用于预制建筑构件的力触发生物基密封剂:朝着提高效率和性能的方向发展

IF 7.3 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Karen P. Cortés-Guzmán, , , Diana Hun, , , Tomonori Saito, , and , Zoriana Demchuk*, 
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引用次数: 0

摘要

装配式建筑行业在加快非现场工厂预制构件的制造方面取得了广泛进展。然而,这些组件之间的连接处的密封对于确保组件的耐候性至关重要,仍然是一项劳动密集型的现场工作,依赖于人工安装胶带和填缝。为了减少施工现场的工作量,提高建筑围护结构的气密性和防水性,我们开发了一种密封胶,可以安装在工厂预制构件上,并通过微胶囊化技术分离反应剂,在施工现场触发固化反应。从生物基原料中提取的一系列力触发型、高强度、快速固化密封剂被开发出来,其中包括包裹在聚合物外壳中的生物基环氧剂,嵌入在生物基胺固化剂中。微胶囊的外壳允许有效分离单组分密封胶中的活性物质,允许货架稳定性,否则快速固化系统以及改善整个系统的疏水性。当力激活并打破微胶囊时,高活性环氧树脂和胺混合并固化,显示出高达143 ppi(磅/英寸)的剥离强度值。密封胶的疏水性使其在完全浸入水中24小时后仍能保持高达94%的原始剥离强度,显示出密封胶体系的耐水性。密封胶复合物的露天货架稳定性可以通过观察剥离强度值来证明,即使在暴露于露天空气和湿度8个月后,也可以触发固化反应。成功的按需触发固化反应和货架稳定性,使这些力触发密封胶能够有效地安装在预制组件上,在交付前储存数月,并在现场组装。这些用于预制建筑的力触发型生物基密封胶可以缩短安装时间和成本,并且比现场的胶带和填缝剂具有更好的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Force-Triggered, Biobased Sealants for Prefabricated Building Components: Toward Improved Efficiency and Performance

Force-Triggered, Biobased Sealants for Prefabricated Building Components: Toward Improved Efficiency and Performance

Force-Triggered, Biobased Sealants for Prefabricated Building Components: Toward Improved Efficiency and Performance

The prefabricated building construction industry has made extensive progress in expediting the manufacture of prefabricated components at off-site plants. However, the sealing of joints between these components, which is crucial to ensuring the weatherproofing of the assembly, still represents a labor-intensive, on-site effort that relies on the manual installation of tapes and caulks. To reduce work at the jobsite and improve the airtightness and waterproofness of building envelopes, we developed a sealant that can be installed at the plant on prefab components and have the curing reaction triggered at the jobsite by using microencapsulation technology to separate the reactive agents. A series of force-triggered, high-strength, and fast-curing sealants derived from biobased feedstocks were developed, which consist of a biobased epoxy agent encapsulated in a polymer shell, embedded in a biobased amine curing agent. The shell of the microcapsules allows an effective separation of the reactive species in the one-part sealant, allowing shelf stability to an otherwise fast-curing system as well as improving the hydrophobicity of the whole system. When force activates and breaks the microcapsules, the highly reactive epoxy and amine mix and cure, exhibiting peel strength values of up to 143 ppi (pounds per inch). The hydrophobicity of the sealants allows them to retain up to 94% of the original peel strength after complete submersion in water for 24 h, showcasing the water resistivity of the sealant system. The open-air shelf stability of the sealant complex is demonstrated by the obtention of peel strength values of ∼16 ppi when triggering the curing reaction even after being exposed 8 months to open air and humidity. The successful on-demand triggering of curing reactions and the shelf stability provide efficacy of these force-triggered sealants for installation on prefabricated components, storage for months prior to delivery, and assembly at a jobsite. These force-triggered biobased sealants for prefabricated buildings can result in lower installation time and cost and better performance than tapes and caulks at the jobsite.

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来源期刊
ACS Sustainable Chemistry & Engineering
ACS Sustainable Chemistry & Engineering CHEMISTRY, MULTIDISCIPLINARY-ENGINEERING, CHEMICAL
CiteScore
13.80
自引率
4.80%
发文量
1470
审稿时长
1.7 months
期刊介绍: ACS Sustainable Chemistry & Engineering is a prestigious weekly peer-reviewed scientific journal published by the American Chemical Society. Dedicated to advancing the principles of green chemistry and green engineering, it covers a wide array of research topics including green chemistry, green engineering, biomass, alternative energy, and life cycle assessment. The journal welcomes submissions in various formats, including Letters, Articles, Features, and Perspectives (Reviews), that address the challenges of sustainability in the chemical enterprise and contribute to the advancement of sustainable practices. Join us in shaping the future of sustainable chemistry and engineering.
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