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Solar Desalination Driven by Organic Rankine Cycles (Orc) and Supercritical CO2 Power Cycles: An Update

Abstract

In the field of desalination powered by renewable energies, the use of solar power cycles exhibits some favorable characteristics, such as the possibility of implementing thermal energy storage systems or a multi-generation scheme (e.g., electricity, water, cooling, hydrogen). This article presents a review of the latest design proposals in which two power cycles of great potential are considered: the organic Rankine cycle and the supercritical CO2 power cycle, the latter of growing interest in recent years. The designs found in the literature are grouped into three main types of systems. In the case of solar ORC-based systems, the option of reverse osmosis as a desalination technology is considered in medium-temperature solar systems with storage but also with low-temperature using solar ponds. In the first case, it is also common to incorporate single-effect absorption systems for cooling production. The use of thermal desalination processes is also found in many proposals based on solar ORC. In this case, the usual configuration implies the cycle’s cooling by the own desalination process. This option is also common in systems based on the supercritical CO2 power cycle where MED technology is usually selected. Designs proposals are reviewed and assessed to point out design recommendations.

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Solar Desalination Driven by Organic Rankine Cycles (Orc) and Supercritical CO2 Power Cycles: An Update

Author: Delgado Torres, Agustín; García Rodríguez, Lourdes
Publisher: MDPI
Year: 2022
DOI: 10.3390/pr10010153
Source: https://idus.us.es/bitstreams/1a9f6a78-9089-4582-bc2d-20a57a723b00/download
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
Ci a ion: Delgado-To es, A.M.;
Ga cía-Rod íguez, L. Sola
Desalina ion D i en by O ganic
Rankine Cycles (O c) and
Supe c i ical CO2Powe Cycles: An
Upda e. P ocesses 2022,10, 153.
h ps://doi.o g/10.3390/p 10010153
Academic Edi o : Chiing-Chang
Chen
Recei ed: 31 Oc obe 2021
Accep ed: 11 Janua y 2022
Published: 13 Janua y 2022
Publishe ’s No e: MDPI s ays neu al
wi h ega d o ju isdic ional claims in
published maps and ins i u ional a il-
ia ions.
Copy igh : © 2022 by he au ho s.
Licensee MDPI, Basel, Swi ze land.
This a icle is an open access a icle
dis ibu ed unde he e ms and
condi ions o he C ea i e Commons
A ibu ion (CC BY) license (h ps://
c ea i ecommons.o g/licenses/by/
4.0/).
p ocesses
Re iew
Sola Desalina ion D i en by O ganic Rankine Cycles (O c) and
Supe c i ical CO2Powe Cycles: An Upda e
Agus ín M. Delgado-To es 1,* and Lou des Ga cía-Rod íguez 2
1Depa amen o de Ingenie ía Indus ial, Escuela Supe io de Ingenie ía y Tecnología (ESIT),
Uni e sidad de La Laguna (ULL), 38200 La Laguna, Spain
2Depa amen o de Ingenie ía Ene gé ica, Escuela Técnica Supe io de Ingenie ía (ETSI),
Uni e sidad de Se illa, 41092 Se illa, Spain; [email p o ec ed]
*Co espondence: [email p o ec ed]; Tel.: +34-922-84-60-45
Abs ac :
In he ield o desalina ion powe ed by enewable ene gies, he use o sola powe cycles
exhibi s some a o able cha ac e is ics, such as he possibili y o implemen ing he mal ene gy s o age
sys ems o a mul i-gene a ion scheme (e.g., elec ici y, wa e , cooling, hyd ogen). This a icle p esen s
a e iew o he la es design p oposals in which wo powe cycles o g ea po en ial a e conside ed:
he o ganic Rankine cycle and he supe c i ical CO
2
powe cycle, he la e o g owing in e es in
ecen yea s. The designs ound in he li e a u e a e g ouped in o h ee main ypes o sys ems. In
he case o sola ORC-based sys ems, he op ion o e e se osmosis as a desalina ion echnology
is conside ed in medium- empe a u e sola sys ems wi h s o age bu also wi h low- empe a u e
using sola ponds. In he i s case, i is also common o inco po a e single-e ec abso p ion sys ems
o cooling p oduc ion. The use o he mal desalina ion p ocesses is also ound in many p oposals
based on sola ORC. In his case, he usual con igu a ion implies he cycle’s cooling by he own
desalina ion p ocess. This op ion is also common in sys ems based on he supe c i ical CO
2
powe
cycle whe e MED echnology is usually selec ed. Designs p oposals a e e iewed and assessed o
poin ou design ecommenda ions.
Keywo ds:
sola ORC desalina ion; sola supe c i ical CO
2
; sola desalina ion; sola e e se osmosis
1. In oduc ion
The need o change he global ene gy model and he inc ease in d inking wa e
demand in impo an a eas o he plane make desalina ion powe ed by enewable ene gies
(REs) pa o he solu ion o he u u e challenge o he ene gy–wa e nexus. Acco ding o
In e na ional Ene gy Agency (IEA) da a, almos 81% o he wo ld’s ene gy supply had i s
o igin in ossil uels (coal, na u al gas and oil) in 2019 [
1
]. I we ocus on elec ical ene gy,
he pe cen age was 63% in he same yea . These alues explain he s ill-g owing end o
global g eenhouse gas emission le els. In addi ion o his, he e is he p oblem o access o
wa e . Acco ding o Wo ld Bank da a, in e nal enewable eshwa e esou ces pe capi a
ha e allen by 36% and 25% be ween 2002 and 2017 in a eas such as Sub-Saha an A ica o
he MENA (Middle Eas and No h A ica) egion, espec i ely [
2
]. These educ ions a e
la gely due o popula ion inc ease, which is he expec ed end in he coming decades.
RE-powe ed desalina ion o e s ad an ages and bene i s compa ed o he ossil- uels-
d i en op ion, such as he coincidence o enewable esou ce a ailabili y—mainly sola —
and wa e sca ci y. In addi ion, he en i onmen al impac s associa ed wi h he ene gy
consump ion o he p ocesses a e educed [
3
]. In his sense, he Li e Cycle Analysis
(LCA) o desalina ion echnologies sys ema ically indica es ha he en i onmen al impac s
associa ed wi h he ene gy consump ion o he p ocess a e mainly a ibu able o he
ope a ion and main enance phase in compa ison o cons uc ion and decommissioning
phases [
4
]. The e o e, he use o enewables as he ene gy inpu o hese p ocesses esul s in
a signi ican educ ion o he en i onmen al impac s o eshwa e p oduc ion. On a e age,
P ocesses 2022,10, 153. h ps://doi.o g/10.3390/p 10010153 h ps://www.mdpi.com/jou nal/p ocesses
P ocesses 2022,10, 153 2 o 23
he global wa ming po en ial educ ion is a ound 90% o con en ional he mal desalina ion
echnologies—mul i-s age lash (MSF) and mul i-e ec dis illa ion (MED)—and 80% o
e e se osmosis (RO) [4].
The abo e ad an ages jus i y he end in scien i ic ac i i y conce ning RE-powe ed
desalina ion shown in he bibliome ic analysis o he scien i ic li e a u e published on
desalina ion be ween 2000 and 2020, as p esen ed by Zapa a-Sie a e al. [
5
]. Among o he
esul s, he clus e ing o publica ions is highligh ed; he “Renewable ene gy desalina ion”
clus e is he second mos impo an o he eigh clus e s, de ined wi h a weigh o 26.1%,
jus one pe cen age poin below he i s ‘’Re e se osmosis” clus e ).
Wi hin his ame, his wo k deals wi h sola -powe ed desalina ion by means o sola
he mo-mechanic con e sion h ough a powe cycle, hus allowing he use o elec ici y
and/o hea o d i e desalina ion p ocesses. The main aim o he pape is he e iew and
assessmen o ecen design p oposals exis ing in he li e a u e o gi e design ecommenda-
ions on such sola desalina ion sys ems.
The la es gene al e iew o RE-desalina ion concludes ha he echno-economic
op imiza ion o some aspec s is s ill necessa y o o e s able solu ions in he long e m [
6
].
Rega ding he sola he mal-powe ed op ion, he need o i s applica ion o bo h small
and indus ial scales and he impo ance o he mal ene gy s o age a e emphasized. The
need o expand he implemen a ion o o -g id sys ems is also indica ed in gene al. In he
ield o sola he mal-powe ed desalina ion, i is possible o combine his esou ce wi h
all exis ing desalina ion echnologies (see Figu e 1). Only he me hods associa ed wi h
he use o powe cycles o he he mo-mechanical con e sion o sola he mal ene gy a e
shown since his is he ou e explo ed in his a icle. The e o e, he use o he elec ici y
gene a ed and/o he hea ejec ed by a sola powe cycle a e he op ions e iewed ins ead
o he di ec coupling o he mal desalina ion p ocesses o a sola he mal collec o ield.
Conce ning di ec coupling, we e e o Buena en u a Pouy acon and Ga cía-Rod íguez [
7
].
P ocesses 2022, 10, x FOR PEER REVIEW 2 o 23
esul s in a signi ican educ ion o he en i onmen al impac s o eshwa e p oduc ion.
On a e age, he global wa ming po en ial educ ion is a ound 90% o con en ional he -
mal desalina ion echnologies—mul i-s age lash (MSF) and mul i-e ec dis illa ion
(MED)—and 80% o e e se osmosis (RO) [4].
