Project in Yellow River Basin of China. Water, 16(10), 1367. https://doi.org/10.3390/w16101367