Energy is a key factor responsible for a country’s economic growth and prosperity. It is closely related to the main global challenges namely: poverty mitigation, global environmental change and food and water security [1.]. Concentrating solar power (CSP) is steadily gaining more market acceptance as the cost of electricity from CSP power plants progressively declines. The cogeneration of electricity and water is an attractive prospect for future CSP developments as the simultaneous production of power and potable water can have positive economic implications towards increasing the feasibility of CSP plant developments [2.]. The highest concentrations of direct normal irradiation are located relatively close to Western coastal and Middle-Eastern North-African regions. It is for this reason worthwhile investigating the possibility of CSP-desalination (CSP+D) plants as a future sustainable method for providing both electricity and water with significantly reduced carbon emissions and potential cost reductions. This study investigates the techno-economic feasibility of integrating a low-temperature thermal desalination plant to serve as the condenser as opposed to a conventional dry-cooled CSP plant in Arandis, Namibia. It outlines the possible benefits of the integration CSP+D in terms of overall cost of water and electricity. The high capital costs of thermal desalination heat exchangers as well as the pumping of seawater far inland is the most significant barrier in making this approach competitive against more conventional desalination methods such as reverse osmosis. The compromise between the lowest levelized cost of electricity and water depends on the sizing and the top brine temperature of the desalination plant.

1.
I.
Purohit
,
P.
Purohit
, and
S.
Shekhar
, ‘
Evaluating the potential of concentrating solar power generation in Northwestern India
’,
Energy Policy
, vol.
62
, pp.
157
175
,
2013
.
2.
International Energy Agency
, ‘
Co-generation and Renewables: Solutions for a low-carbon energy future
’,
Paris
,
2011
.
3.
A.
Pugsley
,
A.
Zacharopoulos
,
J. D.
Mondol
, and
M.
Smyth
, ‘
Global applicability of solar desalination
’,
Renew. Energy
, vol.
88
, pp.
200
219
,
2016
.
4.
GeoModel Solar
, ‘
SolarGIS ® Report (Arandis, Namibia
)’,
2015
.
5.
NamPower
, ‘
Omburu Solar Power Plant Officially Inaugurated
’,
Windhoek
,
2015
.
6.
Z.
Viranyi
, ‘
2015 Annual Report, NamPower
’,
Windhoek
,
2015
.
7.
R.
Brown
, ‘
IWRM Survey and Status Report : Namibia
’,
Windhoek
,
2009
.
8.
2016 World Fact Book of the United States Central Intelligence Agency
, ‘
Namibia Economy 2016
’,
2014
. [Online]. Available: http://www.theodora.com/wfbcurrent/namibia/namibia_economy.html. [Accessed: 11-Jul-2016].
9.
C.
Schlettwein
and
T.
Namibian
, ‘Namibia’s uranium production to triple by 2017’,
MINING
,
Windhoek
, pp.
2016
2017
, Mar-
2017
.
10.
W.
Duvenhage
, ‘
Rio Tinto, Rossing Uruanium Employee Brief
’,
Swakopmund
,
2014
.
11.
CSP Today
, ‘
Namibia tenders for up to 200 MW; Abengoa starts insolvency
’,
2015
. [Online]. Available: http://social.csptoday.com/markets/namibia-tenders-200-mw-abengoa-starts-insolvency. [Accessed: 29-Jan-2016].
12.
P.
Palenzuela
,
D. C.
Alarcon-Padilla
,
G.
Zaragoza
, and
J.
Blanco
, ‘
Comparison between CSP+MED and CSP+RO in Mediterranean Area and MENA Region: Techno-economic Analysis
’, in
Energy Procedia
,
2015
, vol.
69
, pp.
1938
1947
.
13.
M.
Moser
,
F.
Trieb
, and
T.
Fichter
, ‘
Potential of Concentrating Solar Power Plants for the Combined Production of Water and Electricity in MENA Countries
’,
J. Sustain. Dev. Energy, WAter Environ. Syst.
, vol.
1
, no.
2
, pp.
122
141
,
2013
.
14.
J. F.
Servert
,
E.
Cerrajero
, and
E. L.
Fuentealba
, ‘
Synergies of solar energy use in the desalination of seawater : A case study in northern Synergies of Solar Energy Use in the Desalination of Seawater : a Case Study in Northern Chile
’,
AIP Conf. Proc.
, vol.
1734
, no.
140002
,
2016
.
15.
L.
