Theoretical substantiation of acoustic cavities in the construction of wooden slabs
https://doi.org/10.21266/2079-4304.2025.255.390-402
Abstract
The paper presents a study of the design of acoustic characteristics of a soundproof wooden panel. The growing need for effective noise control strategies in various applications, such as wooden house construction, has led to the development of innovative sound insulation materials. This study examines the incorporation of sound- absorbing elements into wooden panels to enhance their sound insulation properties. The theoretical basis for the use of acoustic cavities is based on the principle of acoustic resonators. In the presence of volumetric cavities in the structure, it becomes possible to create resonant phenomena that can significantly affect the sound pressure level and damping of sound waves. Resonation occurring at certain frequencies helps to reduce the intensity of sound, which improves the acoustic characteristics of the finished structure. The design process takes into account the choice of sound-absorbing elements and their integration into the construction of wooden panels. Various sound-absorbing materials such as porous absorbers, microperforated panels and resonant cavities are evaluated in terms of their sound absorption coefficients. The optimal configuration is determined by modeling and experimental measurements using standardized methods defined in GOST 27296-2012 «Buildings and structures. Methods for measuring the sound insulation of enclosing structures». The manufacturing technique involves the integration of sound-absorbing elements into the construction of a wooden panel while maintaining its structural integrity. The developed soundproof wooden panel offers a universal solution for noise reduction, opening up new opportunities in wooden house construction projects. The use of new types of wood slabs will significantly improve the construction technology and the level of acoustic comfort. To study the reduction of sound pressure, special sound-insulating wood panels with internal structural elements in the form of parabolic cavities that contribute to sound absorption were used. This study examines the introduction of sound absorption elements into wooden panels to improve their noise protection properties. By introducing parabolic recesses (or «sound pockets») into a wooden panel, its sound insulation properties can be significantly improved. These structural elements, made by milling, contribute to sound absorption and reduce the sound conductivity of the panel. Parabolic recesses reflect, absorb and disperse sound waves, reducing the transition of sound through the material, which helps to reduce noise levels and improve acoustic comfort in the room where this panel is installed.
About the Authors
A. P. MokhirevRussian Federation
Mokhirev Aleksandr P. – DSc (Technical), Professor, researcher at the Lesosibirsk Pedagogical Institute, a branch of the Siberian Federal University; Professor at the Department of Highways and Urban Structures of the Civil Engineering Institute of the Siberian Federal University, Associate Professor
562544, Pobedy str. 42. Lesosibirsk. Krasnoyarsk Territory,
569041, Svobodny av. 82. Build. 1. Krasnoyarsk
Researcher ID: N-9961-2019
I. V. Khramov
Russian Federation
Khramov Igor V. – Senior Lecturer at the Department of Higher Mathematics, Economics and Natural Sciences of the Lesosibirsk Pedagogical Institute, a branch of the Siberian Federal University; Engineer at the educational Laboratory for Testing Building Materials and Structures of the Department of Building Structures and Controlled Systems of the Civil Engineering Institute of the Siberian Federal University
562544, Pobedy str. 42. Lesosibirsk. Krasnoyarsk Territory,
569041, Svobodny av. 82. Build. 1. Krasnoyarsk
Researcher ID: AAA- 3222-2022
A. D. Guzovatova
Russian Federation
Guzovatova Anna D. – Student
569041, Svobodny av. 82. Build. 1. Krasnoyarsk
References
1. Amelchugov S.P., Mokhirev A.P., Tarasov I.V., Khramov I.V. Investigation of the sound impedance of a wooden panel. Factory Laboratory. Diagnostics of materials, 2022, vol. 88, no. 11, pp. 27–31. (In Russ.)
2. Birman A.R., Ugryumov S.A. Plywood panel. Utility Model Patent No. 193354 U1 Russian Federation, IPC B27D 1/06: No. 2019118160; decl. 06/10/2019; publ. 10/25/2019. (In Russ.)
3. Boytemirov F.A. The prospects of using wood in high-rise buildings based on the conducted research. BST: Bulletin of construction equipment, 2021, no. 10 (1046), pp. 37–39. (In Russ.)
4. De Santis Yu., Aloisio A., Pasca D.P., Gavrić I., Fragiacomoa M. Mechanical characterization of soundproofed inclined screws connections. Construction and Building Materials, 2024, vol. 412, art. no. 134641.
5. Khramov I.V., Mokhirev A.P., Amelchugov S.P., Khramova K.R. Improving the design of a wood panel to increase sound insulation. Current issues of construction: a look into the future: a collection of scientific articles based on the mat. of the All-Russ. sci.-pract. conf. dedicated to the 40th anniversary of the establishment of the Civil Engineering Institute. Krasnoyarsk, 2022, pp. 356–359. (In Russ.)
6. Khramov I.V., Mokhirev A.P., Lyutoeva E.V. Results of the experiment of sound pressure passing through sound-insulating wood panels. Actual issues of construction: a look into the future: a collection of scientific articles based on the mat. of the II All– Russ. sci.–pract. conf. Krasnoyarsk, 2023, pp. 396–400. (In Russ.)
7. Kudryashov A.P., Leonhard D.K. Soundproof door leaf. Utility model patent No. 177663 U1 Russian Federation, IPC E06B 5/16: No. 2017114097; decl. 04/21/2017; publ. 03/05/2018. (In Russ.)
8. Mokhirev A.P., Khramov I.V., Amelchugov S.P., Lyakh N.I., Smirnov I.Yu. Device for testing sound insulation of wood panels. Resources and Technology, 2023, vol. 20, no. 2, pp. 71–81. (In Russ.)
9. Popov K.N., Kadzo M.B. Building materials and products: textbook. Moscow: Higher School, 2013. 372 p. (In Russ.)
10. Radoutsky V.Yu., Shulzhenko V.N., Stepanova M.N. Modern sound- absorbing materials and structures. Bulletin of BSTU, 2016, no. 6, pp. 76–79. (In Russ.)
11. Santi S., Pierobon F., Corradini G., Cavalli R., Zanetti M. Massive wood material for sustainable building design: the Massive-Holz-Mauer wall system. Journal of Wood Science, 2016, no. 62, pp. 416–428.
12. Silman Yu. Yu., Ponomarev R. A. Wooden skyscrapers as an innovative and ambitious solution to the problems of urbanization // Problems of economics and construction management in an environmentally oriented development, April 14–15, 2020. Baikal State University, 2021, pp. 327–333.
13. Sumbatyan V.A., Boev N.V. On the reflection of sound from curved surfaces in room acoustics. Scientific Notes of the Faculty of Physics of Moscow University, 2020, iss. 1, art. no. 2010602. (In Russ.)
Review
For citations:
Mokhirev A.P., Khramov I.V., Guzovatova A.D. Theoretical substantiation of acoustic cavities in the construction of wooden slabs. Izvestia Sankt-Peterburgskoj lesotehniceskoj akademii. 2025;(255):390-402. (In Russ.) https://doi.org/10.21266/2079-4304.2025.255.390-402











