2.1. Granulometric composition and chemical characteristics of ash and clay samples
The granulometric composition is one of the main characteristics determining the rheological properties of the initial components for the preparation of ceramic materials, and the structure formation during firing is one of the main rheological properties of clays and slags, as well as plasticity. The higher the content of microdispersed particles, the higher the plasticity of the material. Consequently, the raw materials will have a high bond, which will positively affect the strength characteristics of the finished products, as well as the granulometric composition for determining the sorption abilities of the material [
21].
Sieve analysis is based on the mechanical separation of particles by size on sieves with holes of different sizes by size classes. A set of standard sieves is used for sieve analysis. Laboratory sieves for the determination of grain bulk materials, sieve analysis in construction laboratories. Sampling of raw materials for and preparation of their analysis was carried out according to the generally accepted methodology according to [
22].
Table 1 shows the results of the granulometric composition of ash and clay samples.
The analysis of the granulometric composition of the studied materials, presented in
Table 1, revealed significant differences in their dispersion, which determine the potential for their further technological application. Saryozek clay has the most highly dispersed structure, in which the content of a fine fraction less than 0.056 mm in size reaches a maximum value of 46.2%, which determines its high plasticity and binding ability. In turn, Alekseevskaya clay is characterized by a predominance of the average fraction (49.4% on a 0.056 mm sieve) with a minimum number of large inclusions (12.5%). Unlike raw clays, the CHPP-2 ash sample shows significant heterogeneity with a high proportion of coarse-grained fraction (34.2% on a 0.63 mm sieve) due to the presence of aggregates and products of underburning. The differentiated data obtained make it possible to compare the high dispersion of individual Saryozek clay with the enlarged granulometric profile of TPP-2 ash, characterized by an increased proportion of coarse-grained fraction.
To visualize in detail the shape of the particles, the nature of their spatial organization, and the verification of the sieve analysis data, the initial components were studied using SEM (
Figure 1).
Micromorphological analysis of the Saryozek clay sample (
Figure 1a) indicates the presence of large, irregularly shaped aggregated clusters surrounded by a dense array of highly dispersed microparticles. This pattern confirms the mixed profile of granulometry. On the contrary, the microstructure of Alekseevskaya clay (
Figure 1b) is represented by a more homogeneous, ordered lamellar-layered (scaly) texture, where the particles are combined into plane-parallel packages.
An electron microscopic image of the CHPP-2 fly ash (
Figure 1с) demonstrates a fundamentally different, rigid fragmentation geometry. The man-made component consists of randomly distributed, sintered aggregates of irregular angular shape with sharp edges, which, as part of the ceramic charge, will serve as a non-plastic frame filler.
The chemical and phase composition of raw materials is a determining factor in the production of ceramic products. A DRON—4 diffractometer using the powder diffractogram method was used for the analysis [
23]. XRD allows to determine the phase composition of the formations and their percentage.
Figure 2 shows the diffractograms of the studied samples.
A comparison of the phase and granulometric compositions of the studied materials demonstrates a direct relationship between their crystallochemical nature and dispersed characteristics. Thus, the most highly dispersed structure of Saryozek clay, containing 46.2% of a fraction less than 0.056 mm, is due to the predominance of montmorillonite (Mo) in its composition, a mineral with a labile crystal lattice prone to dispersion into the thinnest flakes. On the contrary, the thermodynamically more stable kaolinite (K) dominates in Alekseevskaya clay, crystallizing in the form of large and dense packages, which is consistent with a high proportion of the average fraction (49.4% on a 0.056 mm sieve) and its smaller specific surface area. Unlike hydrophilic clay, the sample of technogenic ash of CHPP-2 is characterized by pronounced heterogeneity and an increased content of coarse-grained fractions (34.2% on a 0.63 mm sieve). A similar granulometric profile of fly ash is confirmed by its diffraction pattern, where peaks of hard, sintered high—temperature phases—mullite (M) and sillimanite (S), as well as free quartz (Q)—are recorded. The revealed structural and mineralogical correlations show that the highly dispersed montmorillonite matrix of Saryozek clay has pronounced hydrophilic properties, while the individual technogenic ash of CHP-2 is a non-plastic aluminosilicate component with a rigid crystalline framework.
