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пластическая вязкость

Geology
  • Date submitted
    2023-02-27
  • Date accepted
    2023-10-25
  • Date published
    2024-04-25

Microstructural features of chromitites and ultramafic rocks of the Almaz-Zhemchuzhina deposit (Kempirsai massif, Kazakhstan) according to electron backscatter diffraction (EBSD) studies

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Microstructural features of the main rock-forming minerals of host ultramafic rocks (olivine, orthopyroxene) and chrome spinel from ores of the Almaz-Zhemchuzhina deposit were studied using the electron backscatter diffraction method. For ultramafic rocks, statistical diagrams of the crystallographic orientation of olivine and orthopyroxene were obtained, indicating the formation of a mineral association in conditions of high-temperature subsolidus plastic flow in the upper mantle. The main mechanisms were translation gliding and syntectonic recrystallization. Olivine deformation occurred predominantly along the (010)[100] and (001)[100] systems. The textural and structural features of chromitites reflect plastic flow processes, most pronounced in lenticular-banded ores. Microstructure maps in inverse pole figure encoding show differences in the grain size composition of the ores: areas consisting of disseminated chromitites are characterized by a finer-grained structure compared to lens-shaped segregations of a massive structure. Analysis of microstructure maps shows that during the transition from disseminated to massive ores, there is a widespread development of recrystallization, adaptation of neighbouring grains to each other, resulting in homogenization of crystallographic orientation in aggregates. The data obtained develop ideas about the rheomorphic nature of chromitite segregations in ophiolite dunites. It is assumed that the coarsening of the structure of massive chromitites is critically associated with an increase in the concentration of ore grains during solid-phase segregation within a plastic flow, when individual chrome spinel grains, initially separated by silicate material, begin to come into direct contact with each other.

How to cite: Saveliev D.E., Sergeev S.N., Makatov D.K. Microstructural features of chromitites and ultramafic rocks of the Almaz-Zhemchuzhina deposit (Kempirsai massif, Kazakhstan) according to electron backscatter diffraction (EBSD) studies // Journal of Mining Institute. 2024. Vol. 266 . p. 218-230. EDN FJNEDQ
Energy industry
  • Date submitted
    2023-03-16
  • Date accepted
    2023-06-20
  • Date published
    2023-07-19

Evaluation of the influence of the hydraulic fluid temperature on power loss of the mining hydraulic excavator

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In the steady state of operation, the temperature of a mining excavator hydraulic fluid is determined by the ambient temperature, hydraulic system design, and power losses. The amount of the hydraulic system power loss depends on the hydraulic fluid physical and thermodynamic properties and the degree of wear of the mining excavator hydraulic system working elements. The main causes of power losses are pressure losses in pipelines, valves and fittings, and leaks in pumps and hydraulic motors. With an increase in the temperature of hydraulic fluid, its viscosity decreases, which leads, on the one hand, to a decrease in power losses due to pressure losses in pipelines, valves and fittings, and, on the other hand, to an increase in volumetric leaks and associated power losses. To numerically determine the level of power losses occurring in the hydraulic system on an example of the Komatsu PC750-7 mining excavator when using Shell Tellus S2 V 22, 32, 46, 68 hydraulic oils with the corresponding kinematic viscosity of 22, 32, 46, 68 cSt at 40 °C, the developed calculation technique and software algorithm in the MatLab Simulink environment was used. The power loss coefficient, obtained by comparing power losses at the optimum temperature for a given hydraulic system in the conditions under consideration with the actual ones is proposed. The use of the coefficient will make it possible to reasonably select hydraulic fluids and set the values of the main pumps limit state and other hydraulic system elements, and evaluate the actual energy efficiency of the mining hydraulic excavator. Calculations have shown that the implementation of measures that ensure operation in the interval with a deviation of 10 % from the optimal temperature value for these conditions makes it possible to reduce energy losses from 3 to 12 %.

