铸造砂应用中粘结剂分解率的动力学模型

IF 0.6 Q4 METALLURGY & METALLURGICAL ENGINEERING Archives of Foundry Engineering Pub Date : 2024-07-19 DOI:10.24425/afe.2024.151289
T. Matsushita, D. Sundaram, I. Belov, A. Diószegi
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引用次数: 0

摘要

精确的动力学参数对于量化粘结剂分解对铸造过程中发生的复杂现象的影响至关重要。商业铸造模拟工具通常使用简化的动力学参数,这些参数不包括复杂的多重反应及其对砂芯中气体生成的影响。本研究采用热重分析法(TG)和差热分析法(DTA)等实验热分析技术,通过近似多个一阶表观反应来确定分解过程中的整个反应的动力学参数。TG 和 DTA 结果表明,粘合剂降解过程是一个多阶段的放热分解过程。使用所获得的多反应动力学模型时,型芯/模具中的压力积累情况与之前使用平均模型的方法进行了比较。结果表明,使用多反应方法估计的模具/型芯中的压力要高得多。这些结果强调了精确动力学参数对模拟铸造过程中粘结剂分解的重要性。
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Kinetic Model for the Decomposition Rate of the Binder in a Foundry Sand Application
Accurate kinetic parameters are vital for quantifying the effect of binder decomposition on the complex phenomena occurring during the casting process. Commercial casting simulation tools often use simplified kinetic parameters that do not comprise the complex multiple reactions and their effect on gas generation in the sand core. The present work uses experimental thermal analysis techniques such as Thermogravimetry (TG) and Differential thermal analysis (DTA) to determine the kinetic parameters via approximating the entire reaction during the decomposition by multiple first-order apparent reactions. The TG and DTA results reveal a multi-stage and exothermic decomposition process in the binder degradation. The pressure build-up in cores/molds when using the obtained multi-reaction kinetic model is compared with the earlier approach of using an average model. The results indicate that pressure in the mold/core with the multi-reaction approach is estimated to be significantly higher. These results underscore the importance of precise kinetic parameters for simulating binder decomposition in casting processes.
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来源期刊
Archives of Foundry Engineering
Archives of Foundry Engineering METALLURGY & METALLURGICAL ENGINEERING-
CiteScore
1.10
自引率
16.70%
发文量
0
期刊介绍: Thematic scope includes scientific issues of foundry industry: Theoretical Aspects of Casting Processes, Innovative Foundry Technologies and Materials, Foundry Processes Computer Aiding, Mechanization, Automation and Robotics in Foundry, Transport Systems in Foundry, Castings Quality Management, Environmental Protection. Why subscribe and read
期刊最新文献
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