|

Investigation of the Influence of the Controllability Parameter on the Choice of an On-Board Equipment Data Exchange Interface

Authors: Treshchetkin А.Yu., Balizh K.S., Bylinkin I.K., Shevyakov V.I. Published: 21.01.2026
Published in issue: #4(153)/2025  
DOI:

 
Category: Instrument Engineering, Metrology, Information-Measuring Instruments and Systems | Chapter: Instrumentation and Methods to Control Environment, Substances, Materials, and Products  
Keywords: control, measurement, testing, on-board equipment, data transmission interface

Abstract

The article compares the methods of monitoring digital high-speed interfaces of data transmission. Parametric control of the key characteristics of the data transmission interface is used to optimize the verification time, and functional control with the addition of distortion of the transmitted data is used to debug the software. The features of interface control are considered, taking into account the data transfer rate, their architectures and functional features. To systematize interface checks, the option of dividing control methods with levels of the OSI interface model is being studied. Recommendations on the choice of measuring instruments for signal analysis are given. Aspects of parametric control techniques are considered. The developed methods of parametric control of high-speed interfaces make it possible to control the parameters of the skew and jitter of the signal. Such measurements are a more complex task than measuring the signal rise time and amplitude. The results of comparing the parameters of the interfaces of the MIL-STD 1553, SpaceWire and Serial RapidIO applied to the task of controllability are presented: an important factor influencing the cost and complexity of such a development

Please cite this article in English as:

Treschetkin A.Yu., Balizh K.S., Bylinkin I.K., et al. Investigation of the influence of the controllability parameter on the choice of an on-board equipment data exchange interface. Herald of the Bauman Moscow State Technical University, Series Instrument Engineering, 2025, no. 4 (153), pp. 46--60 (in Russ.). EDN: KPTGUC

References

[1] Gorbunov S.F., Grishin V.Yu., Eremeev P.M. Spacecraft network interfaces: development prospects and implementation problems. Nanoindustriya [Nanoindustry], 2019, no. S, pp. 128--130 (in Russ.). EDN: ZHEXCP

[2] Ayukaeva D.M., Voronin F.A., Poluarshinov M.A., et al. Integration of controllable scientific equipment into the Russian segment of the International space station. Kosmicheskaya tekhnika i tekhnologii [Space Engineering and Technology], 2020, no. 3, pp. 66--75 (in Russ.). DOI: https://doi.org/10.33950/spacetech-2308-7625-2020-3-66-75

[3] Dikarev V.A., Kikina A.Yu., Kryuchkov B.I., et al. Retrospectives and prospects in the preliminary design of human-machine interface of manned spacecraft. Vozdushno-kosmicheskaya sfera [Aerospace Sphere Journal], 2021, no. 107, pp. 54--64 (in Russ.). DOI: https://doi.org/10.30981/2587-7992-2020-107-2-54-64

[4] Bevzenko S.A. Study of the effects of load testing on system performance and reliability. Universum: tekhnicheskie nauki, 2023, no. 114, pp. 43--49 (in Russ.). DOI: https://doi.org/10.32743/UniTech.2023.114.9.16001

[5] Lisin D.V. The method for combining the main and backup sets of space experiment control equipment. Nauchnoe priborostroenie, 2024, vol. 34, no. 2, pp. 95--101 (in Russ.).

[6] Bykov A.P., Piganov M.N. Off-line tests technique for spacecraft onboard electronic devices. Trudy MAI, 2020, no. 111 (in Russ.). DOI: https://doi.org/10.34759/trd-2020-111-7

[7] Nekrasov V.V., Dementyev D.Yu., Papenkin S.V., et al. Methodology for designing a microcontroller system flywheel rotor speed control for highly dynamic spacecraft. Izvestiya vysshikh uchebnykh zavedeniy. Povolzhskiy region. Tekhnicheskie nauki [University Proceedings. Volga Region. Engineering Sciences], 2023, no. 3, pp. 101--118 (in Russ.). DOI: https://doi.org/10.21685/2072-3059-2023-3-8

[8] Bykov A.P. Reliability performance measure model and method for avionics. Radiotekhnicheskie i telekommunikatsionnye sistemy [Radioengineering and Telecommunication Systems], 2021, no. 1, pp. 17--23 (in Russ.).

