首页> 外文期刊>Journal of Environmental Science and Health. Part B, Pesticides, Food Contaminants and Agricultural Wastes >The conversion of chicken manure to bio-oil by fast pyrolysis. III. Analyses of chicken manure, bio-oils and char by Py-FIMS and Py-FDMS
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The conversion of chicken manure to bio-oil by fast pyrolysis. III. Analyses of chicken manure, bio-oils and char by Py-FIMS and Py-FDMS

机译:通过快速热解将鸡粪转化为生物油。三, Py-FIMS和Py-FDMS分析鸡粪,生物油和炭

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Fast pyrolysis of chicken manure produced the following three fractions: bio-oil Fraction I, bio-oil Fraction II, and a char. In a previous investigation we analyzed each of the four materials by curie- point pyrolysis-gas chromatography/mass spectrometry (CpPy-FDMS). The objective of this article is to report on the analyses of the same chicken manure and the three fractions derived from it by fast pyrolysis. We now used pyrolysis-field ionization mass spectrometry (Py-FIMS) to characterize the three fractions. In addition, the two bio-oil materials were analyzed by pyrolysis-field desorption mass spectrometry (Py-FDMS). The use of both Py-FIMS and Py-FDMS produced signals over significantly wider mass ranges than did CpPy-GC/MS, and so allowed us to identify considerably larger numbers of constituents in each material. Individual compounds identified in the mass spectra were classified into the following twelve compound classes: (a) low molecular weight compounds (< m/z 62); (b) carbohydrates; (c) phenols + lignin monomers; (d) lignin dimers; (e) n-alkylbenzenes; (f) N-heterocyclics; (g) n-fatty acids; (h) n-alkanes; (i) alkenes; (j) sterols; (k) n-diols and (1) high molecular weight compounds ( > m/z 562). Of special interest were the high abundances of low-molecular weight compounds in the two bio-oils which constituted close to one half of the two bio-oils. Prominent among these compounds were water, ammonia, acetic acid, acetamide, propyl radical, formamide and hydrogen cyanide. The main quantitative differences between the two bio-oils was that bio-oil Fraction I, as analyzed by the two mass spectrometric methods, contained lower concentrations of low-molecular weight compounds, carbohydrates, and N-heterocyclics than bio-oil Fraction II but was richer in lignin dimers, n-alkylbenzenes and aliphatics (n-fatty acids, n-alkanes, alkenes, and n-diols). Of special interest were the N-heterocyclics in the two bio-oils such as pyrazole, pyrazoline, substituted pyrroles, pyridine and substituted pyridines, substituted methoxazole, substituted pyrazines, indole and substituted indoles. Fatty acids in all four materials ranged from n-Cg to n-C_(33), alkanes from n-C_9 to n-C40, alkenes from C_(10:1) to C_(40:1) and diols from n-C_7 to n-C29. The chicken manure, bio-oil Fraction I, and char each contained about 4% sterols with cholesterol, ethylcholestriene, ergosterol, ethylcholestene, ethylcholesterol and β-sitosterol as major components. Semi-quantitative estimates of the total materials identified by Py-FIMS were: chicken manure: 61.1%; bio-oil Fraction I: 81.3%; bio-oil Fraction II: 78.6%; char: 61.3%; and by Py-FDMS were: bio-oil Fraction I: 65.4%; bio-oil Fraction II: 70.0%.
机译:鸡粪的快速热解产生以下三个部分:生物油组分I,生物油组分II和炭。在先前的研究中,我们通过居里点热解-气相色谱/质谱(CpPy-FDMS)分析了四种材料中的每一种。本文的目的是报告同一鸡粪的分析以及通过快速热解从鸡粪中衍生的三个部分的分析。现在,我们使用热解场电离质谱(Py-FIMS)来表征这三个馏分。另外,通过热解场解吸质谱法(Py-FDMS)分析了两种生物油材料。与CpPy-GC / MS相比,使用Py-FIMS和Py-FDMS产生的信号质量范围要大得多,因此使我们能够识别每种材料中大量的成分。在质谱图中鉴定的单个化合物分为以下十二种化合物类别:(a)低分子量化合物( m / z 562)。特别令人感兴趣的是两种生物油中大量的低分子量化合物,它们构成了两种生物油的近一半。这些化合物中最主要的是水,氨,乙酸,乙酰胺,丙基,甲酰胺和氰化氢。两种生物油之间的主要定量差异是,通过两种质谱法分析,生物油馏分I所含的低分子量化合物,碳水化合物和N-杂环化合物的浓度低于生物油馏分II,但富含木质素二聚体,正烷基苯和脂肪族化合物(正脂肪酸,正烷烃,烯烃和正二醇)。特别令人感兴趣的是两种生物油(例如吡唑,吡唑啉,取代的吡咯,吡啶和取代的吡啶),取代的甲恶唑,取代的吡嗪,吲哚和取代的吲哚中的N-杂环。所有四种材料中的脂肪酸范围从n-Cg到n-C_(33),烷烃从n-C_9到n-C40,烯烃从C_(10:1)到C_(40:1),二醇从n-C_7至n-C29。鸡粪,生物油馏分I和炭分别含有约4%的甾醇,其中胆固醇,乙基胆固醇,麦角固醇,乙基胆固醇,乙基胆固醇和β-谷甾醇为主要成分。通过Py-FIMS鉴定的全部材料的半定量估算为:鸡粪:61.1%;生物油馏分I:81.3%;生物油馏分II:78.6%;炭:61.3%;通过Py-FDMS:生物油馏分I:65.4%;生物油馏分II:70.0%。

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