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Environmental Impact of Phosphogypsum-Derived Building Materials

Abstract

The aim of the present work was to characterize the products obtained from the treatment of phosphogypsum residue by means of two recovery routes, and also to evaluate the concentrations of heavy metals and radionuclides in the materials obtained and their leachates. In this way, it is possible to determine how the most hazardous components of phosphogypsum behave during procedures until their stabilization through CO2 fixation. This study provides an initial estimate of the possibilities of reusing the resulting products from a health and safety risk standpoint and their potential polluting capacity. The phases resulting from the transformations were controlled, and the behaviour of standard mortars manufactured from the resulting paste lime was studied. In all cases, an additional control of the leachate products was performed

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Environmental Impact of Phosphogypsum-Derived Building Materials

Author: Romero Hermida, Isabel; Flores Alés, Vicente; Hurtado Bermúdez, Santiago José; Santos, A.; Esquivias Fedriani, Luis María
Year: 2020
Source: https://idus.us.es/bitstreams/59b0d3a2-d92f-4b72-9cab-8756f5d8c968/download
In e na ional Jou nal o
En i onmen al Resea ch
and Public Heal h
A icle
En i onmen al Impac o Phosphogypsum-De i ed
Building Ma e ials
M. I. Rome o-He mida 1, V. Flo es-Alés2,* , S. J. Hu ado-Be múdez 3, A. San os 4and
L. Esqui ias 1,5
1Física de la Ma e ia Condensada, Uni e sidad de Se illa, 41012 Se illa, Spain;
isa ome [email p o ec ed] (M.I.R.-H.); [email p o ec ed] (L.E.)
2Cons ucciones A qui ec ónicas II, Uni e sidad de Se illa, 41012 Se illa, Spain
3CITIUS—S.G.I. Celes ino Mu is, Uni e sidad de Se illa, 41012 Se illa, Spain; [email p o ec ed]
4De Ciencias de la Tie a, Uni e sidad de Cádiz, 11519 Cádiz, Spain; [email p o ec ed]
5Ins i u o de Ciencia de Ma e iales de Se illa, CSIC—Uni e sidad de Se illa, 41092 Se illa, Spain
*Co espondence: [email p o ec ed]; Tel.: +34-954-556-656
Recei ed: 28 May 2020; Accep ed: 11 June 2020; Published: 14 June 2020


Abs ac :
The aim o he p esen wo k was o cha ac e ize he p oduc s ob ained om he ea men
o phosphogypsum esidue by means o wo eco e y ou es, and also o e alua e he concen a ions
o hea y me als and adionuclides in he ma e ials ob ained and hei leacha es. In his way, i
is possible o de e mine how he mos haza dous componen s o phosphogypsum beha e du ing
p ocedu es un il hei s abiliza ion h ough CO
2
ixa ion. This s udy p o ides an ini ial es ima e o
he possibili ies o eusing he esul ing p oduc s om a heal h and sa e y isk s andpoin and hei
po en ial pollu ing capaci y. The phases esul ing om he ans o ma ions we e con olled, and he
beha iou o s anda d mo a s manu ac u ed om he esul ing pas e lime was s udied. In all cases,
an addi ional con ol o he leacha e p oduc s was pe o med.
Keywo ds: phosphogypsum; lime pas e; mo a ; hea y me als; adionuclides
1. In oduc ion
One o he mos con amina ing indus ies is he phospho ic acid (H
3
PO
4
) indus y. This chemical
is widely used in ag icul u al e ilize s, de e gen addi i es, cleaning p oduc s, and insec icides.
Phospho ic acid is p oduced om he ea men o calcium phospha e ocks wi h sulphu ic acid. The
chemical eac ion o he indus ial p ocess is:
Ca3(PO4)+3H2SO4+6H2O→2H3PO4+3(CaSO4)·2H2O. (1)
The esidue gene a ed by his p ocess, ha is, mainly calcium sulpha e di-hyd a e, is commonly
known as phosphogypsum (PG) [1].
PG is no mally slu ed wi h wa e and hen pumped in eno mous amoun s o a nea by deposi .
The e ilize manu ac u ing indus y in he p o ince o Huel a (SW Spain) is based on an impo an
p oduc ion o phospho ic acid by we p ocessing o he phospho ic ock in an indus ial plan om he
1960s. In some cases, such as in Huel a (SW Spain), hese deposi s may be loca ed in he icini y o
popula ed owns o in coas al zones close o he phospho ic acid plan s whe e hey occupy la ge a eas
o land, hus ep esen ing a haza d o bo h he en i onmen and local popula ion [
2
–
4
]. In he case o
Huel a (SW Spain), he ma e ial s o ed eaches 120 million ons and occupies an a ea o 1200 hec a es
nea he es ua y o he Tin o and Odiel i e mou hs [
5
]. The g owing in e es in he es o a ion o he
en i onmen by emo ing land ills and was e s acks is an incen i e o sea ch o po en ial low-cos
applica ions o PG was es.
In . J. En i on. Res. Public Heal h 2020,17, 4248; doi:10.3390/ije ph17124248 www.mdpi.com/jou nal/ije ph
In . J. En i on. Res. Public Heal h 2020,17, 4248 2 o 17
Un ea ed PG could ce ainly be used in se e al indus ial applica ions. Howe e , i con ains
hea y me als and adionuclides, which a e ha m ul o he en i onmen and human heal h [
6
,
7
]. This
is an impo an d awback when i comes o einco po a ing PG in he indus ial p oduc ion ci cui
in acco dance wi h he p inciples o he clean ci cula economy [
8
]. Each yea , nea ly 200 M o PG
a e p oduced wo ldwide, bu only 15% o p is ine PG is e-used [
9
,
10
]. The p ope ies o he ma e ial
no only make i u gen o p ocess and e en ually emo e he deposi s en i ely, bu also o e many
signi ican oppo uni ies o eco e aluable ma e ials, hus suppo ing he ci cula economy and, as
men ioned, adding alue by CO2seques a ion.
