Edris Madadian
McGill University
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Featured researches published by Edris Madadian.
Environmental Technology | 2017
Leyla Amiri; Mohammad Ali Abdoli; Saeid Gitipour; Edris Madadian
ABSTRACT The influence of anaerobic co-digestion of leachate and sludge with organic fraction of municipal solid waste (OFMSW) under mesophilic condition in three batch digesters of 5 L capacity has been studied. OFMSW was mixed with leachate and sludge at three different ratios. Experimental results illustrated that the digester with a ratio of 2000/2500 (leachate (mL) or sludge/OFMSW (mL)) had significantly higher performance. Furthermore, this study compared the performance of anaerobic digestion of different substrates with three different mixing ratios with and without thermal pretreatment at low temperature (65°C) in terms of biogas production, chemical oxygen demand (COD) elimination as well as hydraulic retention time. In addition, to predict the biogas yield and evaluate the kinetic parameters, the modified Gompertz model was applied. Based on the results, the maximum biogas yield from adding different leachate and sludge ratios to OFMSW was recorded to be 0.45 and 0.38 m3 kg−1 COD which was higher about 7% in comparison with co-digestion original OFMSW without thermal pretreatment. In addition, thermal pretreatment accelerated the hydrolysis step. Moreover, the total COD elimination was relatively stable in the range of 52–60% at all types of substrate mixtures. Also, the modified Gompertz model demonstrated a good fit to the experimental results. Abbreviations: AD: anaerobic digester; BOD: biochemical oxygen demand; COD: chemical oxygen demand; FAAS: flame atomic absorption spectroscopy; HS: high solids; HRT: hydraulic retention time; LS: low solids; MS: medium solids; OFMSW: organic fraction of municipal solid waste; TCD: thermal conductivity detector; TS: total solid; TSS: total suspended solids
Environmental Technology | 2018
Leyla Amiri; Edris Madadian; Ferri P. Hassani
ABSTRACT The objective of this study is to perform the energy and exergy analysis of an integrated ground-source heat pump (GSHP) system, along with technical assessment, for geothermal energy production by deployment of Engineering Equation Solver (EES). The system comprises heat pump cycle and ground heat exchanger for extracting geothermal energy from underground mine water. A simultaneous energy and exergy analysis of the system is brought off. These analyses provided persuasive outcomes due to the use of an economic and green source of energy. The energetic coefficient of performance (COP) of the entire system is 2.33 and the exergy efficiency of the system is 28.6%. The exergetic efficiencies of the compressor, ground heat exchanger, evaporator, expansion valve, condenser and fan are computed to be 38%, 42%, 53%, 55%, 60% and 64%, respectively. In the numerical investigation, different alteration such as changing the temperature and pressure of the condenser show promising potential for further application of GSHPs. The outcomes of this research can be used for developing and designing novel coupled heat and power systems. GRAPHICAL ABSTRACT
Journal of Energy Engineering-asce | 2016
Edris Madadian; Mark Lefsrud; Camilo Perez Lee; Yves Roy; Valérie Orsat
Journal of green engineering | 2014
Edris Madadian; Mark Lefsrud; Camilo Andres Perez Lee; Yves Roy
Energy & Fuels | 2017
Edris Madadian; Valérie Orsat; Mark Lefsrud
Environmental Progress | 2014
Mohammad Ali Abdoli; Leila Amiri; Akbar Baghvand; Javad Nasiri; Edris Madadian
Biomass & Bioenergy | 2014
Yves Roy; Mark Lefsrud; Valérie Orsat; Francis Filion; Julien Bouchard; Quoc Nguyen; Louis-Martin Dion; Antony Glover; Edris Madadian; Camilo Perez Lee
Journal of Cleaner Production | 2017
Edris Madadian; Christine Crowe; Mark Lefsrud
Waste and Biomass Valorization | 2018
Edris Madadian; A. H. Akbarzadeh; Mark Lefsrud
Waste and Biomass Valorization | 2017
Edris Madadian; A. H. Akbarzadeh; Valérie Orsat; Mark Lefsrud