Quantification of the Impact of Solar Water Heating and Influence of Its Potential Utilization through Strategic Campaign: Case Study in Dimbaza, South Africa
Abstract
:1. Introduction
2. Objectives
- To assess the performance of the evacuated tube SWH coupled with an auxiliary electric heater with reference to the replaced electric water heater with the same storage capacity.
- To assess the perceptions and influence of the uptake of the SWH in the community due to different campaign methods.
- To assess the annual energy and cost savings based on electrical consumption and emissions of the greenhouse gases.
3. Research Questions
- What is the amount of electrical energy savings per month/annually because of replacing an electric water heater with an SWH with an auxiliary electric heater?
- What greenhouse savings are achieved by replacing an electric water heater with an SWH?
- How will the savings look like between the two seasons (winter and summer) in conjunction with the volume of hot water consumptions?
- How did the adopted campaigned strategies impact the perception and potential uptake of the utilization of the SWH technology in the community of Dimbaza?
4. Types of SWH
5. Materials and Methods
5.1. Materials and Specification of Solar Collector
5.2. Experimental Setup
5.3. Methods
6. Results and Discussion
6.1. Performance Profile of an Average Month Day Electrical Energy Consumed by Electrical Energy Consumed by Electric Water Heater and Hybrid SWH
6.2. Average Month–Day Performance of the Electric Geyser and the Solar Water Heater
6.3. Life-Cost Economic Analysis of the Hybrid SWH
6.4. Analysis from the Questionnaire (See Appendix A) Administered to the Sample Population
7. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
Appendix A. A Template of a Questionnaire Used to Collect Data in Low Income Residences in Dimbaza
Date | |
Interviewee |
Questions for the Questionnaire
- □
- No school
- □
- Primary school
- □
- High School
- □
- University or college completed
- □
- Other post grade-12 qualification (specify)______________
- □
- ≤3
- □
- 4–7
- □
- 8–11
- □
- ≥12
- □
- Married
- □
- Single
- □
- Divorced
- □
- Female
- □
- Male
- □
- Not specified
- □
- Employed
- □
- Unemployed
- □
- Child Grant
- □
- Pension Grant
- □
- Disabled Grant
- □
- Small Business
- □
- R 0–R 1860
- □
- R 1861–R 5000
- □
- R 5001–R 10,000
- □
- R10,001 and more
- □
- 2 k 100 L
- □
- 3 k 150 L
- □
- 4 k 200 L
- □
- Monitory Savings
- □
- Environmental benefits
- □
- Combined Campaign
- Do you have any knowledge about SWH?
- Do you think it installation of SWH would reduce your monthly electric cost?
- Do you think the use of SWH would have a positive impact on you economically, environmentally?
- Do you think hot water generated by fossils fuel for electric geyser contributes to climate change
- Can solar water heater be recommended for installation in the building?
- Do you think installation of SWH would contribute positively to your livelihood?
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Item | Material | Quantity |
---|---|---|
1 | 4 kW, 200 L electric geyser | 1 |
2 | 2 kW, 200 L flat plate collector SWH | 1 |
3 | TVER-E50B2 power meter | 1 |
4 | T-Minol 130 flow meters | 1 |
5 | 12 bits S-TMB temperature sensors | 4 |
6 | 12 bits S-THB ambient temperature and relative humidity sensor | 1 |
7 | Solar radiation shield | 1 |
8 | RXW-LIB-868-Silicon pyranometer | 1 |
9 | S-UCC electronic input pulse adapter | 10 |
10 | U30-NRC 15 channels hobo data loggers | 1 |
11 | 4.5 V DC battery | 1 |
12 | Waterproof enclosure | 1 |
13 | Hoboware pro software | 1 |
Parameter | Domestic Hot Water System |
---|---|
Gross collector area (m2) | 1.8 |
Aperture area (m2) | 1.3 |
Collector slope (o) | 33.0 |
Storage tank (L) | 200.0 |