The abo e ad an ages jus i y he end in scien i ic ac i i y conce ning RE-powe ed
desalina ion shown in he bibliome ic analysis o he scien i ic li e a u e published on
desalina ion be ween 2000 and 2020, as p esen ed by Zapa a-Sie a e al. [5]. Among o he
esul s, he clus e ing o publica ions is highligh ed; he “Renewable ene gy desalina ion”
clus e is he second mos impo an o he eigh clus e s, de ined wi h a weigh o 26.1%,
jus one pe cen age poin below he i s ‘’Re e se osmosis’’ clus e ).
Wi hin his ame, his wo k deals wi h sola -powe ed desalina ion by means o sola
he mo-mechanic con e sion h ough a powe cycle, hus allowing he use o elec ici y
and/o hea o d i e desalina ion p ocesses. The main aim o he pape is he e iew and
assessmen o ecen design p oposals exis ing in he li e a u e o gi e design ecommen-
da ions on such sola desalina ion sys ems.
The la es gene al e iew o RE-desalina ion concludes ha he echno-economic op-
imiza ion o some aspec s is s ill necessa y o o e s able solu ions in he long e m [6].
Rega ding he sola he mal-powe ed op ion, he need o i s applica ion o bo h small
and indus ial scales and he impo ance o he mal ene gy s o age a e emphasized. The
need o expand he implemen a ion o o -g id sys ems is also indica ed in gene al. In he
ield o sola he mal-powe ed desalina ion, i is possible o combine his esou ce wi h
all exis ing desalina ion echnologies (see Figu e 1). Only he me hods associa ed wi h he
use o powe cycles o he he mo-mechanical con e sion o sola he mal ene gy a e
shown since his is he ou e explo ed in his a icle. The e o e, he use o he elec ici y
gene a ed and/o he hea ejec ed by a sola powe cycle a e he op ions e iewed ins ead
o he di ec coupling o he mal desalina ion p ocesses o a sola he mal collec o ield.
Conce ning di ec coupling, we e e o Buena en u a Pouy acon and Ga cía-Rod íguez
[7].
Figu e 1. Possible indi ec sola desalina ion op ions when a powe con e sion uni (powe cycle)
is conside ed as he solely inal ene gy supply uni . MSF: mul i-s age lash; MED: mul i-e ec dis-
illa ion; MD: memb ane dis illa ion; HDH: humidi ica ion dehumidi ica ion; MVC: mechanical a-
po comp ession; RO: e e se osmosis; ED/EDR: elec odialysis/elec odialysis e e sal; CDI: capac-
i i e deioniza ion; EDI: elec odeioniza ion. Adap ed om [6].
The he mal p ocesses shown in Figu e 1 equi e a hea supply in he ange o 50–120
°C [6]. Tempe a u es om 50 o 60 °C a e only sui able o humidi ica ion dehumidi ica-
ion (HDH), app op ia e only o small-scale use due o i s ela i ely low ene gy e iciency
[8]. Mo eo e , memb ane dis illa ion (MD) sys ems equi e 75–95 °C o achie e easona-
ble speci ic he mal consump ion, up o 237 and 170 kJ/kg, espec i ely [7]. Howe e ,
he e a e only small capaci y uni s, hus limi ing hei applica ion a an indus ial scale.
Figu e 1.
Possible indi ec sola desalina ion op ions when a powe con e sion uni (powe cycle)
is conside ed as he solely inal ene gy supply uni . MSF: mul i-s age lash; MED: mul i-e ec
dis illa ion; MD: memb ane dis illa ion; HDH: humidi ica ion dehumidi ica ion; MVC: mechanical
apo comp ession; RO: e e se osmosis; ED/EDR: elec odialysis/elec odialysis e e sal; CDI:
capaci i e deioniza ion; EDI: elec odeioniza ion. Adap ed om [6].
The he mal p ocesses shown in Figu e 1 equi e a hea supply in he ange o
50–120 ◦C
[
6
]. Tempe a u es om 50 o 60
◦
C a e only sui able o humidi ica ion de-
humidi ica ion (HDH), app op ia e only o small-scale use due o i s ela i ely low ene gy
e iciency [
8
]. Mo eo e , memb ane dis illa ion (MD) sys ems equi e 75–95
◦
C o achie e
easonable speci ic he mal consump ion, up o 237 and 170 kJ/kg, espec i ely [
7
]. How-
e e , he e a e only small capaci y uni s, hus limi ing hei applica ion a an indus ial scale.
Mul i-e ec dis illa ion (MED) has been supe io o mul i-s age lash (MSF) dis illa ion
since he end o he 20 h cen u y due o i s lowe main and auxilia y ene gy consump ion
P ocesses 2022,10, 153 3 o 23
along wi h lowe he mal consump ion a he same op empe a u e. Fo he sake o com-
pa ison, he MED p ocess achie es 230 kJ/kg o he mal ene gy consump ion wi h a op
empe a u e o 67
◦
C, whe eas he MSF would equi e a leas 105
◦
C o allow he said
main ene gy consump ion. In addi ion, he auxilia y ene gy equi ed by he MSF p ocess is
much highe han ha o MED, since he o me equi es b ine eci cula ion. The indus ial
s anda d o con en ional MED echnology consis s o a MED uni coupled o a he mal
apo comp ession p ocess (MED-TVC). The MED uni is d i en by he ou le low o he
TVC, which is ed by a s eam ex ac ion o he s eam u bine o a Rankine cycle (mo i e
s eam) and s eam gene a ed wi hin one o he las e ec s o he MED plan .
Rega ding desalina ion p ocesses ha consume sha powe o elec ici y, only me-
chanical apo comp ession (MVC) and e e se osmosis (RO) a e sui able o seawa e
desalina ion applica ions. This is due o he signi ican inc ease in ene gy consump ion in
elec odialysis (ED), elec odialysis e e sal (EDR), capaci i e deioniza ion (CDI), and elec-
odeioniza ion (EDI) wi h sal concen a ion. The e o e, hey do no compe e wi h RO o
salini ies wi hin he ange o seawa e , abou 0.035 kg o sea sal s pe kg o saline solu ion.
In addi ion o con en ional phase-change echnologies, a MED uni can be coupled o
a double-e ec abso p ion hea pump (DEAHP). This echnology has been de eloped a
he Spanish esea ch cen e Pla a o ma Sola de Alme ía-CIEMAT [
9
–
11
]. Fo a gi en low
and he modynamic condi ions o he ex e nal s eam sou ce, MED-DEAHP echnology
exhibi s lowe main and auxilia y ene gy consump ions han MED-TVC, hus esul ing in
highe he modynamic e iciency o he in eg a ed powe and wa e p oduc ion. The e o e,
MED-DEAHP is supe io o MED-TVC, al hough he o me is no comme cially a ailable.
Ano he ad anced MED concep is a high- empe a u e MED p ocess by using nano il a ion
as seawa e p e ea men . This was p oposed and de eloped by Hassan [
12
–
14
]. No only
he concep bu also he expe imen al assessmen ha e been epo ed in he li e a u e [
15
].
A ep esen a i e indus ial plan in which nano il a ion and dis illa ion p ocesses a e
in eg a ed is he Sha jah plan , based on MSF dis illa ion [16].
Analyses o in eg a ing desalina ion p ocesses wi hin con en ional sola powe plan s
based on Rankine cycles wi h wa e as wo king luid ha e been equen ly epo ed in he
li e a u e, conside ing mos ly RO, MED, and MED-TVC p ocesses. Some exempla y pape s
a e [
17
,
18
], among o he s. Rega ding he in eg a ion o dis illa ion p ocesses, he main
issue is he a ailabili y o ope a ing models p ope ly alida ed o simula e he dis illa ion
subsys em a pa -load ope a ion. Conce ning MED-TVC plan s, a pe o mance model [
19
]
has been de eloped o calcula e he e iciency and wa e p oduc ion o he MED-TVC
dis illa ion p ocess as a whole wi hin a sui able ange o he ex e nal s eam sou ce. Some
selec ed p e ious pape s a e Hana i e al. [
20
], who desc ibed a ho ough model o a
he mocomp esso o he said applica ion, and Ame i e al. [
21
] and Mazini e al. [
22
], who
p esen ed use ul models o MED-TVC plan s. Addi ionally, he pa ame ic analysis needed
o plan design can be ound in wo ks by Kouhikamali e al. [
23
] and Es ahani e al. [
24
].
Finally, expe imen al da a use ul o alida ing models a e p o ided by Temse e al. [
25
]
and Al-Mu az and Wazee [
26
]. On he o he hand, bo h MED and nano il a ion-MED
p ocesses can be modeled based on he a o emen ioned li e a u e. Addi ionally, ope a ion
ou o nominal condi ions o a MED uni has been expe imen ally assessed by Fe nandez-
Izquie do e al. [27].
Recen p oposals o sola desalina ion sys em designs ha i he scheme o Figu e 1
a e p esen ed h oughou his pape . Mino inno a ions ha e been ound conce ning
coupling con en ional sola Rankine cycles and desalina ion. Indeed, inno a i e p oposals
ely on he o ganic Rankine cycle (ORC) and he supe c i ical CO
2
(sCO
2
) cycle as powe
con e sion uni s.
