Modelling Possible Household Uses of Grey Water in Poland using Property Fitting Analysis
Abstract
:1. Introduction
2. Theoretical Background
- reducing the abstraction of drinking water from its intakes;
- reduced environmental impact due to the lack of need for sewage networks and treatment plants;
- soil fertilisation;
- lower energy and chemical consumption compared to traditional water treatment;
- improving environmental conditions for vegetation, contributing to better growth;
- recovery of groundwater levels;
- recovery of fertilising components that would be diverted to the treatment plant in a traditional system [46].
3. Materials and Methods
3.1. Research Tool
3.2. Subject Matter and Methodology of Statistical Analysis
- Women up to 34 years of age (K/34);
- Women aged 35–44 years (K/35–44 years);
- Women aged 45–54 years (K/45–54 years);
- Women aged 55 and over (K/55);
- Men up to 34 years of age (M/34);
- Men aged 35–44 years (M/35–44 years);
- Men aged 45–54 years (M/45–54 years);
- Men aged 55 and over (M/55).
- Reduced abstraction of drinking water from rivers and other water bodies (C1);
- Lower environmental impact due to the lack of a sewage network and treatment plant (C2);
- Reduction in pressure on water and sewerage networks due to lower water abstraction and less wastewater (C3);
- Soil fertilisation (C4);
- Lower energy and chemical consumption compared to traditional water treatment (C5);
- Recovery of groundwater levels (C6);
- Increased vegetation growth (C7);
- Recovery of fertilising nutrients that would have been diverted to the treatment plant in the traditional system (C8).
- Persons up to 34 years of age who possess an irretrievable water meter (34/L);
- Persons up to 34 years of age who do not possess an irretrievable water meter (34/B);
- Persons aged 35–44 years who possess an irretrievable water meter (35–44/L);
- Persons aged 35–44 years who do not possess an irretrievable water meter (35–44/B);
- Persons aged 45–54 years who possess an irretrievable water meter (45–54/L);
- Persons aged 45–54 years who do not possess an irretrievable water meter (45–54/B);
- Persons 55 and over who possess an irretrievable water meter (55/L);
- Persons 55 and over who do not possess an irretrievable water meter (55/B).
- Women who live in a house (K/D);
- Women who live in a flat (K/M);
- Men who live in a house (M/D);
- Men who live in a flat (M/M);
- People who live in a house and possess an irretrievable water meter (D/L);
- People who live in a house and do not possess an irretrievable water meter (D/B);
- People who live in a flat and possess an irretrievable water meter (M/L);
- People who live in a flat and do not possess an irretrievable water meter (M/B).
3.3. Characteristics of the Research Sample
4. Results and Discussion
4.1. Analysis of Overall Performance
4.2. Modelling Grey Water Benefits for Different Groups
4.2.1. Benefits of Grey Water Use in Groups Distinguished by Gender and Age
4.2.2. Benefits of Grey Water Use among Groups Differentiated by Age and Ownership of an Irretrievable Water Meter
4.2.3. Benefits of Grey Water Use in Groups Distinguished by Gender and Place of Residence
4.2.4. Benefits of Grey Water Use among Groups Distinguished by Residence and Possession of an Irretrievable Water Meter
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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n | % | ||
