Thermal Properties of Conventional and High-strength Concrete
Important characteristics for the Nordic countries: a freeze-thaw resistance and an ability of a material to keep heat inside the building. This paper aims to define the thermophysical properties of a high-strength concrete, compare the discovered performance with the conventional concrete propertie...
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Series: | MATEC Web of Conferences |
Online Access: | https://doi.org/10.1051/matecconf/201824506005 |
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doaj-bbce2c6950a1465da839e0c21f488cde2021-02-02T04:02:28ZengEDP SciencesMATEC Web of Conferences2261-236X2018-01-012450600510.1051/matecconf/201824506005matecconf_eece2018_06005Thermal Properties of Conventional and High-strength ConcreteMusorina Tatiana0Katcay Alexsander1Petrichenko Mikhail2Selezneva Anna3Peter the Great St. Petersburg Polytechnic UniversityPeter the Great St. Petersburg Polytechnic UniversityPeter the Great St. Petersburg Polytechnic UniversityPeter the Great St. Petersburg Polytechnic UniversityImportant characteristics for the Nordic countries: a freeze-thaw resistance and an ability of a material to keep heat inside the building. This paper aims to define the thermophysical properties of a high-strength concrete, compare the discovered performance with the conventional concrete properties. With this object in mind two experiments in cold chamber “CHALLENGE 250” have been conducted and followed by analysis. In these experiments, the insulation of facades is beyond the framework of the investigation. Only the thermophysical properties of concrete are taken into account. The samples were affected by temperature fluctuations. Results from the experiments show that strength characteristics of a material are in indirect ratio to accumulation properties of a structure. This conclusion is directly related to porosity of material and additives. During 70 minutes, with outside temperature being below zero, the temperature inside the concrete dropped to an average. As the outside temperature increases significantly to more than zero, the temperature inside the concrete has become below average (continued to decline) in 70 minutes. The more strength of material, the better thermophysical properties. High-strength concrete is less susceptible to temperature fluctuations, therefore more heat-resistant. As mentioned in the paper below, the material has one disadvantage: this is a large cost per cubic meter.https://doi.org/10.1051/matecconf/201824506005 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Musorina Tatiana Katcay Alexsander Petrichenko Mikhail Selezneva Anna |
spellingShingle |
Musorina Tatiana Katcay Alexsander Petrichenko Mikhail Selezneva Anna Thermal Properties of Conventional and High-strength Concrete MATEC Web of Conferences |
author_facet |
Musorina Tatiana Katcay Alexsander Petrichenko Mikhail Selezneva Anna |
author_sort |
Musorina Tatiana |
title |
Thermal Properties of Conventional and High-strength Concrete |
title_short |
Thermal Properties of Conventional and High-strength Concrete |
title_full |
Thermal Properties of Conventional and High-strength Concrete |
title_fullStr |
Thermal Properties of Conventional and High-strength Concrete |
title_full_unstemmed |
Thermal Properties of Conventional and High-strength Concrete |
title_sort |
thermal properties of conventional and high-strength concrete |
publisher |
EDP Sciences |
series |
MATEC Web of Conferences |
issn |
2261-236X |
publishDate |
2018-01-01 |
description |
Important characteristics for the Nordic countries: a freeze-thaw resistance and an ability of a material to keep heat inside the building. This paper aims to define the thermophysical properties of a high-strength concrete, compare the discovered performance with the conventional concrete properties. With this object in mind two experiments in cold chamber “CHALLENGE 250” have been conducted and followed by analysis. In these experiments, the insulation of facades is beyond the framework of the investigation. Only the thermophysical properties of concrete are taken into account. The samples were affected by temperature fluctuations. Results from the experiments show that strength characteristics of a material are in indirect ratio to accumulation properties of a structure. This conclusion is directly related to porosity of material and additives. During 70 minutes, with outside temperature being below zero, the temperature inside the concrete dropped to an average. As the outside temperature increases significantly to more than zero, the temperature inside the concrete has become below average (continued to decline) in 70 minutes. The more strength of material, the better thermophysical properties. High-strength concrete is less susceptible to temperature fluctuations, therefore more heat-resistant. As mentioned in the paper below, the material has one disadvantage: this is a large cost per cubic meter. |
url |
https://doi.org/10.1051/matecconf/201824506005 |
work_keys_str_mv |
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