Yıl: 2021 Cilt: 12 Sayı: 4 Sayfa Aralığı: 114 - 124 Metin Dili: İngilizce DOI: 10.20528/cjcrl.2021.04.001 İndeks Tarihi: 21-05-2022

Ballistic strength of aerated concrete

Öz:
In regional studies conducted by the Law Enforcement Agency and the Armed Forces within the scope of counter-terrorism activities, to ensure peace and security throughout the country and for the police and military personnel to provide security services, the need to produce different solutions has arisen in the face of attacks on the security points established at many important points, especially at the entrance and exit points of the cities. In this context, by changing the direction and angle of the wall types made of aerated concrete used in construction techniques, 7 variations were tested on these wall types with materials formed with adhesive mortar+plaster, monolithic elastomer polyurea, and non-Newtonian fluid, and the strength of these materials were tested with BR6 and BR7 bullets. The main purpose of this study was to determine the most suitable material in terms of security parameters in the shortest time and at a low cost and to create a reliable structure for security cabins. At the end of the study, the best results were obtained with the shots made on the narrow surface of the aerated concrete and the shots made on the platform formed with nonNewtonian fluid.
Anahtar Kelime:

Belge Türü: Makale Makale Türü: Araştırma Makalesi Erişim Türü: Erişime Açık
  • Alkayiş MH, Başyiğit C (2021). Effect of fiber additive on concrete impact strength. European Journal of Science and Technology, 24, 455-462.
  • Ayten AI , Taşdelen MA, Ekı̇cı̇ B (2020). An experimental investigation on ballistic efficiency of silica-based crosslinked aerogels in aramid fabric. Ceramics International, 46(17), 26724-26730.
  • Bocetta S (2017). The History of Body Armor, From Medieval Times to Today. https://smallwarsjournal.com/jrnl/art/the-history-of-bodyarmor-from-medieval-times-to-today. Downloaded on 28.04.2021
  • Bozdoğan F, Üngün S, Temel E, Mengüç G (2015). Textiles used for balistic protection, their properties and balistic performance tests. Journal of Textiles and Engineer, 11(98), 84-103. Feng J, Sun W, Wang L, Chen L, Xue S, Li W (2020). Terminal ballistic and static impactive loading on thick concrete target. Construction and Building Materials, 251, 118899.
  • Göksel B (2018). Aramid Fiber Tib2 Reinforcement at Different Fiber Orientation Angles, Mechanical and Ballistics Investigation, Ph.D. thesis, Kırıkkale University, Kırıkkale, Turkey.
  • Henderson J (2008). Ballistic Body Armor Protecting. The Protectors. Strategic Standardization, 1-18,
  • Hsieh C, Mount A, Jang B, Zee R (1990). Response of polymer composites to high and low velocity impact. Proceedings of the 22nd International SAMPE Technical Conference, 14-27. Izoline (2021). http://www.izolinex.com/line-x.html.
  • Jin X, Jin T, Su B. Wang Z. Ning J, Shu X (2017). Ballistic resistance and energy absorption of honeycomb structures filled with reactive powder concrete prisms. Journal of Sandwich Structures & Materials, 19(5), 544-571.
  • Kantar E, Arslan A, Özgür A (2011). Effect of concrete compressive strength variation on impact behaviour. Journal of the Faculty of Engineering and Architecture of Gazi University, 26(1), 115-123.
  • Kaymaz, K, Arıcı E (2018). The effect of mechanical properties of concrete on impact strength. Gümüşhane University Journal of Science and Technology Institute, 8(2) extra, 106-111.
  • Mousavi MV, Khoramishad H (2020). Investigation of energy absorption in hybridized fiber-reinforced polymer composites under high-velocity impact loading. International Journal of Impact Engineering, 146, 103692.
  • Naito C, States J, Jackson C, Bewick B (2014). Crumb rubber concrete performance under near-field blast and ballistic demands. Journal of Materials in Civil Engineering, 26(9), 04014062. NIJ Standard-0101.06 (2008). America Ballistic Resistance of Body Armor, Washington, USA.
