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1.
为探索生活垃圾催化热解液体产物特性变化规律,选取Na2CO3、CaO、Fe2O33种催化剂,利用固定床实验、红外分析(FT-IR)进行生活垃圾热解液体产物产率和组分特性研究.结果表明,热解终温600℃无催化剂时,生活垃圾热解液产率为39.80 wt%,添加3种催化剂后热解液产率均降低;生活垃圾分别添加1%的Na2CO3和CaO后,热解油氧含量由22.49%分别降低到20.12%和18.53%,低位热值由30.30 MJ/kg分别提高到33.79和32.74 MJ/kg;无催化剂时热解油成分为脂肪类、含氧化合物及少量芳香类混合物,加催化剂后热解油中芳香类物质峰面积比例显著增加,而含氧化合物峰面积比例降低,羟基类及羧酸类含氧化合物峰面积比例明显减少,其他含氧物峰面积比例却增加;CaO催化效果较明显,生活垃圾添加1%的CaO热解油中芳香类物质峰面积比例从4.36%增加到29.46%,含氧化合物峰面积比例由49.42%降低到23.12%,其中羟基类和羧酸类化合物峰面积比例分别由34.03%和10.65%降低到0.00%和3.34%,其他含氧化合物峰面积比例由4.73%增加到19.77%. 相似文献
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中孔分子筛AI-MCM-41催化裂解聚烯烃反应研究 总被引:1,自引:0,他引:1
采用水热合成法制备了不同硅铝比的中孔分子筛AI-MCM-41,将其应用于高密度聚乙烯(HDPE)和聚丙烯(PP)的催化裂解反应。通过改变硅铝比、反应温度和催化剂用量,对Al-MCM-41催化HDPE和PP裂解反应的规律进行了探讨,研究表明,HDPE裂解反应受硅铝比的影响较大;而对于PP裂解反应,硅铝比在一定范围内对催化剂活性的影响不明显。另外,与热裂解和HZSM-5小孔分子筛的催化裂解结果进行了比较,结果证明A1-MCM-41具有较高的催化活性和较高的液体产物收率,尤其适合于空间位阻较大的PP的催化裂解反应。 相似文献
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中孔分子筛Al-MCM-41催化裂解聚烯烃反应研究 总被引:2,自引:0,他引:2
采用水热合成法制备了不同硅铝比的中孔分子筛A l-MCM-41,将其应用于高密度聚乙烯(HDPE)和聚丙烯(PP)的催化裂解反应。通过改变硅铝比、反应温度和催化剂用量,对A l-MCM-41催化HDPE和PP裂解反应的规律进行了探讨,研究表明,HDPE裂解反应受硅铝比的影响较大;而对于PP裂解反应,硅铝比在一定范围内对催化剂活性的影响不明显。另外,与热裂解和HZSM-5小孔分子筛的催化裂解结果进行了比较,结果证明A l-MCM-41具有较高的催化活性和较高的液体产物收率,尤其适合于空间位阻较大的PP的催化裂解反应。 相似文献
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采用GC/MS检测,研究最终温度(400、500和600℃)和升温速率(5、10和15℃/min)对废旧电路板真空热解油的成分的影响。研究表明,最终温度过高(600℃)、升温速率较小(5℃/min)或较大(15℃/min)都不利于热解油的形成,反而增大不凝气的产量。升高最终温度会增强较低碳数物质的热解效果,产生更多的不凝气;但同时也会限制较高碳数物质的热解,出现较多的环化、聚合反应生成结构复杂的物质。升温速率较高(15℃/min),会产生大量不饱和物质,其在后续发生环化、聚合等反应,生成更多的C14~C18,C6~C9含量则大幅下降。从热解油产量和GC/MS检测结果看,升温速率为10℃/min、最终温度为500℃和恒温1 h,热解充分,热解油C6~C9含量高,有较高的综合利用价值。 相似文献
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针对拜耳法赤泥年产量巨大亟需资源化回收、以及由于人造板包含3%~15%聚合物的特性导致传统处理方式污染较大的问题,提出一种利用赤泥原位低温催化热解废弃人造板的处理方式,实现废弃赤泥和人造板的有效消纳。首先在热重反应器上比较了不同添加比例的赤泥对人造板热解的影响,并采用DAEM (distributed activation energy model) 模型计算了传统热解和赤泥催化热解的活化能。热重结果表明:随赤泥添加比例增加,人造板的整体失重增加,而热解平均活化能呈先增加后降低的趋势,推荐赤泥添加比例≤30%。然后通过TG-FTIR-MS联用探究了拜尔法赤泥原位催化人造板的机理,并且关注了热解过程中铁基成分变化对催化机理的影响,结果表明:赤泥中铁氧化合物主相分别为Fe2O3和Fe3O4时,对人造板热解过程的催化效果显著不同,Fe2O3促进了酰胺的提前分解和断裂,且对脱羰基、羧基反应的促进作用更强;Fe3O4能够更显著地促进挥发分中芳香化合物的产生以及高温下CO2、CO的释放。最后在固定床上研究了赤泥焦炭复合材料的催化效果以探索其循环利用的潜力,结果表明,赤泥炭催化效果弱于赤泥,但仍能有效实现脱酸提质焦油,焦油中可燃脂肪烃的含量增加1.8倍。 相似文献
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油田含油污泥热解制备烟气脱硫剂 总被引:1,自引:0,他引:1
为实现油田含油污泥深度资源化,针对高含油的孤岛采油厂含油污泥采用热解处理,回收油气资源的同时将热解残渣制备成烟气脱硫剂。以苯吸附值和热解残渣含油率为基准对热解工艺进行了优化,对热解油品和残渣进行分析,热解残渣经过后续处理进行了烟气脱硫性能评价。通过正交实验得到热解最佳工艺条件为:氮气保护下,热解温度550℃,热解时间4h,升温速率10℃/min。此时苯吸附值为60.12mg/g,热解残渣含油率为0.29%。最佳工艺条件下,热解油品产率可达10%左右,回收率大于65%,热裂解作用明显,热解油品的品质较好,产生的不凝气体可以作为洁净燃料气;热解残渣经过后续处理,可用于脱除烟气中的SO2,吸附脱硫能力较好,穿透硫容达到3%以上。 相似文献
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油田采油污泥的热解动力学及其热解效果研究 总被引:3,自引:1,他引:2
以新疆克拉玛依油田采油污泥为对象,分别采用热重分析仪和小型流化床热解反应器研究了含油污泥的热解过程及其热解效果。结果表明,油泥热解主要经历了失水、轻质组分挥发、重组分快速热解失重和缓慢失重4个阶段,热解过程基本符合一级动力学方程,提高热解的升温速率,可使油泥的最大失重速率Dmax、失重速率峰值温度θmax、升温终点的最大失重率都随之增加,表现在动力学上,反映出表观活化能和碰撞频率因子的同时升高,即提高油泥热解转化率的同时也影响了热解效率。失水油泥用流化床热解,在热解温度600℃、反应时间3 min时,油泥回收率可达到87%。 相似文献
8.