---|---|---|---|
Gender | Women | 350 | 43.37% |
Men | 448 | 55.51% | |
Other | 9 | 1.12% | |
Age | Up to 24 years | 28 | 3.47% |
25–34 years | 88 | 10.90% | |
35–44 years | 200 | 24.78% | |
45–54 years | 224 | 27.76% | |
55 and over | 267 | 33.09% | |
Education | Basic | 5 | 0.62% |
Basic vocational | 64 | 7.93% | |
Secondary | 251 | 31.10% | |
Higher | 487 | 60.35% | |
Owning an irretrievable water meter | Yes | 350 | 43.37% |
No | 457 | 56.63% | |
Place of residence | House | 683 | 84.63% |
Flat | 124 | 15.37% |
Descriptive Statistics | ||||||
---|---|---|---|---|---|---|
Mean ± Standard Deviation | Median (Q25–Q75) | Min.–Max. | Confidence Interval | Stand Error. | ||
−95.00% | +95.00% | |||||
Evaluation of the extent to which drought periods are increasing and water sources are disappearing in Poland | 3.28 ± 1.02 | 3 (3–4) | 1–5 | 3.21 | 3.35 | 0.04 |
Assessment of the extent to which water demand is increasing in Poland | 3.62 ± 0.98 | 4 (3–4) | 1–5 | 3.56 | 3.69 | 0.03 |
Assessment of the degree of importance of exploring new technologies for obtaining drinking water from non-traditional sources | 4.31 ± 1.07 | 5 (4–5) | 1–5 | 4.23 | 4.38 | 0.04 |
Descriptive Statistics | ||||||
---|---|---|---|---|---|---|
Mean ± Standard Deviation | Median (Q25–Q75) | Min.–Max. | Confidence Interval | Stand Error. | ||
−95.00% | +95.00% | |||||
Reduced abstraction of drinking water from rivers and other water bodies | 3.53 ± 1.23 | 4 (3–5) | 1–5 | 3.45 | 3.62 | 0.04 |
Reduced environmental impact | 3.17 ± 1.3 | 3 (2–4) | 1–5 | 3.08 | 3.26 | 0.05 |
Reducing pressure on the water supply and sewerage network | 2.99 ± 1.27 | 3 (2–4) | 1–5 | 2.91 | 3.08 | 0.04 |
Soil fertilisation | 3.26 ± 1.32 | 3 (2–4) | 1–5 | 3.17 | 3.35 | 0.05 |
Reduced energy and chemical consumption | 3.32 ± 1.27 | 3 (3–4) | 1–5 | 3.24 | 3.41 | 0.04 |
Groundwater level recovery | 3.57 ± 1.24 | 4 (3–5) | 1–5 | 3.48 | 3.65 | 0.04 |
Increased vegetation growth | 3.47 ± 1.26 | 4 (3–5) | 1–5 | 3.38 | 3.56 | 0.04 |
Recovery of fertiliser components | 3.33 ± 1.25 | 3 (3–4) | 1–5 | 3.24 | 3.42 | 0.04 |
Descriptive Statistics | ||||||
---|---|---|---|---|---|---|
Mean ± Standard Deviation | Median (Q25–Q75) | Min.–Max. | Confidence Interval | Stand Error. | ||
−95.00% | +95.00% | |||||
I am concerned about any form of grey water use | 2.56 ± 1.33 | 2 (1–4) | 1–5 | 2.47 | 2.65 | 0.05 |
Concerns about the quality of technology to produce drinking water from grey water | 3.1 ± 1.33 | 3 (2–4) | 1–5 | 3.01 | 3.19 | 0.05 |
Concerns about the parameter stability of drinking water produced from grey water | 3.24 ± 1.32 | 3 (2–4) | 1–5 | 3.15 | 3.33 | 0.05 |
Concerned about the high cost of drinking water produced from grey water | 3.29 ± 1.29 | 3 (2–4) | 1–5 | 3.20 | 3.38 | 0.05 |
Concerns about the need to convert the existing water and sewer systems to produce potable water from grey water | 3.39 ± 1.32 | 4 (2–5) | 1–5 | 3.30 | 3.48 | 0.05 |
I have absolutely no concerns about the use of the grey water | 2.26 ± 1.22 | 2 (1–3) | 1–5 | 2.18 | 2.34 | 0.04 |
C1 | C2 | C3 | C4 | C5 | C6 | C7 | C8 | |
---|---|---|---|---|---|---|---|---|
Women/≤34 (K/34) | 3.89 | 3.50 | 3.46 | 3.59 | 3.83 | 3.96 | 3.80 | 3.48 |
Women/35–44 (K/35–44) | 3.67 | 3.48 | 3.20 | 3.47 | 3.57 | 3.69 | 3.62 | 3.50 |
Women/45–54 (K/45–54) | 3.63 | 3.36 | 3.29 | 3.47 | 3.47 | 3.78 | 3.69 | 3.61 |
Women/≥55 (K/55) | 3.45 | 3.13 | 2.97 | 3.22 | 3.31 | 3.50 | 3.55 | 3.35 |