[9] Puchkov A.V., Maksyutin A.S. [Development of a simulator for testing spacecraft electric motor control system]. Aktualnye problemy aviatsii i kosmonavtiki. T. 1 [Actual problems of aviation and cosmonautics. Vol. 1]. Krasnoyarsk, SibGU im. M.F. Reshet-neva Publ., 2022, pp. 652--654 (in Russ.). EDN: TBQVDG

[10] Suvorova E.A., Stepanov V.E., Olenev V.L. Analysis of the spacefibre technology for the high-bandwidth onboard networks. Raketno-kosmicheskaya tekhnika [Spacecrafts and Technologies], 2023, vol. 7, no. 2, pp. 100--106 (in Russ.). DOI: https://doi.org/10.26732/j.st.2023.2.02

[11] Maksyutin A.S., Murygin A.V., Ivlenkov D.V., et al. Development of workspace and algorithms for testing spacewire onboard equipment. Sibirskiy aerokosmicheskiy zhurnal [Siberian Aerospace Journal], 2021, vol. 22, no. 4, pp. 613--623 (in Russ.).DOI: https://doi.org/10.31772/2712-8970-2021-22-4-613-623

[12] Maksyutin A.S., Kazaykin D.S., Dymov D.V., et al. Development of a methodology for testing spacewire network switches. Sibirskiy aerokosmicheskiy zhurnal [Siberian Aerospace Journal], 2022, vol. 23, no. 2, pp. 197--208 (in Russ.).DOI: https://doi.org/10.31772/2712-8970-2022-23-2-197-208

[13] Soldatov A.I., Kim O.Kh., Soldatov A.A., et al. Conflict-free, fault-tolerant, and compact programmable switching unit. Doklady TUSUR [Proceedings of the TUSUR University], 2021, vol. 24, no. 3, pp. 12--17 (in Russ.). DOI: https://doi.org/10.21293/1818-0442-2021-24-3-12-17

[14] Maksyutin A.S., Murygin A.V. Analysis of information interaction in the channels of the spacewire network. Vestnik PNIPU. Aerokosmicheskaya tekhnika [PNRPU Aerospace Engineering Bulletin], 2023, no. 75, pp. 16--25 (in Russ.). EDN: RVVESE

[15] Bumagin A.V., Gondar A.V., Savelyev S.A. Developing rad hard serial rapidio 2.5 g interface transceiver IP based on Russian technological process. Nanoindustriya [Nanoindustry], 2019, no. 89, pp. 120--125 (in Russ.). EDN: UYTWPA

[16] Godunov A.N., Soldatov V.A., Khomenkov I.I. Message transfer in the RapidIO interconnect for Baget real-time operating systems family. Programmnaya inzheneriya [Software Engineering], 2020, vol. 11, no. 1, pp. 26--33 (in Russ.). DOI: https://doi.org/10.17587/prin.11.26-33

[17] Vyukova N.I., Galatenko V.A., Pavlov A.N., et al. Mapping parallel computations to distributed systems based on RapidIO technology. Program. Comput. Soft., 2020, vol. 46, no. 6, pp. 418--427. DOI: https://doi.org/10.1134/S0361768820060080

[18] Zhuravlev A.V., Aksenov K.A. Analysis of the testing time of the control system on the test bench. Inzhenernyy vestnik Dona [Engineering Journal of Don], 2023, no. 5, pp. 173--184 (in Russ.). EDN: IIYSEA

[19] Komarov V.A., Sarafanov A.V. Increasing the quality of ground experimental research of onboard electronic equipment for satellite control systems. Nadezhnost i kachestvo slozhnykh system [Reliability & Quality of Complex Systems], 2022, no. 39, pp. 61--69 (in Russ.). DOI: https://doi.org/10.21685/2307-4205-2022-3-8

[20] Maksyutin A.S., Murygin A.V. The concept of constructing a stand to test the spacewire onboard equipment with possibility of software and hardware simulation of reconfigurable topology of the spacecraft onboard network. Herald of the Bauman Moscow State Technical University, Series Mechanical Engeenering, 2023, no. 2 (145), pp. 4--14 (in Russ.). DOI: 10.18698/ 0236-3941-2023-2-4-14