Том 9 №4

Архив журнала Строительные материалы и изделия Том 9 №4

PM2.5 and PM10 fine dust pollution of construction waste transloading at dwelling zone

https://doi.org/10.58224/2618-7183-2026-9-4-1
Аннотация
In many cities, the problem of dust pollution from construction waste caused by fine dust particles PM2,5 and PM10 is particularly acute. In the context of the rapidly developing construction industry in cities, issues of environmental safety of the urban air environment are becoming critically important for many states. The main source of urban waste in the context of growing urbanization has become construction waste, which accounts for more than 80% of the total urban waste in the Russian Federation. These areas of accumulation of construction debris not only take up space but also contribute to the deterioration of the urban environment due to dust that rises into the air during transportation and storage of waste. The purpose of this study is to determine the degree of impact of dust emissions of PM2.5 and PM10 particles on the air environment in the dwelling zone, to obtain empirically parameterized «distance–concentration» relationship for PM10 and PM2.5 particles during the loading of solid waste into an open container, and to present the results both in absolute units and in a standardized form using the concentration excess index I. Dust pollution monitoring was carried out at an active construction site located in a dense residential area in St. Petersburg, Russia. Concentration measurements were carried out during periods of dumping garbage into a container and transportation outside the construction site. The PM10 concentration decreased from 30.6 mg/m3 at the dust source to 1.2 mg/m3 at a distance of 50 m. The MPC limits of PM10 concentration (0.06 mg/m3) were determined at a distance of 37.5 m from the dust source. The PM2.5 concentration at a distance of 0-50 m remained below the MPC limits (0.035 mg/m3). From a practical point of view, the data obtained make it possible to organize an effective multi-level dust management system and can be integrated into summary calculations of emissions and an inventory of sources of pollutants.
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Patterns of formation of the pore matrix structure and thermophysical properties of calcareous-ash mortars modified with opoka and recycled basalt fiber

https://doi.org/10.58224/2618-7183-2026-9-4-2
Аннотация
The study investigates patterns in the formation of the structure and properties of calcareous-ash mortars modified with silica rock opoka and recycled basalt fiber. The research goal was to establish the relationship between the composition, pore structure, and thermophysical and physico-mechanical characteristics of the material.
The raw components used included lime, fly ash, granulated blast furnace slag, opoka, quartz sand, and recycled basalt fiber obtained from spent mineral wool substrate after heat treatment. The conducted studies involved the determination of density, compressive and bending strength, thermal conductivity, shrinkage strain, and microstructure.
The introduction of opoka was found to contribute to the formation of a microporous structure, providing a 20-35% reduction in average density and a decrease in thermal conductivity to 40-55%. Recycled basalt fiber reduced shrinkage strain and improved crack resistance by stabilizing the pore matrix structure. The study showed that synergetic interaction of components leads to the formation of a hierarchical structure providing the optimal combination of strength and thermophysical characteristics.
The optimal density range achieving the best balance of properties has been determined (1,400–1,600 kg/m³).
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Methodological aspects of training dataset construction for predicting the mechanical strength of filled polymer coatings during natural climatic aging

https://doi.org/10.58224/2618-7183-2026-9-4-3
Аннотация
The paper presents the results of investigating the strength characteristics of eleven compositions of protective and decorative epoxy polymer coatings with mineral fillers and an unfilled polymer under natural climatic aging in a temperate climate (Saransk). The work formalises the methodological approach to the formation of a training dataset for predicting changes in the strength characteristics of polymer composites with mineral fillers using machine learning methods. It is shown that with the introduction of a mineral filler, the failure mode of the epoxy matrix under bending changes from viscous-fluid to brittle, which allows the bending strength to be unambiguously determined. Under uniaxial compression, the classical strength value is reached in the region of relative strains of 50 % and higher, which corresponds to the densification phase of the already failed material and does not physically reflect the actual strength response. As a methodologically correct alternative, the yield strength is proposed, identified as the first local maximum on the smoothed σ–ε curve and unambiguously determined for all studied compositions at all natural climatic aging points. The relative difference Δσ between the strength value (in bending) or the yield strength (in compression) of the filled composition and the corresponding stress value on the deformation curve of the unfilled polymer, taken at the same point of relative strains for each time point of climatic aging, is proposed as the target feature of the prediction model. This approach automatically eliminates from the target variable the components associated with the post-curing effects and the degradation of the polymer matrix itself, leaving the model with the task of predicting the contribution of the filler and the state of the polymer–filler interface. Based on the analysis of the reinforcing effect of the eleven filled compositions in the reference state without post-curing, three groups of fillers are identified according to the level of the relative strength gain under bending («low» 3÷10 %, «moderate» 24÷53 %, «high» 70÷120 %), which are consistent with the physical picture of the filler–polymer matrix interaction. Recommendations are formulated on the composition of the model's input feature space, including the type and shape of the filler particles, the mass fraction, the characteristic particle size, the specific surface area, and the characteristic relative strain of the composition in the reference state. It is noted that the bending tests possess substantially greater informativeness in the assessment of the climatic resistance of the investigated class of materials in comparison with uniaxial compression.
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Mathematical modeling of heat transfer through building envelopes with cracks