The chemical composition of the studied samples of two types of clay and ash of CHPP-2 is shown in
Table 2.
The chemical analysis data presented in
Table 2 are in full agreement with the results of X-ray phase and granulometric analyses of the studied materials. The high content of aluminum oxide (24.02%) in Alekseevskaya clay objectively confirms its kaolinitic nature, which determines its predominantly medium-fractional composition due to the rigid packages of the crystal lattice. On the contrary, the increased concentration of SiO
2 (64.78%) in the montmorillonite clay of Saryozek indicates a significant amount of free fine quartz, intensifying its grinding to fine fractions of less than 0.056 mm. The presence of a significant amount of alkaline oxides K
2O (3.5%) and Na
2O (2.08%) in Alekseevskaya clay indicates the presence of hydrous minerals (illite) and determines the high sinterability of the charge due to the formation of low-melting eutectic. Oxide profile of CHPP-2 ash (SiO
2 = 58.8%; Al
2O
3 = 21.26%) explains the mechanism of high-temperature synthesis of the crystalline phases of mullite and sillimanite recorded on the diffraction pattern. The increased content of iron oxide (6.6%) in combination with the residual carbon of underburning (5.0%) determines the specifics of the chemical composition of CHPP-2 ash as a ferruginous alumosilicate man-made raw material with an individual reserve of organic component. R
2O are higher oxides of alkaline earth metals, which can be Li, Cs, Fr. According to the analysis, the ash is represented by the following minerals: SiO
2- quartz, mullite—Al
1,272Si
0,798O
4,864 (Al
6Si
2O
13—Al
4SiO
8) the composition is not constant, sillimanite—Al
2SiO
5, calcite- CaCO
3, rutile—TiO
2, magnesite—MgCO
3.
Table 3,
Table 4 and
Table 5 show the data on the phase composition of the raw material based on the analysis results.
The results of the quantitative phase analysis of the independently studied raw material components, presented in
Table 3 and
Table 4 and 5, revealed mineralogical differences between Saryozek and Alekseevskaya clays, as well as CHPP-2 ash. Alekseevskaya clay belongs to the kaolinite type (43.2% kaolinite) with an illite hydrosilicate content of 15.1%, which determines the high thermal stability of its individual crystalline matrix. Saryozek clay is a montmorillonite raw material (45.4% montmorillonite), the labile crystal lattice of which determines the hydrophilic properties of this material.
The initial ash of CHPP-2 is characterized by a predominance of a rigid mullite frame (45.6%) and crystalline quartz (36.3%), which makes it possible to classify it as a high-temperature nonplastic component. The presence of glass phase (4.6%) and albite (5.8%) in the composition of individual ash, as well as feldspar in Saryozek (7.8%) and Alekseevskaya (2.8%) clays indicates their different potential for liquid-phase sintering when heated. The decarbonization of calcite (3.5%) and magnesite (0.9%) in the ash residue, as well as the dehydration of gypsum (3.2–3.5%) in both clays, record the temperature ranges of gas release for each isolated component.
2.2. Physical and mechanical properties of the starting materials
According to the standard methodology, the parameters of the starting materials were evaluated—density and physico-mechanical characteristics (compressive strength, water absorption, fire shrinkage etc.) [
23,
24].
The studied plasticity of clay samples is shown in
Table 6.
