Crystalline phase analysis and phosphorus availability after thermochemical treatment of sewage sludge ash with sodium and potassium sulfates for fertilizer production

Анализ кристаллических фаз и доступность фосфора после термохимической обработки золы иловых осадков с сульфатами натрия и калия для производства удобрений
Christian Adam, Hannes Herzel, Zeynep Aydın
2021-09-15

calcium alkali phosphates (Ca,Mg)(Na,K)PO4phosphorus plant availability (neutral ammonium citrate extractable)potassium sulfate (K2SO4) and sodium sulfate (Na2SO4) mixturessewage sludge ashthermochemical treatment (800–1000 °C)
Abstract Phosphorus rich sewage sludge ash is a promising source to produce phosphorus recycling fertilizer. However, the low plant availability of phosphorus in these ashes makes a treatment necessary. A thermochemical treatment (800–1000 °C) with alkali additives transforms poorly plant available phosphorus phases to highly plant available calcium alkali phosphates (Ca,Mg)(Na,K)PO4. In this study, we investigate the use of K2SO4as additive to produce a phosphorus potassium fertilizer in laboratory-scale experiments (crucible). Pure K2SO4is not suitable as high reaction temperatures are required due to the high melting point of K2SO4. To overcome this barrier, we carried out series of experiments with mixtures of K2SO4and Na2SO4resulting in a lower economically feasible reaction temperature (900–1000 °C). In this way, the produced phosphorus potassium fertilizers (8.4 wt.% K, 7.6 wt.% P) was highly plant available for phosphorus indicated by complete extractable phosphorus in neutral ammonium citrate solution. The added potassium is, in contrast to sodium, preferably incorporated into silicates instead of phosphorus phases. Thus, the highly extractable phase (Ca,Mg)(Na,K)PO4in the thermochemical products contain less potassium than expected. This preferred incorporation is confirmed by a pilot-scale trial (rotary kiln) and thermodynamic calculation.
1
Mixing K2SO4 with Na2SO4 lowers the required reaction temperature to an economically feasible range (900–1000 °C).
2
Potassium preferentially incorporates into silicate phases rather than phosphorus phases, so the (Ca,Mg)(Na,K)PO4 products contain less potassium than expected; this was confirmed by pilot-scale trials and thermodynamic calculations.
3
Produced phosphorus–potassium fertilizers from these mixtures contained 8.4 wt.% K and 7.6 wt.% P and exhibited complete extractable phosphorus in neutral ammonium citrate, indicating high plant availability.
4
Pure K2SO4 is unsuitable because its high melting point requires impractically high reaction temperatures for the transformation.
5
Thermochemical treatment (800–1000 °C) with alkali additives converts poorly plant-available phosphorus phases in sewage sludge ash into highly plant-available calcium alkali phosphates (Ca,Mg)(Na,K)PO4.

Sewage sludge ash subjected to thermochemical treatment with sodium and potassium sulfates for fertilizer production

Transformation of phosphorus-containing crystalline phases and resulting plant-availability of phosphorus (and incorporation of K vs Na) after thermochemical treatment (800–1000 °C) with K2SO4/Na2SO4 mixtures

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2021-09-15
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Christian Adam
Hannes Herzel
Zeynep Aydın
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