The inco po a ion o cons uc ion and demoli ion was e in conc e e and cemen mo a s is al eady
a common p ac ice, and he aim is o ensu e he cons uc ion indus y assumes pa o he was e i
p oduces [
11
,
12
]. The goal o his s eam is o p omo e he use o conglome a es by inco po a ing was e o
p oduce so-called “g een conc e e”. To achie e his, app op ia e s anda ds a e u gen ly equi ed, as well
as in e disciplina y collabo a ions be ween he di e en s akeholde s in ol ed in cons uc ion [13].
PG is a sou ce o calcium, which, in addi ion o being a CO
2
seques e ing agen , is a cons uc ion
ma e ial [
14
,
15
]. Resea ch has demons a ed he high e iciency o po landi e p ecipi a ion by PG
dissolu ion using an alkaline soda solu ion [
16
]; PG, eac ing wi h ammonia, may be con e ed in o
ammonium sulpha e and p ecipi a ed calcium ca bona e [
17
], yielding eac ion con e sion e iciencies
o >95% [
18
]. By means o o he p ocesses wi h PG, was es, which a e unable o ix CO
2
by hemsel es,
can be success ully u ned in o e ec i e CO
2
sinks [
19
]. CO
2
seques a ion may also be achie ed
h ough mine al ca bona ion o was e PG using he echnique o memb ane elec olysis [
20
] and by he
PG educ ion he mal decomposi ion p ocess [21].
In his s udy, PG was ea ed in wo ways. The i s op ion (p ocedu e A) was based on i s
eac ion wi h sodium hyd oxide (Na(OH)) o ob ain po landi e (Ca(OH)
2
) in he o m o lime pas e in
a hena di e (Na2SO4) solu ion [20]. Then, he lime eac s apidly and comple ely wi h CO2, yielding
p ecipi a ed calcium ca bona e (PCC). The second op ion (p ocedu e B) was based on dissolu ion in a
highly alkaline liquid esidue om he aluminium anodizing indus y, ich in Na-Al. The esul ing
p ecipi a e consis ed o ka oi e (Ca
3
Al
2
(OH)
12
). Ka oi e has high ca bona ion e iciency (80–100%),
and p oduces a solid p ecipi a e mainly composed o calci e (CaCO
3
) and an aluminium hyd oxide
(Al(OH)3) solu ion [22].
Following he s eam o euse hese was es in he cons uc ion indus y, he slaked lime p oduced
can be used as a mo a componen . Ca(OH)
2
imp o es he deg ee o cohesion o he ma e ials by
means o he ca bona ion eac ion, hus educing po osi y. I s ca bona ion is a spon aneous p ocess
d i en by di usion and a ec ed by na u al a iables [23].
PG is classi ied, acco ding o he Uni ed S a es En i onmen al P o ec ion Agency (US-EPA),
2018 [
24
], as a Technologically Enhanced Na u ally Occu ing Radioac i e Ma e ial (TENORM). The
main oxic and adioac i e me als p esen in PG a e S , As, Y, Cu, Pb, and he adioac i e iso opes
226
Ra,
238
U,
230
Th,
210
Pb, and
210
Po [
25
–
27
]. Mino i y impu i ies, such as P, Cd, and C a e also d agged ou .
These ep esen a isk o en i onmen al con amina ion ha a ec s li ing beings. The concen a ions o
hese elemen s a y depending on he cha ac e is ics o he o iginal phospha e ock [28].
To es ablish he limi a ions o he use o PG ela ed o i s con en in he abo emen ioned elemen s,
i is necessa y o unde s and hei leaching p ocesses du ing ea men [
29
], om PG un il i s inal
s abiliza ion as calcium ca bona e. Thus, he en i onmen al impac gene a ed by i s ex ac ion om
PG a s and i s possible ecycling could be e alua ed.
The main aim o his wo k is he cha ac e iza ion and con ol o he phases esul ing om PG
was e ans o ma ion by wo p ocesses: P ocedu e A is based on ea men wi h Na(OH) in which he
con ols we e pe o med on he po landi e ob ained as lime pas e in he i s phase and also in he
calci e esul ing om ca bona ion. Addi ionally, lime mo a s we e manu ac u ed om lime pas e and
s anda dized siliceous sand o e i y he beha iou once he esul ing ma e ial was s abilized [
30
], as
well as i s possible iabili y as cons uc ion ma e ial. P ocedu e B is based on he eac ion wi h he
In . J. En i on. Res. Public Heal h 2020,17, 4248 3 o 17
esidual liquid o he aluminium indus y. I was ca ied ou on he ka oi e om he i s eac ion and
he inal calci e ob ained a e he ca bona ion p ocess.
In all cases, an addi ional con ol o he leacha e p oduc s in acco dance wi h he oxici y
cha ac e is ic leaching p ocedu e (TCLP) was ca ied ou [31].
2. Ma e ials and Me hods
C ude solid PG was supplied by Fe ibe ia om he s acks in Huel a, Spain. Fo i s cha ac e iza ion,
he esidue was homogenized by means o a spli e . Then, he mois u e con en o aw PG was
analysed, yielding a alue o 21%. Fo he di e en es s, he emaining mois u e was emo ed in an
o en a 40
◦
C o a ound 48 hou s o p ese e he s uc u al wa e o he gypsum. Once d y, i was
g ounded in a mo a and used in he expe imen s wi hou any o he ea men . The p ocess schemes
can be seen in Figu e 1.
In . J. En i on. Res. Public Heal h 2020, 17, x 3 o 17
In all cases, an addi ional con ol o he leacha e p oduc s in acco dance wi h he oxici y
cha ac e is ic leaching p ocedu e (TCLP) was ca ied ou [31].
2. Ma e ials and Me hods
C ude solid PG was supplied by Fe ibe ia om he s acks in Huel a, Spain. Fo i s
cha ac e iza ion, he esidue was homogenized by means o a spli e . Then, he mois u e con en o
aw PG was analysed, yielding a alue o 21%. Fo he di e en es s, he emaining mois u e was
emo ed in an o en a 40 °C o a ound 48 hou s o p ese e he s uc u al wa e o he gypsum.