Carlos M. Monreal Morris Schnitzer 《Journal of environmental science and health. Part. B》2013,48(7):630-637
The chemical and physical properties of raw biooils prevent their direct use in combustion engines. We processed raw pyrolytic biooil derived from chicken manure to yield a colorless refined biooil with diesel qualities. Chemical characterization of the refined biooil involved elemental and several spectroscopic analyses. The physical measurements employed were viscosity, density and heat of combustion. The elemental composition (% wt/wt) of the refined biooil was 82.7 % C, 15.3 % H, 0.2 % N and 1.8 % O, no S. Its viscosity was 0.006 Pa.s and a heat of combustion of 43 MJ kg?1. The refined biooil fraction contains n-alkanes, ranging from n-C14 to n-C27, alkenes varying from C10:1 to C22:1, and long-chain alcohols. The refined biooil makes a good diesel fuel due to its chemical and physical properties. 相似文献
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This study was performed to investigate the utility of bio-oil, produced via a fast pyrolysis process, as an antifungal agent against wood-rot fungi. Bio-oil solutions (25-100 wt.%) were prepared by diluting the bio-oil with EtOH. Wood block samples (yellow poplar and pitch pine) were treated with diluted bio-oil solutions and then subjected to a leaching process under hot water (70 °C) for 72 h. After the wood block samples were thoroughly dried, they were subjected to a soil block test using Tyromyces palustris and Trametes versicolor. The antifungal effect of the 75% and 100% bio-oil solutions was the highest for both wood blocks. Scanning electron microscopy analysis indicated that some chemical components in the bio-oil solution could agglomerate together to form clusters in the inner part of the wood during the drying process, which could act as a wood preservative against fungal growth. According to GC/MS analysis, the components of the agglomerate were mainly phenolic compounds derived from lignin polymers. 相似文献
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利用外热式固定床反应器,研究终温、反应时间、升温速率等因素对市政污泥热解产油率的影响,并对产物特性进行了讨论。结果表明,热解终温及反应时间显著影响焦油产率,500 ℃是适宜的污泥热解温度,焦油产率达24.74%,温度继续升高则半焦缩聚反应强烈,热解气产率大幅增加,焦油产率基本恒定;在10 ℃·min-1的升温速率条件下,热解终温500 ℃,维持20 min,焦油产率可达到平衡;升温速率对焦油产率的影响不显著,热解反应达到平衡时,不同升温速率条件下,焦油产率相似;污泥焦油组分与中低温煤焦油相近,具备提酚、制燃料油和特种油品的潜力;污泥半焦灰分高,固定碳含量低,具有一定热值,比表面积较发达,掺混燃烧、制备吸附剂是其重要的潜在利用方向。 相似文献
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Morris I. Schnitzer Carlos M. Monreal Glenn A. Facey Peter B. Fransham 《Journal of environmental science and health. Part. B》2013,48(1):71-77
Fast pyrolysis of chicken manure produced two biooils (Fractions I and II) and a residual char. All four materials were analyzed by chemical methods, 13C and 1H Nuclear Magnetic Resonance Spectrometry (13C and 1H NMR), and Fourier Transform Infrared Spectrosphotometry (FTIR). The char showed the highest C content and the highest aromaticity. Of the two biooils Fraction II was higher in C, yield and calorific value but lower in N than Fraction I. The S and ash content of the two biooil fractions were low. The Cross Polarization Magic Angle Spinning (CP-MAS) 13C NMR spectrum of the initial chicken manure showed it to be rich in cellulose, which was a major component of sawdust used as bedding material. Nuclear Magnetic Resonance (NMR) spectra of the two biooils indicated that Fraction I was less aromatic than Fraction II. Among the aromatics in the two biooils, we were able to tentatively identify N-heterocyclics like indoles, pyridines, and pyrazines. FTIR spectra were generally in agreement with the NMR data. FTIR spectra of both biooils showed the presence of both primary and secondary amides and primary amines as well as N-heterocyclics such as pyridines, quinolines, and pyrimidines. The FTIR spectrum of the char resembled that of the initial chicken manure except that the concentration of carbohydrates was lower. 相似文献