Literature DB >> 20060353

A new pilot flow reactor for high-intensity ultrasound irradiation. Application to the synthesis of biodiesel.

Pedro Cintas1, Stefano Mantegna, Emanuela Calcio Gaudino, Giancarlo Cravotto.   

Abstract

In recent years, chemistry in flowing systems has become more prominent as a method of carrying out chemical transformations, ranging in scale from microchemistry up to kilogram-scale processes. Compared to classic batch ultrasound reactors, flow reactors stand out for their greater efficiency and flexibility as well as lower energy consumption. This paper presents a new ultrasonic flow reactor developed in our laboratory, a pilot system well suited for reaction scale up. This was applied to the transesterification of soybean oil with methanol for biodiesel production. This reaction is mass-transfer-limited initially because the two reactants are immiscible with each other, then because the glycerol phase separates together with most of the catalyst (Na or K methoxide). In our reactor a mixture of oil (1.6 L), methanol and sodium methoxide 30% in methanol (wt/wt ratio 80:19.5:0.5, respectively) was fully transesterified at about 45 degrees C in 1h (21.5 kHz, 600 W, flow rate 55 mL/min). The same result could be achieved together with a considerable reduction in energy consumption, by a two-step procedure: first a conventional heating under mechanical stirring (30 min at 45 degrees C), followed by ultrasound irradiation at the same temperature (35 min, 600 W, flow rate 55 mL/min). Our studies confirmed that high-throughput ultrasound applications definitively require flow reactors. Copyright 2009 Elsevier B.V. All rights reserved.

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Year:  2009        PMID: 20060353     DOI: 10.1016/j.ultsonch.2009.12.003

Source DB:  PubMed          Journal:  Ultrason Sonochem        ISSN: 1350-4177            Impact factor:   7.491


  5 in total

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3.  Chemometric analysis of cow dung ash as an adsorbent for purifying biodiesel from waste cooking oil.

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  5 in total

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