dc.creator | Canales, Fausto | |
dc.creator | Gwózdziej-Mazur, Joanna | |
dc.creator | Jadwiszczak, Piotr | |
dc.creator | Struk-Sokolowska, Joanna | |
dc.creator | Wartalska, Katarzyna | |
dc.creator | Wdowikowski, Marcin | |
dc.creator | Kázmierczak, Bartosz | |
dc.date | 2020-07-22T19:12:18Z | |
dc.date | 2020-07-22T19:12:18Z | |
dc.date | 2020 | |
dc.date.accessioned | 2023-10-03T19:59:12Z | |
dc.date.available | 2023-10-03T19:59:12Z | |
dc.identifier | 2073-4441 | |
dc.identifier | https://hdl.handle.net/11323/6805 | |
dc.identifier | doi:10.3390/w12071932 | |
dc.identifier | Corporación Universidad de la Costa | |
dc.identifier | REDICUC - Repositorio CUC | |
dc.identifier | https://repositorio.cuc.edu.co/ | |
dc.identifier.uri | https://repositorioslatinoamericanos.uchile.cl/handle/2250/9173598 | |
dc.description | Abstract: Rainwater harvesting (RWH) for domestic uses is widely regarded as an economic and ecological solution in water conservation and storm management programs. This paper aims at evaluating long-term trends in 20-day cumulative rainfall periods per year in Poland, for assessing its impact on the design and operation conditions for RWH systems and resource availability. The time-series employed corresponds to a set of 50-year long time-series of rainfall (from 1970 to 2019) recorded at 19 synoptic meteorological stations scattered across Poland, one of the European countries with the lowest water availability index. The methods employed for assessing trends were the Mann–Kendall test (M–K) and the Sen’s slope estimator. Most of the datasets exhibit stationary behaviour during the 50-year long period, however, statistically significant downward trends were detected for precipitations in Wrocław and Opole. The findings of this study are valuable assets for integrated water management and sustainable planning in Poland. | |
dc.format | application/pdf | |
dc.language | eng | |
dc.publisher | Water | |
dc.relation | 1. Gutry-Korycka, M.; Sadurski, A.; Kundzewicz, Z.; Pociask-Karteczka, J.; Skrzypczyk, L.; Pociask-Karteczka, J.
Zasoby wodne a ich wykorzystanie. Nauka 2014, 1, 77–98. | |
dc.relation | 2. Olichwer, T. Long-term variability of water resources in mountainous areas: Case Study—Kłodzko region (SW Poland). Carpathian J. Earth Environ. Sci. 2019, 14, 29–38. [CrossRef] | |
dc.relation | 3. Małecki, Z.J.; Goł ˛ebiak, P. Zasoby wodne Polski i ´swiata. Zesz. Nauk. In˙zynieria L ˛adowa Wodna Kształtowaniu Srodowiska ´ 2012, 7, 50–56. | |
dc.relation | 4. Kuczy ´nski, W.; Zuchowicki, W. Ocena aktualnej sytuacji w zaopatrzeniu w wode{ogonek} w Polsce na tle sytuacji w ´swiecie. Rocz. Ochr. Sr. 2011, 12, 419–465. | |
dc.relation | 5. Orli ´nska-Wo´zniak, P.; Wilk, P.; G ˛ebala, J. Water availability in reference to water needs in Poland.
Meteorol. Hydrol. Water Manag. 2014, 1, 45–50. [CrossRef] | |
dc.relation | 6. Sucho ˙zebrski, J. Zasoby wodne Polski. In Zarz ˛adzanie Zasobami Wodnymi w Polsce; Global Compact Network
Poland: Warsaw, Poland, 2018; pp. 92–96. | |
dc.relation | 7. Panasiuk, D.; Suduk, O.; Skrypchuk, P.; Miłaszewski, R. Comparison of the water footprint in Poland and
Ukraine. Ekon. Srodowisko ´ 2018, 4, 112–123. | |
dc.relation | 8. Michalczyk, Z. Odpływ ´sredni, zmienno´s´c w czasie i zró˙znicowanie przestrzenne. In Hydrologia Polski; Jokiel, P., Marszelewski, W., Pociask-Karteczka, J., Eds.; Wydawnictwo Naukowe PWN SA: Warsaw, Poland, 2017; ISBN 978-83-01-19618-9. | |
dc.relation | 9. Hegerl, G.C.; Black, E.; Allan, R.P.; Ingram, W.J.; Polson, D.; Trenberth, K.E.; Chadwick, R.S.; Arkin, P.A.;
Sarojini, B.B.; Becker, A.; et al. Challenges in Quantifying Changes in the Global Water Cycle. Bull. Am.