The results of determining the plasticity characteristics of the investigated clay raw materials, presented in
Table 6, are in strict correlation with their quantitative phase composition. The high values of the liquid limit (39.12%) and plastic limit (35.82%) of Saryozek clay are attributed to intensive coagulation structure formation and the well-developed hydrophilic shell of the montmorillonite phase. Consequently, the calculated plasticity index of the Saryozek sample reaches 23.21%, which allows this raw material to be classified as highly plastic, possessing a significant binding capacity with respect to non-plastic ash and slag waste. Conversely, substantially lower boundaries of the plastic state were recorded for the kaolinite clay from Alekseevskaya (the plastic limit is 21.45%), which is explained by the rigid two-layer crystal lattice of kaolinite, which binds water only via the outer surface of its packets. The smaller molding moisture interval of the Alekseevskaya deposit is confirmed by a plasticity index at the level of 14.40%, positioning it as a moderately plastic stabilizing component.
The physical and mechanical characteristics of the investigated clay within the temperature range of 950–1200 °C, used to determine the refractory properties of the clays employed, are presented in
Table 7.
A comparative analysis of the physical and mechanical testing data revealed a dependence of the high-temperature sintering kinetics of the samples on their mineralogical and particle size compositions. The kaolinitic Alekseevskaya clay, containing 43.2% kaolinite, is characterized by a wide sintering interval; with a temperature increase from 950 to 1200 °C, the water absorption of the samples decreases from 15.9% to 4.5%, while the compressive strength monotonically increases from 16.8 to 35.1 MPa. The total shrinkage of this material increases from 0% at 950 °C to a maximum of 8.1% at 1150 °C, followed by a decrease to 6.7% at 1200 °C without loss of structural integrity.
The montmorillonitic Saryozek clay, containing 45.4% montmorillonite, begins to actively densify in the range of 950–1050 °C, where the water absorption drops from 18.2% to 9.8% and the strength increases from 12.4 to 25.3 MPa. The maximum strength for this sample is recorded at 1100 °C, reaching 28.9 MPa at a total shrinkage of 10.12% and a water absorption of 6.2%. Further heating to 1150 °C leads to pyroplastic softening and bloating of the ceramic body, which is manifested by a drop in strength to 24.1 MPa and a decrease in total shrinkage to 9.40%, while at 1200 °C, complete deformation of the samples occurs. The obtained results demonstrate the thermal stability limitations of pure montmorillonitic Saryozek clay at temperatures above 1100 °C, which necessitates finding pathways for its high-temperature stabilization. The individual physical, mechanical, and thermal properties of the CHPP-2 fly ash component are presented in
Table 8.
The data on the physical and mechanical characteristics of the initial CHPP-2 fly ash, presented in
Table 8, determine its individual structural and thermal parameters. The bulk density of the disperse waste in its loose state is ~900 kg/m
3, with a true grain density of 1.98 g/cm
3. The fineness of the ash component is characterized by a specific surface area of 260–280 m
2/kg. The high individual thermal constants—a softening point at 1300 °C and a melting temperature at 1430 °C—are thermodynamically governed by the dominance of refractory mullite (45.6%) and crystalline quartz (36.3%) in the phase composition of the ash. These indicators confirm the high refractoriness of the isolated ash residue.
An important stage toward the utilization of raw materials for structural ceramics is their classification, which is based on the most characteristic quality criteria of the material used [
25]: basicity modulus (hydraulic modulus), BM; acidity modulus, AM; silicate modulus, SM; and quality coefficient (hydraulic activity) (
Table 9).
An analysis of the calculated classification parameters presented in the summary
Table 9 allows for a quantitative evaluation of the phase formation nature and the reactivity of the investigated aluminosilicate systems. The low basicity modulus values for all components determine their classification as an acidic type of raw material, with a sharp predominance of glass-forming silicon and aluminum oxides over alkaline earth fluxes. The acidity modulus and silicate modulus sequentially increase in the series: Alekseevskaya clay → CHPP-2 fly ash → Saryozek clay, which directly correlates with the increasing fraction of free silica in the structure of each individual material. The quality coefficient (Qc) values recorded in the range of 0.345–0.407 classify the investigated fly ash and clays as autonomous, inert, low-calcium aluminosilicate materials.