Medium- empe a u e echnology o sola he mal collec o s consis s o sys ems wi h
op ope a ing empe a u es wi hin he ange o 150–400
◦
C, hus equi ing one-axis sun
acking o concen a e he sola i adiance on a linea ocus in which he abso be ube
is placed. Sola pa abolic ough collec o s (PTCs) and linea F esnel concen a o s co e-
spond o medium- empe a u e collec o s. Since con en ional Rankine cycles ope a ed wi h
P ocesses 2022,10, 153 4 o 23
wa e exhibi qui e limi ed e iciency a ela i ely low empe a u es, signi ican esea ch
ac i i y has been ocused on o ganic Rankine cycles (ORCs), sui able e en o he lowes
empe a u es wi hin he said ange. Indeed, ORCs ope a ed wi h low- empe a u e sola
collec o s—i.e., s a iona y collec o s—ha e also been de eloped. The i s sola ORC desali-
na ion sys ems da e back o he la e 1970s and ea ly 1980s, all o hem using e e se osmosis
as he desalina ion echnology. Due o he high speci ic ene gy consump ion o he p ocess
a ha ime, hese i s expe iences we e de eloped o b ackish wa e desalina ion [
28
–
30
].
A e iew o s a e-o - he-a sola he mal e e se osmosis desalina ion sys ems up o 2009
can be ound in [
31
]. I s conclusions indica e, among o he issues, ha he wa e –elec ici y
cogene a ion op ion has no been su icien ly explo ed. Design ecommenda ions based
on he wo k de eloped up o 2012 is epo ed in [
32
], and he upda e o he s a e o he
a can be ound in [
33
]. The exis ing sys ems and p oposals a e classi ied in he la e
acco ding o he ORC con igu a ion in o single s age ( e e ing o simple cycles), wo-s age
( e e ing o double cascade cycles), and low- empe a u e sys ems. Mo e ecen ly, and
co e ing a wide scope, he e alua ion o sola he mal-powe ed desalina ion echnologies
has been conduc ed by [
7
] o iden i y ma ke oppo uni ies o hese echnologies. Among
he op ions o g owing in e es is e e se osmosis powe ed by sola ORCs, which p esen s
he possibili y o inco po a ing he mal ene gy s o age sys ems (TES) ins ead o ba e -
ies. In low demand scena ios (less han 100 m
3
/d), con en ional dis illa ion echnologies
(MED and MSF) and RO powe ed by sola ORCs a e disca ded agains he pho o ol aic
(PV)–RO op ion, while in in e media e demand scena ios (100 o 25,000 m
3
/d), he sola
ORCs wi h PTCs o F esnel is one o he echnologies wi h ma ke oppo uni ies. The
ollowing sec ions p esen he mos ecen p oposals ound in he scien i ic li e a u e on
sola desalina ion sys ems based on ORC as he main ene gy con e sion uni s. As will be
seen, he app oaches based on poly- o mul i-gene a ion a e dominan .
Las ly, sCO
2
B ay on cycles ha e been ecen ly de eloped in o de o achie e much
highe ene gy e iciency, wi h op empe a u es echnically achie able wi h he cu en
echnology o sola owe powe plan s. Helios a s concen a e he sola adia ion wi hin
a ocal poin on he op o a owe whe e he sola ecei e is placed. Speci ically, ene gy
e iciency a ound 45% co esponds o he op empe a u e o 550
◦
C wi h a B ay on cycle
wi h egene a ion and ecomp ession. In he nea u u e, 52% could be eliable wi h 700
◦
C
o op empe a u e [34].
2. Sola ORC (O ganic Rankine Cycle)-D i en Desalina ion Sys ems: An Upda e
2.1. In eg a ion o Re e se Osmosis (RO) as Desalina ion Technology
Re e se osmosis desalina ion equi es elec ici y o powe he main pump o p essu ize
he saline wa e eed abo e he osmo ic p essu e o he concen a e ou pu low. P essu ized
eedwa e low ci cula es in pa allel wi h he RO memb ane su ace, whe eas pa o he
sol en passes h ough he memb ane along wi h a mino po ion o sal s, hus gene a ing
he pe mea e low (p oduc ). The emaining eed s eam wi h inc eased salini y becomes
he concen a e low. Since his concen a e exi s a a p essu e sligh ly below he eed
p essu e, ene gy eco e y de ices a e needed in seawa e desalina ion plan s. Recen
p oposals o sola RO desalina ion sys ems wi h ORC uni s as he p ime mo e gene ally
co espond o he con igu a ions desc ibed in he ollowing subsec ions, dealing wi h
medium- and low- empe a u e sola sys ems, espec i ely.
2.1.1. Medium-Tempe a u e Sola Sys ems
The scheme shown in Figu e 2desc ibes he la es inno a i e p oposals o medium-
empe a u e sola ORC sys ems. As can be seen, a sola he mal plan wi h he mal ene gy
s o age (TES) d i es a single-e ec abso p ion e ige a ion sys em by he hea ejec ed
a he condense . This scheme would he e o e espond o a poly- o mul i-gene a ional
sys em i no he en i e elec ical ene gy ou pu o he ORC is consumed by he RO uni .
Addi ionally, pa o his he mal ene gy ejec ed p ehea s he eed wa e o he RO sys em.
This exploi a ion has wo ad an ages: (1) he use o saline wa e as a cooling medium
P ocesses 2022,10, 153 5 o 23
makes an addi ional cooling low unnecessa y; (2) he pe meabili y o he RO memb anes
ises wi h eed wa e empe a u e, ha is o say, he p oduc i i y o he plan is imp o ed
al hough his occu s a he expense o an inc ease in he salini y o he p oduc .
P ocesses 2022, 10, x FOR PEER REVIEW 5 o 23
s o age (TES) d i es a single-e ec abso p ion e ige a ion sys em by he hea ejec ed a
he condense . This scheme would he e o e espond o a poly- o mul i-gene a ional sys-
em i no he en i e elec ical ene gy ou pu o he ORC is consumed by he RO uni .
Addi ionally, pa o his he mal ene gy ejec ed p ehea s he eed wa e o he RO sys-
em. This exploi a ion has wo ad an ages: (1) he use o saline wa e as a cooling medium
makes an addi ional cooling low unnecessa y; (2) he pe meabili y o he RO memb anes
ises wi h eed wa e empe a u e, ha is o say, he p oduc i i y o he plan is imp o ed
al hough his occu s a he expense o an inc ease in he salini y o he p oduc .
Figu e 2. Gene al scheme o a sola he mal-d i en RO desalina ion and cooling sys em.
A sola poly-gene a ion sys em wi h a ecupe a i e ORC uni wi h n-oc ane as he
wo king luid o elec ici y p oduc ion is p esen ed in [35]. The sola sys em conside ed
consis s o a pa abolic ough collec o ield ope a ed wi h The minol-66 as he hea ans-
e luid (HTF) and a wo- ank he mal ene gy s o age (TES) sys em wi h comme cial mol-
en sal s. Hi ec XL is conside ed in o de o ake ad an age o i s ela i ely low eezing
poin (120 °C) and cos . A ac ion o he hea ans e ed in he ORC’s ecupe a o is ex-
ploi ed o he p oduc ion o domes ic ho wa e . Mo eo e , he hea ejec ion o he ORC
is used in he gene a o o a single-e ec abso p ion e ige a ion cycle. The ORC’s elec-
ici y ou pu is consumed by an elec olyze o hyd ogen p oduc ion and by he sea-
wa e RO uni , whe e a Pel on u bine is conside ed as he ene gy eco e y sys em. The
wa e needed in he elec olyze is p ehea ed by he he mal oil low a he ou le o he
ORC’s sola hea exchange . The p oposed sys em is analyzed o p oduce be ween 200
and 500 kW elec ic and 450 ppm eshwa e om 35,000 ppm eed wa e . The nominal
capaci y o he seawa e e e se osmosis plan (SWRO) is 40 kg/s, and he abso p ion e-
ige a ion sys em would ha e a cooling capaci y o 500–800 kW. Bo h ene gy and exe gy
e iciency o he whole sys em is calcula ed, and echno-economic op imiza ion is also
pe o med using e olu iona y algo i hms.
Ano he con igu a ion o pa abolic ough sola collec o s wi h TES and The minol
VP-1 as HTF and s o age medium is p oposed by [36]. A con en ional Rankine cycle is
he mally d i en by his sola ene gy sys em. The s eam u bine’s ou pu low, a e being
pa ially expanded, ac s as he p ima y low o a s eam ejec o . The discha ge mixed low
is he hea sou ce o he ORC uni . A e hea ing he ORC sys em, his s eam is spli in o
wo lows. One o hem comple es he Rankine cycle and he second low is used o a
p elimina y p ehea ing o he RO eedwa e and subsequen ly o cooling p oduc ion. The
cooling o he ORC is also ca ied ou wi h he eedwa e o he desalina ion uni o ob ain
Figu e 2. Gene al scheme o a sola he mal-d i en RO desalina ion and cooling sys em.
