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Experimental investigation and kinetics of tomato peel pyrolysis: Performance, combustion and emission characteristics of bio-oil blends in diesel engine

机译:番茄皮热解的实验研究:柴油发动机生物油混合的性能,燃烧和排放特性

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Pyrolysis of tomato peel waste in an indigenous Auger reactor is reported. Tomato peel was subjected to elemental analysis and physicochemical characterisation. The higher heating value of the tomato peel was estimated to be 22.50 MJ kg(-1). Thermogravimetric analysis of tomato peel was performed to estimate the temperature of pyrolysis process. Thermal cracking of tomato peel was carried out at different temperatures ranging from 450 degrees C to 650 degrees C. The bio oil yield was found to 14%, 17.5%, 32%, 40% and 36% at 450 degrees C, 500 degrees C, 550 degrees C, 600 degrees C and 650 degrees C respectively. Kinetic modelling of the tomato peel pyrolysis was performed with three different model free methods to evaluate the activation energy. The activation energy of tomato peel pyrolysis at different heating rates, 5 degrees C min(-1), 10 degrees C min(-1), 15 degrees C min(-1), 20 degrees C min(-1) and 25 degrees C min(-1) were reported to be 112.7 kJ mol(-1), 113.85 kJ mol(-1) and 234.47 kJ mol(-1) respectively by Kissinger, Kissinger Akahira Sunose and Ozawa Flynn Wall models. Tomato peel oil was subjected to Gas chromatography - Mass spectroscopy and Fourier transform infrared spectroscopy analysis to determine the compounds and functional groups. The kinematic viscosity of the tomato peel oil was found to be 11.82 cSt. The flash point of the tomato peel oil was estimated to be 94 degrees C. Different blends of tomato peel oil and diesel were subjected to testing in a 4-stroke water cooled open chamber diesel engine to evaluate the performance and emission characteristics analysis. The Brake thermal efficiency of 5% blend of tomato peel oil was estimated to be 31.5% under full load condition. Carbon Monoxide emissions of tomato peel oil blends were found to be lesser in comparison with diesel fuel. Techno-economic analysis of the tomato peel pyrolysis was also reported. (C) 2020 Elsevier Ltd. All rights reserved.
机译:据报道,在土着螺旋钻反应器中的番茄剥离废物的热解。番茄果皮进行元素分析和物理化学表征。番茄果皮的较高的加热值估计为22.50mJ kg(-1)。进行番茄果皮的热重分析,以估算热解过程的温度。在450℃至650℃的不同温度下进行番茄果皮的热裂纹。在450℃下发现生物油产率为14%,17.5%,32%,40%和36%,500℃ ,分别为550℃,600℃和650℃。用三种不同的自由方法进行番茄剥离热解的动力学建模,以评估活化能量。番茄剥离热解的激活能量在不同的加热速率下,5℃min(-1),10℃min(-1),15℃min(-1),20℃min(-1)和25度据报道,C min(-1)分别是112.7 kJ摩尔(-1),113.85 kJ摩尔(-1)和234.47 kJ摩尔(-1)分别由基辛格,kissinger akahira sunose和ozawa flynn墙模型。番茄剥离油被气相色谱 - 质谱和傅里叶变换红外光谱分析,以确定化合物和官能团。发现番茄果皮的运动粘度是11.82cst。番茄剥离油的闪点估计为94摄氏度。在4行程水冷敞开室柴油发动机中进行番茄剥离油和柴油的不同共混物,以评估性能和发射特性分析。在满载条件下估计番茄果皮5%混合物的制动热效率估计为31.5%。与柴油燃料相比,发现番茄剥离油混合物的一氧化碳排放量较低。还报道了番茄果皮热解的技术经济分析。 (c)2020 elestvier有限公司保留所有权利。

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