Based on a comparative analysis of the properties of the two investigated clays, the clay from the Saryozek deposit was selected as the base aluminosilicate raw material for the synthesis of structural ceramics. In contrast to the moderately plastic kaolinitic Alekseevskaya clay, the high fineness and dominance of the montmorillonite phase in the Saryozek clay provide it with enhanced plasticity and binding capacity. This rheological potential is critically required to compensate for the leaning effect of the non-plastic industrial waste—CHPP-2 fly ash—to ensure a uniform distribution of the components within the molding mixture, and to obtain high-quality green bodies via semi-dry pressing. The drawback identified during thermal testing of the pure Saryozek clay—namely, a narrow sintering interval followed by pyroplastic softening and deformation at temperatures above 1100 °C, whereas the Alekseevskaya clay maintains structural stability up to 1200 °C—is completely mitigated by the introduction of the ash residue. The high individual softening and melting temperatures of the fly ash, governed by its mullite-quartz composition, form a rigid, thermally stable framework that prevents destructive bloating and shrinkage of the montmorillonite matrix during high-temperature firing.
2.3. Optimization of technological parameters for composite ceramic fabrication
The batch mixtures for ceramic preparation were calculated with varying fly ash content added to the clay in wt.%: 10, 15, and 20. The chemical composition of the batches was calculated based on the XRD data of the initial materials, as presented in
Table 10.
Based on the analytical data of the raw materials used, investigations were conducted to determine the optimal technological parameters for producing structural ceramics with physical and mechanical characteristics meeting the specified requirements.
Тables 11 and 12 present the effects of molding pressure, batch composition, and firing temperature on the physicochemical indicators of the ceramics at 20 MPa.
A comparative analysis of the experimental data (
Table 11 and
Table 12) allows for the establishment of complex physicochemical regularities in the sintering of the binary “Saryozek clay—CHPP-2 fly ash” systems, depending on the processing parameters of molding and heat treatment. Altering the molding pressure from 20 MPa to 30 MPa exerts a differentiated effect on the structurally sensitive properties of the samples.
Thus, the firing shrinkage value in all investigated formulations demonstrates invariance to changes in the molding pressure, recording identical values at both 20 MPa and 30 MPa (for instance, a stable decrease in shrinkage down to 1.9% at the maximum fly ash loading of 50%). This proves that the rigid mullite-quartz framework of the fly ash, acting as a non-deformable leaning filler, is the decisive factor in the spatial stabilization of the montmorillonite matrix, regardless of the initial compaction degree of the batch [
15,
19].
Increasing the molding pressure to 30 MPa leads to a expected and significant decrease in the water absorption of the ash-clay composites across the entire temperature range. For the formulation containing 10% ash at a firing temperature of 1050 °C, the water absorption decreases from 18.3% (at 20 MPa) to 14.92% (at 30 MPa). This effect is attributed to forced capillary contraction: a higher mechanical compaction force brings the angular, clastic particles of the industrial waste and the flaky aggregates of montmorillonite closer together, minimizing the volume of interparticle voids and compensating for the porosity arising from the burnout of 5.0% carbonaceous unburned residue in the ash [
26].
The effect of molding pressure on the compressive strength exhibits a contrasting behavior for the ash-free and ash-clay systems. In the control samples fired at 1050 °C, increasing the pressure to 30 MPa causes a decrease in strength down to 32 MPa, indicating over-compaction of the pure Saryozek clay, which leads to structural destruction during dehydration.
Conversely, in the composite formulations, increasing the pressure to 30 MPa provides a sharp, synergistic growth in strength: for the samples containing 10% CHPP-2 fly ash, the strength increases from 23.9 MPa to an extreme value of 38.4 MPa, and for the 20% formulation, it rises from 21.4 MPa to 26.3 MPa.
The physicochemical mechanism of the recorded optimum (10–20% CHPP-2 fly ash, 30 MPa, 1050 °C) lies in the fact that the elevated pressure ensures a maximum interfacial contact area between the clay and the ash. At a temperature of 1050 °C, the locally softened, highly disperse montmorillonite matrix, in combination with low-melting eutectics, effectively encapsulates and cements the densely packed, framework microparticles of mullite and quartz, thereby forming a defect-free, monolithic composite structure [
27]. When the ash concentration is increased further to 30–50%, the strength decreases under both pressure regimes due to a pronounced deficit of the plastic binding phase.
