In the work from the theoretical point of view the management of functioning of transport and operation of technical systems on the basis of a method of the system theory of information is substantiated. The state vector and matrix on the basis of diagnostic information and sensitivity of influence of diagnostic parameters on a condition of transport or technical systems are offered. The properties of sensitivity (sensitivity) are reflected on the basis of classical and generalized information formulas of A. Kharkevich, K. Shannon, R. Hartley. The coefficients of quantum (emergence) of information according to the expressions of Shannon-Kharkevich and Hartley are used, the level of complexity of the changed states of the control system is taken into account. The scheme of connections of classical and generalized formulas which reflect functions of density of the diagnostic information on a condition of technical and transport systems is constructed. A universal numerical method and tools for it have been developed, which allows to perform information calculations on the basis of diagnostic data of the state of the studied objects. Numerical calculation refers to the sensitivity of the state (sensitivity factor) of technical and transport systems. The level of system organization of transport and technical systems and their management as active objects is considered. It is noted that the principle of correspondence is fulfilled, which is mandatory for a more general information theory. The system modification is implemented using the Hartley formula, and the modification in the classical case is the Kharkevich formula. It is determined that the semantic information model allows for small samples and comparison of partial criteria to well substantiate the interpretations of object state recognition, developed by the vectors of their classes. It is revealed that the semantic information model combines the advantages of meaningful and statistical models created for the implementation of the automated system of cognitive analysis of transport and technical systems. The behavior of systems is revealed when they are completely deterministic and completely random, which is important in predicting their state.
It is shown that the effectiveness of the implementation of tribotechnologies for running-in and restoration of systems and assemblies of transport machines depends on the preparation of the working environment in which the running-in of tribocouplings of parts takes place. When using a geomodifier to add to engine and transmission oil, it is important to refine the particles of its components and obtain special properties of their surfaces. The properties of the main components of the KGMT-1 geomodifier: SiO2, MgO, Al2O3, Fe2O3 are considered. Their activation during grinding and feeding into the friction zone is substantiated. The change in the size of the particles of the components of the geomodifier on the duration of the test under various operating conditions and within the limits of the strength intervals was investigated. The course of various physical processes according to nonequilibrium thermodynamics and the realization of states and processes of self-organization are considered. It was found that, depending on the degree of fragmentation, the particles of the components exhibit different activity, and therefore, different conditions for the formation of protective coatings on the working surfaces of parts and tribomechanical and tribophysical effects on particles are realized. It is shown that the latter manifests itself during the formation of defects, specific surface area, and duration of mechanical activation. It was revealed that for the materials of the KGMT-1 geomodifier components with strongly homeopolar bonds, such as SiO2, SiC, and the aluminosilicate mineral kaolinite, an amorphization process is observed. The influence of the α-Si-k-Si phase transformation in the materials of the KGMT-1 additive on the efficiency of the implementation of tribotechnologies has been determined. It is shown how physical processes in a composite oil cause tribochemical reactions and formation of coatings on the working surfaces of interfaces of parts of systems and aggregates of transport machines.
This work examines the conditions of tribological efficiency of couplings of TM transmission discs as resource-determining parts and its influence on the operational reliability of machines. The change in hydrodynamic friction, oil consumption, oil carrying capacity by rotating disks in both laminar and turbulent modes of transmission oil flow is substantiated. The nature of oil discharge from the working surface of the disk in laminar and turbulent modes is considered. Based on the system of the Navier-Stokes equation, the change in the effective characteristics of the coupled transmission discs is substantiated: carrying capacity and oil consumption. The nature of oil discharge from the working surface of the transmission disc is considered, taking into account the friction forces and inertia forces. The dependence of the moment of hydrodynamic resistance on a number of parameters, as well as the relative moment of resistance on the Reynolds and Froude criteria, was investigated as the efficiency of the coupled discs of the transmission of transport vehicles. A qualitative graphical dependence of the moment of hydrodynamic resistance of tribocouplers of disks on the angular speed of their rotation is constructed, with the selection of characteristic zones, and a description of the physical picture of the processes in them is given. The well-founded dependence of the moment of hydrodynamic resistance on a number of influencing parameters, as well as the relative moment of resistance in the multiplicative model representation through criterion dimensionless complexes. The set of processes occurring in the tribo-coupling of disks depending on the angular speed of their rotation in five selected zones has been clarified. It is shown that the efficiency and reliability of the TM transmission depends on the total frictional force acting on the tribo-coupling of the discs, load and operating conditions.
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