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Characteristics of gas and residues produced from electric arc pyrolysis of waste lubricating oil

机译:废润​​滑油的电弧热解产生的气体和残渣的特征

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摘要

An attempted has been made to recover high-calorific fuel gas and useful carbonaceous residue by the electric arc pyrolysis of waste lubricating oil. The characteristics of gas and residues produced from electric arc pyrolysis of waste lubricating oil were investigated in this study. The produced gas was mainly composed of hydrogen (35-40%), acetylene (13-20%), ethylene (3-4%) and other hydrocarbons, whereas the concentration of CO was very low. Calorific values of gas ranged from 11,000 to 13,000 kcal kg~(-1)and the concentrations of toxic gases, such as NO_x, HCI and HF. were below the regulatory emissions limit. Gas chromatography-mass spectrometry (GC/MS) analysis of liquid-phase residues showed that high molecular-weight hydrocarbons in waste lubricating oil were pyrolyzed into low molecular-weight hydrocarbons and hydrogen. Dehydrogenation was found to be the main pyrolysis mechanism due to the high reaction temperature induced by electric arc. The average particle size of soot as carbonaceous residue was about 10 μm. The carbon content and heavy metals in soot were above 60% and below 0.01 pprn, respectively. The utilization of soot as industrial material resources such as carbon black seems to be feasible after refining and grinding.
机译:已经尝试通过废润滑油的电弧热解来回收高热量的燃料气体和有用的碳质残余物。研究了废润滑油的电弧热解产生的气体和残留物的特性。产生的气体主要由氢气(35-40%),乙炔(13-20%),乙烯(3-4%)和其他烃类组成,而CO的浓度很低。气体的热值在11,000至13,000 kcal kg〜(-1)之间,并且有毒气体的浓度例如NO_x,HCl和HF。低于规定的排放限值。气相色谱-质谱法(GC / MS)对液相残留物的分析表明,废润滑油中的高分子量烃被热解为低分子量烃和氢。由于电弧引起的高反应温度,发现脱氢是主要的热解机理。作为碳质残余物的烟灰的平均粒径为约10μm。烟灰中的碳含量和重金属分别高于60%和低于0.01 pprn。在精制和磨碎之后,利用烟灰作为工业材料资源,例如炭黑似乎是可行的。

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  • 来源
    《Waste Management》 |2010年第7期|1230-1237|共8页
  • 作者单位

    Institute of Environmental and Energy Technology. Pohang University of Science and Technology, Pohang 790-784, South Korea;

    Department of Environmental Engineering, Yonsei University, Wonju 220-710, South Korea;

    Department of Environmental Engineering, Yonsei University, Wonju 220-710, South Korea;

    Korea Atomic Energy Research Institute, Daejeon 305-353, South Korea;

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