Farmers’ Safe Behavior of Using Wastewater for Irrigation: The Case of Northeast Iran
Abstract
1. Introduction
2. Conceptual Framework
2.1. The Original Planned Behavior Theory (TPB)
2.2. Extension of the TPB
3. Materials and Methods
3.1. Framework and Measures
3.2. Study Area
3.3. Statistical Population and Sampling Method
3.4. Model
3.4.1. Model Development Procedure
- Definition of Latent and Observed Variables:
- 2.
- Specification of the Measurement Model:
- 3.
- Specification of the Structural Model:
- 4.
- Model Estimation and Validation:
3.4.2. Underlying Assumptions of SEM
4. Results
4.1. Model of Measurement
4.2. Structural Model
4.3. Original TPB Model
4.4. Extended TPB Model
5. Discussion
Research Limitations
6. Conclusions
Policy Recommendations
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Appendix A
Abbreviation | Full Term | Description |
---|---|---|
TPB | Theory of Planned Behavior | A psychological theory explaining behavior through attitude, norms, and control. |
Att | Attitude | Farmers’ positive or negative evaluation of safe wastewater use. |
SNs | Subjective norms | Perceived social pressure to use treated wastewater safely. |
PBC | Perceived behavioral control | Farmers’ perception of their ability to perform safe wastewater use. |
RP | Risk perception | Farmers’ understanding of the health/environmental risks of unsafe practices. |
Kn | Knowledge | Farmers’ awareness and understanding of safe wastewater practices. |
Int | Intention | Farmers’ motivation or plan to use treated wastewater safely. |
Beh | Behavior | Actual practice of using treated wastewater safely. |
SEM | Structural equation modeling | Statistical method used to evaluate relationships among latent variables. |
CFA | Confirmatory factor analysis | Technique to assess the validity of measurement models. |
AVE | Average variance extracted | Indicator of convergent validity of constructs. |
CR | Composite reliability | Reliability measure for the internal consistency of constructs. |
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Construct | Measurement Items | Sources |
---|---|---|
Behavior (Beh) | 1. I adjust my cultivation pattern based on the quality of the treated wastewater. 2. I employ an effective irrigation method to mitigate the pollution. | [19,43] |
Intention (Int) | 1. I have a desire to safely use treated wastewater in the future. 2. I am highly inclined to partake in a program that advocates for the responsible and secure use of treated wastewater. 3. I would like my farm to have better facilities for using treated wastewater safely. | [20,21,44] |
Attitudes (Att) | 1. I think there is a lot of value in making investments in the safe use of treated wastewater. 2. I believe it is essential to adhere to all necessary standards for the safe production with treated wastewater. 3. Even if it leads to an increase in my production costs, I am committed to using treated wastewater safely. | [21,44] |
Perceived Behavioral Control (PBC) | 1. I am fully capable of using treated wastewater safely. 2. I am well-versed in the appropriate procedures for the secure application of treated wastewater. 3. I have enough resources to guarantee that treated wastewater is used safely. 4. I am adept in using treated wastewater in a safe manner. | [20,21,44] |
Subjective Norms (SNs) | 1. I am encouraged to use treated wastewater on the farm in a safe manner by the folks who are very important to me. 2. The safe use of treated wastewater on the farm is supported by my family and friends. 3. On the farm, my neighbors and I both think that treated wastewater must be used safely. | [20,21,44] |
Risk Perception (RP) | 1. I feel concerned and endangered by the environmental devastation caused by the unsafe use of treated wastewater. 2. I hold a firm conviction that the hazardous application of treated wastewater poses significant risks to both human health and the natural environment. 3. I personally know several farmers who have suffered from illnesses directly caused by the hazardous application of treated wastewater. | [20] |
Knowledge (Kn) | 1. I possess a more comprehensive understanding of environmental and health issues compared to other users of treated wastewater. 2. I have a deep understanding of the detrimental consequences of unsafe treated wastewater use on the health of farmers, consumers, and the environment. 3. I am capable of providing a clear explanation of the techniques for safely using treated wastewater and the advantages they bring. | [21,44] |
Variable | Category | Frequency | Percentage |
---|---|---|---|
Age | Lower than 30 | 55 | 25.58 |
From 30 to 50 | 119 | 55.35 | |
More than 50 | 41 | 19.07 | |
