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Impact of Alkaline H(2)O(2) Pretreatment on Methane Generation Potential of Greenhouse Crop Waste under Anaerobic Conditions

This paper intended to explore the effect of alkaline H(2)O(2) pretreatment on the biodegradability and the methane generation potential of greenhouse crop waste. A multi-variable experimental design was implemented. In this approach, initial solid content (3–7%), reaction time (6–24 h), H(2)O(2) co...

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Autores principales: Perendeci, N. Altınay, Gökgöl, Sezen, Orhon, Derin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6099686/
https://www.ncbi.nlm.nih.gov/pubmed/30037006
http://dx.doi.org/10.3390/molecules23071794
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author Perendeci, N. Altınay
Gökgöl, Sezen
Orhon, Derin
author_facet Perendeci, N. Altınay
Gökgöl, Sezen
Orhon, Derin
author_sort Perendeci, N. Altınay
collection PubMed
description This paper intended to explore the effect of alkaline H(2)O(2) pretreatment on the biodegradability and the methane generation potential of greenhouse crop waste. A multi-variable experimental design was implemented. In this approach, initial solid content (3–7%), reaction time (6–24 h), H(2)O(2) concentration (1–3%), and reaction temperature (50–100 °C) were varied in different combinations to determine the impact of alkaline H(2)O(2) pretreatment. The results indicated that the alkaline H(2)O(2) pretreatment induced a significant increase in the range of 200–800% in chemical oxygen demand (COD) leakage into the soluble phase, and boosted the methane generation potential from 174 mLCH(4)/g of volatile solid (VS) to a much higher bracket of 250–350 mLCH(4)/gVS. Similarly, the lignocellulosic structure of the material was broken down and hydrolyzed by H(2)O(2) dosing, which increased the rate of volatile matter utilization from 31% to 50–70% depending on selected conditions. Alkaline H(2)O(2) pretreatment was optimized to determine optimal conditions for the enhancement of methane generation assuming a cost-driven approach. Optimal alkaline H(2)O(2) pretreatment conditions were found as a reaction temperature of 50 °C, 7% initial solid content, 1% H(2)O(2) concentration, and a reaction time of six h. Under these conditions, the biochemical methane potential (BMP) test yielded as 309 mLCH(4)/gVS. The enhancement of methane production was calculated as 77.6% compared to raw greenhouse crop wastes.
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spelling pubmed-60996862018-11-13 Impact of Alkaline H(2)O(2) Pretreatment on Methane Generation Potential of Greenhouse Crop Waste under Anaerobic Conditions Perendeci, N. Altınay Gökgöl, Sezen Orhon, Derin Molecules Article This paper intended to explore the effect of alkaline H(2)O(2) pretreatment on the biodegradability and the methane generation potential of greenhouse crop waste. A multi-variable experimental design was implemented. In this approach, initial solid content (3–7%), reaction time (6–24 h), H(2)O(2) concentration (1–3%), and reaction temperature (50–100 °C) were varied in different combinations to determine the impact of alkaline H(2)O(2) pretreatment. The results indicated that the alkaline H(2)O(2) pretreatment induced a significant increase in the range of 200–800% in chemical oxygen demand (COD) leakage into the soluble phase, and boosted the methane generation potential from 174 mLCH(4)/g of volatile solid (VS) to a much higher bracket of 250–350 mLCH(4)/gVS. Similarly, the lignocellulosic structure of the material was broken down and hydrolyzed by H(2)O(2) dosing, which increased the rate of volatile matter utilization from 31% to 50–70% depending on selected conditions. Alkaline H(2)O(2) pretreatment was optimized to determine optimal conditions for the enhancement of methane generation assuming a cost-driven approach. Optimal alkaline H(2)O(2) pretreatment conditions were found as a reaction temperature of 50 °C, 7% initial solid content, 1% H(2)O(2) concentration, and a reaction time of six h. Under these conditions, the biochemical methane potential (BMP) test yielded as 309 mLCH(4)/gVS. The enhancement of methane production was calculated as 77.6% compared to raw greenhouse crop wastes. MDPI 2018-07-20 /pmc/articles/PMC6099686/ /pubmed/30037006 http://dx.doi.org/10.3390/molecules23071794 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Perendeci, N. Altınay
Gökgöl, Sezen
Orhon, Derin
Impact of Alkaline H(2)O(2) Pretreatment on Methane Generation Potential of Greenhouse Crop Waste under Anaerobic Conditions
title Impact of Alkaline H(2)O(2) Pretreatment on Methane Generation Potential of Greenhouse Crop Waste under Anaerobic Conditions
title_full Impact of Alkaline H(2)O(2) Pretreatment on Methane Generation Potential of Greenhouse Crop Waste under Anaerobic Conditions
title_fullStr Impact of Alkaline H(2)O(2) Pretreatment on Methane Generation Potential of Greenhouse Crop Waste under Anaerobic Conditions
title_full_unstemmed Impact of Alkaline H(2)O(2) Pretreatment on Methane Generation Potential of Greenhouse Crop Waste under Anaerobic Conditions
title_short Impact of Alkaline H(2)O(2) Pretreatment on Methane Generation Potential of Greenhouse Crop Waste under Anaerobic Conditions
title_sort impact of alkaline h(2)o(2) pretreatment on methane generation potential of greenhouse crop waste under anaerobic conditions
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6099686/
https://www.ncbi.nlm.nih.gov/pubmed/30037006
http://dx.doi.org/10.3390/molecules23071794
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