Temperature Dependence of Density, Viscosity, Thermal Conductivity and Heat Capacity of Vegetable Oils for Their Use as Biofuel in Internal Combustion Engines — Oak Academic Publishing
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Temperature Dependence of Density, Viscosity, Thermal Conductivity and Heat Capacity of Vegetable Oils for Their Use as Biofuel in Internal Combustion Engines
LPCE, Département de physique, Université Ouaga 1 Pr JKZ, Burkina Faso
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Unité de recherche BioWooEB, CIRAD Montpellier, Bat 16, 73 rue JF Breton, Montpellier, France
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LPCE, Département de physique, Université Ouaga 1 Pr JKZ, Burkina Faso
,
Laboratoire PRISME, Université d’Orléans, 8 rue Léonard de Vinci, 45072 Orléans Cedex 2, France
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Laboratoire PROMES-CNRS UPR-8521 Université de Perpignan Via Domitia, Rambla de laThermodynamique, Tecnosud, Perpignan, France
,
Unité de recherche BioWooEB, CIRAD Montpellier, Bat 16, 73 rue JF Breton, Montpellier, France
,
Unité de recherche BioWooEB, CIRAD Montpellier, Bat 16, 73 rue JF Breton, Montpellier, France
,
LPCE, Département de physique, Université Ouaga 1 Pr JKZ, Burkina Faso
,
Laboratoire PRISME, Université d’Orléans, 8 rue Léonard de Vinci, 45072 Orléans Cedex 2, France
1 LPCE, Département de physique, Université Ouaga 1 Pr JKZ, Burkina Faso
2 Unité de recherche BioWooEB, CIRAD Montpellier, Bat 16, 73 rue JF Breton, Montpellier, France
3 LPCE, Département de physique, Université Ouaga 1 Pr JKZ, Burkina Faso
4 Laboratoire PRISME, Université d’Orléans, 8 rue Léonard de Vinci, 45072 Orléans Cedex 2, France
5 Laboratoire PROMES-CNRS UPR-8521 Université de Perpignan Via Domitia, Rambla de laThermodynamique, Tecnosud, Perpignan, France
6 Unité de recherche BioWooEB, CIRAD Montpellier, Bat 16, 73 rue JF Breton, Montpellier, France
7 Unité de recherche BioWooEB, CIRAD Montpellier, Bat 16, 73 rue JF Breton, Montpellier, France
8 LPCE, Département de physique, Université Ouaga 1 Pr JKZ, Burkina Faso
9 Laboratoire PRISME, Université d’Orléans, 8 rue Léonard de Vinci, 45072 Orléans Cedex 2, France
This work gives tools to overcome the difficulty to determine experimentally physical properties for vegetable oils within the range of temperature typically observed during the injection phase in a diesel engine. Knowing vegetable oils ’ physical properties to these range s of temperature is of fundamental i mportance when modeling their combustion in diesel engine. However, vegetable oils ’ experimental physical properties data are rare in the literature for temperature above 523 K. This paper describes experimental measurements an d estimation methods for density, dynamic viscosity, thermal conductivity and heat capacity of vegetable oils for this particular range of temperature. The methodology uses several correlative methods using group contribution approach for each property and compares experimental data with predicted one to select the more accurate model. This work has shown the rapeseed and jatropha oils ’ physical properties can be satisfactorily predicted as a function of temperature using group contribution approach.
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