Meteorol. Soc. 2015, 96, 1097–1115. [CrossRef] | |
dc.relation | 10. Falloon, P.; Betts, R. Climate impacts on European agriculture and water management in the context of
adaptation and mitigation—The importance of an integrated approach. Sci. Total Environ. 2010, 408, 5667–5687.
[CrossRef] | |
dc.relation | 11. Kundzewicz, Z.W.; Matczak, P. Climate change regional review: Poland. Wiley Interdiscip. Rev. Clim. Chang.
2012, 3, 297–311. [CrossRef] | |
dc.relation | 12. Lipi ´nska, D. European Union Water Policy: Key Issues and Challenges. Comp. Econ. Res. Cent. East Eur.
2012, 15, 123–141. [CrossRef] | |
dc.relation | 13. Kutyłowska, M. Forecasting failure rate of water pipes. Water Supply 2019, 19, 264–273. [CrossRef] | |
dc.relation | 14. Piasecki, A.; Jurasz, J.; Ka´zmierczak, B. Forecasting Daily Water Consumption: A Case Study in Torun,
Poland. Period. Polytech. Civ. Eng. 2018, 62, 818–824. [CrossRef] | |
dc.relation | 15. Dawidowicz, J.; Czapczuk, A.; Piekarski, J. The Application of Artificial Neural Networks in the Assessment
of Pressure Losses in Water Pipes in the Design of Water Distribution Systems. Rocz. Ochr. Srodowiska ´ 2018,
20, 292–308. | |
dc.relation | 16. Ward, S.; Barr, S.; Memon, F.; Butler, D. Rainwater harvesting in the UK: Exploring water-user perceptions.
Urban. Water J. 2013, 10, 112–126. [CrossRef] | |
dc.relation | 17. Steffen, J.; Jensen, M.; Pomeroy, C.A.; Burian, S.J. Water Supply and Stormwater Management Benefits of
Residential Rainwater Harvesting in U.S. Cities. JAWRA J. Am. Water Resour. Assoc. 2013, 49, 810–824.
[CrossRef] | |
dc.relation | 18. Torres, M.N.; Fontecha, J.E.; Zhu, Z.; Walteros, J.L.; Rodríguez, J.P. A participatory approach based on
stochastic optimization for the spatial allocation of Sustainable Urban Drainage Systems for rainwater
harvesting. Environ. Model. Softw. 2020, 123, 104532. [CrossRef] | |
dc.relation | 19. Deitch, M.J.; Feirer, S.T. Cumulative impacts of residential rainwater harvesting on stormwater discharge
through a peri-urban drainage network. J. Environ. Manag. 2019, 243, 127–136. [CrossRef] | |
dc.relation | 20. Teston, A.; Teixeira, C.; Ghisi, E.; Cardoso, E. Impact of Rainwater Harvesting on the Drainage System:
Case Study of a Condominium of Houses in Curitiba, Southern Brazil. Water 2018, 10, 1100. [CrossRef] | |
dc.relation | 21. Semaan, M.; Day, S.D.; Garvin, M.; Ramakrishnan, N.; Pearce, A. Optimal sizing of rainwater harvesting
systems for domestic water usages: A systematic literature review. Resour. Conserv. Recycl. X 2020, 6, 100033.