A sola poly-gene a ion sys em wi h a ecupe a i e ORC uni wi h n-oc ane as he
wo king luid o elec ici y p oduc ion is p esen ed in [
35
]. The sola sys em conside ed
consis s o a pa abolic ough collec o ield ope a ed wi h The minol-66 as he hea ans e
luid (HTF) and a wo- ank he mal ene gy s o age (TES) sys em wi h comme cial mol en
sal s. Hi ec XL is conside ed in o de o ake ad an age o i s ela i ely low eezing poin
(120
◦
C) and cos . A ac ion o he hea ans e ed in he ORC’s ecupe a o is exploi ed
o he p oduc ion o domes ic ho wa e . Mo eo e , he hea ejec ion o he ORC is used in
he gene a o o a single-e ec abso p ion e ige a ion cycle. The ORC’s elec ici y ou pu
is consumed by an elec olyze o hyd ogen p oduc ion and by he seawa e RO uni ,
whe e a Pel on u bine is conside ed as he ene gy eco e y sys em. The wa e needed
in he elec olyze is p ehea ed by he he mal oil low a he ou le o he ORC’s sola
hea exchange . The p oposed sys em is analyzed o p oduce be ween 200 and 500 kW
elec ic and 450 ppm eshwa e om 35,000 ppm eed wa e . The nominal capaci y o he
seawa e e e se osmosis plan (SWRO) is 40 kg/s, and he abso p ion e ige a ion sys em
would ha e a cooling capaci y o 500–800 kW. Bo h ene gy and exe gy e iciency o he
whole sys em is calcula ed, and echno-economic op imiza ion is also pe o med using
e olu iona y algo i hms.
Ano he con igu a ion o pa abolic ough sola collec o s wi h TES and The minol
VP-1 as HTF and s o age medium is p oposed by [
36
]. A con en ional Rankine cycle is
he mally d i en by his sola ene gy sys em. The s eam u bine’s ou pu low, a e being
pa ially expanded, ac s as he p ima y low o a s eam ejec o . The discha ge mixed low
is he hea sou ce o he ORC uni . A e hea ing he ORC sys em, his s eam is spli in o
wo lows. One o hem comple es he Rankine cycle and he second low is used o a
p elimina y p ehea ing o he RO eedwa e and subsequen ly o cooling p oduc ion. The
cooling o he ORC is also ca ied ou wi h he eedwa e o he desalina ion uni o ob ain
addi ional hea ing. The e o e, in his p oposal, he ORC is no di ec ly hea ed by he sola
he mal plan .
2.1.2. Low-Tempe a u e Sola Sys ems
The o he op ion commonly add essed in ecen s udies is he combina ion o sola
ponds (SPs) and a low- empe a u e ORC uni (see Figu e 3) o powe a RO desalina ion

P ocesses 2022,10, 153 6 o 23
sys em. The concep is no new; wo o such sys ems we e implemen ed in he USA—
Los Baños (Cali o nia) and El Paso (Texas) [
37
]. A sola pond is in eg a ed in he same
de ice o bo h sola – he mal ene gy con e sion and long- e m hea s o age. Wi h ade-
qua e p ocedu es o c ea ion and main enance, h ee zones wi h di e en salini ies emain
h oughou he li e ime o he SP. Thanks o he sola hea ing, he mal ene gy eaches he
lowes laye (lowe con ec i e zone), consis ing o high salini y solu ion. On op, a laye
wi h an app op ia e salini y g adien is c ea ed, so-called he non-con ec i e zone (NCZ).
Due o he co esponding densi y p o ile, i s salini y g adien a oids con ec ion in o de
o maximize he he mal insula ion o he LCZ. The uppe laye (uppe con ec i e zone,
UCZ) p o ides insula ion om he a mosphe ic phenomena. As Figu e 3depic s, sola
hea is ex ac ed om he lowe con ec i e zone (LCZ) o he SP, whe eas he hea ejec ed
by he ORC is e-injec ed in o he uppe con ec i e zone (UCZ).
P ocesses 2022, 10, x FOR PEER REVIEW 6 o 23
addi ional hea ing. The e o e, in his p oposal, he ORC is no di ec ly hea ed by he sola
he mal plan .
2.1.2. Low-Tempe a u e Sola Sys ems
The o he op ion commonly add essed in ecen s udies is he combina ion o sola
ponds (SPs) and a low- empe a u e ORC uni (see Figu e 3) o powe a RO desalina ion
sys em. The concep is no new; wo o such sys ems we e implemen ed in he USA—Los
Baños (Cali o nia) and El Paso (Texas) [37]. A sola pond is in eg a ed in he same de ice
o bo h sola – he mal ene gy con e sion and long- e m hea s o age. Wi h adequa e p o-
cedu es o c ea ion and main enance, h ee zones wi h di e en salini ies emain h ough-
ou he li e ime o he SP. Thanks o he sola hea ing, he mal ene gy eaches he lowes
laye (lowe con ec i e zone), consis ing o high salini y solu ion. On op, a laye wi h an
app op ia e salini y g adien is c ea ed, so-called he non-con ec i e zone (NCZ). Due o
he co esponding densi y p o ile, i s salini y g adien a oids con ec ion in o de o max-
imize he he mal insula ion o he LCZ. The uppe laye (uppe con ec i e zone, UCZ)
p o ides insula ion om he a mosphe ic phenomena. As Figu e 3 depic s, sola hea is
ex ac ed om he lowe con ec i e zone (LCZ) o he SP, whe eas he hea ejec ed by
he ORC is e-injec ed in o he uppe con ec i e zone (UCZ).
Figu e 3. Gene al scheme o sola -pond-d i en RO desalina ion p oposals.
The in es iga ion o a sola RO desalina ion sys em using an SP ha p o ides he mal
ene gy o a ecupe a i e ORC uni is p esen ed by [38]. Fo his pu pose, an HTF is used
o ex ac ene gy om he lowe con ec i e zone. This HTF is ci cula ed h ough he ORC
e apo a o . As o he desalina ion sys em, he eed wa e is i s p ehea ed in he ORC
condense and hen ci cula ed in o he uppe con ec i e zone o he sola pond be o e
en e ing he desalina ion uni . The b ine s eam om he RO uni is pa ially e apo a ed
and a po ion is subsequen ly injec ed in o he lowe con ec i e zone in o de o eplenish
sal s losses due o hei di usion o he uppe laye s. The seawa e RO uni is elec ically
d i en by he ORC.
A RO desalina ion sys em based on a sola ORC powe ed by an SP is also p esen ed
in [39]. This con igu a ion is p oposed oge he wi h he analogous sys em, in which he
ORC is eplaced by a Kalina cycle. In he sola ORC con igu a ion, an ex ac ed luid
s eam o ms he LCZ and is ci cula ed o he ORC e apo a o , which inco po a es ecu-
pe a ion. Pa o he elec ical powe p oduced is used in he desalina ion uni while he
es is injec ed in o he g id. I he use o he hea om he ORC condense is also con em-
pla ed o a he moelec ic gene a ion (TEG) sys em. A low ex ac ed om he uppe con-
ec i e zone is used as a cold sink o he TEG and e-injec ed in o he uppe con ec i e
zone a e being hea ed. Se en di e en wo king luids a e conside ed o he ORC, e-
sul ing in an o e all sys em exe gy e iciency o up o 46.4% when using R227ea.
Figu e 3. Gene al scheme o sola -pond-d i en RO desalina ion p oposals.
The in es iga ion o a sola RO desalina ion sys em using an SP ha p o ides he mal
ene gy o a ecupe a i e ORC uni is p esen ed by [
38
]. Fo his pu pose, an HTF is used o
ex ac ene gy om he lowe con ec i e zone. This HTF is ci cula ed h ough he ORC
e apo a o . As o he desalina ion sys em, he eed wa e is i s p ehea ed in he ORC
condense and hen ci cula ed in o he uppe con ec i e zone o he sola pond be o e
en e ing he desalina ion uni . The b ine s eam om he RO uni is pa ially e apo a ed
and a po ion is subsequen ly injec ed in o he lowe con ec i e zone in o de o eplenish
sal s losses due o hei di usion o he uppe laye s. The seawa e RO uni is elec ically
d i en by he ORC.
A RO desalina ion sys em based on a sola ORC powe ed by an SP is also p esen ed
in [
39
]. This con igu a ion is p oposed oge he wi h he analogous sys em, in which he
ORC is eplaced by a Kalina cycle. In he sola ORC con igu a ion, an ex ac ed luid s eam
o ms he LCZ and is ci cula ed o he ORC e apo a o , which inco po a es ecupe a ion.
Pa o he elec ical powe p oduced is used in he desalina ion uni while he es is
injec ed in o he g id. I he use o he hea om he ORC condense is also con empla ed
o a he moelec ic gene a ion (TEG) sys em. A low ex ac ed om he uppe con ec i e
zone is used as a cold sink o he TEG and e-injec ed in o he uppe con ec i e zone a e
being hea ed. Se en di e en wo king luids a e conside ed o he ORC, esul ing in an
o e all sys em exe gy e iciency o up o 46.4% when using R227ea.
The double cascade concep is conside ed in he h ee designs in es iga ed by [
40
],
one o hem wi hou ORC, whe e an SP ac s as he hea sou ce o he opping cycle. The
he modynamic and he moeconomic analysis o h ee con igu a ions is pe o med. In wo
o hem, a single ORC is he mally d i en wi h ene gy ex ac ed om he LCZ o he SP. The
elec ici y ou pu o his ORC is consumed by he RO uni . The hea ejec ion o he opping
cycle is used as hea abso bed by he bo oming cycle, which, in one o he con igu a ions,
P ocesses 2022,10, 153 7 o 23
is a Kalina cycle, and in he o he , a simple ORC. In bo h cases, he cooling o he bo om
cycle’s condense is ca ied ou wi h wa e om he UCZ o he SP. A he modynamic
and he moeconomic analysis is pe o med, assuming a SP su ace a ea o 10,000 m
2
, a
empe a u e o 90
◦
C in he LCZ, and a RO uni con e sion o 30% o seawa e salini y o
42,485 g/kg.