Once d y, i was g ounded in a mo a and used in he expe imen s wi hou any o he ea men . The
p ocess schemes can be seen in Figu e 1.
Figu e 1. Schemes o bo h chemical p ocesses.
2.1. P ocedu e A
2.1.1. Syn hesis
Lime pu y was ob ained by using he Cá denas–Escude o me hod [16], wi h some
modi ica ions o scale he gene a ion o by-p oduc s.
In he i s s age, 300 g o PG was suspended in 500 mL o dis illed H2O unde magne ic s i ing.
To his suspension, 180 g o NaOH in a 9 M solu ion was slowly added o a ou he c ys alliza ion
o he solid phase. The mix u e was also s i ed o he nex 10 min. The eac ion associa ed wi h his
p ocess was:
CaSO4·2H2O + 2NaOH → Ca(OH)2 + Na2SO4 + 2H2O.
(2)
This p ocess esul ed in he p ecipi a ion o a whi ish solid phase iden i ied as pu y lime and
he Na2SO4 solu ion as a clea supe na an liquid. The solid phase was sepa a ed by cen i uga ion
and labelled C_S. The liquid phase was disca ded o his esea ch. Se e al samples o he solid phase
we e d ied in an o en a 40 °C in o de o hyd a e and ca bona e hem o p ese e hem om
humidi y and a mosphe ic CO2, so ha hey could be s udied.
2.1.2. Ca bona ion P ocess
Figu e 1. Schemes o bo h chemical p ocesses.
2.1. P ocedu e A
2.1.1. Syn hesis
Lime pu y was ob ained by using he C
á
denas–Escude o me hod [
16
], wi h some modi ica ions
o scale he gene a ion o by-p oduc s.
In he i s s age, 300 g o PG was suspended in 500 mL o dis illed H
2
O unde magne ic s i ing.
To his suspension, 180 g o NaOH in a 9 M solu ion was slowly added o a ou he c ys alliza ion o
he solid phase. The mix u e was also s i ed o he nex 10 min. The eac ion associa ed wi h his
p ocess was:
CaSO4·2H2O+2NaOH →Ca(OH)2+Na2SO4+2H2O. (2)
This p ocess esul ed in he p ecipi a ion o a whi ish solid phase iden i ied as pu y lime and he
Na
2
SO
4
solu ion as a clea supe na an liquid. The solid phase was sepa a ed by cen i uga ion and
labelled C_S. The liquid phase was disca ded o his esea ch. Se e al samples o he solid phase we e
d ied in an o en a 40
◦
C in o de o hyd a e and ca bona e hem o p ese e hem om humidi y and
a mosphe ic CO2, so ha hey could be s udied.
2.1.2. Ca bona ion P ocess
In he second s age, 2 g o he C_S sample was dispe sed in 40 mL o dis illed wa e unde
magne ic s i ing in a eac o (mass a io [C_S]/[H
2
O] =1/20). A low o CO
2
(1 ba , 20 cm
3
/s) was
In . J. En i on. Res. Public Heal h 2020,17, 4248 4 o 17
bubbled h ough he suspension o 15 min a oom empe a u e and p essu e [
1
]. The sample was le
o es o e nigh in his CO2- ich wa e .
The ca bona ion eac ion was:
Ca(OH)2+CO2→CaCO3+H2O. (3)
The esul ing solid phase, labelled Ca_S (mainly CaCO
3
,), was sepa a ed by cen i uga ion and d ied
in an o en a 80
◦
C. The supe na an was disca ded, and samples o he solid phase we e aken o s udy.
2.1.3. Lime Mo a Manu ac u ing
Mo a s we e manu ac u ed wi h lime pu y ob ained as desc ibed abo e, wi h 1:3 lime/sand and
0.5 by weigh wa e /lime a ios. They we e p epa ed wi h a wa e con en ha allowed a consis ency o
185 mm, measu ed in acco dance wi h he UNE-EN 1015-3/A1 s anda d [
32
] o ensu e i s wo kabili y.
P isma ic samples we e p epa ed in acco dance wi h UNE-EN 1015-2/A1 s anda ds [
33
]. The
samples we e hen deposi ed o 21 days in clima ic chambe s (New B unsaick Galaxy 170) o accele a e
ca bona ion unde ealis ic cu ing condi ions o 25
◦
C, 50–60% RH, and 10% ol. o CO
2
concen a ion.
2.2. P ocedu e B
2.2.1. Syn hesis
Ve insu S.A. (Je ez de la F on e a, Spain) p o ided he aluminium anodizing p ocess was e. This
was a clea solu ion wi h a pH o a ound 14, con aining a small amoun o a p ecipi a e phase. Fo
his s udy, he esidue was il e ed, and he p ecipi a e disca ded. The caus ic liquid was e had a
densi y o 1.32 g/cm
3
, and a composi ion o [Na] =110
±
2 g/L (4.78
±
0.09 M)) and [Al] =52
±
2 g/L
(1.93 ±0.07 M).
The caus ic liquid om he anodizing aluminium indus y eac ed wi h PG acco ding o he
eac ion [23]:
3(CaSO4·2H2O) +6Na+(aq) +12OH-(aq) +2Al3+(aq)
In . J. En i on. Res. Public Heal h 2020, 17, x 4 o 17
In he second s age, 2 g o he C_S sample was dispe sed in 40 mL o dis illed wa e unde
magne ic s i ing in a eac o (mass a io [C_S]/[H2O] = 1/20). A low o CO2 (1 ba , 20 cm3/s) was
bubbled h ough he suspension o 15 min a oom empe a u e and p essu e [1]. The sample was
le o es o e nigh in his CO2- ich wa e .
The ca bona ion eac ion was:
Ca(OH)2 + CO2 → CaCO3 + H2O. (3)
The esul ing solid phase, labelled Ca_S (mainly CaCO3,), was sepa a ed by cen i uga ion and
d ied in an o en a 80 °C. The supe na an was disca ded, and samples o he solid phase we e aken
o s udy.
