Biochar from waste coffee husk as a thermal conductivity enhancer in palm stearin BPCMs

IF 3.1 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Andrés Chico-Proano , Juan Francisco Nicolalde , Milagros Boada , Omar Bonilla , Cristina Riofrio , Juan Andrés Cueva , Francisco Rodríguez-Clavijo , Jennyfer Bolaños-Belalcazar , Carla Suárez-Beltrán , Maria A. Sandoval. R , Haziel Diaz , Javier Martínez-Gómez
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引用次数: 0

Abstract

Bio-based phase change materials (BPCM) integrate natural sources like vegetable oils. While they typically have lower phase-change enthalpy than synthetic options, they are valued for their low toxicity and environmental impact. BPCMs provide a biodegradable alternative, but their low thermal conductivity limits efficiency in heat transfer applications. This study investigates the use of biochar derived from coffee husks as an additive to enhance thermal conductivity of palm stearin Biochar, characterized by stable chemical properties, high porosity, and significant adsorption capacity, is produced via pyrolysis, which also addresses waste management in the coffee industry and promotes renewable energy solutions, converting coffee husks into biochar effectively captures carbon that would be lost during combustion. In this way, the sample was characterized through proximate analysis, higher calorific value, crystallographic structure, and thermogravimetric analysis (TGA) to evaluate its thermal decomposition under pyrolysis conditions. Results indicate that coffee husk is an ideal candidate for pyrolysis applications; thus, biochar was produced from coffee husk in a 125 mL reactor, with a heating rate of 50 °C/min, from room temperature up to a maximum of 600 °C. TGA and differential scanning calorimetry (DSC) were employed to evaluate both palm stearin and the produced biochar, focusing on their thermal decomposition profiles. Results show that incorporating even small amounts of biochar (as low as 0.013 wt. %) significantly improves the thermal conductivity of the PCM. This study highlights the different pyrolysis temperature zones of coffee husks and compares them with the thermal behavior of palm stearin. Overall, this work underscores the potential of biochar as a sustainable additive to enhance the thermal properties of organic PCMs, contributing to the circular economy while mitigating greenhouse gas emissions from coffee waste.
将废弃咖啡壳中的生物炭作为棕榈硬脂 BPCM 的导热增强剂
生物基相变材料(BPCM)整合了植物油等天然原料。虽然它们的相变焓通常比合成的低,但它们的低毒性和对环境的影响是有价值的。bpcm提供了一种可生物降解的替代品,但其低导热性限制了传热应用的效率。生物炭具有稳定的化学性质、高孔隙率和显著的吸附能力,通过热解产生,这也解决了咖啡行业的废物管理问题,并促进了可再生能源解决方案,将咖啡壳转化为生物炭有效地捕获了在燃烧过程中会损失的碳。通过近似分析、高热值、晶体结构和热重分析(TGA)对样品进行表征,评价其在热解条件下的热分解。结果表明,咖啡壳是热解应用的理想候选者;因此,在125 mL的反应器中,从咖啡壳生产生物炭,加热速率为50°C/min,从室温到最高600°C。采用热重分析仪和差示扫描量热法(DSC)对棕榈硬脂脂和生产的生物炭进行了评价,重点研究了它们的热分解特征。结果表明,即使加入少量的生物炭(低至0.013 wt. %)也能显著提高PCM的导热性。本研究重点研究了咖啡壳的不同热解温度区,并将其与棕榈硬脂的热行为进行了比较。总的来说,这项工作强调了生物炭作为一种可持续添加剂的潜力,可以增强有机pcm的热性能,为循环经济做出贡献,同时减少咖啡废弃物的温室气体排放。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Carbon Trends
Carbon Trends Materials Science-Materials Science (miscellaneous)
CiteScore
4.60
自引率
0.00%
发文量
88
审稿时长
77 days
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