188
R. Ula´ nczyk et al.
Economy under grant agreement n° POIG 01.01.02-24-078/09 and from the Interreg Central Europe
Programme—project n° CE110.
References
1. Cosgrove WJ, Loucks DP (2015) Water management: Current and future challenges and
research directions. Water Resour Res 51:4823–4839. https://doi.org/10.1002/2014WR016869
2. Daoliang L, Shuangyin L (2019) Water quality evaluation. In Water quality monitoring and
management basis, technology and case studies. Academic Press, London, pp 113–159
3. Xua C, Zhangb J, Bia X, Xua Z, Hea Y, Gin KY-H (2017) Developing an integrated 3Dhydrodynamic and emerging contaminant model for assessing water quality in a Yangtze
Estuary Reservoir. Chemosphere 188:218–230
4. Kaçıkoç M, Beyhan M (2014) Hydrodynamic and Water Quality Modeling of Lake E˘ girdir.
CLEAN Soil Air Water 42:1573–1582. https://doi.org/10.1002/clen.201300455
5. Molina JP, Rodríguez-Gonzálvez P, Molina C, González-Aguilera D, Espejo F (2014) Geomatic
methods at the service of water resources modelling. J Hydrol 509:150–162
6. Matysik M, Absalon D, Habel M, Maerker M (2020) Surface water quality analysis using
CORINE data: an application to assess reservoirs in Poland. Remote Sens 2020(12):979. https://
doi.org/10.3390/rs12060979
7. Heller V (2011) Scale effects in physical hydraulic engineering models. J Hydraul Res
49(3):293–306. https://doi.org/10.1080/00221686.2011.578914
8. Plewa S, Góralczyk M (1978) Rzecz o Wi´ sle. Program Wisła. The National Film Archive’s
Digital Repository 36/78B, Release Date: 9 Sep 1978. http://www.repozytorium.fn.org.pl.
Accessed 6 Mar 2019
9. Gallisdorfer MS, Bennett SJ, Atkinson JF, Ghaneeizad SM, Brooks AP, Simon A, Langendoen
EJ (2014) Physical-scale model designs for engineered log jams in rivers. J Hydro-environ Res
8(2):115–128. https://doi.org/10.1016/j.jher.2013.10.002
10. Bousmar D, Courtois E, Van Audenhaege L, Rollin X (2018) Performance of a fish pass for
multiple species: Scale model investigation. E3S Web of Conferences 40, 03010. https://doi.
org/10.1051/e3sconf/20184003010
11. Solov’eva DA, Nigmatulin RI (2010) Investigation of the spring thermal bar phenomenon based
on mathematical and laboratory modeling. Dokl. Earth Sci 434:1346. https://doi.org/10.1134/
S1028334X10100120
12. Ashraf M, Soliman AH, El-Ghorab E, El Zawahry A (2018) Assessment of embankment dams
breaching using large scale physical modeling and statistical methods. Water Sci 32(2):362–
379. https://doi.org/10.1016/j.wsj.2018.05.002
13. Begam S, Sen D, Dey S (2018) Moraine dam breach and glacial lake outburst flood generation
by physical and numerical models. J Hydrol 563:694–710. https://doi.org/10.1016/j.jhydrol.
2018.06.038
14. Orlob GT (1983) Introduction. In: Orlob GT (ed) Mathematical modelling of water quality:
Streams, lakes and reservoirs. International series on applied system analysis. Wiley, Chichester,
pp 1–10
15. Streeter HW, Phelps EB (1925) A study of the pollution and natural purification of the Ohio
Rivers. US Public Health Service Bulletin No. 146
16. Mauersberger P (1983) General principles in deterministic water quality modeling. In: Orlob
GT (ed) Mathematical modelling of water quality: Streams, lakes and reservoirs. International
series on applied system analysis. Wiley, Chichester, pp 42–115
17. Janssen ABG, Arhonditsis GB, Beusen A, Bolding K, Bruce L, Bruggeman J, Couture R-M,
Downing AS, Elliott JA, Frassl MA, Gal G, Gerla DJ, Hipsey MR, Hu F, Ives SC, Janse JH,
Jeppesen E, Johnk KD, Kneis D, Kong X, Kuiper JJ, Lehmann MK, Lemmen C, Ozkundakci
R. Ula´ nczyk et al.
Economy under grant agreement n° POIG 01.01.02-24-078/09 and from the Interreg Central Europe
Programme—project n° CE110.
