References
- H.-C. Fleming, G. Schaule, T. Greibe, J. Schmitt, A. Tamachkiarowa,
Biofouling the Achilles heel of membrane processes,
Desalination, 113 (1997) 215–225.
- H.S. Vrouwenvelder, J.A.M. van Passen, H.C. Folmer, J.A.M.H.
Hofman, M.M. Nederlof, Biofouling of membranes for drinking
water production, Desalination, 118 (1998) 157–166.
- A. Matin, Z. Khan, S.M.J. Zaidi, M.C. Boyce, Biofouling in
reverse osmosis membranes for seawater desalination: phenomena
and prevention, Desalination, 281 (2011) 1–16.
- V. Bonnelye, M.A. Sanz, J.P. Durand, L. Plasse, F. Gueguen, P.
Mazounie, Reverse osmosis on open intake seawater: pre-treatment
strategy, Desalination, 167 (2004) 191–200.
- T. Nguyen, F.A. Roddick, L. Fan, Biofouling of water treatment
membranes: a review of the underlying causes, monitoring techniques,
and control measures, Membranes, 2 (2012) 804–840.
- S. Li, S.-T. Lee, S. Sinha, T. Leiknes, G.L. Amy, N. Ghaffour,
Transparent exopolymer particles (TEP) removal efficiency by
a combination of coagulation and ultrafiltration to minimize
SWRO membrane fouling, Water Res., 102 (2016) 485–493.
- R.M. Rachman, S. Li, T.M. Missimer, SWRO feed water
quality improvement using subsurface intakes in Oman,
Spain, Turks and Caicos Islands, and Saudi Arabia, Desalination,
351 (2014) 88–100.
- A.H.A. Dehwah, S. Al-Mashharawi, N. Kammourie, T.M. Missimer,
Impact of well intake systems on bacterial, algae and
organic carbon reduction in SWRO desalination systems,
SAWACO, Jeddah, Saudi Arabia, Desal. Water Treat., 55(10)
(2015) 2594–2600.
- A.H.A. Dehwah, S. Li, S. Al-Mashharawi, H. Winters, T.M. Missimer,
Changes in feed water organic matter concentrations
based on intake type and pretreatment processes at SWRO
facilities, Red Sea, Saudi Arabia, Desalination, 360 (2015) 19–27.
- A.H.A. Dehwah, T.M. Missimer, Subsurface intake systems:
green choice for improving feed Seawater quality at SWRO
desalination plants, Jeddah, Saudi Arabia: Water Res., 88 (2016)
216–224.
- A.H.A Dehwah, S. Al-Mashharawi, K.C. Ng, T.M. Missimer,
Aquifer treatment of seawater to remove natural organic
matter before desalination, Groundwater, 55(3) (2017) 316–
326.
- T.M. Missimer, A.H.A. Dehwah, L. Lujan, D. Mantilla, S.
Al-Mashharawi, Feasibility and design of seabed gallery
intake systems along the Red Sea coast of Saudi Arabia with
discussion of design criteria and methods, Chapter 11, in T.M.
Missimer, B. Jones, R.G. Maliva, eds., Intakes and Outfalls for
Seawater Reverse Osmosis Desalination Facilities: Innovations
and Environmental Impacts, Springer, Berlin, pp. 215-250,
(2015).
- A.H.A. Dehwah, T.M. Missimer, Seabed gallery intakes: Investigation
of the water pretreatment effectiveness of the active
layer using a long-term column experiment, Water Res., 121
(2017) 95–108.
- T. Peters, D. Pinto, E. Pinto, Improved seawater intake and
pre-treatment system based on Neodren™ technology, Desalination,
301 (2007) 134–140.
- T. Peters, D. Pinto, Seawater in take and partial pre-treatment
with Neodren™- results from investigation and long-term
operation, Desal. Water Treat., 24 (2010) 117–122.
- D.E. Williams, Slant well intake systems: design and operation,
Chapter 14, In: T.M. Missimer, B. Jones, R.G. Maliva, eds.,
Intakes and Outfalls for Seawater Reverse-Osmosis Desalination
Facilities, Springer International Publishing, Switzerland,
(2015) p. 275–320.
- J.I. Drever, The Geochemistry of Natural Waters. Prentice Hall,
Englewood Cliffs N.J., 2018.
- F.M.M. Morel, J.G. Rueter, N.M. Price, Iron nutrition of phytoplankton
and its possible importance in the ecology of ocean
regions with high nutrient and low biomass, Oceanography,
4(2) (1991) 56–61.
