Published since 1923
DOI: 10.33622/0869-7019
Russian Science Citation Index (RSCI) на платформе Web of Science


  • CONFERENCE "SURVEY AND MONITORING OF BUILDINGS AND STRUCTURES"
  • Assessment Of Rigidity And Crack Resistance Of Reinforced Concrete Elements Based On The Results Of Vibration Tests
  • UDC 620.179.16:69.05
    doi: 10.33622/0869-7019.2026.02.12-16
    Yuri S. KUNIN, uskunin@mgsu.ru
    Alexander S. PERUNOV, perunovas@mgsu.ru
    National Research Moscow State University of Civil Engineering, Yaroslavskoe shosse, 26, Moscow 129337, Russian Federation
    Abstract. The current task of modern construction is to check the quality of precast concrete elements using a vibration control method with minimal material and time costs. The main analytical dependences for determining the stiffness and moment of cracking of reinforced concrete elements are given, taking into account the results of vibration tests. The method of conducting tests in free and forced oscillation modes is presented. Based on the measured frequencies and vibration decrements, the actual stiffness and crack formation moments for the tested reinforced concrete bridge beams were determined. It is shown that by analyzing the results of testing beams by the vibration method, it is possible to select elements of better quality with higher stiffness and crack resistance from a batch of tested structural elements of the same type and, accordingly, reject structures of lower quality. The main selection criteria are two indicators - the frequency of natural (free) vibrations of the structural element and the vibration decrement.
    Keywords: vibration control method, rigidity and crack resistance of reinforced concrete elements, natural vibration frequency, vibration decrement, testing of buildings and structures, defects in building structures
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  • For citation: Kunin Yu. S., Perunov A. S. Assessment of Rigidity and Crack Resistance of Reinforced Concrete Elements Based on the Results of Vibration Tests. Promyshlennoe i grazhdanskoe stroitel'stvo [Industrial and Civil Engineering], 2026, no. 2, рp. 12-16. (In Russ.). doi: 10.33622/0869-7019.2026.02.12-16


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