Analysis of Operational Parameters in Acid and Base Production Using an Electrodialysis with Bipolar Membranes Pilot Plant

Author:

Herrero-Gonzalez Marta12ORCID,López Julio234ORCID,Virruso Giovanni2,Cassaro Calogero2,Tamburini Alessandro25ORCID,Cipollina Andrea2ORCID,Cortina Jose Luis346ORCID,Ibañez Raquel1,Micale Giorgio2

Affiliation:

1. Departamento de Ingenierías Química y Biomolecular, Universidad de Cantabria, 39005 Santander, Cantabria, Spain

2. Dipartamento di Ingeniería, Università degli Studi di Palermo, 90128 Palermo, Italy

3. Chemical Engineering Department, Escola d’Enginyeria de Barcelona Est (EEBE), Universitat Politècnica de Catalunya (UPC)-Barcelona TECH, Campus Diagonal-Besòs, 08930 Barcelona, Cantabria, Spain

4. Barcelona Research Center for Multiscale Science and Engineering, Campus Diagonal-Besòs, 08930 Barcelona, Cantabria, Spain

5. ResourSEAs SrL, 90128 Palermo, Italy

6. CETaqua, Carretera d’Esplugues, 75, 08940 Cornellà de Llobregat, Barcelona, Spain

Abstract

In agreement with the Water Framework Directive, Circular Economy and European Union (EU) Green Deal packages, the EU-funded WATER-MINING project aims to validate next-generation water resource solutions at the pre-commercial demonstration scale in order to provide water management and recovery of valuable materials from alternative sources. In the framework of the WATER-MINING project, desalination brines from the Lampedusa (Italy) seawater reverse osmosis (SWRO) plant will be used to produce freshwater and recover valuable salts by integrating different technologies. In particular, electrodialysis with bipolar membranes (EDBM) will be used to produce chemicals (NaOH and HCl). A novel EDBM pilot plant (6.4 m2, FuMa-Tech) has been installed and operated. The performance of EDBM for single pass under different flowrates (2–8 L·min−1) for acid, base and saline channels, and two current densities (200 and 400 A·m−2), has been analyzed in terms of specific energy consumption (SEC) and current efficiency (CE). Results showed that by increasing the flowrates, generation of HCl and NaOH slightly increased. For example, ΔOH− shifted from 0.76 to 0.79 mol·min−1 when the flowrate increased from 2 to 7.5 L·min−1 at 200 A·m−2. Moreover, SEC decreased (1.18–1.05 kWh·kg−1) while CE increased (87.0–93.4%), achieving minimum (1.02 kWh·kg−1) and maximum (99.4%) values, respectively, at 6 L·min−1.

Funder

European Union’s Horizon 2020 research and innovation programme

European Union–NextGenerationEU

Publisher

MDPI AG

Subject

Filtration and Separation,Chemical Engineering (miscellaneous),Process Chemistry and Technology

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