Title of article :
Feasibility study of a thermally coupled reactive distillation process for biodiesel production
Author/Authors :
Gomez Castro، نويسنده , , Fernando Israel and Rico-Ramirez، نويسنده , , Vicente and Segovia-Hernandez، نويسنده , , Juan Gabriel and Hernandez، نويسنده , , Salvador، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2010
Pages :
8
From page :
262
To page :
269
Abstract :
Biodiesel fuel represents an interesting alternative as a clean and renewable substitute of fossil fuels. A typical biodiesel production process involves the use of a catalyst, which implies high energy consumptions for the separation of the catalyst and the by-products of the reaction, including those of undesirable side reactions (such as the saponification reaction). A recently proposed process involves the use of short-chain alcohols at supercritical conditions, avoiding the use of a catalyst and the occurrence of the saponification reaction. This process requires fewer pieces of equipment than the conventional one, but its high energy requirements and the need of special materials that support the reaction conditions makes the main product, biodiesel fuel, more expensive than petroleum diesel. In this work, a modification of the supercritical process for the production of biodiesel fuel is proposed. Two alternatives are proposed. The process involves the use of either reactive distillation or thermally coupled reactive distillation. Simulations have been carried out by using the Aspen One™ process simulator to demonstrate the feasibility of such alternatives to produce biodiesel with methanol at high pressure conditions. A design method for the thermally coupled system is also proposed. Both systems have been tested and the results indicate favorable energy performance when compared to the original scheme. Furthermore, the thermally coupled system shows lower energy consumptions than the reactive distillation column.
Keywords :
Biodiesel production , Thermally coupling , Reactive distillation
Journal title :
Chemical Engineering and Processing: Process Intensification
Serial Year :
2010
Journal title :
Chemical Engineering and Processing: Process Intensification
Record number :
1610243
Link To Document :
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