Limiting the maximum heat treatment temperature to 1050 °C is dictated by the physicochemical destructive processes that accelerate within the montmorillonite matrix upon further heating. Elevating the firing temperature to 1100 °C and above leads to a sharp decrease in the viscosity of the resulting silicate melt and drives the system into a state of pyroplastic softening, which is clearly confirmed by the deformation of the pure Saryozek clay at 1200 °C (see
Table 7). The introduction of the rigid mullite-quartz framework of the CHPP-2 fly ash partially compensates for this drawback at 1050 °C; however, at temperatures exceeding this threshold, a process of destructive gas bloating is initiated within the bulk of the composite. This, in turn, leads to a significant loss in the strength of the product [
28,
29].
2.4 Thermal analysis of phase transformations in Saryozek montmorillonite clay and fly ash
To establish the physicochemical and thermodynamic regularities of phase transformations during the firing of the developed materials, a comparative thermogravimetric analysis (TG) was performed.
Figure 3 presents the mass loss curves of the individual components (pure Saryozek clay and CHPP-2 fly ash) and the binary ash-clay compositions with industrial filler contents of 10%, 30%, and 50%, molded at compaction pressures of 20 MPa (
Figure 3a) and 30 MPa (
Figure 3b).
A comparative analysis of the thermogravimetric curves in
Figure 3 (a and b) allowed for the establishment of the nature of phase transformations in the components and revealed a kinetic shift of the reactions under the influence of compaction pressure. In the low-temperature range (100–200 °C), the pure Saryozek clay exhibits a maximum mass loss (~8.0%), which is attributed to the removal of interlayer water from the montmorillonite. As the CHPP-2 fly ash concentration increases from 10% to 50%, the magnitude of this loss expectedly decreases due to the batch leaning effect. Meanwhile, increasing the pressure from 20 MPa to 30 MPa delays the removal of residual interlayer water up to 240–250 °C due to forced capillary contraction and an increase in the diffusion resistance of the over-compacted green body.
The most pronounced effect of the molding pressure is manifested in the mid-temperature region of dehydroxylation of the montmorillonite matrix. At a pressure of 20 MPa (
Figure 3a), the removal of structural OH
- groups proceeds dynamically within the range of 480–560 °C, whereas at 30 MPa (
Figure 3b), this process shifts to the range of 580–720 °C due to an increase in the partial vapor pressure within the dense pores. Concurrently, in the range of 450–850 °C, the curve of the individual fly ash exhibits a smooth mass loss (~5.2%), corresponding to the burnout of 5.0% residual coal carbon. In the high-temperature region (950–1050 °C), the rigid mullite-quartz framework of the fly ash acts as a reinforcing skeleton, preventing the pyroplastic deformation of the clay [
30]. At a pressure of 30 MPa and a temperature of 1050 °C, maximum synergism is achieved: the softened matrix effectively encapsulates the densely packed ash particles, providing an extreme increase in strength up to 38.4 MPa. The identified thermal shift of dehydroxylation justifies the necessity of holding the temperature at 600 °C for the safe removal of gases prior to the onset of intensive liquid-phase sintering.
For a more detailed identification of the thermodynamic effects and phase formation occurring without mass loss in the high-temperature sintering region of the composites, the differential thermal analysis (DTA) curves were analyzed at the optimal compaction pressure of 30 MPa (
Figure 4).