https://doi.org/10.58224/2618-7183-2026-9-4-4
Аннотация
Cracks formed in building walls are frequently restored by injecting specially formulated repair grouts into the damaged areas. This study examines the effect of such repaired cracks on the thermal performance of building envelopes. Heat transfer within cracked wall sections was modeled by solving the two-dimensional steady-state heat conduction equation. Convective boundary conditions of the third kind were specified on the exterior surfaces to account for heat exchange between the wall and the surrounding environment. The truncated edges of the computational domain were assigned insulated (second-kind) boundary conditions, corresponding to zero normal heat flux. At the interfaces between adjacent materials, continuity of both temperature and heat flux was enforced through fourth-kind boundary conditions. The numerical analysis was carried out using the finite element method implemented in ANSYS Workbench 2024. Based on the obtained numerical results, a procedure was developed for constructing nomograms that characterize the specific heat losses associated with wall cracks repaired by injection grouting. The temperature fields of aerated concrete, clay brick, and reinforced concrete wall assemblies were investigated. The results indicate that injecting a repair grout into a crack increases the heat flux through the examined section in brick and aerated concrete walls, whereas the opposite effect is observed for reinforced concrete walls, where the heat flux decreases after crack injection. The simulations demonstrated that replacing the air-filled crack with injection grout increases the heat flux across the repaired region of the wall. Graphical nomograms were therefore established to estimate the heat flow through repaired cracks directly from two governing parameters – the crack depth and the crack opening width – without the need for a complete numerical solution of the temperature field. In addition, the paper presents a practical algorithm describing the application of these nomograms in engineering calculations. The developed graphical tools can be employed to evaluate the overall thermal resistance of building envelopes during reconstruction, rehabilitation, and major renovation of existing buildings.
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Improving the efficiency of steam condensation from combined-cycle gas mixtures in shell-and-tube condensers during CO₂ capture in cement plants

https://doi.org/10.58224/2618-7183-2026-9-4-5
Аннотация
The article discusses the processes of heat exchange during the condensation of vapors from combined-cycle gas mixtures containing a significant amount of non-condensing gases and solid impurities. The original design of a horizontal shell-and-tube condenser with profiled fins providing rupture and dispersion of the condensate film is presented. A quantitative assessment of the effectiveness of the proposed apparatus was carried out in relation to the conditions of a cement plant (capacity of 1.0 million tons of cement per year). It is shown that the introduction of oxygen combustion of fuel with subsequent condensation of water vapor makes it possible to reduce the volume of exhaust gases by 54.6%, increase the mass fraction of co₂ in the stream to 94.8% and reduce carbon dioxide emissions by 0.83 tons of co₂ per ton of cement produced. The optimal angle of inclination of the fins distribution strips is 5°, at which the degree of condensation reaches 95.1%, and the heat transfer coefficient is 260 W/(m2•K). The proposed design makes it possible to reduce the metal consumption of the condenser by 12-15% compared to smooth-tube analogues without increasing hydraulic resistance.
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Organomineral thermal insulation composite with reduced flammability based on sodium silicate and a polyurethane foam matrix

https://doi.org/10.58224/2618-7183-2026-9-4-7
Аннотация
This article is devoted to the study of an organomineral thermal insulation composite based on a rigid polyurethane foam (PUF) matrix and a flammability-reducing silicate component-sodium metasilicate pentahydrate (Na2SiO3•5H2O, 0.9-1.25 mm fraction). The physicochemical regularities of the interaction between the silicate component and isocyanate, the fire-retardant mechanism of the silicate component, and its effect on the thermal properties and flammability of the composite have been investigated.
A chemical interaction between the isocyanate functional groups of the reactive mixture and the water contained in the silicate component was established to occur at the phase boundary.
The fire-retardant mechanism of the silicate component consists in the endothermic release of crystallization water (70-170 ℃), which induces intumescence of the metasilicate, resulting in the formation of a porous heat-insulating barrier.
The silicate component does not alter the fundamental decomposition mechanism of the polyurethane, yet it shifts the stages of thermo-oxidative degradation to lower temperatures (by 15-85 ℃). The final residue increases up to 8.1 times (from 3.6 to 29.1 wt%), which directly corresponds to the contribution of the dehydrated silicate.
Flammability tests demonstrated that when the silicate component content exceeds 45%, the material achieves a UL 94 V 0 rating, and the limiting oxygen index (LOI) increases from 17.8 to 26.6 at a 90% silicate component loading.
The obtained results substantiate the effectiveness of using sodium silicate crystalline hydrate as a fire-retardant additive, and it can be recommended for the development of composites based on other polymer matrices.
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Compressive strength and durability check of pre-soaked basalt fiber reinforced concrete under dynamic loading

