S. Abubakri, P. S. Mangat, K. Grigoriadis, Vincenzo Starinieri
{"title":"低冲击微波固化条件下修补砂浆的孔隙特性和水分损失","authors":"S. Abubakri, P. S. Mangat, K. Grigoriadis, Vincenzo Starinieri","doi":"10.1108/ijbpa-09-2023-0133","DOIUrl":null,"url":null,"abstract":"PurposeMicrowave curing (MC) can facilitate rapid concrete repair in cold climates without using conventional accelerated curing technologies which are environmentally unsustainable. Accelerated curing of concrete under MC can contribute to the decarbonisation of the environment and provide economies in construction in several ways such as reducing construction time, energy efficiency, lower cement content, lower carbonation risk and reducing emissions from equipment.Design/methodology/approachThe paper investigates moisture loss and pore properties of six cement-based proprietary concrete repair materials subjected to MC. The impact of MC on these properties is critically important for its successful implementation in practice and current literature lacks this information. Specimens were microwave cured for 40–45 min to surface temperatures between 39.9 and 44.1 °C. The fast-setting repair material was microwave cured for 15 min to 40.7 °C. MC causes a higher water loss which shows the importance of preventing drying during MC and the following 24 h.FindingsPortland cement-based normal density repair mortars, including materials incorporating pfa and polymer latex, benefit from the thermal effect of MC on hydration, resulting in up to 24% reduction in porosity relative to normal curing. Low density and flowing repair materials suffer an increase in porosity up to 16% due to MC. The moisture loss at the end of MC and after 24h is related to the mix water content and porosity, respectively.Originality/valueThe research on the application of MC for rapid repair of concrete is original. The research was funded by the European commission following a very rigorous and competitive review process which ensured its originality. Original data on the parameters of porosity and moisture loss under MC are provided for different generic cementitious repair materials which have not been studied before. Application of MC to concrete construction especially in cold climates will provide environmental, economic and energy benefits.","PeriodicalId":510161,"journal":{"name":"International Journal of Building Pathology and Adaptation","volume":"50 10","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-04-24","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Pore properties and moisture loss of repair mortars under low-impact microwave curing\",\"authors\":\"S. Abubakri, P. S. Mangat, K. 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引用次数: 0
摘要
目的微波固化(MC)可促进寒冷气候条件下的混凝土快速修复,而无需使用对环境不可持续的传统加速固化技术。在 MC 条件下对混凝土进行加速养护有助于实现环境脱碳,并在多个方面为建筑业带来经济效益,如缩短施工时间、提高能效、降低水泥含量、降低碳化风险和减少设备排放。微波介质对这些特性的影响对其在实践中的成功应用至关重要,而目前的文献缺乏这方面的信息。试样经 40-45 分钟微波固化,表面温度在 39.9 至 44.1 ℃ 之间。快速固化修补材料经 15 分钟微波固化至 40.7 °C。研究结果以硅酸盐水泥为基础的普通密度修补砂浆,包括含有 pfa 和聚合物胶乳的材料,都能从 MC 对水化的热效应中获益,从而使孔隙率相对于正常固化降低 24%。低密度和流动性修补材料则会因 MC 而导致孔隙率增加达 16%。MC 结束时和 24 小时后的水分损失分别与混合料含水量和孔隙率有关。该研究由欧盟委员会资助,经过了非常严格的竞争性审查过程,确保了研究的原创性。针对不同的通用水泥基修补材料,提供了在 MC 作用下孔隙率和水分损失参数的原始数据,这些参数以前从未研究过。将 MC 应用于混凝土建筑,尤其是寒冷气候条件下的混凝土建筑,将带来环境、经济和能源效益。
Pore properties and moisture loss of repair mortars under low-impact microwave curing
PurposeMicrowave curing (MC) can facilitate rapid concrete repair in cold climates without using conventional accelerated curing technologies which are environmentally unsustainable. Accelerated curing of concrete under MC can contribute to the decarbonisation of the environment and provide economies in construction in several ways such as reducing construction time, energy efficiency, lower cement content, lower carbonation risk and reducing emissions from equipment.Design/methodology/approachThe paper investigates moisture loss and pore properties of six cement-based proprietary concrete repair materials subjected to MC. The impact of MC on these properties is critically important for its successful implementation in practice and current literature lacks this information. Specimens were microwave cured for 40–45 min to surface temperatures between 39.9 and 44.1 °C. The fast-setting repair material was microwave cured for 15 min to 40.7 °C. MC causes a higher water loss which shows the importance of preventing drying during MC and the following 24 h.FindingsPortland cement-based normal density repair mortars, including materials incorporating pfa and polymer latex, benefit from the thermal effect of MC on hydration, resulting in up to 24% reduction in porosity relative to normal curing. Low density and flowing repair materials suffer an increase in porosity up to 16% due to MC. The moisture loss at the end of MC and after 24h is related to the mix water content and porosity, respectively.Originality/valueThe research on the application of MC for rapid repair of concrete is original. The research was funded by the European commission following a very rigorous and competitive review process which ensured its originality. Original data on the parameters of porosity and moisture loss under MC are provided for different generic cementitious repair materials which have not been studied before. Application of MC to concrete construction especially in cold climates will provide environmental, economic and energy benefits.