METHOD FOR CALCULATING THE COMPOSITION OF CELLULAR CONCRETE

V. Martynov, O. Martynova, S. Makarova, O. Vietokh
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Abstract

The analysis of existing methods for calculating concrete compositions was carried out. The characteristics and sequence of the calculation-experimental and experimental-calculation methods for the selection of concrete compositions are provided. The advantages and disadvantages of each of the methods are described. These methods are generalized by the general systemic cycle PDCA (Deming cycle), which is determined by the sequence of actions: P (plan) ‒ D (do) ‒ C (check) ‒ A (Action). It was established that for calculating the compositions of the cellular method there is no universal method, which would ensure the achievement of the required strength and average density at the same time. Based on the above, the aim of the thesis was formulated. The aim of the thesis is to develop a method for calculating the composition of cellular concrete, based on experimental-statistical models, which would ensure the production of concrete with the required properties while minimizing the cost of raw materials. A calculation algorithm, a block diagram and a computer program for designing cellular concrete compositions based on experimental-statistical modeling were developed. Using the example of the specified block diagram for calculating concrete compositions, the sequence of calculations is described in detail. The essence of the calculations is that the three-factor mathematical model of the property parameter of cellular concrete, which is supposed to be guaranteed, leads to a second order equation. After that, the roots of the equation are determined. They are substituted into a mathematical model and the composition of concrete is determined in natural values of variable factors. After that, the cost of the composition is determined, which is entered into the data array. Then one of the factors changes, according to the set step and the cycle repeats. At the last stage, the formed data array is processed and the composition with the minimum cost of materials is determined. Testing of the developed software was carried out by processing and calculating a three factor experiment. As a result, the composition of cellular concrete which provides the required strength of foam concrete with a minimum cost of materials, was determined.
多孔混凝土成分的计算方法
对现有的混凝土成分计算方法进行了分析。介绍了混凝土成分选择的计算-实验和实验-计算方法的特点和顺序。描述了每种方法的优点和缺点。这些方法由一般系统循环PDCA(戴明循环)来概括,它由行动的顺序决定:P(计划)- D(执行)- C(检查)- A(行动)。结果表明,对于计算单元法的成分,没有一种通用的方法可以保证同时达到要求的强度和平均密度。在此基础上,明确了本文的研究目标。本文的目的是开发一种基于实验统计模型的计算蜂窝混凝土成分的方法,该方法将确保生产具有所需性能的混凝土,同时将原材料成本降至最低。开发了基于实验统计建模的泡沫混凝土配合比设计的计算算法、框图和计算机程序。以具体的混凝土成分计算方框图为例,详细说明了计算的顺序。计算的实质是将本应得到保证的泡沫混凝土性能参数的三因素数学模型转化为二阶方程。之后,方程的根就确定了。它们被替换成数学模型,混凝土的组成由可变因素的自然值决定。之后,确定组合的成本,将其输入到数据数组中。然后根据设定的步长,其中一个因素发生变化,循环重复。最后对形成的数据阵列进行处理,确定材料成本最小的组合。通过对三因素实验的处理和计算,对所开发的软件进行了测试。因此,确定了以最小材料成本提供泡沫混凝土所需强度的泡沫混凝土的成分。
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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