2.2. In eg a ion o The mal P ocesses as Desalina ion Technology
When a he mal desalina ion p ocess is conside ed o be in eg a ed wi h a sola ORC
sys em, ecen p oposals ha e mos ly ma ched he layou shown in Figu e 4. As can be
seen, he in eg a ion implies he use o he hea ejec ed by he ORC o d i e he he mal
desalina ion p ocess, which, in mos o he p oposals, in ol es a MED o MED-TVC uni .
The e a e also some p oposals wi h HDH o an MSF uni . Those desalina ion p ocesses a e
desc ibed below.
P ocesses 2022, 10, x FOR PEER REVIEW 7 o 23
The double cascade concep is conside ed in he h ee designs in es iga ed by [40],
one o hem wi hou ORC, whe e an SP ac s as he hea sou ce o he opping cycle. The
he modynamic and he moeconomic analysis o h ee con igu a ions is pe o med. In
wo o hem, a single ORC is he mally d i en wi h ene gy ex ac ed om he LCZ o he
SP. The elec ici y ou pu o his ORC is consumed by he RO uni . The hea ejec ion o
he opping cycle is used as hea abso bed by he bo oming cycle, which, in one o he
con igu a ions, is a Kalina cycle, and in he o he , a simple ORC. In bo h cases, he cooling
o he bo om cycle’s condense is ca ied ou wi h wa e om he UCZ o he SP. A he -
modynamic and he moeconomic analysis is pe o med, assuming a SP su ace a ea o
10,000 m2, a empe a u e o 90 °C in he LCZ, and a RO uni con e sion o 30% o seawa e
salini y o 42,485 g/kg.
2.2. In eg a ion o The mal P ocesses as Desalina ion Technology
When a he mal desalina ion p ocess is conside ed o be in eg a ed wi h a sola ORC
sys em, ecen p oposals ha e mos ly ma ched he layou shown in Figu e 4. As can be
seen, he in eg a ion implies he use o he hea ejec ed by he ORC o d i e he he mal
desalina ion p ocess, which, in mos o he p oposals, in ol es a MED o MED-TVC uni .
The e a e also some p oposals wi h HDH o an MSF uni . Those desalina ion p ocesses
a e desc ibed below.
Figu e 4. In eg a ion o he mal desalina ion p ocesses in sola -ORC-based poly-gene a ion sys-
ems.
The indus ial s anda d o he MED p ocess comp ises a MED uni coupled o a he -
mocomp esso , as ollows:
• MED uni . A se o se e al chambe s (so-called e ec s) a e kep unde acuum con-
di ions wi h dec easing p essu es, co esponding o he sa u a ion p essu e a de-
c easing empe a u es om 50 o 67 °C, up o 45–35 °C. No mally he e is a single
hea exchange consis ing o a ho izon al ube bundle and he e apo a o . An ex e -
nal low, p o iding he ex e nal hea sou ce o he MED p ocess, ci cula es wi hin he
e apo a o ubes o he i s e ec . Seawa e eed wi h sligh p ehea ing is sp ayed
on he su ace o he ube bundle, hus esul ing in a hin ilm ha is pa ially e ap-
o a ed. The emaining b ine is discha ged by he bo om o he e ec , whe eas he
s eam gene a ed is sen o ci cula e inside he ubes o he e apo a o o he nex e -
ec . The s eam gene a ed in he las e ec is condensed in he end condense . A sea-
wa e low ci cula es h ough he end condense ; pa o his low (seawa e cooling)
is discha ged back o he sea and he es o he low is he p ehea ed seawa e ha
en e s all e ec s in pa allel. Indus ial plan s no mally ha e 8–12 e ec s in MED uni s
and 4–8 e ec s in MED-TVC, al hough designs wi h 14 e ec s a e easible, wi h an
Figu e 4.
In eg a ion o he mal desalina ion p ocesses in sola -ORC-based poly-gene a ion sys ems.
The indus ial s anda d o he MED p ocess comp ises a MED uni coupled o a
he mocomp esso , as ollows:
•
MED uni . A se o se e al chambe s (so-called e ec s) a e kep unde acuum
condi ions wi h dec easing p essu es, co esponding o he sa u a ion p essu e a
dec easing empe a u es om 50 o 67
◦
C, up o 45–35
◦
C. No mally he e is a single
hea exchange consis ing o a ho izon al ube bundle and he e apo a o . An ex e nal
low, p o iding he ex e nal hea sou ce o he MED p ocess, ci cula es wi hin he
e apo a o ubes o he i s e ec . Seawa e eed wi h sligh p ehea ing is sp ayed on
he su ace o he ube bundle, hus esul ing in a hin ilm ha is pa ially e apo a ed.
The emaining b ine is discha ged by he bo om o he e ec , whe eas he s eam
gene a ed is sen o ci cula e inside he ubes o he e apo a o o he nex e ec . The
s eam gene a ed in he las e ec is condensed in he end condense . A seawa e
low ci cula es h ough he end condense ; pa o his low (seawa e cooling) is
discha ged back o he sea and he es o he low is he p ehea ed seawa e ha en e s
all e ec s in pa allel. Indus ial plan s no mally ha e 8–12 e ec s in MED uni s and
4–8 e ec s in MED-TVC, al hough designs wi h 14 e ec s a e easible, wi h an a e age
o a ound 2.5
◦
C o empe a u e g adien be ween adjacen e ec s. Wi h 14 e ec s, he
he mal ene gy consump ion would be abou 230 kJ/kg in a MED uni and 166 kJ/kg
in MED-TVC.
•
Te mocomp esso . A high-p essu e s eam low (mo i e s eam) is mixed wi h a low-
p essu e s eam low, hus esul ing in a s eam low wi h in e media e p essu e and
empe a u e. This ou le s eam low d i es he MED p ocess: he low-p essu e low
is he s eam gene a ed a he las e ec o one o he las e ec s, whe eas he mo i e
P ocesses 2022,10, 153 8 o 23
s eam is gene a ed by he a ailable hea sou ce. In con en ional MED-TVC plan s,
he mo i e s eam is a u bine ex ac ion. S eam a abou 140–225
◦
C is equi ed in
MED-TVC plan s. Coupling he he mocomp esso o he MED plan a he las e ec
makes he end condense unneccesa y. This esul s in a oiding he seawa e cooling
low ha equi es signi ican elec ici y consump ion, along wi h inc eased capi al cos
a ibu able o seawa e in ake in as uc u e and pumps.
Mo eo e , MSF plan s ely on s eam gene a ion due o he quick educ ion o he
p essu e ( lash) o he saline solu ion hea ed by an ex e nal hea sou ce. An MSF plan
consis s o many lash chambe s, he so-called s ages, connec ed in se ies wi h a ube bundle
(condense ) a he op. S eam gene a ed in he p ocess p ehea s he seawa e eed as i
ci cula es wi hin he condense ubes. A e being p ehea ed, seawa e en e s an ex e nal
hea exchange (b ine hea e ) d i en by he ex e nal hea sou ce. Indus ial plan s include
b ine ecycling since only a small po ion o s eam is gene a ed. Then, b ine, ins ead o
seawa e , su e s successi e lash p ocesses wi hin he lash chambe s, coupled in se ies.
Condense s o se e al s ages a he ail a e cooled by an ex e nal seawa e cooling low.
MSF plan s exhibi e y high auxilia y ene gy consump ion, a ibu able o he cooling
low, he acuum sys em, and he la ge low o b ine ci cula ing h ough he lash s ages.
Finally, he HDH p ocess is based on inc easing he ela i e humidi y o he ai by
means o sp aying wa e wi hin an ai low a he humidi ie . A leas one o hose lows,
wa e and/o ai , should be p e iously hea ed by an ex e nal hea sou ce. Finally, a he
dehumidi ie , pa o he s eam wi hin he ho mois ai is condensed on he ou e su ace
o colling ubes, hanks o he ci cula ion o a cooling low. Wa e and ai ci cui s can be
ei he open o closed. Mo eo e , hei ci cula ion can be o ced o na u al.
A sola poly-gene a ion scheme is p esen ed in [
41
]. The ORC uni wi h o-Xylene
as he wo king luid is powe ed by a sola he mal plan wi h PTCs (Sky T ough model)
and a sensible TES. In bo h sys ems, The minol VP-1 is used as he he mal luid. The
hea ejec ed by he ORC d i es he MED uni and a single-e ec abso p ion e ige a ion
sys em. The sys em is s udied om ene ge ic and exe ge ic poin s o iew.
The use o a ecupe a i e ORC uni d i en by a sola he mal plan wi h PTC and
TES, bo h wi h he mal oil as he he mal luid, is p oposed by [
42
], among o he op ions.
This con igu a ion is compa ed wi h he analogous sys em comp ised o a con en ional
Rankine cycle and mol en sal s as HTF and s o age medium. In bo h cases, a MED plan
is conside ed.
A sys em based on a sola he mal plan wi h PTCs and TES wi h he mal oil as he HTF
and s o age medium o d i e an ORC uni is analyzed in [
43
,
44
]. N-oc ane is he wo king
luid. The elec ici y p oduced by he ORC is consumed in an elec olyze o hyd ogen
p oduc ion. The hea ejec ed by he ORC is used in an HDH desalina ion uni and also o
p ehea he desalina ed wa e ou pu , which will be consumed by he elec olyze .