Auxiliary power (kW) | 2.0 |
Internal tube diameter (mm) | 43.0 |
External tube diameter (mm) | 58.0 |
Length of evacuated tube (mm) | 1800.0 |
Month–Day | Vg (L) | Eg (kWh) | Vs (L) | Ets (kWh) | Ebs (kWh) | Esol (kWh) | Esa (kWh) |
---|---|---|---|---|---|---|---|
January | 206.16 | 18.43 | 216.49 | 20.14 | 2.70 | 30.83 | 487.48 |
February | 209.18 | 18.56 | 219.75 | 20.46 | 3.87 | 31.22 | 455.40 |
March | 221.77 | 22.87 | 226.91 | 24.29 | 7.97 | 29.67 | 461.80 |
April | 231.59 | 24.69 | 231.14 | 27.27 | 12.41 | 27.73 | 380.63 |
May | 241.70 | 24.91 | 245.13 | 27.47 | 15.00 | 24.45 | 307.06 |
June | 261.88 | 25.89 | 268.6 | 28.36 | 15.53 | 24.58 | 321.26 |
July | 266.44 | 26.56 | 261.62 | 29.11 | 17.83 | 23.99 | 270.63 |
August | 256.49 | 24.61 | 255.50 | 27.24 | 18.55 | 21.92 | 188.02 |
September | 251.81 | 22.59 | 249.39 | 23.70 | 17.27 | 18.86 | 164.96 |
October | 249.62 | 20.60 | 231.82 | 22.68 | 6.18 | 30.28 | 447.12 |
November | 211.17 | 18.54 | 213.00 | 20.54 | 3.71 | 30.38 | 459.72 |
December | 201.65 | 18.07 | 206.16 | 19.91 | 3.08 | 33.49 | 464.91 |
Average | 234.12 | 22.19 | 235.45 | 24.26 | 10.34 | 27.28 | 367.42 |
Year | Energy Saving (kWh) | Tariff with 15% Hike (R) | FV Cost Saving (R) | NPV Cost Saving (R) |
---|---|---|---|---|
1 | 4408.99 | 1.2 | 5290.788 | 4967.876 |
2 | 4408.99 | 1.38 | 6084.406 | 5364.373 |
3 | 4408.99 | 1.56 | 6878.024 | 5693.966 |
4 | 4408.99 | 1.74 | 7671.643 | 5963.345 |
5 | 4408.99 | 1.92 | 8465.261 | 6178.632 |
6 | 4408.99 | 2.1 | 9258.879 | 6345.426 |
7 | 4408.99 | 2.28 | 10,052.5 | 6468.844 |
8 | 4408.99 | 2.46 | 10,846.12 | 6553.561 |
9 | 4408.99 | 2.64 | 11,639.73 | 6603.84 |
10 | 4408.99 | 2.82 | 12,433.35 | 6623.57 |
11 | 4408.99 | 3 | 13,226.97 | 6616.292 |
12 | 4408.99 | 3.18 | 14,020.59 | 6585.23 |
13 | 4408.99 | 3.36 | 14,814.21 | 6533.313 |
14 | 4408.99 | 3.54 | 15,607.82 | 6463.204 |
15 | 4408.99 | 3.72 | 16,401.44 | 6377.316 |
Age Group | 25–34 | 35–44 | 45–59 | >60 |
---|---|---|---|---|
Sex distribution | ||||
Male | 12 | 15 | 30 | 9 |
Female | 18 | 24 | 36 | 6 |
Occupation distribution | ||||
Employed | 9 | 12 | 12 | 0 |
Child grant | 18 | 21 | 39 | 12 |
Pension grant | 0 | 0 | 6 | 3 |
Disable grant | 0 | 6 | 3 | 0 |
Small business | 3 | 0 | 3 | 0 |
Others | 0 | 0 | 3 | 0 |
Electric Water heater sizes | ||||
2 kW 100 L | 12 | 12 | 33 | 3 |
3 kW 150 L | 9 | 15 | 24 | 6 |
4 kW 200 L | 9 | 12 | 12 | 3 |
Number of interested household personals | ||||
Monetary saving | 15 | 21 | 39 | 6 |
Environmental benefits | 18 | 27 | 42 | 6 |
Combined campaign | 27 | 33 | 60 | 6 |
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Peter, S.; Kambule, N.; Tangwe, S.; Yessoufou, K. Quantification of the Impact of Solar Water Heating and Influence of Its Potential Utilization through Strategic Campaign: Case Study in Dimbaza, South Africa. Energies 2022, 15, 8283. https://doi.org/10.3390/en15218283
Peter S, Kambule N, Tangwe S, Yessoufou K. Quantification of the Impact of Solar Water Heating and Influence of Its Potential Utilization through Strategic Campaign: Case Study in Dimbaza, South Africa. Energies. 2022; 15(21):8283. https://doi.org/10.3390/en15218283
Chicago/Turabian StylePeter, Sinethemba, Njabulo Kambule, Stephen Tangwe, and Kowiyou Yessoufou. 2022. "Quantification of the Impact of Solar Water Heating and Influence of Its Potential Utilization through Strategic Campaign: Case Study in Dimbaza, South Africa" Energies 15, no. 21: 8283. https://doi.org/10.3390/en15218283
APA StylePeter, S., Kambule, N., Tangwe, S., & Yessoufou, K. (2022). Quantification of the Impact of Solar Water Heating and Influence of Its Potential Utilization through Strategic Campaign: Case Study in Dimbaza, South Africa. Energies, 15(21), 8283. https://doi.org/10.3390/en15218283