How to cite: Rakhutin M.G., Giang K.Q., Krivenko A.E., Tran V.H. Evaluation of the influence of the hydraulic fluid temperature on power loss of the mining hydraulic excavator // Journal of Mining Institute. 2023. Vol. 261 . p. 374-383. EDN OKWKUF
Geotechnical Engineering and Engineering Geology
  • Date submitted
    2022-09-27
  • Date accepted
    2023-04-03
  • Date published
    2023-12-25

The study of displacing ability of lignosulfonate aqueous solutions on sand packed tubes

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This paper presents the findings of laboratory studies of rheological properties and oil displacing ability of aqueous solutions of technical grade lignosulfonate done on the sand packed tube models. The solutions containing lignosulfonate can be useful as displacement agents in development of watered reservoirs with heterogeneous porosity and permeability. When used at high concentrations, technical grade lignosulfonate can achieve selective shut-off while maintaining the reservoir pressure. The oil displacement efficiency is improved by means of redistributing the flows and selective isolation of high-permeability zones. The use of such compositions allows increasing the sweep of low-permeability reservoir zones by created pressure differential and displacing the residual oil.

How to cite: Dorfman M.B., Sentemov A.А., Belozerov I.P. The study of displacing ability of lignosulfonate aqueous solutions on sand packed tubes // Journal of Mining Institute. 2023. Vol. 264 . p. 865-873. EDN DZDUVM
Geotechnical Engineering and Engineering Geology
  • Date submitted
    2022-07-15
  • Date accepted
    2022-12-13
  • Date published
    2023-02-27

Mathematical modelling of displacement during the potash ores mining by longwall faces

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In favourable mining conditions, in particular at the Starobinskoye potash deposit (Belarus), longwall mining systems are used. They cause a high human-induced load on the subsoil, including intense deformation of the ground surface. The presented investigations are aimed at studying the dynamics of the ground surface displacement during the longwall face advance. Mathematical modelling was carried out in an elastic-plastic formulation with numerical implementation by the finite element method. The condition for the roof rocks collapse was opening of the contact between the seams when its boundaries were reached by shear fractures or formation of the tensile stresses area at the outcrop. With the working front advance, an increase in subsidence is observed, followed by its stabilization to a value determined by the process parameters of mining operations and the physical and mechanical properties of collapsed rocks. In this case, each point of the ground surface experiences sign-alternating horizontal deformations: when the front approaches, it causes tension, and when it moves away, compression. The obtained results of mathematical modelling are in good agreement with the data of instrumental measurements of the ground surface displacements, which indicates the adequate description of the rock mass deformation during the slice excavation of sylvinite seams by longwall faces.

How to cite: Baryakh A.A., Devyatkov S.Y., Denkevich E.T. Mathematical modelling of displacement during the potash ores mining by longwall faces // Journal of Mining Institute. 2023. Vol. 259 . p. 13-20. DOI: 10.31897/PMI.2023.11
Modern Trends in Hydrocarbon Resources Development
  • Date submitted
    2021-09-17
  • Date accepted
    2022-04-07
  • Date published
    2022-12-29

Technique for calculating technological parameters of non-Newtonian liquids injection into oil well during workover

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Technique for automated calculation of technological parameters for non-Newtonian liquids injection into a well during workover is presented. At the first stage the algorithm processes initial flow or viscosity curve in order to determine rheological parameters and coefficients included in equations of rheological models of non-Newtonian fluids. At the second stage, based on data from the previous stage, the program calculates well design and pump operation modes, permissible values of liquid flow rate and viscosity, to prevent possible hydraulic fracturing. Based on the results of calculations and dependencies, a decision is made on the necessity of changing the technological parameters of non-Newtonian liquid injection and/or its composition (components content, chemical base) in order to prevent the violation of the technological operation, such as unintentional formation of fractures due to hydraulic fracturing. Fracturing can lead to catastrophic absorptions and, consequently, to increased consumption of technological liquids pumped into the well during workover. Furthermore, there is an increased risk of uncontrolled gas breakthrough through highly conductive channels.

