M. Habibullah
University of Malaya
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Featured researches published by M. Habibullah.
RSC Advances | 2016
M.M. Rashed; H.H. Masjuki; M.A. Kalam; Abdullah Alabdulkarem; H.K. Imdadul; H.K. Rashedul; M.M. Shahin; M. Habibullah
Moringa oleifera oil, a non-edible biodiesel feedstock with high unsaturated fatty acid content, was used in this study. MB20 (20% Moringa oil methyl ester and 80% diesel fuel blend) was mixed with three antioxidants, namely, N,N′-diphenyl-1,4-phenylenediamine (DPPD), N-phenyl-1,4-phenylenediamine (NPPD) and 2-ethylhexyl nitrate (EHN), at a concentration of 1000 ppm. The effects of these antioxidants on the oxidation stability of biodiesel as well as on the exhaust emission and performance of a single-cylinder diesel engine were analysed. After the Rancimat test, oxidation stability was enhanced by the antioxidants in the order of DPPD > NPPD > EHN. Results also showed that DPPD-, NPPD- and EHN-treated blends reduced NOx emissions within 5.9–8.80% compared with those in the untreated blend because of suppressed free radical formation. Antioxidant-treated blends contained high amounts of carbon monoxide and hydrocarbon and showed improved smoke opacity, thereby indicating that emissions were below the diesel fuel emission levels. Results demonstrated that antioxidant addition to MB20 improves engine performance characteristics. This study shows that MB20 blends with antioxidants can be used in diesel engines without any modification.
Biofuels | 2016
A.M. Ashraful; H.H. Masjuki; M.A. Kalam; H.K. Rashedul; M. Habibullah; M.M. Rashed; M.H. Mosarof; A. Arslan
ABSTRACT The purpose of this work is to test the feasibility of biodiesel as a substitute for diesel used in a direct injection (DI) diesel engine. The biodiesel was produced by an esterification and transesterification process. Experiments were conducted with diesel–biodiesel blends containing 10 and 20% biodiesel with the diesel fuel. The results of the biodiesel blends are compared with baseline diesel which was assessed at constant speed in a single cylinder diesel engine at various loading conditions. The physicochemical properties of palm and Calophyllum inophyllum biodiesel and their blends meet the standard specification ASTM D6751 and EN 14214 standards. The maximum brake thermal efficiency was attained with diesel fuel, 10% palm biodiesel (PB10) and 10% C. inophyllum biodiesel (CI10) at all load condition except low load condition. Engine emission results showed that the 20% C. inophyllum with 80% diesel blend exhibited 6.35% lower amount of brake specific carbon monoxide, and the PB20 blend and CI20 blend reduced brake specific hydrocarbon emission by 7.93 and 9.5%, respectively. NOx emission from palm and C. inophyllum biodiesel blends are found to be 0.29–4.84% higher than diesel fuel. The lowest smoke intensity is found at 27.5% for PB10 and CI10 biodiesel blends compared with diesel fuel.
Applied Mechanics and Materials | 2014
M. Habibullah; H.H. Masjuki; Kalam; A.M. Ashraful; K.A.H. Al Mahmud; H.M. Mobarak
Now-a-days the demand of alternative fuel is continuously increasing all over the world due to the rapid depletion of fossil fuel and increased global demand. Biodiesel is renewable and sustainable energy source derived from vegetable oils and animal fats which can be the best substitute of fossil fuel. This paper investigates the property of different biodiesel such as palm, coconut and their blends with conventional diesel also analyzed the engine performance like engine break power, speed, break specific fuel consumption (BSFC), torque in diesel engine. In this paper 20% palm biodiesel with diesel (P20), 20% coconut biodiesel with diesel (C20), 30% palm biodiesel with diesel (P30), 30% coconut biodiesel with diesel (C30) and combination of 15% palm biodiesel and 15% of coconut biodiesel with diesel (C15P15) were used for study. Biodiesel was produced by using transesterification process. The density and kinematic viscosity for C15P15 fuel is slightly higher and flash point is slightly lower than diesel fuel as well as others two biodiesel blends whereas pure palm oil biodiesel shows the higher flash point and acid value. Engine performance test was carried out at 75 kg load condition with variable speeds of 1400 rpm to 2000 rpm at an interval of 200 rpm. Engine brake power produced by mixed biodiesel (C15P15) is slightly lower than the fossil diesel but slightly higher than biodiesel (only palm or coconut). Engine torque produce by the mixed biodiesel is almost the same with the fossil diesel but higher than the others biodiesel blends. Engine brake specific fuel consumption of mixed biodiesel is slightly higher than fossil diesel but lower than others existing biodiesel. It can be reported that the fuel C15P15 showed better performance and can be used as fuel alternative to diesel fuel to reduce the greenhouse gas emission and dependency on crude oil.
Renewable & Sustainable Energy Reviews | 2014
H.M. Mobarak; E. Niza Mohamad; H.H. Masjuki; M.A. Kalam; K.A.H. Al Mahmud; M. Habibullah; A.M. Ashraful
Energy Conversion and Management | 2014
M. Habibullah; H.H. Masjuki; M.A. Kalam; I.M. Rizwanul Fattah; A.M. Ashraful; H.M. Mobarak
Journal of Cleaner Production | 2015
B.M. Masum; H.H. Masjuki; M.A. Kalam; S.M. Palash; M. Habibullah
Industrial Crops and Products | 2015
M. Habibullah; H.H. Masjuki; M.A. Kalam; N.W.M. Zulkifli; B.M. Masum; A. Arslan; Mubashir Gulzar
Meccanica | 2016
Arslan Ahmed; H.H. Masjuki; M. Varman; M.A. Kalam; M. Habibullah; K.A.H. Al Mahmud
Applied Surface Science | 2015
A. Arslan; H.H. Masjuki; M. Varman; M.A. Kalam; M. M. Quazi; K.A.H. Al Mahmud; Mubashir Gulzar; M. Habibullah
Renewable & Sustainable Energy Reviews | 2015
M. Habibullah; H.H. Masjuki; M.A. Kalam; S.M. Ashrafur Rahman; M. Mofijur; H.M. Mobarak; A.M. Ashraful