https://doi.org/10.58224/2618-7183-2026-9-4-8
Аннотация
This study examined the impact of dry and pre-soaked basalt fibers on the durability, mechanical, and dynamic properties of concrete. Macro (UMA, PMA) and micro (UMI, PMI) fibers were used at a set dosage of 2%, where water-conditioned pre-soaked fibers were soaked for 24 hours before use. Experimental tests were slump, density, compressive strength, split tensile strength, modulus of elasticity, flexural strength, chloride ion diffusion, and dynamic modulus of elasticity, together with finite element analysis (FEA). Results indicated that the pre-soaked micro-fiber mix (PMI) had maximum compressive strength (39 MPa), 18% more than control, while pre-soaked macro-fiber mix (PMA) had maximum flexural strength (3 MPa), 27.8% more than control. Durability tests also indicated PMA to reduce chloride diffusion by 44%, i.e., improved pore refinement. Dynamic modulus rose to 14%, confirming increased stiffness and fatigue life. FEA result confirmed trends with improved stress distribution and delayed failure in the pre-soaked fiber concretes. Pre-soaking basalt fibers guarantees overall improved fiber–matrix interfacial bond, internal curing, and sustainable response under Dynamic loading.
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Development and revalorization of the architectural heritage of Azerbaijan in the urban planning system

https://doi.org/10.58224/2618-7183-2026-9-4-9
Аннотация
With a highly developed cultural heritage, Azerbaijan has always been known for its remarkable achievements in architecture and decorations. It serves as an optimal territory for the development of the modern approach to urban planning, supported by the governmental efforts to protect the values of this country at the level of world culture. Since gaining its independence, Azerbaijan has managed to develop a strong cooperation with UNESCO, making a great contribution to heritage conservation worldwide.
This paper studies the issue of the connection of the architectural legacy of Azerbaijan with the current system of urban development in theory and practice. Considering Baku as the key example of the discussed subject, the author analyses the successful co-existence of the historic structures in a developing city and tries to find out the ways to preserve the identity of this place during the process of the globalization of cities. Instead of working on restoration projects separately, the author suggests using the urban approach to preservation of the historic places as an important element of the socio-economic and architectural structure of the city. Moreover, the issue of the balance between the traditional aesthetics and modern constructions, along with the adaptive reuse of the historic areas is considered. There is a great focus made on the importance of international cooperation and compliance with the UNESCO requirements".
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Efficiency of applying various types of basic renewable energy sources in modern buildings and structures

https://doi.org/10.58224/2618-7183-2026-9-4-10
Аннотация
The article presents a comprehensive analysis of the applicability and efficiency of basic renewable energy sources (RES) in modern buildings, including high-rise and unique structures. A comparative analysis of key technologies—solar (PV and thermal), wind, geothermal (heat pumps), and bioenergy—was conducted, highlighting their specific advantages as determined by efficiency indicators, COP, capacity factor (CUF), and temperature potential. The selection methodology is implemented as a sequence of iterative steps based on international statistical data (IRENA, IEA), modeling tools, and multi-criteria analysis principles. Key engineering requirements for the external and internal units of solar (photovoltaic and thermal), wind, geothermal systems, and bioenergy are identified. It is established that the selection and design of RES systems are determined by a triad of imperatives: achieving architectural harmony, maximizing energy efficiency, and ensuring safety and durability. A universal solution does not exist, and the efficiency of integration is determined by a combination of factors: climatic conditions, architectural and structural features of the building, and its energy profile. A typology of solutions for different building classes – from mass multi-story construction to skyscrapers – is proposed, with a detailed examination of wind and vibration loads, thermal deformations, and installation logistics. It is proven that for complex facilities, a hybrid approach is optimal, combining, in particular, geothermal heat pumps, building integrated photovoltaics (BIPV), and adapted small wind turbines. The article emphasizes the necessity of interdisciplinary design at the intersection of architecture, energy engineering, and mechanics to create efficient energy-active buildings. The transition from assessing RES potential in general to designing adaptive solutions for specific buildings is a necessary condition for creating energy efficient and carbon neutral buildings. The practical value of the work lies in providing designers and developers with a structured decision-making tool, which contributes to the creation of energy efficient, carbon neutral buildings and a sustainable urban environment.
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