[CrossRef] | |
dc.relation | 22. Council of the European Union. Council Directive 98/83/EC of 3 November 1998 on the Quality of Water Intended
for Human Consumption; Council of the European Union: Brussel, Belgium, 1998. | |
dc.relation | 23. European Parliament; Council of the European Union. Directive 2006/7/EC of the European Parliament and of
the Council of 15 February 2006 Concerning the Management of Bathing Water Quality and Eepealing Directive
76/160/EEC; Council of the European Union: Brussel, Belgium, 2006. | |
dc.relation | 24. Jeong, G.Y.; Kim, J.Y.; Seo, J.; Kim, G.M.; Jin, H.C.; Chun, Y. Long-range transport of giant particles in Asian
dust identified by physical, mineralogical, and meteorological analysis. Atmos. Chem. Phys. 2014, 14, 505–521.
[CrossRef] | |
dc.relation | 25. Richon, C.; Dutay, J.-C.; Dulac, F.; Wang, R.; Balkanski, Y. Modeling the biogeochemical impact of atmospheric
phosphate deposition from desert dust and combustion sources to the Mediterranean Sea. Biogeosciences
2018, 15, 2499–2524. [CrossRef] | |
dc.relation | 26. Orlovi´c-Leko, P.; Vidovi´c, K.; Cigleneˇcki, I.; Omanovi´c, D.; Sikiri´c, M.D.; Šimuni´c, I. Physico-Chemical
Characterization of an Urban Rainwater (Zagreb, Croatia). Atmos. Basel 2020, 11, 144. [CrossRef] | |
dc.relation | 27. Kieber, R.J.; Peake, B.; Willey, J.D.; Avery, G.B. Dissolved organic carbon and organic acids in coastal New
Zealand rainwater. Atmos. Environ. 2002, 36, 3557–3563. [CrossRef] | |
dc.relation | 28. Zdeb, M.; Zamorska, J.; Papciak, D.; Sły´s, D. The Quality of Rainwater Collected from Roofs and the
Possibility of Its Economic Use. Resources 2020, 9, 12. [CrossRef] | |
dc.relation | 29. Kus, B.; Kandasamy, J.; Vigneswaran, S.; Shon, H.K. Analysis of first flush to improve the water quality in
rainwater tanks. Water Sci. Technol. 2010, 61, 421–428. [CrossRef] | |
dc.relation | 30. Song, Y.; Du, X.; Ye, X. Analysis of Potential Risks Associated with Urban Stormwater Quality for Managed
Aquifer Recharge. Int. J. Environ. Res. Public Health 2019, 16, 3121. [CrossRef] | |
dc.relation | 31. Willey, J.D.; Kieber, R.J.; Eyman, M.S.; Avery, G.B. Rainwater dissolved organic carbon: Concentrations and
global flux. Glob. Biogeochem. Cycles 2000, 14, 139–148. [CrossRef] | |
dc.relation | 32. Helmreich, B.; Horn, H. Opportunities in rainwater harvesting. Desalination 2009, 248, 118–124. [CrossRef] | |
dc.relation | 33. Kaushik, R.; Balasubramanian, R. Assessment of bacterial pathogens in fresh rainwater and airborne
particulate matter using Real-Time PCR. Atmos. Environ. 2012, 46, 131–139. [CrossRef] | |
dc.relation | 34. Leong, J.Y.C.; Oh, K.S.; Poh, P.E.; Chong, M.N. Prospects of hybrid rainwater-greywater decentralised system
for water recycling and reuse: A review. J. Clean. Prod. 2017, 142, 3014–3027. [CrossRef] | |
dc.relation | 35. Al-Khatib, I.; Arafeh, G.; Al-Qutob, M.; Jodeh, S.; Hasan, A.; Jodeh, D.; van der Valk, M. Health Risk
Associated with Some Trace and Some Heavy Metals Content of Harvested Rainwater in Yatta Area, Palestine.
Water 2019, 11, 238. [CrossRef] | |
dc.relation | 36. Huston, R.; Chan, Y.C.; Chapman, H.; Gardner, T.; Shaw, G. Source apportionment of heavy metals and ionic
contaminants in rainwater tanks in a subtropical urban area in Australia. Water Res. 2012, 46, 1121–1132.
[CrossRef] [PubMed] | |
dc.relation | 37. Mendez, C.B.; Klenzendorf, J.B.; Afshar, B.R.; Simmons, M.T.; Barrett, M.E.; Kinney, K.A.; Kirisits, M.J.