Men/≤34 (M/34) | 3.42 | 3.12 | 2.96 | 3.22 | 3.35 | 3.75 | 3.49 | 3.25 |
Men/35–44 (M/35–44) | 3.47 | 3.13 | 2.94 | 3.11 | 3.17 | 3.43 | 3.25 | 3.22 |
Men/45–54 (M/45–54) | 3.76 | 3.14 | 2.91 | 3.34 | 3.39 | 3.66 | 3.59 | 3.40 |
Men/≥55 (M/55) | 3.24 | 2.90 | 2.70 | 3.02 | 2.99 | 3.26 | 3.15 | 3.07 |
Free Expression | DIM.1 | DIM.2 | R2 | ||||
---|---|---|---|---|---|---|---|
b0 | p | b | p | b | p | ||
Reduced abstraction of drinking water from rivers and other water bodies (C1) | 3.566 | p < 0.001 | 0.194 | p < 0.01 | −0.029 | p = 0.772 | 0.81 |
Reduced environmental impact (C2) | 3.217 | p < 0.001 | 0.204 | p < 0.001 | 0.027 | p = 0.685 | 0.92 |
Reducing pressure on the water supply and sewerage network (C3) | 3.053 | p < 0.001 | 0.235 | p < 0.001 | 0.090 | p = 0.267 | 0.92 |
Soil fertilisation (C4) | 3.304 | p < 0.001 | 0.200 | p < 0.001 | −0.001 | p = 0.917 | 1.00 |
Reduced energy and chemical consumption (C5) | 3.385 | p < 0.001 | 0.248 | p < 0.001 | 0.016 | p = 0.832 | 0.93 |
Groundwater level recovery (C6) | 3.631 | p < 0.001 | 0.201 | p < 0.01 | −0.060 | p = 0.568 | 0.82 |
Increased vegetation growth (C7) | 3.517 | p < 0.001 | 0.210 | p < 0.001 | −0.099 | p = 0.187 | 0.92 |
Recovery of fertilising components (C8) | 3.359 | p < 0.001 | 0.165 | p < 0.01 | −0.100 | p = 0.132 | 0.91 |
C1 | C2 | C3 | C4 | C5 | C6 | C7 | C8 | |
---|---|---|---|---|---|---|---|---|
≤34/owns an irretrievable water meter (≤34/L) | 3.64 | 3.34 | 3.23 | 3.48 | 3.57 | 3.82 | 3.50 | 3.32 |
≤34/does not own an irretrievable water meter (≤34/B) | 3.61 | 3.24 | 3.13 | 3.32 | 3.53 | 3.85 | 3.71 | 3.38 |
35–44/owns an irretrievable water meter (35–44/L) | 3.66 | 3.34 | 3.22 | 3.40 | 3.41 | 3.72 | 3.52 | 3.48 |
35–44/does not own an irretrievable water meter (35–44/B) | 3.50 | 3.27 | 2.96 | 3.20 | 3.33 | 3.44 | 3.36 | 3.26 |
45–54/owns an irretrievable water meter (45–54/L) | 3.65 | 3.03 | 2.95 | 3.19 | 3.25 | 3.63 | 3.55 | 3.39 |
45–54/does not own an irretrievable water meter (45–54/B) | 3.76 | 3.39 | 3.15 | 3.55 | 3.56 | 3.75 | 3.67 | 3.55 |
≥55/owns an irretrievable water meter (≥55/L) | 3.31 | 2.82 | 2.82 | 3.00 | 3.07 | 3.28 | 3.31 | 3.13 |
≥55/does not own an irretrievable water meter (≥55/B) | 3.33 | 3.12 | 2.80 | 3.16 | 3.16 | 3.40 | 3.31 | 3.21 |
Free Expression | DIM.1 | DIM.2 | R2 | ||||
---|---|---|---|---|---|---|---|
b0 | p | b | p | b | p | ||
Reduced abstraction of drinking water from rivers and other water bodies (C1) | 3.557 | p < 0.001 | −0.148 | p < 0.001 | 0.122 | p = 0.122 | 0.93 |
Reduced environmental impact (C2) | 3.192 | p < 0.001 | −0.161 | p < 0.01 | −0.228 | p = 0.104 | 0.85 |
Reducing the pressure on the water supply and sewerage network (C3) | 3.030 | p < 0.001 | −0.157 | p < 0.01 | −0.102 | p = 0.293 | 0.90 |
Soil fertilisation (C4) | 3.287 | p < 0.001 | −0.167 | p < 0.001 | −0.156 | p < 0.05 | 0.96 |
Reduced energy and chemical consumption (C5) | 3.359 | p < 0.001 | −0.176 | p < 0.001 | −0.067 | p = 0.473 | 0.91 |
Groundwater level recovery (C6) | 3.611 | p < 0.001 | −0.194 | p < 0.001 | 0.108 | p = 0.303 | 0.92 |
Increased vegetation growth (C7) | 3.491 | p < 0.001 | −0.129 | p < 0.01 | 0.207 | p < 0.05 | 0.90 |
Recovery of fertilising components (C8) | 3.339 | p < 0.001 | −0.119 | p < 0.01 | 0.065 | p = 0.499 | 0.82 |
C1 | C2 | C3 | C4 | C5 | C6 | C7 | C8 | |
---|---|---|---|---|---|---|---|---|
Women/House (K/D) | 3.60 | 3.31 | 3.12 | 3.38 | 3.45 | 3.68 | 3.61 | 3.47 |