  • Oucif C, Kalyana Rama JS, Shankar Ram K, Abed F (2021). Damage modeling of ballistic penetration and impact behavior of concrete panel under low and high velocities. Defence Technology, 17(1), 202-211.
  • Özmen H, Soyluk K, Özgür A (2018). The effect of concrete strength on the structural behaviour of reinforced concrete buildings under explosive-based inside demolition. Eskişehir Technical University Journal of Science and Technology B- Theoritical Sciences, 6, 47-56.
  • Plummer H (1940). Elements of ordnance. Nature, 145(3673), 443-444.
  • TDIPC (2021). Turkish Defense Industry Product Catalogue. https://www.ssb.gov.tr/urunkatalog/tr/523
  • TS 11019 (2015). Procedure to determine the degree of ballistic performance similarity of indirect fire ammunition and applicable corrections to aiming data. Turkish Standards Institution, Ankara, Turkey.
  • TS EN 771-4:2011+A1 (2015). Specification for masonry units - Part 4: Autoclaved aerated concrete masonry units. Turkish Standards Institution, Ankara, Turkey.
  • TS EN 1063 (2002). Glass in building - Security glazing - Testing and classification of resistance against bullet attack. Turkish Standards Institution, Ankara, Turkey.
  • TSE EN 12004-1 (2017). Adhesives for ceramic tiles - Part 1: Requirements, assessment and verification of constancy of performance, classification and marking. Turkish Standards Institution, Ankara, Turkey.
  • Verhagen A (1978). Impact testing of fibre reinforced concrete: reflection on possible test methods. In: Testing and Test Methods of Fibre Cement Composites. RILEM Symposium Edited by RN Swamy, The Construction Press Ltd., Hornby, 99-105.
  • Wikipedia (2021). https://tr.wikipedia.org/wiki/M%C4%B1s%C4%B1r_ni%C5%9Fastas%C4%B1
APA DURMUŞ G, Ekinci S (2021). Ballistic strength of aerated concrete . , 114 - 124. 10.20528/cjcrl.2021.04.001
Chicago DURMUŞ GÖKHAN,Ekinci Sefa Ballistic strength of aerated concrete . (2021): 114 - 124. 10.20528/cjcrl.2021.04.001
MLA DURMUŞ GÖKHAN,Ekinci Sefa Ballistic strength of aerated concrete . , 2021, ss.114 - 124. 10.20528/cjcrl.2021.04.001
AMA DURMUŞ G,Ekinci S Ballistic strength of aerated concrete . . 2021; 114 - 124. 10.20528/cjcrl.2021.04.001
Vancouver DURMUŞ G,Ekinci S Ballistic strength of aerated concrete . . 2021; 114 - 124. 10.20528/cjcrl.2021.04.001
IEEE DURMUŞ G,Ekinci S "Ballistic strength of aerated concrete ." , ss.114 - 124, 2021. 10.20528/cjcrl.2021.04.001
ISNAD DURMUŞ, GÖKHAN - Ekinci, Sefa. "Ballistic strength of aerated concrete ". (2021), 114-124. https://doi.org/10.20528/cjcrl.2021.04.001
APA DURMUŞ G, Ekinci S (2021). Ballistic strength of aerated concrete . Challenge Journal of Concrete Research Letters, 12(4), 114 - 124. 10.20528/cjcrl.2021.04.001
Chicago DURMUŞ GÖKHAN,Ekinci Sefa Ballistic strength of aerated concrete . Challenge Journal of Concrete Research Letters 12, no.4 (2021): 114 - 124. 10.20528/cjcrl.2021.04.001
MLA DURMUŞ GÖKHAN,Ekinci Sefa Ballistic strength of aerated concrete . Challenge Journal of Concrete Research Letters, vol.12, no.4, 2021, ss.114 - 124. 10.20528/cjcrl.2021.04.001
AMA DURMUŞ G,Ekinci S Ballistic strength of aerated concrete . Challenge Journal of Concrete Research Letters. 2021; 12(4): 114 - 124. 10.20528/cjcrl.2021.04.001
Vancouver DURMUŞ G,Ekinci S Ballistic strength of aerated concrete . Challenge Journal of Concrete Research Letters. 2021; 12(4): 114 - 124. 10.20528/cjcrl.2021.04.001
IEEE DURMUŞ G,Ekinci S "Ballistic strength of aerated concrete ." Challenge Journal of Concrete Research Letters, 12, ss.114 - 124, 2021. 10.20528/cjcrl.2021.04.001
ISNAD DURMUŞ, GÖKHAN - Ekinci, Sefa. "Ballistic strength of aerated concrete ". Challenge Journal of Concrete Research Letters 12/4 (2021), 114-124. https://doi.org/10.20528/cjcrl.2021.04.001