How to cite: Mardashov D.V., Bondarenko А.V., Raupov I.R. Technique for calculating technological parameters of non-Newtonian liquids injection into oil well during workover // Journal of Mining Institute. 2022. Vol. 258 . p. 881-894. DOI: 10.31897/PMI.2022.16
Oil and gas
  • Date submitted
    2019-11-28
  • Date accepted
    2020-05-08
  • Date published
    2020-10-08

Development of the drilling mud composition for directional wellbore drilling considering rheological parameters of the fluid

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Article presents investigations on the development of a drilling mud composition for directional wells in an oil field located in the Republic of Tatarstan (Russia). Various rheological models of fluid flow and their applicability for drilling muds are analyzed. Laboratory experiments to measure the main rheological parameters of a solution, such as plastic viscosity, dynamic shear stress, as well as indicators of non-linearity and consistency are presented. On the basis of laboratory investigations, it was concluded that high molecular weight polymer reagents (for example, xanthan gum) can give tangible pseudoplastic properties to the washing fluid, and their combination with a linear high molecular weight polymer (for example, polyacrylamide) reduces the value of dynamic shear stress. Thus, when selecting polymer reagents for treating drilling muds at directional drilling, it is necessary to take into account their structure, molecular weight and properties. Combination of different types of reagents in the composition of the drilling mud can lead to a synergistic effect and increase the efficiency of the drilling process as a whole.

How to cite: Ulyasheva N.M., Leusheva E.L., Galishin R.N. Development of the drilling mud composition for directional wellbore drilling considering rheological parameters of the fluid // Journal of Mining Institute. 2020. Vol. 244 . p. 454-461. DOI: 10.31897/PMI.2020.4.8
Mining
  • Date submitted
    2019-07-13
  • Date accepted
    2019-08-31
  • Date published
    2019-12-24

Method for predicting the stress-strain state of the vertical shaft lining at the drift landing section in saliferous rocks

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The article proposes a method for predicting the stress-strain state of the vertical shaft lining in saliferous rocks at the drift landing section. The paper considers the development of geomechanical processes in the saliferous rock in the landing area, the support is viewed as a two-layer medium: the inner layer is concrete, the outer layer is compensation material. With this in view, the paper solves the problem of continuum mechanics in a spatial setting, taking into account the long-term deformation of salts and the compressibility of the compensation layer. Long-term deformation of saliferous rocks is described using the viscoplastic model of salt deformation into the numerical model, and the crushable foam model to simulate the deformation of the compensation layer. This approach considers all stages of the deformation of the compensation layer material and the development of long-term deformations of saliferous rocks, which makes it possible to increase the reliability of the forecast of the stress-strain state of the vertical shaft lining.

How to cite: Karasev M.A., Buslova M.A., Vilner M.A., Nguyen T.T. Method for predicting the stress-strain state of the vertical shaft lining at the drift landing section in saliferous rocks // Journal of Mining Institute. 2019. Vol. 240 . p. 628-637. DOI: 10.31897/PMI.2019.6.628
Electromechanics and mechanical engineering
  • Date submitted
    2015-07-08
  • Date accepted
    2015-09-08
  • Date published
    2016-02-24

The anomaly of iron plasticity as a result of transformation at ~ 650 ºC

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On the basis of six signs of the trip-effect, thermal effect as a result of four independent piec-es of researches, magnetic effect (diffusion change, as in the point of Curie), changes in hydrogen and carbon solubility and two dozens of anomalies based on temperature dependences of physical properties, conversion in iron at ~ 650ºC has been proven. The transformation enables to explain extreme products properties obtained as a result of isothermal transformation of austenite, step tempering, martensite vacation, anomalously high diffusion, appearance of stimulus to austenite recrystallization and other.

How to cite: Shakhnazarov K.Y., Pryakhin E.I. The anomaly of iron plasticity as a result of transformation at ~ 650 ºC // Journal of Mining Institute. 2016. Vol. 217 . p. 150-155.
Applied and fundamental research in physics and mathematics
  • Date submitted
    2009-09-01
  • Date accepted
    2009-11-19
  • Date published
    2010-06-25

Structural features of gas-liquid mixture

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the effectiveness of the foam flush drilling connects of foam ability to reduce the friction force and drilling shaft oscillation. The main factors are foam viscosity and foam bubble’s diameter.

How to cite: Muraev Y.D., Shkryabin V.L., Guseinov S.Z. Structural features of gas-liquid mixture // Journal of Mining Institute. 2010. Vol. 187 . p. 79-82.