Cold flow and fuel properties of methyl oleate and palm-oil methyl ester blends
-
Add time:09/28/2019 Source:sciencedirect.com
Biodiesel is a renewable, alternative diesel fuel derived from various oils or fats through transesterification. Biodiesel usually consists of alkyl esters of the parent oil. Palm-oil methyl ester (PME) is a prominent biodiesel in Southeast Asian countries such as Malaysia and Indonesia, which have a surplus production of palm oil. However, given the substantial amount of saturated fatty acids in palm oil, its methyl ester has poor cold-flow characteristics. In the present study, the physicochemical properties of specified blends of technical-grade methyl oleate (MO) and PME, namely, PME80/MO20, PME70/MO30, PME60/MO40, and PME50/MO50 (vol/vol%) were studied. The aim was to determine the optimum blend and achieve better cold-flow properties than neat PME. Differential scanning calorimetry analysis showed that increasing the MO proportion until 50% (vol%, vol%) led to maximum improvements in cloud point and cold filter plugging point, which were reduced to 70.38% and 91.69%, respectively. Important fuel properties (i.e., cetane number (CN), kinematic viscosity, density, gross heating value, net heating value, flash point, oxidation stability, and acid value) were also examined. All fuel properties of PME–MO blends were observed within the specified permissible limits of biodiesel standard (ASTM D 6751).
We also recommend Trading Suppliers and Manufacturers of Methyl arachidate (cas 1120-28-1). Pls Click Website Link as below: cas 1120-28-1 suppliers
Prev:Point defects in Langmuir–Blodgett films of Cd arachidate
Next:The properties of NMOB/cadmium arachidate alternated multilayers) - 【Back】【Close 】【Print】【Add to favorite 】
- Related Information
- The properties of NMOB/cadmium arachidate alternated multilayers09/29/2019
- Point defects in Langmuir–Blodgett films of Cd arachidate10/01/2019
- Full Length ArticleExperimental correlation of laminar flame pollutant emission indices with methyl ester fuel degree of unsaturation and equivalence ratio09/27/2019
- Study of Langmuir and Langmuir–Blodgett films of indium arachidate09/26/2019
- Molecular packing in cadmium and zinc arachidate LB multilayers09/25/2019
- Effects of substrate on the melting behavior of Cd arachidate Langmuir–Blodgett films09/24/2019
- Order and melting stability of calcium arachidate Langmuir-Blodgett monolayers prepared at different pH09/10/2019
- Electron paramagnetic resonance and thermodynamics of Langmuir—Blodgett films of manganese arachidate and of its mixtures with Methyl arachidate (cas 1120-28-1)09/09/2019
-
Health and Chemical more >
-
Related Products
- Methyl 1-Benzyl-5-oxopyrrolidine-3-carboxylate
- Methyl (((methoxymethylphosphinothioyl)thio)acetyl)methylcarbamate
- Methyl (+)-(3R)-7-[4-(4-fluorophenyl)-6-isopropyl-2-(N-methyl-N-methanesulfonylamino)pyrimidin-5-yl]-3-hydroxy-5-oxo-(6E)-heptenoate
- Methyl (2-amino-5-methyl-1,3-thiazol-4-yl)acetate
- Methyl (2-chloromethyl)oxazole-4-carboxylate
- Methyl (2E)-3-(4-methylphenyl)propenoate
- Methyl (2E)-3-cyclohexylprop-2-enoate
- Methyl (2R)-2-[(tert-butoxycarbonyl)amino]-3-iodopropanoate
- Methyl (2R)-2-[4-(2,4-dichlorophenoxy)phenoxy]propanoate
- Methyl (2R)-2-amino-2-cyclohexylethanoate hydrochloride


