A theoretical evaluation of the impact of the type of reaction on heat production and material losses in biomass piles

IF 2 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Fire and Materials Pub Date : 2023-05-17 DOI:10.1002/fam.3153
Sixten Dahlbom, Erik Anerud, Anders Lönnermark, Mohit Pushp
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Abstract

Self-heating during storage of biomass in piles causes material losses, leads to emissions to air, and poses a risk of fire. There are different techniques to assess a biomass material's propensity for self-heating, some of these are briefly reviewed. One of these techniques is isothermal calorimetry, which measures thermal power from materials and produces time-resolved curves. A recently developed and published test standard, ISO 20049-1:2020, describes how the self-heating of pelletized biofuels can be determined by means of isothermal calorimetry and how thermal power and the total heat produced during the test should be measured by isothermal calorimetry. This paper supports interpretation of the result obtained by isothermal calorimetry; the mentioned standard provides examples of peak thermal power and total heat but does not provide any assistance on how the result from isothermal measurements should be interpreted or how the result from measurements on different samples could be compared. This paper addresses the impact of different types of reactions, peak thermal power, total heat released (heat of reaction), activation energy, heat conductivity, and pile size on the temperature development in a generic pile of biomass. This paper addresses important parameters when the result from isothermal calorimetry is evaluated. The most important parameter, with respect to temperature development in large piles, was found to be the total heat released. It was also proposed that safe storage times, that is, the time until a run-away of the temperature in the pile, could be ranked based on the time to the peak thermal power.

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反应类型对生物质堆中热量产生和材料损失影响的理论评估
在堆中储存生物质的过程中,自热会造成材料损失,导致排放到空气中,并有火灾的危险。有不同的技术来评估生物质材料的自热倾向,其中一些简要回顾。其中一种技术是等温量热法,它测量材料的热功率并产生时间分辨曲线。最近开发和发布的测试标准ISO 20049-1:2020描述了如何通过等温量热法来确定颗粒状生物燃料的自热,以及如何通过等温量热法来测量测试过程中产生的热功率和总热量。本文支持对等温量热法所得结果的解释;上述标准提供了峰值热功率和总热量的示例,但没有提供任何关于如何解释等温测量结果或如何比较不同样品的测量结果的帮助。本文讨论了不同类型的反应、峰值热功率、总热释放(反应热)、活化能、导热性和堆尺寸对普通生物质堆温度发展的影响。本文讨论了评价等温量热法结果时的一些重要参数。对于大型桩的温度发展,最重要的参数是总放热。还提出了安全储存时间,即桩内温度失控前的时间,可以根据达到热功率峰值的时间进行排序。
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来源期刊
Fire and Materials
Fire and Materials 工程技术-材料科学:综合
CiteScore
4.60
自引率
5.30%
发文量
72
审稿时长
3 months
期刊介绍: Fire and Materials is an international journal for scientific and technological communications directed at the fire properties of materials and the products into which they are made. This covers all aspects of the polymer field and the end uses where polymers find application; the important developments in the fields of natural products - wood and cellulosics; non-polymeric materials - metals and ceramics; as well as the chemistry and industrial applications of fire retardant chemicals. Contributions will be particularly welcomed on heat release; properties of combustion products - smoke opacity, toxicity and corrosivity; modelling and testing.
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