Sargent
, ‘
Assessment of Parabolic Trough and Power Tower Solar Technology Cost and Performance Forecasts Assessment of Parabolic Trough and Power Tower Solar Technology Cost and Performance Forecasts
’,
Rep. No. NREL/SR-550-34440
, no. October, p.
47
,
2003
.
16.
A.
Fleming
,
C.
Folsom
,
H.
Ban
, and
Z.
Ma
, ‘
A general method to analyze the thermal performance of multicavity concentrating solar power receivers
’,
Sol. Energy
,
2015
.
17.
J.
Christian
,
A.
Moya
,
C.
Ho
,
C.
Andraka
, and
J.
Yuan
, ‘
Probabilistic Analysis to Quantify Optical Performance and Error Budgets for Next Generation Heliostats
’,
J. Sol. Energy Eng.
, vol.
137
, no. June 2015, pp.
1
8
,
2016
.
18.
NREL
, ‘System Advisor Model (SAM)’.
NREL
,
California
, p.
400
,
2015
.
19.
X.
Wei
,
Z.
Lu
,
Z.
Wang
,
W.
Yu
,
H.
Zhang
, and
Z.
Yao
, ‘
A new method for the design of the heliostat field layout for solar tower power plant
’,
Renew. Energy
, vol.
35
, no.
9
, pp.
1970
1975
,
2010
.
20.
P.
Gauché
,
T. W.
Von Backström
, and
A. C.
Brent
, ‘
Csp Modeling Methodology for Macro Decision Making - Emphasis on the Central Receiver Type
’,
Proc. Sol. Power Chem. Energy Syst. Conf. (SolarPACES 2011)
, pp.
1
8
,
2011
.
21.
Siemens
AG
, ‘
SST-600 Steam Turbine (Up to 150MW)
’,
Erlangen
,
2012
.
22.
GEA
, ‘
Air Cooled Condensers (ACC) engineering for a better world
’,
Bochum, Germany
,
2012
.
23.
A. B.
Gill
,
Power Plant Performance
, 1984th ed.
London
:
Butterworth and Co (Publishers) Ltd
,
1984
.
24.
K.
Lovegrove
and
W.
Stein
,
Concentrating Solar Power Technology
.
Cambridge
:
Woodmead Publishing
,
2012
.
25.
K. H.
Mistry
,
M. A.
Antar
, and
J. H.
Lienhard
, ‘
An improved model for multiple effect distillation
’,
Desalin. WATER Treat.
, vol.
51
, no.
4
, pp.
1
15
,
2012
.
26.
M. J.
Martin
, ‘
Suitability of satellite sea surface salinity data for use in assessing and correcting ocean forecasts
’,
Remote Sens. Environ.
, vol.
180
, pp.
305
319
,
2016
.
27.
J.
Gebel
, ‘Thermal Desalination Processes’, in
Desalination, water from water
, 1st ed.,
J.
Kucera
, Ed.
Beverly
:
Scrivener Publishing LLC
.,
2014
, pp.
41
154
.
28.
Surf-Forecast.com
, ‘
Tiger Reef Water Temperature and Wetsuit Guide
’,
Surf-Forecast.com
,
2016
. [Online]. Available: http://www.surf-forecast.com/breaks/Tiger-Reef/seatemp. [Accessed: 18-Jul-2016].
29.
A. F.
Mills
, ‘Heat Exchangers’, in
Heat Transfer
, 2nd ed.,
B.
Stenquist
, Ed.
Delhi
:
Pearson Education
,
2013
, p.
687
.
30.
V.
ENTROPIE
, ‘
Multiple Effect Distillation (MED
)’,
ENTROPIE, VEOLIA
,
2014
. [Online]. Available: http://www.entropie.com/en/services/desalination/MED/. [Accessed: 18-Jul-2016].
31.
NamWater
, ‘
Main Menu
’,
The cost of delivering water
,
2016
. [Online]. Available: http://www.namwater.com.na/index.php?option=com_content&view=article&layout=edit&id=65. [Accessed: 02-Mar-2016].
32.
R.
Pitz-Paal
,
J.
Dersch
, and
B.
Milow
, ‘
European concentrated solar thermal road-mapping – roadmap document
’,
2005
.
33.
S. G.
Hall
,
S.
Ahmad
, and
R.
Smith
, ‘
FOR HEAT EXCHANGER
’,
Comput. chem. Engng
, vol.
14
, no.
3
, pp.
319
335
,
1990
.
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