2.1.3. Lime Mo a Manu ac u ing
Mo a s we e manu ac u ed wi h lime pu y ob ained as desc ibed abo e, wi h 1:3 lime/sand
and 0.5 by weigh wa e /lime a ios. They we e p epa ed wi h a wa e con en ha allowed a
consis ency o 185 mm, measu ed in acco dance wi h he UNE-EN 1015-3/A1 s anda d [32] o ensu e
i s wo kabili y.
P isma ic samples we e p epa ed in acco dance wi h UNE-EN 1015-2/A1 s anda ds [33]. The
samples we e hen deposi ed o 21 days in clima ic chambe s (New B unsaick Galaxy 170) o
accele a e ca bona ion unde ealis ic cu ing condi ions o 25 °C, 50–60% RH, and 10% ol. o CO2
concen a ion.
2.2. P ocedu e B
2.2.1. Syn hesis
Ve insu S.A. (Je ez de la F on e a, Spain) p o ided he aluminium anodizing p ocess was e.
This was a clea solu ion wi h a pH o a ound 14, con aining a small amoun o a p ecipi a e phase.
Fo his s udy, he esidue was il e ed, and he p ecipi a e disca ded. The caus ic liquid was e had a
densi y o 1.32 g/cm3, and a composi ion o [Na] = 110 ± 2 g/L (4.78 ± 0.09 M)) and [Al] = 52 ±2 g/L
(1.93 ± 0.07 M).
The caus ic liquid om he anodizing aluminium indus y eac ed wi h PG acco ding o he
eac ion [23]:
3(CaSO4·2H2 O) + 6Na+ (aq) + 12OH-(aq) + 2Al3+ (aq) ↔ 3Na2SO4 + Ca3Al2(OH)12 +
6H2O. (4)
The p ocess was ini ia ed by adding 12.5 g o PG o 25.0 mL o he aluminium-anodizing esidue
unde magne ic s i ing o 3 h in ambien p essu e and empe a u e condi ions [9,16]. The pH was
12.0 du ing he p ocess. The o ma ion o a g ey p ecipi a e was obse ed, labelled as PGAS, and a
yellowish supe na an was disca ded o his s udy. Bo h phases we e sepa a ed by cen i uga ion,
and hen he solid phase was placed in an o en a 80 °C o p ese e i om hyd a ion and ca bona ion.
Based on he chemical composi ion o he esidues, his speci ic mass a io co esponded o a
s oichiome ic mola a io o [Ca2+]/[Al3+] = 1.5, a ge ing he chemical eac ion (4). I should be no ed
ha o he s oichiome ic ela ionships wi h di e en addi ions o wa e we e es ed. In his s udy,
only he one ha p oduced he bes CO2 seques e ing esul s, which was he inal pu pose, is
p esen ed.
3Na2SO4+Ca3Al2(OH)12 +6H2O. (4)
The p ocess was ini ia ed by adding 12.5 g o PG o 25.0 mL o he aluminium-anodizing esidue
unde magne ic s i ing o 3 h in ambien p essu e and empe a u e condi ions [
9
,
16
]. The pH was
12.0 du ing he p ocess. The o ma ion o a g ey p ecipi a e was obse ed, labelled as PGAS, and a
yellowish supe na an was disca ded o his s udy. Bo h phases we e sepa a ed by cen i uga ion,
and hen he solid phase was placed in an o en a 80
◦
C o p ese e i om hyd a ion and ca bona ion.
Based on he chemical composi ion o he esidues, his speci ic mass a io co esponded o a
s oichiome ic mola a io o [Ca
2+
]/[Al
3+
]=1.5, a ge ing he chemical eac ion (4). I should be no ed
ha o he s oichiome ic ela ionships wi h di e en addi ions o wa e we e es ed. In his s udy, only
he one ha p oduced he bes CO2seques e ing esul s, which was he inal pu pose, is p esen ed.
2.2.2. Ca bona ion P ocess
In his s ep, 2 g om he PGAS sample we e dispe sed in 40 mL o dis illed wa e [
19
]. The
ob ained mix u e was subjec ed o a con inuous low o pu e CO
2
(
≈
1 ba , 20 cm
3
/s) unde magne ic
s i ing. The sample was ca bona ed acco ding o he ollowing eac ion:
Ca3Al2(OH)12 +3CO2→3CaCO3+2Al(OH)3+3H2O. (5)
The pH du ing he p ocess dec eased mono onously om 12.8 un il i s abilized a 6.7 a e 110 min.
This esul ed in a new solid–liquid suspension whose phases we e sepa a ed by cen i uga ion. The
solid phase was labelled PGAB, and he liquid phase disca ded. The ep oducibili y o he expe imen
was e i ied se e al imes.
In . J. En i on. Res. Public Heal h 2020,17, 4248 5 o 17
2.3. Cha ac e iza ion Techniques
Mine al cha ac e iza ion o he samples was pe o med by X- ay di ac ion. The di ac ion
in ensi ies we e measu ed on a B uke powde di ac ome e (model D8-Ad ance A25) equipped
wi h con en ional B agg–B en ano geome y and a Cu anode. X’Pe HighSco e so wa e (Mal e n
Panaly ical, Mal e n, UK) was used o analyse he esul s.
An ICP-MS/MS Agilen 8800 (Agilen Technologies, San a Cla a, CA, USA) was used o analyse he
elemen s and iso opes a ace and ul a- ace le els (ppm–pp anges). This equipmen was p o ided
wi h an oc opola eac ion sys em (ORS), designed o minimize di e en ypes o spec ome ic
in e e ence. The elemen a y concen a ions in liquid samples we e analysed wi h a con en ional
nebulize Sa illex X400 (ISC-Science. O iedo, Spain) coupled wi h a CETAC ASX 520 sample
in oduc ion sys em. A speci ic in e ace allowed he samples o be analysed in he p esence o high
concen a ions o hyd o luo ic acid. Quan i a i e analyses we e pe o med in acco dance wi h he
US-EPA 200.8 (1986) [
34
]. The solid samples we e subjec ed o mic owa e-assis ed acid diges ion in 9
mL o concen a ed HNO
3
and 3 mL o HF o 15 min a 200
◦
C. A e cooling, he con en s o he essel
we e il e ed and ans e ed o a 25 mL olume ic lask wi h ype I wa e om a Milli-Q In eg al-3
(Millipo e, Me ck, Spain).