The effect of roofing material on the quality of harvested rainwater. Water Res. 2011, 45, 2049–2059. [CrossRef]
[PubMed] | |
dc.relation | 38. Gikas, G.D.; Tsihrintzis, V.A. Effect of first-flush device, roofing material, and antecedent dry days on water
quality of harvested rainwater. Environ. Sci. Pollut. Res. 2017, 24, 21997–22006. [CrossRef] [PubMed] | |
dc.relation | 39. Sneyers, R. On the Statistical Analysis of Series of Observations. WMO Technical Note No.143; World Meteorological
Organization: Geneva, Switzerland, 1990. | |
dc.relation | 40. Coombes, P.J.; Barry, M.E. The effect of selection of time steps and average assumptions on the continuous
simulation of rainwater harvesting strategies. Water Sci. Technol. 2007, 55, 125–133. [CrossRef] [PubMed] | |
dc.relation | 41. IMGW Polish Institute of Meteorology and Water Management—National Research Institute (IMGW).
Available online: https://www.imgw.pl/instytut/imgw-pib (accessed on 2 January 2020). | |
dc.relation | 42. Pi ´nskwar, I.; Chory ´nski, A.; Graczyk, D.; Kundzewicz, Z.W. Observed changes in extreme precipitation in
Poland: 1991–2015 versus 1961–1990. Theor. Appl. Climatol. 2018, 135, 773–787. [CrossRef] | |
dc.relation | 43. Lupikasza, E. Spatial and temporal variability of extreme precipitation in Poland in the period 1951–2006.
Int. J. Climatol. 2010, 30, 991–1007. [CrossRef] | |
dc.relation | 44. Ka´zmierczak, B.; Wdowikowski, M.; Gwo´zdziej-Mazur, J. Trends in daily changes of precipitation on the
example of Wrocław. Ekon. Sr. 2019, 1, 142–151. | |
dc.relation | 45. Urban, G.; Richterová, D.; Kliegrová, S.; Zusková, I. Durability of snow cover and its long-term variability in
the Western Sudetes Mountains. Theor. Appl. Climatol. 2019, 137, 2681–2695. [CrossRef] | |
dc.relation | 46. Struk-Sokołowska, J.; Gwo ´zdziej-Mazur, J.; Jadwiszczak, P.; Butarewicz, A.; Ofman, P.; Wdowikowski, M.;
Ka ´zmierczak, B. The Quality of Stored Rainwater for Washing Purposes. Water 2020, 12, 252. [CrossRef] | |
dc.relation | 47. Ndehedehe, C.E.; Ferreira, V.G. Assessing land water storage dynamics over South America. J. Hydrol. 2020,
580, 124339. [CrossRef] | |
dc.relation | 48. Sharma, S.; Mujumdar, P.P. On the relationship of daily rainfall extremes and local mean temperature.
J. Hydrol. 2019, 572, 179–191. [CrossRef] | |
dc.relation | 49. Ali, R.; Ismael, A.; Heryansyah, A.; Nawaz, N. Long Term Historic Changes in the Flow of Lesser Zab River,
Iraq. Hydrology 2019, 6, 22. [CrossRef] | |
dc.relation | 50. Langat, P.; Kumar, L.; Koech, R. Temporal Variability and Trends of Rainfall and Streamflow in Tana River
Basin, Kenya. Sustainability 2017, 9, 1963. [CrossRef] | |
dc.relation | 51. Arrieta-Castro, M.; Donado-Rodríguez, A.; Acuña, G.J.; Canales, F.A.; Teegavarapu, R.S.V.; Ka ´zmierczak, B.
Analysis of Streamflow Variability and Trends in the Meta River, Colombia. Water 2020, 12, 1451. [CrossRef] | |
dc.relation | 52. Jaiswal, R.K.; Lohani, A.K.; Tiwari, H.L. Statistical Analysis for Change Detection and Trend Assessment in
Climatological Parameters. Environ. Process. 2015, 2, 729–749. [CrossRef] | |
dc.relation | 53. Wijngaard, J.B.; Klein Tank, A.M.G.; Können, G.P. Homogeneity of 20th century European daily temperature
and precipitation series. Int. J. Climatol. 2003, 23, 679–692. [CrossRef] | |
dc.relation | 54. Ledvinka, O.; Lamacova, A. Detection of field significant long-term monotonic trends in spring yields.
