Department of Mechanical Engineering, Haramaya Institute of Technology, Haramaya University, Dire Dawa, Ethiopia.
Environ Sci Pollut Res Int. 2019 Apr;26(10):9561-9573. doi: 10.1007/s11356-019-04356-2. Epub 2019 Feb 6.
This article presents the results of investigations carried out to evaluate the improvement in combustion, performance, and emission characteristics of a diesel engine fueled with neat petro-diesel (PD), soybean biodiesel (SB), and 50% SB blended PD (PD50SB) by using carbon nanotube (CNT) as an additive. The acid-alkaline-based transesterification process with sodium hydroxide (NaOH) as a catalyst was applied to derive the methyl ester of SB. A mass fraction of 100 ppm CNT nanoparticle was blended with base fuels by using an ultrasonicator and the physiochemical properties were measured based on EN standards. The measured physiochemical properties are in good agreement with standard limits. The experimental evaluations were carried out under varying brake mean effective pressure (BMEP) conditions in a single-cylinder, four-stroke, and natural aspirated research diesel engine at a constant speed of 1500 rpm. The results reveal that the SB and its blend promote shorter ignition delay period (IDP) that is resulting in lower in-cylinder pressure (ICP) and net heat release rate (NHR) compared to PD. The SB and its blend increase the brake specific fuel consumption (BSFC), and reduce the brake specific energy consumption (BSEC) and exhaust gas temperature (EGT), due to lower heating value, and efficient combustion, respectively. As far as the emission characteristics are concerned, the SB and its blend promote lower magnitude of hydrocarbon (HC), carbon monoxide (CO), carbon dioxide (CO), and smoke emissions compared to PD except for oxides of nitrogen (NO) emission. The CNT nanoparticle inclusion with base fuels significantly improves the combustion, performance, and emissions level irrespective of engine load conditions.
本文介绍了一项调查研究的结果,该研究旨在评估在柴油机中使用碳纳米管(CNT)作为添加剂,分别使用纯石化柴油(PD)、大豆生物柴油(SB)和 50%SB 混合 PD(PD50SB)燃料时,对燃烧、性能和排放特性的改善情况。研究采用基于酸碱的酯交换工艺,以氢氧化钠(NaOH)作为催化剂,从 SB 中提取甲酯。将质量分数为 100ppm 的 CNT 纳米颗粒通过超声处理与基础燃料混合,并根据 EN 标准测量其物理化学性质。所测量的物理化学性质与标准限值相符。在恒定转速为 1500rpm 的单缸、四冲程、自然吸气式研究柴油机中,在不同制动平均有效压力(BMEP)条件下进行了实验评估。结果表明,与 PD 相比,SB 及其混合物可缩短点火延迟期(IDP),从而降低缸内压力(ICP)和净放热率(NHR)。SB 及其混合物增加了制动比油耗(BSFC),并降低了制动比能量消耗(BSEC)和排气温度(EGT),这是由于低热值和高效燃烧所致。就排放特性而言,与 PD 相比,SB 及其混合物的碳氢化合物(HC)、一氧化碳(CO)、二氧化碳(CO)和烟度排放的幅度较低,但氮氧化物(NO)的排放除外。CNT 纳米颗粒与基础燃料的结合,无论发动机负荷条件如何,都能显著改善燃烧、性能和排放水平。