The ac i i y concen a ions o he na u al adionuclides we e measu ed by high- esolu ion
gamma- ay spec ome y. The de ec ion sys em used consis ed o a Re e se-Elec ode Ge manium
(REGe) de ec o , model GR6040 (Canbe a. Mon igny-le-B e onneux, F ance) shielded by an ac i e
an i-coincidence sys em con aining an annula an i-Comp on NaI de ec o . Canbe a GENIE 2000
(Canbe a. Mon igny-le-B e onneux, F ance) so wa e was used o ob ain spec a and o subsequen
analysis. Canbe a LABSOCS so wa e (Canbe a. Mon igny-le-B e onneux, F ance) was used o
calcula e he coun ing e iciency o he ge manium de ec o . Cylind ical con aine s (liquid samples) and
Pe i dishes (solid samples) we e used in he expe imen al measu emen s and sealed unde acuum
o p e en he escape o adon gas, enabling achie emen o secula equilib ium be ween adon and
i s daugh e s (
226
Ra and
214
Pb). The ac i i y concen a ions o he gamma emi e s we e de e mined
h ough he ollowing ene gies: 210Pb (46.5 keV), 232Th (63.3 keV), 226Ra (351 keV o 214Pb), 235U (144
keV), and 40 K (1460 keV).
The TCLP (1311 US-EPA) leaching es was pe o med o assess he e ec i eness o he
immobiliza ion o he di e en componen s and ob ain he deg ee o oxici y associa ed wi h he
di e en esidues. This p ocedu e used an ex ac ion liquid o pH 2.88
±
0.05 consis ing o 5.7 mL o
glacial ace ic acid dilu ed wi h 1L wi h deionized wa e . O he solid sample, 100 g was added o an
amoun o ex ac ion liquid, main aining he 20 mL/g a io, and placed in a o a y sys em a 30
±
2 pm
o 18 hou s and a a empe a u e o 22 ±3◦C.
A Rh- ube Panaly ical X- ay Fluo escence Spec ome e (AXIOS model) (Mal e n Panaly ical.
Mal e n, UK) was used o apply he XRF echnique, enabling quali a i e and quan i a i e chemical
analysis om O o U in a wide ange o concen a ions, om majo componen s o aces.
3. Resul s and Discussion
3.1. E olu ion o En i onmen al Risk
3.1.1. E alua ion o Majo Elemen s and T ace Elemen s om he T ea men o PG wi h a Soda
in Solu ion
(a) Phosphogypsum
The XRD analysis con i med he almos exclusi e p esence o gypsum in he sample o unp ocessed
PG [17], wi h a esidual amoun o qua z (SiO2) o igina ing om he mo he phospha e ock.
Acco ding o he XRF analysis esul s, shown in Table 1, he PG was mainly composed o Ca
(32 w . %, as CaO) and S (46 w . %, as SO
3
). These esul s we e simila o hose epo ed in o he

In . J. En i on. Res. Public Heal h 2020,17, 4248 6 o 17
s udies [
1
] and co esponded o a Ca/S
≈
0.993 mola a io, e y close o he expec ed Ca/S
≈
1 mola
a io. The main impu i ies o he PG we e Si (2.52 w . %, as SiO2) and P (0.65 w . %, as P2O5).
Table 1. Majo i y elemen s in bo h chemical p ocesses.
Majo i y Elemen s (w . %) PG C_S PGAS PGAB
Fe2O3nd nd nd 0.01 ±0.01
MnO nd nd nd nd
MgO nd nd nd nd
CaO 32 ±1 49 ±2 21 ±1 32 ±2
Na2O 0.01 ±0.01 12.5 ±0.6 20.5 ±0.7 2.29 ±0.08
K2O 0.02 ±0.01 nd 0.02 ±0.01 0.03 ±0.01
TiO2nd nd nd nd
P2O50.65 ±0.02 1.02 ±0.01 0.38 ±0.01 0.47 ±0.01
SO346 ±3 13.6 ±0.2 27 ±2 14.4 ±0.9
Cl nd nd nd nd
F nd nd nd nd
S O nd nd nd nd
BaO nd nd nd nd
LOI 18.4 ±0.4 19.4 ±0.2 14.4 ±0.2 33 ±0.1
w . %: weigh pe cen age; PG: phosphogypsum; C_S: lime pu y; PGAS: ka oi e p ecipi a e; PGAB: calci e om
ka oi e ca bona ion.
The main hea y me als and adionuclides obse ed in he PG we e: S , C , As, Cu, Cd, Pb, U,
and Th. The mino i y elemen s iden i ied a e shown in Table 2, oge he wi h he PG sample leaching
esul s ob ained om TCLP.
Table 2.
Con en s o ace elemen s (mg/kg) in he PG (phosphogypsum) sample. Leaching esul s (mg/L)
ob ained om he applica ion o he TCLP (Toxici y Cha ac e is ic Leaching P ocedu e) echnique
o he PG sample (L_ : phosphogypsum leaching), and e e ence (mg/kg) o he global a e age
concen a ion o ypical uncon amina ed soils. The limi alues pe mi ed by he US-EPA (Uni ed
S a es- En i onmen al P o ec ion Agency) o me als in leacha es ex ac ed om he TCLP es and he
maximum pe missible limi s o hea y me als in wa e o domes ic use acco ding o he US-EPA, WHO
(Wo ld Heal h O ganiza ion), and EU (Eu opean Union) (acco ding o Ge man legisla ion).