References
1. Cosgrove WJ, Loucks DP (2015) Water management: Current and future challenges and
research directions. Water Resour Res 51:4823–4839. https://doi.org/10.1002/2014WR016869
2. Daoliang L, Shuangyin L (2019) Water quality evaluation. In Water quality monitoring and
management basis, technology and case studies. Academic Press, London, pp 113–159
3. Xua C, Zhangb J, Bia X, Xua Z, Hea Y, Gin KY-H (2017) Developing an integrated 3Dhydrodynamic and emerging contaminant model for assessing water quality in a Yangtze
Estuary Reservoir. Chemosphere 188:218–230
4. Kaçıkoç M, Beyhan M (2014) Hydrodynamic and Water Quality Modeling of Lake E˘ girdir.
CLEAN Soil Air Water 42:1573–1582. https://doi.org/10.1002/clen.201300455
5. Molina JP, Rodríguez-Gonzálvez P, Molina C, González-Aguilera D, Espejo F (2014) Geomatic
methods at the service of water resources modelling. J Hydrol 509:150–162
6. Matysik M, Absalon D, Habel M, Maerker M (2020) Surface water quality analysis using
CORINE data: an application to assess reservoirs in Poland. Remote Sens 2020(12):979. https://
doi.org/10.3390/rs12060979
7. Heller V (2011) Scale effects in physical hydraulic engineering models. J Hydraul Res
49(3):293–306. https://doi.org/10.1080/00221686.2011.578914
8. Plewa S, Góralczyk M (1978) Rzecz o Wi´ sle. Program Wisła. The National Film Archive’s
Digital Repository 36/78B, Release Date: 9 Sep 1978. http://www.repozytorium.fn.org.pl.
Accessed 6 Mar 2019
9. Gallisdorfer MS, Bennett SJ, Atkinson JF, Ghaneeizad SM, Brooks AP, Simon A, Langendoen
EJ (2014) Physical-scale model designs for engineered log jams in rivers. J Hydro-environ Res
8(2):115–128. https://doi.org/10.1016/j.jher.2013.10.002
10. Bousmar D, Courtois E, Van Audenhaege L, Rollin X (2018) Performance of a fish pass for
multiple species: Scale model investigation. E3S Web of Conferences 40, 03010. https://doi.
org/10.1051/e3sconf/20184003010
11. Solov’eva DA, Nigmatulin RI (2010) Investigation of the spring thermal bar phenomenon based
on mathematical and laboratory modeling. Dokl. Earth Sci 434:1346. https://doi.org/10.1134/
S1028334X10100120
12. Ashraf M, Soliman AH, El-Ghorab E, El Zawahry A (2018) Assessment of embankment dams
breaching using large scale physical modeling and statistical methods. Water Sci 32(2):362–
379. https://doi.org/10.1016/j.wsj.2018.05.002
13. Begam S, Sen D, Dey S (2018) Moraine dam breach and glacial lake outburst flood generation
by physical and numerical models. J Hydrol 563:694–710. https://doi.org/10.1016/j.jhydrol.
2018.06.038
14. Orlob GT (1983) Introduction. In: Orlob GT (ed) Mathematical modelling of water quality:
Streams, lakes and reservoirs. International series on applied system analysis. Wiley, Chichester,
pp 1–10
15. Streeter HW, Phelps EB (1925) A study of the pollution and natural purification of the Ohio
Rivers. US Public Health Service Bulletin No. 146
16. Mauersberger P (1983) General principles in deterministic water quality modeling. In: Orlob
GT (ed) Mathematical modelling of water quality: Streams, lakes and reservoirs. International
series on applied system analysis. Wiley, Chichester, pp 42–115
17. Janssen ABG, Arhonditsis GB, Beusen A, Bolding K, Bruce L, Bruggeman J, Couture R-M,
Downing AS, Elliott JA, Frassl MA, Gal G, Gerla DJ, Hipsey MR, Hu F, Ives SC, Janse JH,
Jeppesen E, Johnk KD, Kneis D, Kong X, Kuiper JJ, Lehmann MK, Lemmen C, Ozkundakci
