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Heterogeneous Dynamic Behavior and Synergetic Evolution Mechanism of Internal Components and Released Gases during the Pyrolysis of Aquatic Biomass

热解 化学 生物量(生态学) 热重分析 傅里叶变换红外光谱 酚类 气相色谱法 有机化学 质谱法 碳纤维 动力学 化学工程 无机化学 色谱法 材料科学 海洋学 复合数 物理 地质学 工程类 复合材料 量子力学
作者
Tingting Li,Fanhao Song,Fengchang Wu,Xia Huang,Yingchen Bai
出处
期刊:Environmental Science & Technology [American Chemical Society]
卷期号:56 (19): 13595-13606 被引量:17
标识
DOI:10.1021/acs.est.2c02631
摘要

Evolution of gaseous contaminants from biomass pyrolysis has drawn increasing attention. However, the thermal degradation, dynamics, and synergetic evolution mechanisms during real-time biomass pyrolysis remain unclear. Herein, a novel method using thermogravimetry–Fourier transform infrared spectrometry–gas chromatography/mass spectrometry (TG–FTIR–GC/MS) combined with thermal kinetics and two-dimensional correlation spectroscopy was proposed to explore the chemical properties and temperature response mechanisms of gaseous species released during Phragmites communis (PC) and Typha angustifolia (TA) pyrolysis. The thermal degradation mechanisms of PC/TA pyrolysis were mainly associated with the sigmoidal rate and random nucleation mechanisms. The formation intensities of alcohols/ethers, phenols/esters, acids, aldehydes, and ketones were higher during low-temperature TA pyrolysis and high-temperature PC pyrolysis. The average carbon oxidation state (OS¯C) of gaseous species mainly ranged from −1.5 to −0.5, and the OS¯C slope of most gaseous species was greater than −2.0, which was related to the reduction of aldehyde/ketone groups. Two-dimensional (2D)-TG–FTIR–COS analysis revealed that the sequential temperature response of gaseous species followed: acids → phenols, esters → aldehydes → hydrocarbons → alcohols, ethers → aromatics during PC/TA pyrolysis. The establishment of relationships between the sequential response of gases and degraded components provides an important basis for online monitoring/recovery of gaseous contaminants during biomass pyrolysis.
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