[1]
Cheberiachko, S., Knysh, I., Pustovoi, D., Sharovatova, O., Research of operational properties of household fabrics for production of protective masks. Materials Science Forum. 1038 (2021) 221–232
DOI: 10.4028/www.scientific.net/MSF.1038.221
Google Scholar
[2]
Małgorzata, О., Serhii, С., Radchuk, D., Deryugin, O., Sharovatova, O., Evaluation of properties of elastomeric head straps of filtering facepiece respirators. International Journal of Occupational Safety and Ergonomics. 29 4 (2023) 1294–1300
DOI: 10.1080/10803548.2023.2257066
Google Scholar
[3]
Radchuk, D.I., Cheberyachko, S.I., Deryugin, O.V., Sharovatova, O.P., The Study of the Mechanical Strength of Polypropylene Filter Material for the Production of Disposable Respirators. Solid State Phenomena. 364 (2024) 89–100
DOI: 10.4028/p-c3LL1b
Google Scholar
[4]
Tretiakova, L., Cheberyachko, Y., Kravchenko, B., Zolotarova, O., The influence of head strap elasticity on the protective properties of filtering facepiece respi-rators. Rudarsko Geolosko Naftni Zbornik. 39(1) (2024) 131–140
DOI: 10.17794/rgn.2024.1.11
Google Scholar
[5]
DSTU EN 529:2006. Zasoby indyvidualnoho zakhystu orhaniv dykhannia. Rekomendatsii shchodo vyboru, vykorystannia, dohliadu i obsluhovuvannia. Nastanova. Chynnyi vid 01.10.2007. Kyiv, 2008. 38 s.
Google Scholar
[6]
Tekhnichnyi rehlament zasobiv indyvidualnoho zakhystu: Postanova Kabinetu Ministriv Ukrainy vid 21.08.2019 № 771. https://zakon.rada.gov.ua/laws/show/771-2019-%D0%BF#Text
Google Scholar
[7]
Cheberiachko, S., Cheberiachko, Yu., Radchuk, D., Deriuhin, O., Klimov, D., Sharovatova, O., Hrydiaiev, V. Indyvidualni zasoby zakhystu orhaniv dykhannia: innovatsii dlia znyzhennia ryzyku profesiinykh zakhvoriuvan. Komunalne hospodarstvo mist. 1(175) (2023) 221–228
DOI: 10.33042/2522-1809-2023-1-175-221-228
Google Scholar
[8]
Si, F., Lian, P., Yang, D., Han, G., Hao, S. Ye, P., 3D Numerical Simulation of Aerodynamic Characteristics of a Gas Filter. Journal of Applied Mathematics and Physics. 7 (2019) 1920–1928
DOI: 10.4236/jamp.2019.78132
Google Scholar
[9]
Cheberiachko, Yu.I., Ikonnikova, N.A., Cheberiachko, I.M., Yurchenko, A.A., Experimental studies on polypropylene filter resistance according to DSTU EN 143-2002. Naukovyi visnyk Natsionalnoho hirnychoho universytetu. 2 (2018) 87–94. http://nbuv.gov.ua/UJRN/Nvngu_2018_2_13
DOI: 10.29202/nvngu/2018-2/13
Google Scholar
[10]
Deuschle, T., Janoske, U., Piesche, M., A CFD-model describing filtration, regeneration and deposit rearrangement effects in gas filter systems. Chemical Engineering Journal. 135 (1–2) (2008) 49–55
DOI: 10.1016/j.cej.2007.03.019
Google Scholar
[11]
Lücke, T., Fissan, H., The prediction of filtration performance of high efficiency gas filter elements. Chemical Engineering Science. 51(8) (1996) 1199–1208
DOI: 10.1016/0009-2509(95)00366-5
Google Scholar
[12]
Su, Y-C, Li, C-C., Computational fluid dynamics simulations and tests for improving industrial-grade gas mask canisters. Advances in Mechanical Engineering. 7(8) (2015)
DOI: 10.1177/1687814015596297
Google Scholar
[13]
Loboichenko, V., Nikitina, N., Leonova, N., Konovalova, O., Bondarenko, A., Zemlianskyi, O., Rashkevich, N., Study of the features of determination of heavy metals in bottom sediments. In IOP Conference Series: Earth and Environmental Science. 1348 1 (2024) 012014. IOP Publishing.
DOI: 10.1088/1755-1315/1348/1/012014
Google Scholar
[14]
Medved, I., Rashkevich, N., Otrosh, Yu., Tomenko, V. Analysis of Experimental Studies of Titanium Alloy. Materials Science Forum. 1141 (2024) 35–42
DOI: 10.4028/p-rYw4RJ
Google Scholar
[15]
Halif, M.H., Azmir, N.A., Taib, I, Noraini, N.M.R., Computational Fluid Dynamics Analysing of Preferential Flow in Gas Mask Filter Cartridge. Journal of Advanced Research in Numerical Heat Transfer. 24(1) (2024) 58–68
DOI: 10.37934/arnht.24.1.5868
Google Scholar
[16]
Numerical modelling of fluid flow through a powered air-purifying respirator filter. Wood S.G.A. 2020. Dissertation Ph. D. Thesis. Newcastle University. http://hdl.handle.net/10443/5229
Google Scholar
[17]
AL-Sarkhi, A., Chambers, F.W., Optimization Technique for Design of Automotive Air Filter Housings with Improved Fluid Dynamic Performance and Filtration. Particulate Science and Technology. 22(3) (2004) 235–252
DOI: 10.1080/02726350490501466
Google Scholar
[18]
Jeon, R., Kim, S.H., Ko, K., Kihyun, K., Park, M., Seo, I., Oh, M., Lee, C.-H., Advanced cartridge design for a gas respiratory protection system using experiments, CFD simulation and virtual reality. Journal of Cleaner Production. 426 (2023) 139101
DOI: 10.1016/j.jclepro.2023.139101
Google Scholar
[19]
Cheberiachko, S.I., Yavorska, O.O., Klimov, D.H., Yavorskyi, A.V., Effect of filtering box parameters on the protective action of gas filters. Naukovyi Visnyk Natsionalnoho Hirnychoho Universytetu. 2. (2020) 89–95
DOI: 10.33271/nvngu/2020-2/089
Google Scholar
[20]
Radchuk, D., Cheberiachko, Y., Naumov, M., Cheberiachko, S., Research of influence of the gas filter design parameters on the protective term of respirators. Social Development and Security. 14(3) (2024) 180–194. https://paperssds.eu/index.php/JSPSDS/article/view/689
Google Scholar
[21]
Lodewyckx, P., Fernandez-Velasco, L., Boutillara, Y., Estimating the Service Life of Activated Carbon Filters for Air Purification. Eurasian Chemico-Technological Journal. 21(3) (2019) 193–201.
DOI: 10.18321/ectj860
Google Scholar
[22]
Chun-Chi, Li. Aerodynamic behavior of a gas mask canister containing two porous media. Chemical Engineering Science. 64(8) (2009) 1832–1843
DOI: 10.1016/j.ces.2009.01.009
Google Scholar
[23]
Jeon, R., Ko, K., Kwon, K., Park, M., Seo, I., Oh, M., Lee, C.-H., Optimal Design of an Advanced Canister for a Next-Generation Gas Mask Using Cfd Simulation and Virtual Reality. SSRN, 2022
DOI: 10.2139/ssrn.4145268
Google Scholar