Salt Damage in Ceramic Brick Masonry

2020 ◽  
Author(s):  
João M.P.Q. Delgado ◽  
Fernando A.N. Silva ◽  
António C. Azevedo ◽  
Ariosvaldo Ribeiro
Author(s):  
A. G. Ribeiro ◽  
F. A. N. Silva ◽  
A. C. Azevedo ◽  
F. A. F. Lopes ◽  
J. M. P. Q. Delgado

2021 ◽  
Vol 350 ◽  
pp. 00003
Author(s):  
Valery Derkach ◽  
Anton Galalyuk

The article presents the results of experimental studies of anisotropy compressive strength of solid ceramic brick masonry. It was found that the minimum values of the compressive strength of masonry made of ceramic bricks on a standard lime-cement mortar take place with the direction of the compressive force at angles to the horizontal seams of the masonry 45°-67°. It is shown that under the action of a compressive force at angles 0°< θ <90° on the mechanism the destruction of masonry is affected by the shear stresses arising in it, the values of which increase with decreasing angle of direction of the compressive force to horizontal seams of masonry. A design model of strength is proposed masonry when compressed at different angles to horizontal mortars masonry seams.


Author(s):  
Jan Kočí ◽  
Jiří Maděra ◽  
Miloš Jerman

The paper is aimed at the investigation of the effect of applied internal thermal insulation system on the energy performance of historical and contemporary masonry. For that reason, sandstone masonry and ceramic brick masonry were selected as representative examples and their energy performance was analyzed using hygrothermal simulations in two states. First, each wall was simulated without being thermally insulated to obtain reference values of energy performance. Then, the walls were thermally insulated – sandstone masonry with mineral wool and ceramic brick masonry with wood fiber insulation – and new performance after wall retrofitting was quantified. All simulations are performed for two different locations to analyze the effect of boundary conditions as well. The paper demonstrates how the computational simulation using advanced moisture-dependent material parameters can be utilized for accurate assessment of thermal and energy performance of building envelopes under dynamic conditions, which is often omitted by national standards or black-box simulation tools. The results clearly indicate that application of thermal insulation on the interior side can significantly contribute to the reduction of annual heat losses varying from 66.7% to 87.2% depending on the material of thermal insulation and the location of the building.


2019 ◽  
Vol 774 (9) ◽  
pp. 14-21
Author(s):  
M.P. KRASNOVSKIKH ◽  
◽  
I.G. MOKRUSHIN ◽  
Yu.I. NEKRASOVA ◽  
V.V. AVTUKHOVICH ◽  
...  
Keyword(s):  

2019 ◽  
Vol 777 (12) ◽  
pp. 37-42
Author(s):  
G.Yu. SHAGIGALIN ◽  
◽  
P.A. FEDOROV ◽  
L.N. LOMAKINA ◽  
◽  
...  

Materials ◽  
2019 ◽  
Vol 12 (17) ◽  
pp. 2694 ◽  
Author(s):  
Shansuo Zheng ◽  
Lihua Niu ◽  
Pei Pei ◽  
Jinqi Dong

In order to evaluate the deterioration regularity for the mechanical properties of brick masonry due to acid rain corrosion, a series of mechanical property tests for mortars, bricks, shear prisms, and compressive prisms after acid rain corrosion were conducted. The apparent morphology and the compressive strength of the masonry materials (cement mortar, cement-lime mortar, cement-fly ash mortar, and brick), the shear behavior of the masonry, and the compression behavior of the masonry were analyzed. The resistance of acid rain corrosion for the cement-lime mortar prisms was the worst, and the incorporation of fly ash into the cement mortar did not improve the acid rain corrosion resistance. The effect of the acid rain corrosion damage on the mechanical properties for the brick was significant. With an increasing number of acid rain corrosion cycles, the compressive strength of the mortar prisms, and the shear and compressive strengths of the brick masonry first increased and then decreased. The peak stress first increased and then decreased whereas the peak strain gradually increased. The slope of the stress-strain curve for the compression prisms gradually decreased. Furthermore, a mathematical degradation model for the compressive strength of the masonry material (cement mortar, cement-lime mortar, cement-fly ash mortar, and brick), as well as the shear strength attenuation model and the compressive strength attenuation model of brick masonry after acid rain corrosion were proposed.


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