Have a personal or library account? Click to login

Turning Trash into Treasure: The Use of Vulcanized Ash Filters and Glass Waste for Renewable Energy

Open Access
|Dec 2023

Abstract

Biomethanation is a prospective method to integrate a renewable solar or wind power grid with a biogas grid, where excess energy can be used to produce hydrogen for the biomethanation of the biogas to produce biomethane. The use of biotrickling filter reactors with appropriate carrier materials for biomethanation is essential for the immobilisation of hydrogenotrophic methanogens on the surface of the packing material. This study tested the suitability of filter materials made from woodchip ash (FA and CA) and glass waste (GF) for methanogenesis in biotrickling filter reactors using comparative performance analysis. The readily available and widely used expanded clay pallets (EC) and polyurethane foam (PUF) in biomethanation were used for comparison. The manometric method and BMP test are used to determine the rate of CH4 production. CH4 produced using filter materials decreases in the order GF>EC >PUF>FA>CA, respectively. The physical parameters of tested materials are compared to other filter materials commonly used in biomethanation applications. Glass foam (GF) that is made from glass waste showed the best biomethane production rate of 201.2 NmL/Lmaterial, as it has the best physical properties for methanogenesis in biotrickling filter reactors such as low volume density, high external porosity, and neutral pH. Ash waste recycling is related to its specific chemical properties, as it is alkaline and contains heavy metals that can leach out and negatively affect living organisms.

DOI: https://doi.org/10.2478/rtuect-2023-0076 | Journal eISSN: 2255-8837 | Journal ISSN: 1691-5208
Language: English
Page range: 1049 - 1060
Submitted on: Sep 6, 2023
Accepted on: Dec 10, 2023
Published on: Dec 31, 2023
Published by: Riga Technical University
In partnership with: Paradigm Publishing Services
Publication frequency: 2 issues per year

© 2023 Zane Kusnere, Diana Rupeika, Kriss Spalvins, Taras Mika, published by Riga Technical University
This work is licensed under the Creative Commons Attribution 4.0 License.