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Development and mechanical characterization of anti-blast sandwich composites for explosive effect

dc.contributor.advisor Tanoğlu, Metin en
dc.contributor.author Baştürk, Suat Bahar
dc.date.accessioned 2023-11-16T12:14:45Z
dc.date.available 2023-11-16T12:14:45Z
dc.date.issued 2011 en
dc.department Mechanical Engineering en_US
dc.description Thesis (Doctoral)--Izmir Institute of Technology, Mechanical Engineering, Izmir, 2011 en
dc.description Includes bibliographical references (leaves: 166-171) en
dc.description Text in English; Abstract: Turkish and English en
dc.description xix, 171 leaves en
dc.description Full text release delayed at author's request until 2015.01.25 en
dc.description.abstract Composite sandwich structures have high potential to be used in anti-blast armour systems due to their lightweight and resistance to explosive effects. This study focuses on the production and mechanical characterization of sandwich structures with aluminium (Al) foams of various thicknesses in conjunction with skins composed of Al/GFPP fibre/metal laminates. The bonding between the components of the sandwich was achieved by various surface modification techniques such as silane surface treatment, polypropylene (PP) adhesive film addition and their combination. The Al sheet/Al foam sandwiches were also prepared to investigate the effect of GFPP addition on the performance of sandwich structures. The energy absorption capacities together with compressive and flexural behaviour of both Al foams and FML/Al foam sandwiches were evaluated by flatwise compression and three point bending tests. The samples with higher elastic modulus usually exhibited higher collapse strength for each thickness set of foam and foam based sandwiches. Also, the core thickness increase led to the increase of overall flexural collapse load and GFPP presence promoted the strength of the sandwiches and dissipated energy values. In order to investigate the blast response of the sandwich panels, the quasi-static sandwich panel analysis was related to dynamic blast loadings. For this purpose, the sandwich composites were subjected to compression loading with a specially designed loading fixture and the corresponding test method is called as “simulated blast test”. The sandwiches were assumed as single degree of freedom mass-spring systems to include the dynamic effect. The peak deflections and survivability of the panels under blast loading were predicted based on the formulations reported in the literature. To evaluate the blast response of the monolithic materials, composites and sandwich panels, blast testing was performed using specially designed blast test frame system and 0.5 to 6 kg TNT explosives. Test results revealed that composites such as GFPP exhibited successful results against blast explosions. en
dc.identifier.uri http://standard-demo.gcris.com/handle/123456789/6441
dc.language.iso en en_US
dc.oaire.dateofacceptance 2011-01-01
dc.oaire.impulse 0
dc.oaire.influence 2.9837197E-9
dc.oaire.influence_alt 0
dc.oaire.is_green false
dc.oaire.isindiamondjournal false
dc.oaire.keywords Explosive force
dc.oaire.keywords Mechanical Engineering
dc.oaire.keywords Makine Mühendisliği
dc.oaire.keywords Sandwich structure elements
dc.oaire.keywords Composite materials
dc.oaire.popularity 7.325455E-10
dc.oaire.popularity_alt 0.0
dc.oaire.publiclyfunded false
dc.publisher Izmir Institute of Technology en
dc.relation.publicationcategory Tez en_US
dc.rights info:eu-repo/semantics/openAccess en_US
dc.subject Mechanical properties en
dc.subject.lcsh Composite materials--Mechanical properties en
dc.subject.lcsh Sandwich construction en
dc.title Development and mechanical characterization of anti-blast sandwich composites for explosive effect en_US
dc.type Doctoral Thesis en_US
dspace.entity.type Publication

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