Me al PG
(mg/kg) L_ (mg/L) Limi s Allowed
(mg/kg)
TCLP (U
S—EPA) U S—EPA WHO EU
V 2.9 ±0.7 0.0161 ±0.0001 97 0.05
C 6.3 ±0.2 <0.023 92 5.0 0.10 0.05 0.05
Co <0.6 <0.0024 17.3
Ni <3 0.026 ±0.001 47 0.02 0.02
Zn <42 0.600 ±0.007 67 5.0 3.0
As <0.6 0.0052 ±0.0004 4.8 5.0 0.05 0.01 0.01
Se <30 <0.006 0.09 1.0
S 360 ±10 1.89 ±0.03 320 4.0
Cd 1.8 ±0.4 0.0072 ±0.0007 0.09 1.0 0.005 0.003 0.005
Ba 37 ±1 0.0433 ±0.0008 628 100.0 2.0 0.30
Pb 1.8 ±0.1 0.0053 ±0.0001 17 5.0 0.015 0.01 0.01
Th 1.1 ±0.2 <0.0013 10.5
U 5 ±1 0.0081 ±0.0001 2.7
The concen a ions o V, C , Ba, Pb, and Th we e well below hose ypically ound in undis u bed
soils (Table 2) [
35
]. Howe e , he concen a ion o Cd was
≈
20 imes highe han he ypical alue, he
concen a ion o S was
≈
1.2 imes highe , and he con en o U was app oxima ely hal o i s alue in
uncon amina ed soils. I should be no ed ha he concen a ions o Cd and S we e lowe han di e en
PG sou ces analysed in he li e a u e (Idaho, Sou h A ica, and Tunisia) [
29
]. The concen a ions o
o he me als we e below he de ec ion limi .
In . J. En i on. Res. Public Heal h 2020,17, 4248 7 o 17
All hese esul s, when compa ed wi h he limi alues pe mi ed by he US-EPA o me als in
leacha es ex ac ed wi h he TCLP es (Table 2), we e well below he es ablished limi s. No in o ma ion
is a ailable o some me als, such as V, Co, Ni, Zn, and S . Mo e s ic c i e ia would be applicable i he
a o emen ioned numbe s a e compa ed wi h hose s ipula ed in legisla ion egula ing d inking wa e
o human consump ion. Fo his eason, he maximum pe missible limi s o he me als s udied we e
aken in acco dance wi h he US-EPA (1986), he Wo ld Heal h O ganiza ion, and he EU (D inking
Wa e Di ec i e, 1998) (Table 2) [
36
]. Addi ionally, o anadium, Ge man legisla ion was aken as a
basis o pu i ica ion [
37
,
38
]. E en so, he le el o leacha e concen a ion did no exceed he es ablished
limi s, excep o Ni, which sligh ly exceeded hese limi s (30%).
Conside ing he esul s ob ained, he PG analysed in his s udy does no gene a e majo
en i onmen al isks, and he e o e, no co ec i e measu es should be applied. Howe e , cau ion
mus be aken be o e any ca ego ical asse ion, because PG is he e ogeneous, and i s hea y me al and
adionuclide con en s depend on he dep h a which he PG is ound [39–41].
(b) Soda solu ion ea men by-p oduc s
The XRD di ac og am o he C_S sample is shown in Figu e 2. As expec ed acco ding o i s
composi ion (Table 1), he e was a majo p esence o CaO, co esponding o slaked lime and Na
2
O
and SO
3
due o he sodium sulpha e. The lime was composed o 65.3% Ca(OH)
2
, 13.5% SO
3
, silica
impu i ies (qua z), and phospha es (1.02% P2O5), and did no con ain MgO.
In . J. En i on. Res. Public Heal h 2020, 17, x 8 o 17
.
Figu e 2. XRD (X Ray Di ac ion o he samples Ca_S (calci e om lime pu y ca bona ion) (abo e)
and C_S (lime pu y) (below). C: Calci e, Q: Qua z, P : Po landi e, T: Thena di e.
The concen a ions o C , Co, Ni, Zn, and Th (Table 3) we e below he a e age concen a ions
ound in ypical uncon amina ed soils. Those o As and S we e highe by ac o s o ≈1.5 and 1.3,
espec i ely. Howe e , he concen a ions o Se, Cd, U we e subs an ially highe , as much as ≈37.5
imes highe in he case o Cd. The inc ease in he concen a ion o U, ≈4 imes highe han ha o
ypical soil, was no su p ising since i is a ma e ial ob ained om PG, which is conside ed a NORM
ma e ial, ha is, one which is ich in U-Th adionucleide se ies.
c) Ca bona ion by-p oduc s
The XRD analysis o his sample indica ed ha he po landi e ca bona ed comple ely, esul ing
only in calci e (Figu e 2). The cha ac e is ics o his sample ha e been epo ed elsewhe e [1].
In his case (Table 3), as may be expec ed, he concen a ions o ace elemen s and adionuclides
coincided almos comple ely wi h hose ound in he C_S sample.
d) Mo a p obes
As expec ed, he majo i y in he disca ded sand was calci e. The po landi e was ully
ca bona ed. Small e lec ions o esidual hena di e in he lime we e also obse ed (Figu e 3).
.
Figu e 3. XRD o mo a sample. C: Calci e, Q: Qua z, T: Thena di e.
Figu e 2.
XRD (X Ray Di ac ion o he samples Ca_S (calci e om lime pu y ca bona ion) (abo e)
and C_S (lime pu y) (below). C: Calci e, Q: Qua z, P: Po landi e, T: Thena di e.
The UNE-EN 459-2 s anda d [
42
] s a es ha lime con en mus always be highe han 55%,
al hough highe alues may be equi ed. Ne e heless, he UNE-EN 196-2: 2014 s anda d [
43
] equi es
ha sulpha e con en , gi en in e ms o SO
3
, mus be less han 2%. Rega ding he MgO con en ,
he s anda d equi es his o be less han 5%. The SO
3
con en exceeded he limi es ablished in he
egula ions, and he e o e, p e en i e measu es a e equi ed o co ec i .
