Mathematical Modeling of Technological Processes of Concreting Monolithic Structures From Fine-Grained Mixtures

L. Kastornykh, M. A. Gikalo, A. Kaklyugin, I. A. Serebryanaya
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Abstract

Introduction. The introduction of innovative technologies and materials in the construction industry is constrained by a number of reasons associated with insufficient knowledge of technological processes and the increased cost of highly efficient innovative materials. Therefore, studies in the field of monolithic concrete technology, reflecting the features of concreting structures from self-compacting mixtures and aimed at reducing their cost due to the use of construction waste, are relevant. The purpose of this work is experimental and statistical modeling of rheological characteristics of finegrained self-compacting concrete mixtures and physical and mechanical properties of concretes depending on the influence of two recipe factors — consumption of superplastifying additive and particle size distribution of aggregate including construction wastes.Materials and Methods. For the preparation of fine-grained self-compacting concrete mixtures, portlandcement  CEM 0 52,5N, natural quartz sand and crushed concrete sand of a mixture of three fractions of 0.63–5.0 mm and a chemical additive - a superplasticizer based on polycarboxylate esters Polyplast PK were used. Process characteristics of fine-grained self-compacting mixtures (workability, viscosity, fluidity) were determined by standard methods. The shear limits of the mixtures were set by means of an instrument comprising a cylinder with a nozzle and a glass base with circumferential marking. Modeling of rheological and physical-mechanical properties of fine-grained self-compacting concretes was carried out using a two-factor simplex-summed plan on a hexagon inscribed in a circle, which is one of the most convenient for solving technological problems of construction materials science.Results. Experimental-statistical models of rheological characteristics of fine-grained self-compacting mixtures and strength properties of concrete were obtained, adequately describing experimental data.Discussion and Conclusion. The use of mathematical planning methods of the experiment made it possible to comprehensively assess the influence of the two most significant recipe factors on the technological processes of concreting monolithic reinforced concrete structures from fine-grained self-compacting mixtures using aggregate from construction waste. It was established that optimal content of grains from crushed concrete in natural sand is 30–35 %, and dosage of superplasticizer Polyplast PK is 1.2–1.25 % of binder weight.
用细粒混合物浇筑整体结构的工艺流程数学建模
导言。由于对技术工艺了解不足以及高效创新材料成本增加等原因,在建筑行业引进创新技术和材料受到了限制。因此,有必要在整体混凝土技术领域开展研究,以反映自密实混合物混凝土结构的特点,并通过利用建筑垃圾降低成本。这项工作的目的是对细粒自密实混凝土混合物的流变特性以及混凝土的物理和机械特性进行实验和统计建模,这取决于两个配方因素的影响--超塑化添加剂的用量和骨料(包括建筑垃圾)的粒度分布。在制备细粒自密实混凝土混合物时,使用了硅酸盐水泥 CEM 0 52.5N、天然石英砂和由 0.63-5.0 mm 三种组分混合而成的混凝土碎砂,以及一种化学添加剂--基于聚羧酸酯的超塑化剂 Polyplast PK。细粒自密实混合物的工艺特性(工作性、粘度、流动性)是通过标准方法测定的。混合物的剪切极限是通过一种仪器设定的,该仪器由一个带有喷嘴的圆柱体和一个带有圆周标记的玻璃底座组成。细粒自密实混凝土的流变和物理机械性能模型是在一个刻有圆的六边形上使用双因素简并平面图建立的,该平面图是解决建筑材料科学技术问题最方便的方法之一。获得了细粒自密实混合物流变特性和混凝土强度特性的实验-统计模型,充分描述了实验数据。通过使用数学规划实验方法,可以全面评估两个最重要的配方因素对使用建筑垃圾骨料制成的细粒自密实混合物浇筑整体钢筋混凝土结构的工艺流程的影响。试验结果表明,天然砂中碎石混凝土颗粒的最佳含量为 30-35%,超塑化剂 Polyplast PK 的用量为粘结剂重量的 1.2-1.25%。
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