Women/Flat (K/M) | 3.70 | 3.46 | 3.50 | 3.54 | 3.74 | 3.72 | 3.82 | 3.50 |
Men/House (M/D) | 3.48 | 3.04 | 2.83 | 3.11 | 3.17 | 3.47 | 3.33 | 3.21 |
Men/Flat (M/M) | 3.42 | 3.14 | 3.00 | 3.46 | 3.38 | 3.64 | 3.51 | 3.33 |
Free Expression | DIM.1 | DIM.2 | R2 | ||||
---|---|---|---|---|---|---|---|
b0 | p | b | p | b | p | ||
Reduced abstraction of drinking water from rivers and other water bodies (C1) | 3.551 | p < 0.01 | 0.123 | p = 0.307 | −0.026 | p = 0.796 | 0.79 |
Reduced environmental impact (C2) | 3.238 | p < 0.01 | 0.203 | p = 0.115 | 0.045 | p = 0.499 | 0.97 |
Reducing the pressure on the water supply and sewerage network (C3) | 3.114 | p < 0.001 | 0.320 | p < 0.01 | 0.010 | p < 0.084 | 1.00 |
Soil fertilisation (C4) | 3.373 | p < 0.05 | 0.167 | p = 0.288 | 0.120 | p = 0.434 | 0.85 |
Reduced energy and chemical consumption (C5) | 3.435 | p < 0.01 | 0.261 | p < 0.05 | 0.040 | p = 0.29 | 1.00 |
Groundwater level recovery (C6) | 3.627 | p < 0.001 | 0.104 | p < 0.05 | 0.081 | p < 0.052 | 1.00 |
Increased vegetation growth (C7) | 3.565 | p < 0.001 | 0.227 | p < 0.01 | 0.053 | p < 0.05 | 1.00 |
Recovery of fertilising components (C8) | 3.378 | p < 0.01 | 0.132 | p = 0.16 | 0.079 | p = 0.302 | 0.95 |
C1 | C2 | C3 | C4 | C5 | C6 | C7 | C8 | |
---|---|---|---|---|---|---|---|---|
House/owns an irretrievable water meter (D/L) | 3.53 | 3.07 | 2.99 | 3.21 | 3.25 | 3.55 | 3.46 | 3.30 |
House/does not own an irretrievable water meter (D/B) | 3.55 | 3.24 | 2.93 | 3.25 | 3.34 | 3.57 | 3.44 | 3.34 |
Flat/owns an irretrievable water meter (M/L) | 3.61 | 3.06 | 3.13 | 3.23 | 3.45 | 3.61 | 3.39 | 3.42 |
Flat/does not own an irretrievable water meter (M/B) | 3.48 | 3.29 | 3.17 | 3.52 | 3.48 | 3.60 | 3.65 | 3.33 |
Free Expression | DIM.1 | DIM.2 | R2 | ||||
---|---|---|---|---|---|---|---|
b0 | p | b | p | b | p | ||
Reduced abstraction of drinking water from rivers and other water bodies (C1) | 3.543 | p < 0.01 | −0.038 | p = 0.296 | 0.052 | p = 0.276 | 0.90 |
Reduced environmental impact (C2) | 3.166 | p < 0.01 | 0.098 | p = 0.322 | −0.075 | p = 0.472 | 0.82 |
Reducing the pressure on the water supply and sewerage network (C3) | 3.057 | p < 0.01 | 0.086 | p = 0.23 | 0.105 | p = 0.238 | 0.93 |
Soil fertilisation (C4) | 3.300 | p < 0.01 | 0.159 | p < 0.05 | −0.017 | p = 0.375 | 1.00 |
Reduced energy and chemical consumption (C5) | 3.381 | p < 0.01 | 0.087 | p = 0.251 | 0.092 | p = 0.295 | 0.91 |
Groundwater level recovery (C6) | 3.584 | p < 0.01 | 0.016 | p = 0.279 | 0.033 | p = 0.187 | 0.94 |
Increased vegetation growth (C7) | 3.484 | p < 0.01 | 0.113 | p = 0.164 | −0.051 | p = 0.408 | 0.94 |
Recovery of fertilising components (C8) | 3.350 | p < 0.01 | −0.006 | p = 0.852 | 0.062 | p = 0.289 | 0.81 |
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Ober, J.; Karwot, J.; Sitinjak, C. Modelling Possible Household Uses of Grey Water in Poland using Property Fitting Analysis. Resources 2024, 13, 25. https://doi.org/10.3390/resources13020025
Ober J, Karwot J, Sitinjak C. Modelling Possible Household Uses of Grey Water in Poland using Property Fitting Analysis. Resources. 2024; 13(2):25. https://doi.org/10.3390/resources13020025
Chicago/Turabian StyleOber, Józef, Janusz Karwot, and Charli Sitinjak. 2024. "Modelling Possible Household Uses of Grey Water in Poland using Property Fitting Analysis" Resources 13, no. 2: 25. https://doi.org/10.3390/resources13020025