The concen a ions o C , Co, Ni, Zn, and Th (Table 3) we e below he a e age concen a ions
ound in ypical uncon amina ed soils. Those o As and S we e highe by ac o s o
≈
1.5 and 1.3,
espec i ely. Howe e , he concen a ions o Se, Cd, U we e subs an ially highe , as much as
≈
37.5
imes highe in he case o Cd. The inc ease in he concen a ion o U,
≈
4 imes highe han ha o
ypical soil, was no su p ising since i is a ma e ial ob ained om PG, which is conside ed a NORM
ma e ial, ha is, one which is ich in U-Th adionucleide se ies.
In . J. En i on. Res. Public Heal h 2020,17, 4248 8 o 17
Table 3.
T ace elemen s o po landi e (C_S), calci e (Ca_S), and mo a samples. Leaching esul s
ob ained om he applica ion o he TCLP (Toxici y Cha ac e is ic Leaching P ocedu e) echnique o
he sample o po landi e (L_p), calci e (L_c), and mo a (L_m).
METAL C_S (mg/kg) L_p (mg/L) Ca_S
(mg/kg) L_c (mg/L) Mo a
(mg/kg) L_m (mg/L)
V<0.1 <0.007 <0.1 <0.007 0.3 ±0.1 0.109 ±0.001
C 13.8 ±0.2 0.083 ±0.003 11.5 ±0.4 <0.023 9 ±2<0.023
Co 0.275 ±0.004 <0.0024 0.23 ±0.01 0.0048 ±0.0002 0.165 ±0.03 0.0049 ±0.0002
Ni 1.80 ±0.02 0.023 ±0.001 2.3 ±0.1 0.046 ±0.001 0.347 ±0.05 0.039 ±0.001
Zn 10.1 ±0.2 0.67 ±0.02 9.7 ±0.5 <0.214 9.6 ±1.2 <0.221
As 7 ±2<0.002 5.2 ±0.4 <0.002 3.9 ±1.1 <0.002
Se 2.36 ±0.08 <0.0059 2.33±0.08 <0.006 1.2 ±0.7 <0.0061
S 413 ±6 2.17 ±0.05 353 ±1 3.03 ±0.04 170 ±20 2.31 ±0.01
Cd 3.37 ±0.04 <0.0008 3.6 ±0.1 <0.0008 1.4 ±0.4 <0.0008
Ba 83 ±2 0.062 ±0.002 72 ±1 0.1203 ±0.0009 36 ±2 0.0658 ±0.0004
Pb 3.25 ±0.05 0.0066 ±0.0003 3.5 ±0.2 <0.0009 1.43 ±0.04 <0.0009
Th 1.5 ±0.2 <0.0013 2.69 ±0.08 <0.0013 0.32 ±0.05 <0.0013
U 10.7 ±0.3 <0.0012 9.7 ±0.3 0.0508 ±0.0003 3.9 ±0.3 0.0302 ±0.0003
(c) Ca bona ion by-p oduc s
The XRD analysis o his sample indica ed ha he po landi e ca bona ed comple ely, esul ing
only in calci e (Figu e 2). The cha ac e is ics o his sample ha e been epo ed elsewhe e [1].
In his case (Table 3), as may be expec ed, he concen a ions o ace elemen s and adionuclides
coincided almos comple ely wi h hose ound in he C_S sample.
(d) Mo a p obes
As expec ed, he majo i y in he disca ded sand was calci e. The po landi e was ully ca bona ed.
Small e lec ions o esidual hena di e in he lime we e also obse ed (Figu e 3).
In . J. En i on. Res. Public Heal h 2020, 17, x 8 o 17
.
Figu e 2. XRD (X Ray Di ac ion o he samples Ca_S (calci e om lime pu y ca bona ion) (abo e)
and C_S (lime pu y) (below). C: Calci e, Q: Qua z, P : Po landi e, T: Thena di e.
The concen a ions o C , Co, Ni, Zn, and Th (Table 3) we e below he a e age concen a ions
ound in ypical uncon amina ed soils. Those o As and S we e highe by ac o s o ≈1.5 and 1.3,
espec i ely. Howe e , he concen a ions o Se, Cd, U we e subs an ially highe , as much as ≈37.5
imes highe in he case o Cd. The inc ease in he concen a ion o U, ≈4 imes highe han ha o
ypical soil, was no su p ising since i is a ma e ial ob ained om PG, which is conside ed a NORM
ma e ial, ha is, one which is ich in U-Th adionucleide se ies.
c) Ca bona ion by-p oduc s
The XRD analysis o his sample indica ed ha he po landi e ca bona ed comple ely, esul ing
only in calci e (Figu e 2). The cha ac e is ics o his sample ha e been epo ed elsewhe e [1].
In his case (Table 3), as may be expec ed, he concen a ions o ace elemen s and adionuclides
coincided almos comple ely wi h hose ound in he C_S sample.
d) Mo a p obes
As expec ed, he majo i y in he disca ded sand was calci e. The po landi e was ully
ca bona ed. Small e lec ions o esidual hena di e in he lime we e also obse ed (Figu e 3).
.
Figu e 3. XRD o mo a sample. C: Calci e, Q: Qua z, T: Thena di e.
Figu e 3. XRD o mo a sample. C: Calci e, Q: Qua z, T: Thena di e.
In he case o he mo a , since i is a e y he e ogeneous sys em on a millime e scale, i was
necessa y o ake di e en aliquo s o ob ain eliable in o ma ion because he masses ha can be
diges ed by ICP a e e y small, esul ing in a dispe sion o he concen a ions o he ace elemen s. The
a e age esul s o ou aliquo s aken a e p esen ed in Table 3. I can be obse ed ha , when mixing
he lime wi h sand, he ini ial concen a ions o mos o he ace elemen s dec eased. The a e age
concen a ions o As and S we e below he limi s es ablished by cu en egula ions. Howe e , hose o
Se, Cd, and U we e mode a ely abo e hose limi s. Besides he ace elemen concen a ions, he esul s
om he applica ion o he TCLP echnique a e shown o he L_p, L_c, and L_m samples in Table 3.
These esul s a e compa ed wi h he maximum pe missible limi s es ablished by he TCLP (US-EPA),
In . J. En i on. Res. Public Heal h 2020,17, 4248 9 o 17
indica ed in Table 2. I has been e i ied ha all he alues we e well below he es ablished limi s.
