湿可燃物的燃烧点火

IF 5.3 2区 工程技术 Q2 ENERGY & FUELS Proceedings of the Combustion Institute Pub Date : 2024-07-01 DOI:10.1016/j.proci.2024.105448
Jiahao Wang, Marco A.B. Zanoni, Tarek L. Rashwan, José L. Torero, Jason I. Gerhard
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引用次数: 0

摘要

对于低热值/高含水量的可燃废物材料,应用焚烧已被证明是一种高效的废物变能源方法。因此,焚烧可用于从无法采用传统热化学方法(如使用火焰焚烧炉)的废物中提取能源。然而,要确定这种方法的可行性和经济可行性,了解这些焚烧系统中焚烧驱动的干燥过程及其与点火和淬火的关系至关重要。目前对这些相互关联的现象还不甚了解。为了填补这一知识空白,本研究开发了新的分析方法,并利用先前经过验证的数值模型建立了一个综合框架,以更好地理解点火和相关的干燥过程。这些新模型准确地解析了水向下迁移、水相变化和烟火传播之间在空间和时间上的耦合关系,揭示了干燥是如何定义点火的。通过分析确定了残余水饱和度()和点火所需的干燥时间()之间的关系,从而揭示了这些变量之间的基本关系。 表示烟熏点火的临界极限水饱和度,研究发现它完全取决于材料特性而不是操作条件(如初始水饱和度或堆积高度)。与此相反,Ⅳ 是能够点火的临界干燥时间,该时间受系统热损失和运行参数的影响很大。细长的反应器设计、保温不足和加热器功率低等条件都会大大延长所需的干燥时间,并导致在临界条件下点火失败。此外,还建立了一个四区点火区域,用于描述烟熏点火的要求。总之,这项研究揭示了相互关联的现象,有助于研究人员和工程师更好地理解应用燃烧系统中的干燥及其对点火的影响。
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Smoldering ignition of wet combustible materials
Applied smoldering has been demonstrated as an efficient waste-to-energy approach for low heating value/high moisture content combustible waste materials. Therefore, smoldering can be used to extract energy from wastes that are not amenable to traditional thermochemical routes (e.g., using flaming-based incinerators). Nevertheless, understanding the process of smoldering-driven drying and its relationship to ignition and quenching within these smoldering systems is critical to determine the viability and economic feasibility of this approach. These interlinked phenomena are not well-understood. To address this knowledge gap, this study developed new analytical methods with a previous validated numerical model to establish a comprehensive framework to better understand ignition and the associated drying process. These new models accurately resolve the coupling between downward water migration, water phase change, and smoldering propagation in space and time, revealing how drying defines ignition. The relationship between residual water saturation () and drying time to enable ignition () was determined analytically to unveil the fundamental relationships between these variables. represents a critical limiting water saturation for smoldering ignition, which was found to be solely dependent on material properties rather than operational conditions (e.g., initial water saturation or packing height). In contrast, , is the critical drying time that enables ignition, which was shown to be significantly influenced by system heat losses and operational parameters. Conditions such as a slender reactor design, insufficient thermal insulation, and low heater power can substantially extend the required drying period – and lead to ignition failure at critical conditions. Furthermore, a four-zone ignition region was established and used to characterize the requirements for smoldering ignition. Overall, this study untangles interlinked phenomena and supports researchers and engineers in better understanding drying and its influence on ignition within applied smoldering systems.
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来源期刊
Proceedings of the Combustion Institute
Proceedings of the Combustion Institute 工程技术-工程:化工
CiteScore
7.00
自引率
0.00%
发文量
420
审稿时长
3.0 months
期刊介绍: The Proceedings of the Combustion Institute contains forefront contributions in fundamentals and applications of combustion science. For more than 50 years, the Combustion Institute has served as the peak international society for dissemination of scientific and technical research in the combustion field. In addition to author submissions, the Proceedings of the Combustion Institute includes the Institute''s prestigious invited strategic and topical reviews that represent indispensable resources for emergent research in the field. All papers are subjected to rigorous peer review. Research papers and invited topical reviews; Reaction Kinetics; Soot, PAH, and other large molecules; Diagnostics; Laminar Flames; Turbulent Flames; Heterogeneous Combustion; Spray and Droplet Combustion; Detonations, Explosions & Supersonic Combustion; Fire Research; Stationary Combustion Systems; IC Engine and Gas Turbine Combustion; New Technology Concepts The electronic version of Proceedings of the Combustion Institute contains supplemental material such as reaction mechanisms, illustrating movies, and other data.
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