A sola poly-gene a ion sys em o mee he cooling and wa e demands o a g een-
house is s udied in [
45
]. The sola he mal plan wi h PTCs and TES p o ides he mal
ene gy o an ORC uni and an abso p ion cooling sys em. Pa o he elec ici y p oduced
by he ORC—wi h oluene as he wo king luid—is used in an elec olyze , while he hea
ejec ed is used o d i e an MSF plan . The desalina ed wa e is hen used bo h in he
elec olyze and as a supply o he g eenhouse. The oxygen and hyd ogen p oduced a e
s o ed o p oduce backup he mal ene gy du ing pe iods o no sola adia ion using a
hyd o-oxy combus o .
A sola poly-gene a ion sys em based on an ORC uni in eg a ing a s eam ejec o
placed a he u bine’s ou le is analyzed in [
46
]. The discha ge mixed low o he ejec o is
condensed wi h seawa e , while he seconda y low o he ejec o is p e iously used o
cooling p oduc ion. A MED plan ed wi h he apo om an ex ac ion a he ORC u bine
is p oposed as he desalina ion uni . Seawa e is conside ed as he hea ans e luid in he
sola he mal plan .
In addi ion o he abo e, he e a e o he ecen p oposals in he li e a u e ha do no
ma ch he scheme o Figu e 4bu inco po a e ORC uni s o supply he ene gy demanded
P ocesses 2022,10, 153 9 o 23
by a he mal desalina ion p ocess. Examples o his a e he p oposals whe e he was e hea
eco e ed om he exhaus gas o a gas u bine is used o supply hea o he ORC [47,48].
A comp essed ai ene gy s o age (CAES) sys em o consume elec ici y du ing he o -
peak hou s o elec ical demand is p oposed by [
47
]. An in e cooled wo-s age comp ession
p ocess is conside ed, and a e cooling p io o s o age also akes place. The hea eco e ed
in bo h p ocesses is used in he p oduc ion o domes ic ho wa e . Du ing peak demand
hou s, he s o ed comp essed ai is used o p oduce elec ici y by means o a gas u bine.
P io o i s combus ion chambe , he ai is p ehea ed in a sola dish sys em. The exhaus
gases om he u bine a e used o supply he hea demanded by he simple cycle ORC uni ,
wi h oluene as he wo king luid. The condense o his uni is cooled wi h a MED plan .
A 10 m diame e sola dish and a 6-e ec MED plan wi h a op b ine empe a u e o 70
◦
C
and a eed o 40,000 ppm a e analyzed. The esul s indica e an ORC ou pu o 17.4 kW
and 2.5 m
3
/day o eshwa e p oduc ion wi h an o e all exe gy e iciency o 41.7%. As
a s o age sys em, he calcula ed con igu a ion has a ound ip e iciency o 65.2%. Two
mul i-objec i e op imiza ions wi h e olu iona y algo i hms a e also pe o med by [
47
],
esul ing in op imal exe gy e iciencies o a ound 51%.
A poly-gene a ion sys em composed o a sola / ossil hyb id ecupe a i e gas u bine
cycle wi h an in e cooled wo-s age comp ession sys em is p oposed in [
48
]. The ai coming
om he ecupe a o is sola -hea ed be o e en e ing he combus ion chambe . The exhaus
gases om he gas u bine a e used o d i e he ORC uni . Mo eo e , he e is an abso p ion
e ige a ion sys em and a desalina ion uni , which consis s o a single-s age lash p ocess.
The seawa e eed is p ehea ed in he ORC condense and hen wi hin he condense o he
desalina ion uni . A e being p ehea ed, he seawa e low is sepa a ed in o wo s eams.
One o hem is di ec ly sen o he condense o he e ige a ion sys em. The second ac s
as he cooling low o he wo-s age comp ession be o e en e ing he e ige a ion sys em,
passing h ough he gene a o . The la e inally en e s he desalina ion uni as eed wa e .
A he ou le o he lash uni , he b ine is ai -cooled o low-g ade hea p oduc ion. Fo
he he modynamic analysis, concen a ing sola collec o s a e conside ed, while R134a is
he wo king luid in he simple ORC. The p oposed mul i-gene a ion con igu a ion has
an exe gy e iciency o 27%. This con igu a ion is compa ed wi h ano he in which he
sola hyb id gas cycle con igu a ion is main ained bu he ORC, cooling, and desalina ion
sys ems a e eplaced by a Kalina cycle.
2.3. P oposals wi h In eg a ion o Hyb id RO/The mal Desalina ion
Recen hyb id desalina ion con igu a ions wi h a sola -d i en ORC uni can also be
ound in speci ic li e a u e.
A sola –wind hyb id sys em, in which a simple sola ORC ope a ed wi h oluene is
connec ed o a sola pa abolic ough ield wi hou TES, is p esen ed in [
49
]. In addi ion o
he ORC, elec ici y p oduc ion om a wind u bine is also conside ed. The o al elec ici y
ou pu d i es a seawa e RO desalina ion plan and he su plus is sold o he g id. The
ejec ed hea o he ORC is also used in a MED-TVC plan .
Jaube e al. [
50
] p esen he analysis o h ee RO-MED hyb id sola desalina ion
sys ems powe ed by a PTC ield wi hou TES. The minol VP-1 is selec ed as he hea
ans e luid. Pa o he RO b ine low is used in he MED plan . As o he ORC, wo
possible wo king luids a e conside ed in his wo k. On one hand, he e is isopen ane, a
luid usually conside ed in ORC s udies, and on he o he hand, e hyl bu y a e, which
ep esen s a case no s udied so a and, acco ding o he au ho s, shows p omising esul s.
In he h ee p oposed con igu a ions, he hea ejec ed by he ORC p ehea s he eed wa e
o he e e se osmosis uni and he b ine low o he e e se osmosis uni be o e i en e s
he MED plan . As o he ORC a chi ec u es, he simple cycle, simple egene a i e and
simple egene a i e, and sola ehea ing o he apo a e conside ed.
P ocesses 2022,10, 153 16 o 23
whe e
TSF
is he a e age inle /ou le hea ing empe a u e o he HTF, and a
1
and a
2
a e
he hea losses coe icien s. Values o hese coe icien s a e de i ed om he in o ma ion
a ailable a [
69
]. Pa ame e s selec ed o he e alua ion o he sola ield pe o mance
a design condi ions a e gi en in Table 3. Two ex eme alues a e conside ed o he a
1
coe icien o quan i y he in luence o he ORC’s condensa ion empe a u e in scena ios o
di e en sola - o- he mal ene gy con e sion e iciency alues. The wo esul ing cu es a e
depic ed in Figu e 9.
Table 3. Loca ion and design condi ions o he e iciency compu a ion o he PTC sola ield.
Loca ion Fue e en u a (Cana y Islands, Spain)
La i ude, longi ude 28.317–14.071◦
Design condi ions
Ambien empe a u e, Tamb 23 ◦C
Di ec no mal i adiance, Gb,N 850 W/m2
Peak op ical pe o mance, ηop ,0075
Cleanliness index, Fe0.97
A ailabili y, a SF 0.95
Design poin Sola noon, 21 June
O ien a ion No h-Sou h (Eas -Wes acking)
Incidence angle, θ4.87◦
Op ical e iciency, η0,SF 0.67
Hea losses coe icien , a1(low–high alue) 0.02–0.4 W/m2×K
Tempe a u e dependence o he hea loss
coe icien , a20.001 W/m2×K2
P ocesses 2022, 10, x FOR PEER REVIEW 16 o 23
Fo he compa ison p esen ed in his sec ion, i is assumed ha a sola ield is com-
posed o PTCs. In ha case, he op ical e iciency is compu ed by aking in o accoun he
shadow (ηshadow) and end losses (ηendloss), he cleanliness o he sola collec o s (Fe), he a ail-
abili y o he sola ield (a SF), and he in luence o he incidence angle (
θ
) on i s peak op-
ical pe o mance (ηop ,0) ia he incidence angle modi ie (K):
𝜂, =𝜂,∙𝐾∙𝐹
∙𝜂 ∙𝜂∙𝑎𝑣 (3)
On he o he hand, he mal losses a e modeled as:
𝑄󰇗, =󰇟𝑎∙󰇛𝑇
 −𝑇)+𝑎∙󰇛𝑇
 −𝑇)󰇠∙
𝐴
 (4)
whe e 𝑇
 is he a e age inle /ou le hea ing empe a u e o he HTF, and a1 and a2 a e he
hea losses coe icien s. Values o hese coe icien s a e de i ed om he in o ma ion a ail-
able a [70]. Pa ame e s selec ed o he e alua ion o he sola ield pe o mance a design
condi ions a e gi en in Table 3. Two ex eme alues a e conside ed o he a1 coe icien o
quan i y he in luence o he ORC’s condensa ion empe a u e in scena ios o di e en
sola - o- he mal ene gy con e sion e iciency alues. The wo esul ing cu es a e de-
pic ed in Figu e 9.
Table 3. Loca ion and design condi ions o he e iciency compu a ion o he PTC sola ield.