Thus, i can be concluded ha he moni o ed me als we e e ec i ely immobilized. I was also e i ied
ha hese alues we e below he pe missible limi s es ablished by TCLP (US-EPA). Howe e , he e is
no in o ma ion on pe missible limi s o some me als, such as Zn, Ni, V, and S . The concen a ions o
all he elemen s sc eened did no exceed he maximum pe missible limi s o d inking wa e . The V
limi exceeded he maximum pe mi ed by Ge man law by a ac o o ≈2.2.
3.1.2. Con en s o Majo and T ace Elemen s in he T ea men o PG wi h Aluminium Residue
(a) Aluminium was e
The densi y o he aluminium esidue was 1.32 g/cm
3
measu ed by Hg pycnome y wi h
pH =14
and [Na] =110
±
2 g/L (4.78
±
0.09 M) and [Al] =52
±
2 g/L (1.93
±
0.07 M), acco ding o ICP-OES esul s.
(b) Syn hesis
The XRD pa e n o he solid by-p oduc esul ing om an a ack o he PG wi h he aluminium
was e is ep esen ed in Figu e 4, labelled PGAS. The main associa ed e lec ions co esponded o ka oi e
and hena di e, as expec ed acco ding o Equa ion (3). I should be no ed ha no esidual gypsum
was de ec ed, indica ing ha he eac ion was comple e. The composi ional analysis o he PGAS
by-p oduc by XRF (Table 1) con i med he p esence o Ca, Al, S, and Na as he main componen s, in
he ela i e mola ac ions Ca:Al (1.51) and Na:S (1.96), ypical o ka oi e and hena di e, espec i ely,
con i ming ha he eac ion was indeed comple e.
In . J. En i on. Res. Public Heal h 2020, 17, x 10 o 17
.
Figu e 4. XRD o he samples PGAB: calci e (abo e) and PGAS: ka oi e p ecipi a e (below). C: Calci e,
Q: Qua z, K: Ka oi e, T: Thena di e.
c) Ca bona ion.
The XRD pa e n o he ca bona ed sample (Figu e 4) p esen s he calci e e lec ions
accompanied by hose o he emaining qua z impu i ies om he PG. No hena di e e lec ions we e
obse ed, con i ming i s comple e dissolu ion du ing he ca bona ion p ocess. Howe e , he XRF
analysis (Table 1) e ealed he p esence o subs an ial con en s o ce ain chemical species no
de ec ed by XRD, indica ing hei amo phous cha ac e . These we e mainly Al and S, and o a lesse
ex en , Na.
The con en s o ace elemen s p esen in he PGAS sample (Table 4), such as V, C , As, S , Ba,
and Th we e well below he concen a ions in undis u bed soils. Howe e , he concen a ion o Cd
(1.1 ± 0.2 mg kg) exceeded he ypical concen a ion by a ac o o 12.5. In con as , he concen a ion
o U (2.5 ± 0.3 mg / kg) was wi hin he limi pe mi ed o uncon amina ed soils.
Table 4. Con en s o ace elemen s in he PGAS (ka oi e p ecipi a e) and PGAB (calci e) samples.
Leaching esul s ob ained om he applica ion o he TCLP (Toxici y Cha ac e is ic Leaching
P ocedu e) echnique o he PGAS (L_k) and PGAB (L_ck) samples.
Me al
PGAS
(mg/kg)
L_k
(mg/L)
PGAB
(mg/kg)
L_ck
(mg/L)
V
8.0 ± 0.3
<0.007
5.8 ± 0.3
0,.0225 ± 0,04
C
5.3 ± 0.4
<0.023
6.7 ± 0.6
0.030 ± 0.004
Co
<0.6
<0.0024
<0.6
<0,0024
Ni
<3
0.0082 ± 0.0003
<3
0.0050 ± 0.0004
Zn
<41
0.0740 ± 0.0005
<41
<0.212
As
1.8 ± 0.8
<0.002
1.4 ± 0.2
<0.002
Se
<30
<0.006
<30
<0.0059
S
248 ± 10
1.69 ± 0.02
345 ± 5
1.46 ± 0.1
Cd
1.1 ± 0.2
<0.0008
1.6 ± 0.2
<0.0008
Ba
27 ± 3
0.0344 ± 0.0001
36 ± 1
0.0024 ± 0.02
Pb
1.5 ± 0.2
<0.0009
1.6 ± 0.1
<0.0009
Th
0.9 ± 0.1
<0.0013
1.1 ± 0.1
<0.0013
U
2.5 ± 0.3
<0.0012
2.9 ± 0.2
<0.0012
Figu e 4.
XRD o he samples PGAB: calci e (abo e) and PGAS: ka oi e p ecipi a e (below). C: Calci e,
Q: Qua z, K: Ka oi e, T: Thena di e.
(c) Ca bona ion.
The XRD pa e n o he ca bona ed sample (Figu e 4) p esen s he calci e e lec ions accompanied
by hose o he emaining qua z impu i ies om he PG. No hena di e e lec ions we e obse ed,
con i ming i s comple e dissolu ion du ing he ca bona ion p ocess. Howe e , he XRF analysis
(Table 1) e ealed he p esence o subs an ial con en s o ce ain chemical species no de ec ed by XRD,
indica ing hei amo phous cha ac e . These we e mainly Al and S, and o a lesse ex en , Na.
The con en s o ace elemen s p esen in he PGAS sample (Table 4), such as V, C , As, S , Ba, and
Th we e well below he concen a ions in undis u bed soils. Howe e , he concen a ion o Cd (1.1 ±
0.2 mg kg) exceeded he ypical concen a ion by a ac o o 12.5. In con as , he concen a ion o U
(2.5 ±0.3 mg/kg) was wi hin he limi pe mi ed o uncon amina ed soils.
In . J. En i on. Res. Public Heal h 2020,17, 4248 16 o 17
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UNE-EN 196-2: 2014. Cemen and Lime Tes Me hods. Pa 2: Chemical Analysis o Cemen s; UNE-EN: Mad id,
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