On the obtained DTA curves, a deep endothermic peak is clearly recorded in the range of 100–200 °C with a pronounced minimum at 125 °C, which energetically confirms the intensive energy expenditure for the desorption and removal of the interlayer water of montmorillonite. The shift of the minimum of the second endothermic effect of matrix dehydroxylation to the region of 690 °C visually verifies the recorded kinetic TG shift in the decomposition of hydrosilicates under elevated pressure. In the high-temperature section (850–950 °C), a distinct exothermic peak with a maximum at 925 °C is detected, the intensity of which expectedly decreases as the clay component is replaced by the ash filler. This exo-effect is responsible for the final destruction of the anhydrous montmorillonite framework and the solid-phase crystallization of new crystalline phases (aluminosilicate spinel and metastable cristobalite) [
31].
Upon final heating to 1050 °C, the rigid mullite-quartz framework of the CHPP-2 fly ash (mullite—45.6%, quartz—36.3%) acts as a reinforcing skeleton, preventing the pyroplastic deformation of the clay. The melt of the destructured clay effectively encapsulates the densely packed ash particles, blocking the porosity from the burned-out carbon and providing an extreme increase in the composite strength up to 38.4 MPa (for 10% ash). Thus, the comprehensive thermal data scientifically substantiate the selected firing regime with a technological holding step at around 600 °C for the safe removal of constitutional gases and unburned residue prior to the onset of intensive liquid-phase sintering of the green body.
For the direct verification of the physicochemical processes of liquid-phase sintering and the mechanisms of pore formation, a SEM investigation of the fractured surfaces of the fired samples was conducted (
Figure 5).
SEM analysis of the sample with the optimal fly ash content of 10% (
Figure 5a) records the formation of a dense, highly consolidated monolithic structure. Forced capillary contraction under the action of a 30 MPa compaction pressure ensured a maximum interfacial contact area. The locally formed silicate melt of the destructured Saryozek montmorillonite clay completely encapsulated the rigid, angular microparticles of mullite and quartz from the CHPP-2 fly ash, firmly cementing them into a defect-free matrix. At the macro level, this governs the extreme compressive strength value of 38.4 MPa.
Conversely, the fractured surface of the high-ash composite (50% ash,
Figure 5b) reveals the development of open-pore defects with diameters of 1.5–5 μm. This morphology serves as a direct consequence of the intense gas evolution processes recorded by TG/DTA during montmorillonite dehydroxylation and the burnout of the 5.0% carbonaceous unburned residue of the ash. The gas phase “bloats” the pyroplastic melt of the matrix, while a pronounced deficit of the plastic binding phase (with the clay fraction reduced to 50%) prevents the healing of these voids. This leads to the thinning of the interpore walls and an expected drop in the material strength [
32].
Thus, a comparative analysis of the fracture topology clearly confirms that a molding pressure of 30 MPa provides the necessary spatial convergence of the components, guaranteeing the monolithic cementation of the mullite-quartz framework by the silicate melt. However, the discovered synergistic effect is completely exhausted at ash concentrations exceeding 20–30%, where the deficit of the plastic binder, combined with intense destructive gas evolution, shifts the system into a regime of brittle structure formation. The established microstructural regularities are in strict concordance with the TG/DTA and physicomechanical testing results, fully revealing the physicochemical nature of the strength optimum of the developed composite ceramics.
Limitations and Future Perspectives. This study has several limitations that define directions for future research. First, the experimental program was implemented exclusively on a laboratory scale using precision, small-scale equipment. Under actual manufacturing conditions at an industrial plant, the heat and mass transfer profiles, as well as the gas evolution kinetics of the carbonaceous unburned residue, may undergo alterations due to the “scale-up effect.” This will require additional adjustment of the time intervals and heating rates using semi-industrial or pilot-scale installations.
Second, the evaluation of the performance viability of the developed aluminosilicate composites was limited at this stage to determining their basic physicomechanical properties. To fully validate the durability of the material under real operating conditions, long-term testing for frost resistance and abrasion resistance is required, along with an assessment of environmental aging and the chemical resistance of the formed matrix in aggressive media. The dense structural topology and the encapsulation of the refractory mullite-quartz framework by the silicate melt, revealed by SEM, provide reliable prerequisites for high operational performance, the detailed investigation of which will form the basis of the next stage of research.