- P. Boyd, J. LaRoche, M. Gall, R. Frew, R.M.L. McKay, Role of
iron, light, and silicate in controlling algal biomass in subantarctic
waters SE of New Zealand, J. Geophys. Res.: Oceans,
104(C6) (1999) 13395–13408.
- H.W. Ducklow, J.L. Oliver, J.W.O. Smith, The role of iron as a
limiting nutrient for marine plankton processes, In: J. Melillo,
C. Field, B. Moldan, eds. Interactions of the major biogeochemical
cycles: global change and human impacts. Island Press,
Washington, D.C. USA, (2003) p. 295–310.
- D.E. Canfield, Reactive iron in marine sediments, Geochim.
Cosmochim. Acta, 53 (1989) 619–632.
- K.S. Johnson, F.P. Chavez, G.E. Friederich, Continental-shelf
sediments as a primary source of iron for coastal phytoplankton,
Nature, 398 (1999) 697–700.
- V.A. Elrod, The flux of iron from continental shelf sediments:
a missing source for global budgets, Geophys. Res. Lett., 31
(2004), doi: 10.1029/2004GL020216.
- M.E. Jones, J.S. Beckler, M. Taillefert, The flux of soluble organic-
iron (III) from sediments represents a source of stable iron
(III) to estuarine waters and the continental shelf, Limnol.
Oceanogr., 56 (2011) 1811–1823.
- A.T. DeChanvalon, E. Metzger, A. Mouret, J. Knoery, E. Geslin,
F. Meysman, Jr., Two-dimensional mapping of iron release in
marine sediments at the submillimetre scale, Marine Chem.,
191 (2017) 34–49.
- C. Reich, R.B. Haley, T. Hickey, P. Swarzenski, Groundwater
characterization and assessment of contaminants in
marine areas of Biscayne National Park, Technical Report
NPS/NRWRD/NRTR-2006/356), U.S. National Park Service,
2006.
- N.O.G. Jorgenson, The sulfur cycle of a coastal marine sediment
(Limfjorden, Denmark), Limnol. Oceanogr., 22 (1977)
814–832.
- S.E. Calvert, T.F. Petersen, Sedimentary geochemistry of manganese:
Implications for the environment of formation of manganiferous
black shales, Econ. Geol., 91 (1996) 36–47.
- D.E. Williams, Results of drilling, construction, development,
and testing of Dana Point Ocean Desalination Project test slant
well, U.S. Bureau of Reclamation Desalination and Water Purification
Research and Development Program Report No. 152, 2009.
- T.M. Missimer, R.G. Maliva, M. Thompson, W.S. Manahan, K.
P. Goodboy, Reduction of seawater reverse osmosis treatment
costs by improvement of raw water quality: Innovative intake
designs, Int. Desal. Water Reuse Quart., 20(3) (2010) 12–22.
- N. Ghaffour, T.M. Missimer, G. Amy, Technical review and
evaluation of the economics of desalination: Current and
future challenges for better supply sustainability, Desalination,
309 (2013) 197–207.
- S.D. Faust, O.M. Aly, Chemistry of Water Treatment, 2nd ed.,
Lewis Publishers, Boca Raton, Florida, 1998.
- E. Kartinen, C. Martin, Solving Morro Bay’s Seawater Reverse
Osmosis Plant’s Iron Problem” Desalination of Seawater and
Brackish Water, Chapter 5. American Water Works Association,
2006.
- L.E. Applegate, C.W. Erkenbrecher, H. Winters, New chloramine
process to control after growth and biofouling in Permasep
™ B-10 RO surface seawater plants, Desalination, 74
(1989) 51–67.
- The World Bank, Renewable Energy Desalination: An Emerging
solution to close the water gap in the Middle East and
North Africa, International Bank for Reconstruction and
Development/The World Bank, Washington, D. C., 2013.
- Fichtner (Fichtner GmbH, Co. KG), DLR (Deutsches Zentrum
fur Luftund Raumfahrt e.V.) MENA regional water outlook,
Part II, Desalination using renewable energy, task 1 – Desalination
potential; Task 2 – Energy requirements; Task 3 –
Concentrate management, Fichtner and DLR, http://www.dlr.de/tt/Portaldata/41/Resources.dokumenteinstitute/system/projects/MENA_REGIONAL_WATER_OUTLOOK.pdf,
2011.
- Water Desalination Report, SWRO draft EIR open for discussion,
Water Desalination Report, 54(14) (2018) 2–3.
- T. Amato, K.-S. Park, W. Kim, T. Kim, SWRO pre-treatment
design using high-rate dissolved air floatation including preliminary
pilot-scale results, Desal. Water Treat., 51(7–9) (2013)
1804–1816.