Knowledge Agora



Scientific Article details

Title Innovative Hydrodynamic Disintegrator Adjusted to Agricultural Substrates Pre-treatment Aimed at Methane Production Intensification-CFD Modelling and Batch Tests
ID_Doc 13621
Authors Zubrowska-Sudol, M; Dzido, A; Garlicka, A; Krawczyk, P; Stepien, M; Umiejewska, K; Walczak, J; Wolowicz, M; Sytek-Szmeichel, K
Title Innovative Hydrodynamic Disintegrator Adjusted to Agricultural Substrates Pre-treatment Aimed at Methane Production Intensification-CFD Modelling and Batch Tests
Year 2020
Published Energies, 13, 16
DOI 10.3390/en13164256
Abstract The study objective was to adjust the hydrodynamic disintegrator dedicated to sewage sludge pre-treatment (HDS) to work with agricultural substrate. This involved the development and implementation of a mathematical model of flow via the device's domain. An innovative disintegrator (HAD-hydrodynamic disintegrator for agriculture) was designed, built, and tested based on the obtained results. The main improvements to the HDS include the implementation of shredding knives in order to overcome clogging by crushed substrate, and the application of ribs in the recirculation zone, contributing to the development of an additional structure damage zone. The challenge of this study was also to determine the operating parameters of the HDA that would provide for an increase in methane production with positive energy balance. The testing procedures, for which maize silage was selected, involved batch disintegration tests and biochemical methane potential tests. No clogging of rotor or spontaneous shutting off of the device, in other words, problems that had occurred in the HDS, were observed. The applied pre-treatment method permitted an increase in the methane potential of maize silage by 34.4%, 27.0%, and 21.6%, respectively for samples disintegrated at energy densities of 10 kJ/L, 20 kJ/L, and 35 kJ/L with net energy profit.
Author Keywords agricultural substrates; hydrodynamic disintegration; computational fluid dynamic; mathematical modelling; immersed solid method; cavitation; specific methane production; energy balance
Index Keywords Index Keywords
Document Type Other
Open Access Open Access
Source Science Citation Index Expanded (SCI-EXPANDED)
EID WOS:000564630500001
WoS Category Energy & Fuels
Research Area Energy & Fuels
PDF https://www.mdpi.com/1996-1073/13/16/4256/pdf?version=1597730654
Similar atricles
Scroll