Loca ion Fue e en u a (Cana y Islands,
Spain)
La i ude, longi ude 28.317°–14.071°
Design condi ions
Ambien empe a u e, Tamb 23 °C
Di ec no mal i adiance, Gb,N 850 W/m2
Peak op ical pe o mance, ηop ,0 075
Cleanliness index, Fe 0.97
A ailabili y, a SF 0.95
Design poin Sola noon, 21 June
O ien a ion No h-Sou h (Eas -Wes acking)
Incidence angle,
θ
4.87°
Op ical e iciency,
η
0,SF 0.67
Hea losses coe icien , a1 (low–high alue) 0.02–0.4 W/m2×K
Tempe a u e dependence o he hea loss coe i-
cien , a2 0.001 W/m2×K2
Figu e 9. Sola ield’s e iciency acco ding o he pa ame e s ixed in Table 3.
Figu e 9. Sola ield’s e iciency acco ding o he pa ame e s ixed in Table 3.
Figu e 10 shows he CSP
−
ORC + (MED + RO) con igu a ion o which a condensa ion
empe a u e o 70
◦
C is s udied. To assess only he desalina ion applica ion, he emaining
ne powe ou pu (
.
Wne
) no consumed as auxilia y by he MED plan (Speci ic Elec ici y
Consump ion, (
SECMED
) is dedica ed o an RO uni (
SECRO
). Unde hese assump ions,
he olume ic low a e o eshwa e ( .
Vp) is compu ed wi h he ollowing exp essions:
.
Vp,MED =.
Qin·(1−ηORC)
STECMED
(5)
.
Vp,RO =
.
Wne
SECRO
−
.
Vp,MED·SECMED
SECRO (6)

P ocesses 2022,10, 153 17 o 23
This con igu a ion is compa ed wi h he one shown on he le side, o which a
condensing empe a u e o 40
◦
C is assumed and whose ne powe p oduced is ully
consumed by an RO uni . In his case,
.
Vp,RO
can also be compu ed wi h he exp essions
abo e, making
.
Vp,MED =
0. Table 4shows he nume ical esul s o he compa ison,
assuming he same o al desalina ion capaci y in bo h cases.
P ocesses 2022, 10, x FOR PEER REVIEW 17 o 23
Figu e 10 shows he CSP − ORC + (MED + RO) con igu a ion o which a condensa-
ion empe a u e o 70 °C is s udied. To assess only he desalina ion applica ion, he e-
maining ne powe ou pu (𝑊󰇗) no consumed as auxilia y by he MED plan (Speci ic
Elec ici y Consump ion, 𝑆𝐸𝐶) is dedica ed o an RO uni (𝑆𝐸𝐶). Unde hese as-
sump ions, he olume ic low a e o eshwa e (𝑉󰇗) is compu ed wi h he ollowing
exp essions:
𝑉󰇗, =𝑄
󰇗 ∙󰇛1−𝜂)
𝑆𝑇𝐸𝐶 (5)
𝑉󰇗, =𝑊󰇗
𝑆𝐸𝐶 − 𝑉󰇗, ∙𝑆𝐸𝐶
𝑆𝐸𝐶  (6)
This con igu a ion is compa ed wi h he one shown on he le side, o which a con-
densing empe a u e o 40 °C is assumed and whose ne powe p oduced is ully con-
sumed by an RO uni . In his case, 𝑉󰇗, can also be compu ed wi h he exp essions abo e,
making 𝑉󰇗, =0. Table 4 shows he nume ical esul s o he compa ison, assuming he
same o al desalina ion capaci y in bo h cases.
Figu e 10. Con igu a ions conside ed o be compa ed: CSP − ORC + RO (le ) and CSP − ORC + (RO
+ MED) ( igh ).
As can be seen, inc easing he condensing empe a u e o 70 °C o include he MED
uni equi es an ORC uni wi h less ne powe due o he u iliza ion o he hea ejec ed
by he cycle o eshwa e p oduc ion ou pu (118 kW ins ead o 125 kW pe 1000 m3/day
o capaci y, 6% less). Howe e , he nega i e e ec o he abo e is clea ly e lec ed in he
sola ield a ea and s o age olume equi emen s. In he i s case, 11% mo e a ea would
be equi ed o sola mul iple (SM) = 1 due o he highe he mal ene gy inpu o he ORC
uni , while in he second case, he inc ease would be 24%.
The con igu a ions o be compa ed when he hea ejec ed by he cycle is consumed
in he gene a o o an abso p ion cooling sys em a e shown in Figu e 11. To make he
compa ison consis en , a mechanical apo comp ession (VC) e ige a ion sys em is an-
alyzed when he condense ’s hea is no used o his pu pose. Fo he CSP − ORC + (RO
+ ARS) con igu a ion, he auxilia y elec ical consump ion o he abso p ion e ige a ion
uni is conside ed negligible, in which case, bo h he cooling capaci y (𝑄󰇗,) and he de-
salina ed wa e low a e (𝑉󰇗,) a e easily compu ed as:
G
M edium
em pe a u e
ORC
Condense
Tu bine
Pump
Recupe a o
E apo a o -
supe hea e
P ehea e
1
2
3
y
x
4
B ine
F eshw a e
Elec ici y
Mul i-E ec
Dis illa ion uni
Feedw a e
B ine
F eshw a e
RO
uni
G
M edium
e m p e a u e
ORC
Condense
Tu bine
Pump
Recupe a o
E apo a o -
supe hea e
P ehea e
1
2
3
4
y
x
Elec ici y
B ine
F eshw a e
RO
uni
Feedw a e
Figu e 10.
Con igu a ions conside ed o be compa ed: CSP
−
ORC + RO (
le
) and CSP
−
ORC +
(RO + MED) ( igh ).
Table 4.
Compa ison o he CSP
−
ORC con igu a ion o desalina ion (same desalina ion capaci y).
SECRO = 3 kWh/m3;SECMED = 2 kWh/m3; PR = 10. Di ec TES wi h he mal oil The minol VP-1.
CSP −ORC + RO CSP −ORC +
(MED + RO)
ORC’s condensa ion empe a u e, Tcond 40 ◦C 70 ◦C
ORC’s e apo a ion empe a u e, Te ap 270 ◦C 270 ◦C
ORC’s he mal e iciency, ηORC [%] 24.98 21.37
HTF’s ou le empe a u e, THEX,o 226.5 234.5
A e age sola ield empe a u e [◦C] 263 267
Sola ield’s e iciency, ηSF (low a1/high a1) 0.608 0.501 0.606 0.500
S o age medium olume/s o ed ene gy
[m3/MWh] 25.9 29.1
S o age medium olume/equi alen elec ic
s o ed ene gy [m3/MWhe]103.7 136.1
ORC he mal inpu / o al desalina ion capaci y
[kW/(1000 m3/day)] 500 554
Ne ORC powe ou pu / o al desalina ion
capaci y [kW/(1000 m3/day)] 125 118
Sola ield’s a ea (SM = 1)/ o al desalina ion
capaci y [m
2
/(1000 m
3
/day)] (low a
1
/high a
1
)
968 1175 1075 1303
S o age medium olume (1 h)/ o al
desalina ion capaci y [m3/(1000 m3/day)] 13.0 16.1
P ocesses 2022,10, 153 18 o 23
As can be seen, inc easing he condensing empe a u e o 70
◦
C o include he MED
uni equi es an ORC uni wi h less ne powe due o he u iliza ion o he hea ejec ed by
he cycle o eshwa e p oduc ion ou pu (118 kW ins ead o 125 kW pe 1000 m
3
/day
o capaci y, 6% less). Howe e , he nega i e e ec o he abo e is clea ly e lec ed in he
sola ield a ea and s o age olume equi emen s. In he i s case, 11% mo e a ea would be
equi ed o sola mul iple (SM) = 1 due o he highe he mal ene gy inpu o he ORC
uni , while in he second case, he inc ease would be 24%.
The con igu a ions o be compa ed when he hea ejec ed by he cycle is consumed in
he gene a o o an abso p ion cooling sys em a e shown in Figu e 11. To make he com-
pa ison consis en , a mechanical apo comp ession (VC) e ige a ion sys em is analyzed
when he condense ’s hea is no used o his pu pose. Fo he CSP
−
ORC + (RO + ARS)
con igu a ion, he auxilia y elec ical consump ion o he abso p ion e ige a ion uni is
conside ed negligible, in which case, bo h he cooling capaci y (
.
Qc,AR
) and he desalina ed
wa e low a e ( .
Vp,RO) a e easily compu ed as:
.
Qc,AR =COPAR·
.
Qin·(1−ηORC)(7)
.
Vp,RO =.
Qin·ηORC
SECRO
(8)
P ocesses 2022, 10, x FOR PEER REVIEW 18 o 23
𝑄󰇗, =𝐶𝑂𝑃
 ∙𝑄󰇗 ∙󰇛1−𝜂) (7)
𝑉󰇗, =𝑄
󰇗 ∙𝜂
𝑆𝐸𝐶 (8)
Fo he CSP − ORC + (RO + VC) con igu a ion, he 𝑉󰇗, can be ob ained om:
𝑉󰇗, =
 ∙󰇣𝜂 ∙𝑄󰇗 −󰇗,
󰇤 (9)
whe e 𝑄󰇗, is he cooling capaci y o he apo comp ession e ige a ion sys em.
Figu e 11. Con igu a ions conside ed o be compa ed: CSP − ORC + (RO + VC) (le ) and CSP − ORC
+ (RO + ARS) ( igh ).
Table 4. Compa ison o he CSP − ORC con igu a ion o desalina ion (same desalina ion capaci y).
SECRO = 3 kWh/m3 ; SECMED = 2 kWh/m3 ; PR = 10. Di ec TES wi h he mal oil The minol VP-1.