Stoch. Environ. Res. Risk Assess. 2015, 29, 1463–1484. [CrossRef] | |
dc.relation | 55. Yue, S.; Pilon, P.; Phinney, B.; Cavadias, G. The influence of autocorrelation on the ability to detect trend in
hydrological series. Hydrol. Process. 2002, 16, 1807–1829. [CrossRef] | |
dc.relation | 56. Onyutha, C. Statistical Uncertainty in Hydrometeorological Trend Analyses. Adv. Meteorol. 2016, 2016, 8701617.
[CrossRef] | |
dc.relation | 57. Wagesho, N.; Goel, N.K.; Jain, M.K. Investigation of non-stationarity in hydro-climatic variables at Rift Valley
lakes basin of Ethiopia. J. Hydrol. 2012, 444–445, 113–133. [CrossRef] | |
dc.relation | 58. Makki, A.A.; Stewart, R.A.; Panuwatwanich, K.; Beal, C. Revealing the determinants of shower water end
use consumption: Enabling better targeted urban water conservation strategies. J. Clean. Prod. 2013, 60,
129–146. [CrossRef] | |
dc.relation | 59. Lee, M.; Tansel, B.; Balbin, M. Influence of residential water use efficiency measures on household water
demand: A four year longitudinal study. Resour. Conserv. Recycl. 2011, 56, 1–6. [CrossRef] | |
dc.relation | 60. Lee, M.; Tansel, B. Water conservation quantities vs customer opinion and satisfaction with water efficient
appliances in Miami, Florida. J. Environ. Manag. 2013, 128, 683–689. [CrossRef] [PubMed] | |
dc.relation | 61. Polish Geological Institute Groundwater Resources in Poland. Available online: https://www.pgi.gov.pl/en/
phs/tasks/8862-groundwater-resources-in-poland.html (accessed on 6 June 2020). | |
dc.relation | 62. Witkowski, A.J.; Kowalczyk, A.; Rubin, H.; Rubin, K. Groundwater quality and migration of pollutants in
the multi-aquifer system of the former chemical works “Tarnowskie Góry” area. Polish Geol. Inst. Spec. Pap.
2008, 24, 123–130. | |
dc.relation | 63. Montcoudiol, N.; Isherwood, C.; Gunning, A.; Kelly, T.; Younger, P.L. Shale gas impacts on groundwater
resources: Understanding the behavior of a shallow aquifer around a fracking site in Poland. Energy Procedia
2017, 125, 106–115. [CrossRef] | |
dc.relation | 64. Jakóbczyk-Karpierz, S.; Sl´ ósarczyk, K.; Sitek, S. Tracing multiple sources of groundwater pollution in a
complex carbonate aquifer (Tarnowskie Góry, southern Poland) using hydrogeochemical tracers, TCE, PCE,
SF6 and CFCs. Appl. Geochem. 2020, 118. [CrossRef] | |
dc.rights | CC0 1.0 Universal | |
dc.rights | http://creativecommons.org/publicdomain/zero/1.0/ | |
dc.rights | info:eu-repo/semantics/openAccess | |
dc.rights | http://purl.org/coar/access_right/c_abf2 | |
dc.subject | Rainwater | |
dc.subject | Rainwater harvesting | |
dc.subject | Mann-Kendall | |
dc.subject | Rainfall trends | |
dc.title | Long-term trends in 20-day cumulative precipitation for residential rainwater harvesting in Poland | |
dc.type | Artículo de revista | |
dc.type | http://purl.org/coar/resource_type/c_6501 | |
dc.type | Text | |
dc.type | info:eu-repo/semantics/article | |
dc.type | info:eu-repo/semantics/publishedVersion | |
dc.type | http://purl.org/redcol/resource_type/ART | |
dc.type | info:eu-repo/semantics/acceptedVersion | |
dc.type | http://purl.org/coar/version/c_ab4af688f83e57aa | |