本地原料超压提高饰面砖物理力学性能

IF 0.6 4区 材料科学 Q4 MATERIALS SCIENCE, CERAMICS
S. I. Akhmedov, M. M. Pulatov, Kh. M. Saburov, A. U. Auesbaev, I. I. Siddikov, T. Kh. Naubeev
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引用次数: 0

摘要

本研究探讨了水泥石结构形成的基本原理,并探讨了不同填料的混凝土混合料与超压产生的材料性能之间的相关性。已经开发出一种利用当地资源(包括非标准原材料和工业副产品)生产建筑材料的有效技术。这一发展在环境和经济方面都意义重大。实验阶段着重于半干压和超压技术的应用,以改善混凝土混合料的操作性能。在压制过程中,特别是在高压条件下(压力大于40 MPa),强烈的颗粒间相互作用有望形成宏观结构,有助于更坚固的水泥石结构。填料颗粒与水合熟料矿物之间的范德华力和价键的参与,以及分子间的相互作用,被认为是促进材料强度和稳定性增加的主要机制。一个重要的方面是使用低塑性粘土和覆盖岩石,以及工业废物,这可以显著降低生产成本,提高环境的可持续性。超压技术已被证明可以缩短生产周期,降低单位产量能耗,提高经济效益。这些特性使得该技术在生产环保建筑材料方面非常有前景。这项研究促进了将二手材料和本地材料纳入建筑的新方法的发展。提出了提高建筑材料制造过程的效率和可持续性的新方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancement of Physico-Mechanical Properties of Facing Bricks by Hyperpressing of Local Raw Materials

This study explores the basic principles of cement stone structure formation and examines the correlation between the properties of concrete mixtures with different fillers and those of materials produced by hyperpressing. An effective technology for the production of construction materials using local resources, including non-standard raw materials and industrial byproducts, has been developed. This development is significant in both environmental and economic terms. The experimental phase focused on the application of semi-dry pressing and hyperpressing techniques to improve the operational properties of concrete mixtures. During the pressing process, especially under hyperpressing conditions (pressure greater than 40 MPa), intense interparticle interactions are expected to form macrostructures that contribute to a more robust cement stone structure. The involvement of van der Waals forces and valence bonds between filler particles and hydrated clinker minerals, as well as molecular interactions, is considered to be the central mechanism promoting the increase in strength and stability of the material. An important aspect is the use of low plasticity clays and overburden rocks, as well as industrial waste, which allows a significant reduction in production costs and improves environmental sustainability. Hyperpressing technology has been shown to shorten production cycles, reduce energy consumption per unit of output, and improve economic efficiency. These attributes make the technology highly promising for the production of environmentally friendly building materials. This research facilitates the development of novel approaches for incorporating secondary and indigenous materials into construction. New ways to improve the efficiency and sustainability of building material manufacturing processes are presented.

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来源期刊
Glass and Ceramics
Glass and Ceramics 工程技术-材料科学:硅酸盐
CiteScore
1.00
自引率
16.70%
发文量
85
审稿时长
6-12 weeks
期刊介绍: Glass and Ceramics reports on advances in basic and applied research and plant production techniques in glass and ceramics. The journal''s broad coverage includes developments in the areas of silicate chemistry, mineralogy and metallurgy, crystal chemistry, solid state reactions, raw materials, phase equilibria, reaction kinetics, physicochemical analysis, physics of dielectrics, and refractories, among others.
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