Sum | 215 | 100 | |
Education | Illiterate | 50 | 23.26 |
Elementary | 104 | 48.37 | |
High school | 53 | 24.65 | |
College education | 8 | 3.72 | |
Sum | 215 | 100 |
Original TPB | Extended TPB | ||||
---|---|---|---|---|---|
Constructs | Measurement Item | ƛ | t | ƛ | t |
Attitude (Att) | Att1 | 0.854 | 34.161 | 0.848 | 32.804 |
Att2 | 0.804 | 23.606 | 0.802 | 24.589 | |
Att3 | 0.786 | 26.833 | 0.793 | 27.917 | |
Perceived behavioral control (PBC) | PBC1 | 0.870 | 54.470 | 0.852 | 54.882 |
PBC2 | 0.620 | 8.576 | 0.832 | 27.877 | |
PBC3 | 0.803 | 25.161 | 0.814 | 19.685 | |
Subjective norms (SNs) | SN1 | 0.796 | 26.824 | 0.854 | 22.543 |
SN2 | 0.787 | 23.234 | 0.754 | 19.570 | |
SN3 | 0.856 | 38.861 | 0.770 | 22.543 | |
Risk perception (RP) | RP1 | ..... | ..... | 0.835 | 29.868 |
RP2 | ..... | ..... | 0.813 | 27.339 | |
RP3 | ..... | ..... | 0.824 | 31.592 | |
Knowledge (Kn) | Kn1 | ..... | ..... | 0.837 | 36.212 |
Kn2 | ..... | ..... | 0.839 | 26.760 | |
Kn3 | ..... | ..... | 0.845 | 30.942 | |
Intention (Int) | Int1 | 0.769 | 16.062 | 0.772 | 17.386 |
Int2 | 0.847 | 49.249 | 0.842 | 45.949 | |
Int3 | 0.837 | 35.720 | 0.839 | 36.523 | |
Behavior (Beh) | Beh1 | 0.909 | 75.489 | 0.905 | 61.103 |
Beh2 | 0.906 | 56.183 | 0.910 | 69.971 |
Original TPB | Extended TPB | ||||||
---|---|---|---|---|---|---|---|
Constructs | Measurement Item | Cronbach’s α | Convergent Validity | Cronbach’s α | Convergent Validity | ||
Composite Reliability | AVE | Composite Reliability | AVE | ||||
Attitude (Att) | Att1 | 0.747 | 0.856 | 0.664 | 0.747 | 0.856 | 0.664 |
Att2 | |||||||
Att3 | |||||||
Perceived behavioral control (PBC) | PBC1 | 0.680 | 0.812 | 0.595 | 0.791 | 0.872 | 0.693 |
PBC2 | |||||||
PBC3 | |||||||
PBC4 | |||||||
Subjective norms (SNs) | SN1 | 0.746 | 0.855 | 0.662 | 0.706 | 0.836 | 0.630 |
SN2 | |||||||
SN3 | |||||||
Risk perception (RP) | RP1 | ..... | ..... | ..... | 0.764 | 0.864 | 0.679 |
RP2 | |||||||
RP3 | |||||||
Knowledge (Kn) | Kn1 | ..... | ..... | ..... | 0.792 | 0.878 | 0.706 |
Kn2 | |||||||
Kn3 | |||||||
Intention (Int) | Int1 | 0.754 | 0.858 | 0.670 | 0.754 | 0.859 | 0.670 |
Int2 | |||||||
Int3 | |||||||
Int4 | |||||||
Behavior (Beh) | Beh1 | 0.786 | 0.903 | 0.824 | 0.786 | 0.903 | 0.824 |
Beh2 |
Constructs | (Att) | (PBC) | (SNs) | (Int) | (RP) | (Kn) | (Beh) |
---|---|---|---|---|---|---|---|
1. Attitude (Att) | 0.815 | ||||||
2. Perceived behavioral control (PBC) | 0.502 | 0.833 | |||||
3. Subjective norms (SNs) | 0.764 | 0.551 | 0.794 | ||||
4. Intention (Int) | 0.673 | 0.696 | 0.647 | 0.818 | |||
5. Risk perception (RP) | 0.741 | 0.616 | 0.744 | 0.731 | 0.824 | ||
6. Knowledge (Kn) | 0.672 | 0.711 | 0.657 | 0.750 | 0.739 | 0.840 | |
7. Behavior (Beh) | 0.685 | 0.655 | 0.678 | 0.719 | 0.731 | 0.770 | 0.908 |
Hypotheses | Hypotheses Paths | Path Coefficients | p Value | Supported |
---|---|---|---|---|
H1 | Att → Int | 0.316 | 0.000 | Yes |
H2 | SN → Int | 0.188 | 0.011 | Yes |
H3 | PBC → Int | 0.415 | 0.000 | Yes |
H4 | PBC → Beh | 0.332 | 0.000 | Yes |
H5 | Int → Beh | 0.482 | 0.000 | Yes |
Hypotheses | Hypotheses Paths | Original Sample | Standard Deviation | T Statistic | p Value | Supported |
---|---|---|---|---|---|---|
H1 | Att → Beh | 0.200 | 0.058 | 3.445 | 0.001 | Yes |
H2 | PBC → Beh | 0.167 | 0.059 | 2.830 | 0.005 | Yes |
H3 | SN → Beh | 0.003 | 0.011 | 0.302 | 0.763 | No |
H4 | RP → Beh | 0.213 | 0.078 | 2.729 | 0.007 | Yes |
H5 | Kn → Beh | 0.515 | 0.063 | 8.116 | 0.000 | Yes |
H6 | Int → Beh | 0.130 | 0.065 | 1.992 | 0.047 | Yes |
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Share and Cite
Esfandiari Bahraseman, S.; Firozzare, A.; Durandish, A.; Khalili Mararndi, H.; Fürst, C.; Värnik, R.; Ajtai, I.; Azadi, H. Farmers’ Safe Behavior of Using Wastewater for Irrigation: The Case of Northeast Iran. Water 2025, 17, 2485. https://doi.org/10.3390/w17162485
Esfandiari Bahraseman S, Firozzare A, Durandish A, Khalili Mararndi H, Fürst C, Värnik R, Ajtai I, Azadi H. Farmers’ Safe Behavior of Using Wastewater for Irrigation: The Case of Northeast Iran. Water. 2025; 17(16):2485. https://doi.org/10.3390/w17162485
Chicago/Turabian StyleEsfandiari Bahraseman, Sasan, Ali Firozzare, Arash Durandish, Hiva Khalili Mararndi, Christine Fürst, Rando Värnik, Iulia Ajtai, and Hossein Azadi. 2025. "Farmers’ Safe Behavior of Using Wastewater for Irrigation: The Case of Northeast Iran" Water 17, no. 16: 2485. https://doi.org/10.3390/w17162485
APA StyleEsfandiari Bahraseman, S., Firozzare, A., Durandish, A., Khalili Mararndi, H., Fürst, C., Värnik, R., Ajtai, I., & Azadi, H. (2025). Farmers’ Safe Behavior of Using Wastewater for Irrigation: The Case of Northeast Iran. Water, 17(16), 2485. https://doi.org/10.3390/w17162485