CSP − ORC +
RO
CSP − ORC +
(MED + RO)
ORC’s condensa ion empe a u e, Tcond 40 °C 70 °C
ORC’s e apo a ion empe a u e, Te ap 270 °C 270 °C
ORC’s he mal e iciency,
η
ORC [%] 24.98 21.37
HTF’s ou le empe a u e, THEX,o 226.5 234.5
A e age sola ield empe a u e [°C] 263 267
Sola ield’s e iciency,
η
SF (low a1/high a1) 0.608 0.501 0.606 0.500
S o age medium olume/s o ed ene gy [m3/MWh] 25.9 29.1
S o age medium olume/equi alen elec ic s o ed ene gy
[m3/MWhe] 103.7 136.1
ORC he mal inpu / o al desalina ion capaci y [kW/(1000
m3/day)] 500 554
Ne ORC powe ou pu / o al desalina ion capaci y
[kW/(1000 m3/day)] 125 118
Sola ield’s a ea (SM = 1)/ o al desalina ion capaci y
[m2/(1000 m3/day)] (low a1/high a1) 968 1175 1075 1303
G
M edium
e m p e a u e
ORC
Condense
Tu bine
Pump
Recupe a o
E apo a o -
supe hea e
P ehea e
1
2
3
y
x
4
Elec ici y
B ine
F eshw a e
C o o lin g Hea ing
Feedw a e
Abso p ion
Re ige a ion Sys em
RO
uni
G
Medium
em pe a u e
ORC
Condense
Tu bine
Pump
Recupe a o
E apo a o -
supe hea e
P ehea e
1
2
3
4
y
x
Elec ici y
B ine
F eshw a e
RO
uni
Feedw a e
Vapo
Comp ession
Re ige a ion
Cooling Hea ing
Figu e 11.
Con igu a ions conside ed o be compa ed: CSP
−
ORC + (RO + VC) (
le
) and CSP
−
ORC + (RO + ARS) ( igh ).
Fo he CSP −ORC + (RO + VC) con igu a ion, he .
Vp,RO can be ob ained om:
.
Vp,RO =1
SECRO
·"ηORC·
.
Qin −
.
Qc,VC
COPVC #(9)
whe e .
Qc,VC is he cooling capaci y o he apo comp ession e ige a ion sys em.
The nume ical esul s o he compa ison o he same cooling and desalina ion capaci y
a e shown in Table 5, whe e a condensing empe a u e o 90
◦
C is assumed o he ope a ion
o he abso p ion e ige a ion uni .
P ocesses 2022,10, 153 19 o 23
Table 5.
Compa ison o he CSP
−
ORC con igu a ion o desalina ion and e ige a ion (same
desalina ion and cooling capaci y). SEC
RO
= 3 kWh/m
3
; di ec TES wi h he mal oil The minol VP-1.
CSP −ORC +
(RO + VC)
CSP −ORC +
(RO + AR)
ORC’s condensa ion empe a u e, Tcond 40 ◦C 90 ◦C
ORC’s e apo a ion empe a u e, Te ap 270 ◦C 270 ◦C
ORC’s he mal e iciency, ηORC 24.98% 19.12%
HTF’s ou le empe a u e, THEX,o 226.5 ◦C 239.6 ◦C
COP 4 0.7
A e age sola ield empe a u e [◦C] 263 270
Sola ield’s e iciency, ηSF 0.608 0.501 0.604 0.493
Sola ield’s a ea (SM = 1), ASF [m2]4553 5526 3440 4215
S o age medium olume/s o ed ene gy
[m3/MWh] 25.9 31.5
S o age medium olume/equi alen elec ic
s o ed ene gy [m3/MWhe]103.7 164.9
ORC he mal inpu / o al desalina ion capaci y
[kW/(1000 m3/day)] 871 654
Ne ORC powe ou pu / o al desalina ion
capaci y [kW/(1000 m3/day)] 218 125
Sola ield’s a ea (SM = 1)/ o al desalina ion
capaci y [m2/(1000 m3/day)] 1685 2045 1273 1560
S o age medium olume (1 h)/ o al
desalina ion capaci y [m3/(1000 m3/day)] 22.6 20.6
Unlike he use o MED desalina ion, he use o he condense ’s hea o cooling
combined wi h RO desalina ion has ad an ages o e a con igu a ion in which he cooling
p oduc ion is pe o med by a comp ession sys em o a oid inc easing he condensa ion
empe a u e o he cycle. Mo eo e , his si ua ion is obse ed o a ela i ely high COP
alue o he comp ession chille . E en in ha case, he be e pe o mance o he ORC does
no lead o a smalle size o he ORC uni , which inally implies a la ge s o age olume
and a la ge equi ed sola ield a ea.
5. Conclusions and Recommenda ions
The ollowing ends ha e been de ec ed a e he upda e o he design p oposals
ecen ly ound in he speci ic li e a u e on sola desalina ion sys ems based on ORCs. In
he medium- empe a u e ange, i is common o ind p oposals in which he hea ejec ed
by he cycle is used, in gene al, o d i e he mal desalina ion p ocesses (mainly MED) o
abso p ion cooling p ocesses. In he low- empe a u e ange, he e a e nume ous p oposals
o he use o sola ponds as sola collec ion and ene gy s o age sys ems. Rega ding
he coupling o desalina ion sys ems wi h sola supe c i ical CO
2
powe cycles, he mos
common op ion is he use o he hea ejec ed by he cycle by means o MED uni s.
In addi ion, he c i ical analysis o he e iewed con igu a ions leads o he ollowing
conclusions and design ecommenda ions:
•
In emo e loca ions, sola desalina ion sys ems based on sola -pond-d i en ORC/RO
should be s udied in compa ison o sola PV/RO plan s o supply only he eshwa-
e demand.
•
Conce ning he selec ion o he mal desalina ion e sus e e se osmosis, design p o-
posals should conside he ex a cos s a ibu able o cooling low, namely, capi al
expenses o seawa e in ake and pumping sys ems, along wi h pumping elec ici y
consump ion (see Figu e 5).
P ocesses 2022,10, 153 20 o 23
•
A compa a i e analysis o sola ORC/RO combined wi h cooling echnologies has
been pe o med. The use o he hea ejec ed by he cycle o d i e an abso p ion
e ige a ion sys em is supe io since esul s show ha a bigge sola ield and s o age
sys em would be needed o supply he same cooling capaci y wi h a mechanical apo
comp ession e ige a ion sys em (see Table 5).
•
A compa a i e analysis has also been ca ied ou o compa e sola ORC/MED and
sola ORC/RO desalina ion. Auxilia y elec ici y consump ion o 0.75 kWh/m
3
is
assumed in seawa e RO desalina ion, a ibu able o he con ol sys em and eed
pumping, whe eas 2 kWh/m
3
has been conside ed in MED plan s due o he addi ional
equi emen s o a acuum sys em and cooling low pumping (see Figu e 5). Resul s
(see Table 4) show ha he mal desalina ion is no ecommended o exploi he hea
ejec ion o he powe cycle since he condensing empe a u e mus be inc eased o
couple he MED uni .
•
On he con a y, hea ejec ion o sCO
2
cycles in CSP plan s may be economically
exploi ed by inno a i e MED desalina ion plan s wi h he so-called cascade design
depending on bo h local egula ions o discha ge empe a u e and he co esponding
auxilia y pumping o cooling low. Wa e p oduc ion is limi ed o he was e hea
a ailable, so in he case o highe wa e demands, RO desalina ion is he only op ion
ecommended. Ei he seawa e eed o concen a e lows o he RO plan can be used as
he cooling low o he powe cycle, up o he maximum limi o empe a u e discha ge.
Based on he esul s o he p esen li e a u e upda e and assessmen , esea ch on he
imp o emen o sola ORC con igu a ions o poly-gene a ion, wi h eshwa e p oduc ion
h ough desalina ion, is conside ed a u u e wo k o in e es , in addi ion o sola sCO
2
coupled o no el MED plan s wi h enhanced ene gy e iciency.
Au ho Con ibu ions:
Concep ualiza ion, A.M.D.-T. and L.G.-R.; w i ing—o iginal d a p epa a-
ion, A.M.D.-T. and L.G.-R.; w i ing— e iew and edi ing, A.M.D.-T. and L.G.-R.; unding acquisi ion,
L.G.-R. All au ho s ha e ead and ag eed o he published e sion o he manusc ip .
Funding:
This esea ch was unded by he Eu opean Regional De elopmen Fund, In e eg A lan ic
A ea, and he EERES4WATER P ojec (Second Call, P io i y 2, EAPA_1058/2018). The Uni e si y o
Se ille is also g a e ully acknowledged o suppo ing his esea ch h ough i s In e nal Resea ch
P og amme (Plan P opio de In es igación) unde con ac no. 2019/00000359.
Ins i u ional Re iew Boa d S a emen : No applicable.
In o med Consen S a emen : No applicable.
Acknowledgmen s:
L. Ga cía-Rod íguez wishes o hank he Eu opean Regional De elopmen Fund,
In e eg A lan ic A ea, o i s inancial assis ance wi hin he amewo k o he EERES4WATER P ojec
(Second Call, P io i y 2, EAPA_1058/2018).
Con lic s o In e es :
The au ho s decla e no con lic o in e es . The unde s had no ole in he design
o he s udy; in he collec ion, analyses, o in e p e a ion o da a; in he w i ing o he manusc ip , o
in he decision o publish he esul s.
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